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   1// SPDX-License-Identifier: GPL-2.0-only
   2/* binder.c
   3 *
   4 * Android IPC Subsystem
   5 *
   6 * Copyright (C) 2007-2008 Google, Inc.
   7 */
   8
   9/*
  10 * Locking overview
  11 *
  12 * There are 3 main spinlocks which must be acquired in the
  13 * order shown:
  14 *
  15 * 1) proc->outer_lock : protects binder_ref
  16 *    binder_proc_lock() and binder_proc_unlock() are
  17 *    used to acq/rel.
  18 * 2) node->lock : protects most fields of binder_node.
  19 *    binder_node_lock() and binder_node_unlock() are
  20 *    used to acq/rel
  21 * 3) proc->inner_lock : protects the thread and node lists
  22 *    (proc->threads, proc->waiting_threads, proc->nodes)
  23 *    and all todo lists associated with the binder_proc
  24 *    (proc->todo, thread->todo, proc->delivered_death and
  25 *    node->async_todo), as well as thread->transaction_stack
  26 *    binder_inner_proc_lock() and binder_inner_proc_unlock()
  27 *    are used to acq/rel
  28 *
  29 * Any lock under procA must never be nested under any lock at the same
  30 * level or below on procB.
  31 *
  32 * Functions that require a lock held on entry indicate which lock
  33 * in the suffix of the function name:
  34 *
  35 * foo_olocked() : requires node->outer_lock
  36 * foo_nlocked() : requires node->lock
  37 * foo_ilocked() : requires proc->inner_lock
  38 * foo_oilocked(): requires proc->outer_lock and proc->inner_lock
  39 * foo_nilocked(): requires node->lock and proc->inner_lock
  40 * ...
  41 */
  42
  43#define pr_fmt(fmt) KBUILD_MODNAME ": " fmt
  44
  45#include <linux/fdtable.h>
  46#include <linux/file.h>
  47#include <linux/freezer.h>
  48#include <linux/fs.h>
  49#include <linux/list.h>
  50#include <linux/miscdevice.h>
  51#include <linux/module.h>
  52#include <linux/mutex.h>
  53#include <linux/nsproxy.h>
  54#include <linux/poll.h>
  55#include <linux/debugfs.h>
  56#include <linux/rbtree.h>
  57#include <linux/sched/signal.h>
  58#include <linux/sched/mm.h>
  59#include <linux/seq_file.h>
  60#include <linux/string.h>
  61#include <linux/uaccess.h>
  62#include <linux/pid_namespace.h>
  63#include <linux/security.h>
  64#include <linux/spinlock.h>
  65#include <linux/ratelimit.h>
  66#include <linux/syscalls.h>
  67#include <linux/task_work.h>
  68#include <linux/sizes.h>
 
  69
  70#include <uapi/linux/android/binder.h>
  71#include <uapi/linux/android/binderfs.h>
  72
  73#include <asm/cacheflush.h>
  74
  75#include "binder_alloc.h"
  76#include "binder_internal.h"
  77#include "binder_trace.h"
  78
  79static HLIST_HEAD(binder_deferred_list);
  80static DEFINE_MUTEX(binder_deferred_lock);
  81
  82static HLIST_HEAD(binder_devices);
  83static HLIST_HEAD(binder_procs);
  84static DEFINE_MUTEX(binder_procs_lock);
  85
  86static HLIST_HEAD(binder_dead_nodes);
  87static DEFINE_SPINLOCK(binder_dead_nodes_lock);
  88
  89static struct dentry *binder_debugfs_dir_entry_root;
  90static struct dentry *binder_debugfs_dir_entry_proc;
  91static atomic_t binder_last_id;
  92
  93static int proc_show(struct seq_file *m, void *unused);
  94DEFINE_SHOW_ATTRIBUTE(proc);
  95
  96#define FORBIDDEN_MMAP_FLAGS                (VM_WRITE)
  97
  98enum {
  99	BINDER_DEBUG_USER_ERROR             = 1U << 0,
 100	BINDER_DEBUG_FAILED_TRANSACTION     = 1U << 1,
 101	BINDER_DEBUG_DEAD_TRANSACTION       = 1U << 2,
 102	BINDER_DEBUG_OPEN_CLOSE             = 1U << 3,
 103	BINDER_DEBUG_DEAD_BINDER            = 1U << 4,
 104	BINDER_DEBUG_DEATH_NOTIFICATION     = 1U << 5,
 105	BINDER_DEBUG_READ_WRITE             = 1U << 6,
 106	BINDER_DEBUG_USER_REFS              = 1U << 7,
 107	BINDER_DEBUG_THREADS                = 1U << 8,
 108	BINDER_DEBUG_TRANSACTION            = 1U << 9,
 109	BINDER_DEBUG_TRANSACTION_COMPLETE   = 1U << 10,
 110	BINDER_DEBUG_FREE_BUFFER            = 1U << 11,
 111	BINDER_DEBUG_INTERNAL_REFS          = 1U << 12,
 112	BINDER_DEBUG_PRIORITY_CAP           = 1U << 13,
 113	BINDER_DEBUG_SPINLOCKS              = 1U << 14,
 114};
 115static uint32_t binder_debug_mask = BINDER_DEBUG_USER_ERROR |
 116	BINDER_DEBUG_FAILED_TRANSACTION | BINDER_DEBUG_DEAD_TRANSACTION;
 117module_param_named(debug_mask, binder_debug_mask, uint, 0644);
 118
 119char *binder_devices_param = CONFIG_ANDROID_BINDER_DEVICES;
 120module_param_named(devices, binder_devices_param, charp, 0444);
 121
 122static DECLARE_WAIT_QUEUE_HEAD(binder_user_error_wait);
 123static int binder_stop_on_user_error;
 124
 125static int binder_set_stop_on_user_error(const char *val,
 126					 const struct kernel_param *kp)
 127{
 128	int ret;
 129
 130	ret = param_set_int(val, kp);
 131	if (binder_stop_on_user_error < 2)
 132		wake_up(&binder_user_error_wait);
 133	return ret;
 134}
 135module_param_call(stop_on_user_error, binder_set_stop_on_user_error,
 136	param_get_int, &binder_stop_on_user_error, 0644);
 137
 138#define binder_debug(mask, x...) \
 139	do { \
 140		if (binder_debug_mask & mask) \
 141			pr_info_ratelimited(x); \
 142	} while (0)
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 143
 144#define binder_user_error(x...) \
 
 
 
 
 145	do { \
 146		if (binder_debug_mask & BINDER_DEBUG_USER_ERROR) \
 147			pr_info_ratelimited(x); \
 148		if (binder_stop_on_user_error) \
 149			binder_stop_on_user_error = 2; \
 150	} while (0)
 151
 152#define to_flat_binder_object(hdr) \
 153	container_of(hdr, struct flat_binder_object, hdr)
 154
 155#define to_binder_fd_object(hdr) container_of(hdr, struct binder_fd_object, hdr)
 156
 157#define to_binder_buffer_object(hdr) \
 158	container_of(hdr, struct binder_buffer_object, hdr)
 159
 160#define to_binder_fd_array_object(hdr) \
 161	container_of(hdr, struct binder_fd_array_object, hdr)
 162
 163enum binder_stat_types {
 164	BINDER_STAT_PROC,
 165	BINDER_STAT_THREAD,
 166	BINDER_STAT_NODE,
 167	BINDER_STAT_REF,
 168	BINDER_STAT_DEATH,
 169	BINDER_STAT_TRANSACTION,
 170	BINDER_STAT_TRANSACTION_COMPLETE,
 171	BINDER_STAT_COUNT
 172};
 173
 174struct binder_stats {
 175	atomic_t br[_IOC_NR(BR_FAILED_REPLY) + 1];
 176	atomic_t bc[_IOC_NR(BC_REPLY_SG) + 1];
 177	atomic_t obj_created[BINDER_STAT_COUNT];
 178	atomic_t obj_deleted[BINDER_STAT_COUNT];
 179};
 180
 181static struct binder_stats binder_stats;
 182
 183static inline void binder_stats_deleted(enum binder_stat_types type)
 184{
 185	atomic_inc(&binder_stats.obj_deleted[type]);
 186}
 187
 188static inline void binder_stats_created(enum binder_stat_types type)
 189{
 190	atomic_inc(&binder_stats.obj_created[type]);
 191}
 192
 193struct binder_transaction_log binder_transaction_log;
 194struct binder_transaction_log binder_transaction_log_failed;
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 195
 196static struct binder_transaction_log_entry *binder_transaction_log_add(
 197	struct binder_transaction_log *log)
 198{
 199	struct binder_transaction_log_entry *e;
 200	unsigned int cur = atomic_inc_return(&log->cur);
 201
 202	if (cur >= ARRAY_SIZE(log->entry))
 203		log->full = true;
 204	e = &log->entry[cur % ARRAY_SIZE(log->entry)];
 205	WRITE_ONCE(e->debug_id_done, 0);
 206	/*
 207	 * write-barrier to synchronize access to e->debug_id_done.
 208	 * We make sure the initialized 0 value is seen before
 209	 * memset() other fields are zeroed by memset.
 210	 */
 211	smp_wmb();
 212	memset(e, 0, sizeof(*e));
 213	return e;
 214}
 215
 216/**
 217 * struct binder_work - work enqueued on a worklist
 218 * @entry:             node enqueued on list
 219 * @type:              type of work to be performed
 220 *
 221 * There are separate work lists for proc, thread, and node (async).
 222 */
 223struct binder_work {
 224	struct list_head entry;
 225
 226	enum {
 227		BINDER_WORK_TRANSACTION = 1,
 228		BINDER_WORK_TRANSACTION_COMPLETE,
 229		BINDER_WORK_RETURN_ERROR,
 230		BINDER_WORK_NODE,
 231		BINDER_WORK_DEAD_BINDER,
 232		BINDER_WORK_DEAD_BINDER_AND_CLEAR,
 233		BINDER_WORK_CLEAR_DEATH_NOTIFICATION,
 234	} type;
 235};
 236
 237struct binder_error {
 238	struct binder_work work;
 239	uint32_t cmd;
 240};
 241
 242/**
 243 * struct binder_node - binder node bookkeeping
 244 * @debug_id:             unique ID for debugging
 245 *                        (invariant after initialized)
 246 * @lock:                 lock for node fields
 247 * @work:                 worklist element for node work
 248 *                        (protected by @proc->inner_lock)
 249 * @rb_node:              element for proc->nodes tree
 250 *                        (protected by @proc->inner_lock)
 251 * @dead_node:            element for binder_dead_nodes list
 252 *                        (protected by binder_dead_nodes_lock)
 253 * @proc:                 binder_proc that owns this node
 254 *                        (invariant after initialized)
 255 * @refs:                 list of references on this node
 256 *                        (protected by @lock)
 257 * @internal_strong_refs: used to take strong references when
 258 *                        initiating a transaction
 259 *                        (protected by @proc->inner_lock if @proc
 260 *                        and by @lock)
 261 * @local_weak_refs:      weak user refs from local process
 262 *                        (protected by @proc->inner_lock if @proc
 263 *                        and by @lock)
 264 * @local_strong_refs:    strong user refs from local process
 265 *                        (protected by @proc->inner_lock if @proc
 266 *                        and by @lock)
 267 * @tmp_refs:             temporary kernel refs
 268 *                        (protected by @proc->inner_lock while @proc
 269 *                        is valid, and by binder_dead_nodes_lock
 270 *                        if @proc is NULL. During inc/dec and node release
 271 *                        it is also protected by @lock to provide safety
 272 *                        as the node dies and @proc becomes NULL)
 273 * @ptr:                  userspace pointer for node
 274 *                        (invariant, no lock needed)
 275 * @cookie:               userspace cookie for node
 276 *                        (invariant, no lock needed)
 277 * @has_strong_ref:       userspace notified of strong ref
 278 *                        (protected by @proc->inner_lock if @proc
 279 *                        and by @lock)
 280 * @pending_strong_ref:   userspace has acked notification of strong ref
 281 *                        (protected by @proc->inner_lock if @proc
 282 *                        and by @lock)
 283 * @has_weak_ref:         userspace notified of weak ref
 284 *                        (protected by @proc->inner_lock if @proc
 285 *                        and by @lock)
 286 * @pending_weak_ref:     userspace has acked notification of weak ref
 287 *                        (protected by @proc->inner_lock if @proc
 288 *                        and by @lock)
 289 * @has_async_transaction: async transaction to node in progress
 290 *                        (protected by @lock)
 291 * @accept_fds:           file descriptor operations supported for node
 292 *                        (invariant after initialized)
 293 * @min_priority:         minimum scheduling priority
 294 *                        (invariant after initialized)
 295 * @txn_security_ctx:     require sender's security context
 296 *                        (invariant after initialized)
 297 * @async_todo:           list of async work items
 298 *                        (protected by @proc->inner_lock)
 299 *
 300 * Bookkeeping structure for binder nodes.
 301 */
 302struct binder_node {
 303	int debug_id;
 304	spinlock_t lock;
 305	struct binder_work work;
 306	union {
 307		struct rb_node rb_node;
 308		struct hlist_node dead_node;
 309	};
 310	struct binder_proc *proc;
 311	struct hlist_head refs;
 312	int internal_strong_refs;
 313	int local_weak_refs;
 314	int local_strong_refs;
 315	int tmp_refs;
 316	binder_uintptr_t ptr;
 317	binder_uintptr_t cookie;
 318	struct {
 319		/*
 320		 * bitfield elements protected by
 321		 * proc inner_lock
 322		 */
 323		u8 has_strong_ref:1;
 324		u8 pending_strong_ref:1;
 325		u8 has_weak_ref:1;
 326		u8 pending_weak_ref:1;
 327	};
 328	struct {
 329		/*
 330		 * invariant after initialization
 331		 */
 332		u8 accept_fds:1;
 333		u8 txn_security_ctx:1;
 334		u8 min_priority;
 335	};
 336	bool has_async_transaction;
 337	struct list_head async_todo;
 338};
 339
 340struct binder_ref_death {
 341	/**
 342	 * @work: worklist element for death notifications
 343	 *        (protected by inner_lock of the proc that
 344	 *        this ref belongs to)
 345	 */
 346	struct binder_work work;
 347	binder_uintptr_t cookie;
 348};
 349
 350/**
 351 * struct binder_ref_data - binder_ref counts and id
 352 * @debug_id:        unique ID for the ref
 353 * @desc:            unique userspace handle for ref
 354 * @strong:          strong ref count (debugging only if not locked)
 355 * @weak:            weak ref count (debugging only if not locked)
 356 *
 357 * Structure to hold ref count and ref id information. Since
 358 * the actual ref can only be accessed with a lock, this structure
 359 * is used to return information about the ref to callers of
 360 * ref inc/dec functions.
 361 */
 362struct binder_ref_data {
 363	int debug_id;
 364	uint32_t desc;
 365	int strong;
 366	int weak;
 367};
 368
 369/**
 370 * struct binder_ref - struct to track references on nodes
 371 * @data:        binder_ref_data containing id, handle, and current refcounts
 372 * @rb_node_desc: node for lookup by @data.desc in proc's rb_tree
 373 * @rb_node_node: node for lookup by @node in proc's rb_tree
 374 * @node_entry:  list entry for node->refs list in target node
 375 *               (protected by @node->lock)
 376 * @proc:        binder_proc containing ref
 377 * @node:        binder_node of target node. When cleaning up a
 378 *               ref for deletion in binder_cleanup_ref, a non-NULL
 379 *               @node indicates the node must be freed
 380 * @death:       pointer to death notification (ref_death) if requested
 381 *               (protected by @node->lock)
 382 *
 383 * Structure to track references from procA to target node (on procB). This
 384 * structure is unsafe to access without holding @proc->outer_lock.
 385 */
 386struct binder_ref {
 387	/* Lookups needed: */
 388	/*   node + proc => ref (transaction) */
 389	/*   desc + proc => ref (transaction, inc/dec ref) */
 390	/*   node => refs + procs (proc exit) */
 391	struct binder_ref_data data;
 392	struct rb_node rb_node_desc;
 393	struct rb_node rb_node_node;
 394	struct hlist_node node_entry;
 395	struct binder_proc *proc;
 396	struct binder_node *node;
 397	struct binder_ref_death *death;
 398};
 399
 400enum binder_deferred_state {
 401	BINDER_DEFERRED_FLUSH        = 0x01,
 402	BINDER_DEFERRED_RELEASE      = 0x02,
 403};
 404
 405/**
 406 * struct binder_proc - binder process bookkeeping
 407 * @proc_node:            element for binder_procs list
 408 * @threads:              rbtree of binder_threads in this proc
 409 *                        (protected by @inner_lock)
 410 * @nodes:                rbtree of binder nodes associated with
 411 *                        this proc ordered by node->ptr
 412 *                        (protected by @inner_lock)
 413 * @refs_by_desc:         rbtree of refs ordered by ref->desc
 414 *                        (protected by @outer_lock)
 415 * @refs_by_node:         rbtree of refs ordered by ref->node
 416 *                        (protected by @outer_lock)
 417 * @waiting_threads:      threads currently waiting for proc work
 418 *                        (protected by @inner_lock)
 419 * @pid                   PID of group_leader of process
 420 *                        (invariant after initialized)
 421 * @tsk                   task_struct for group_leader of process
 422 *                        (invariant after initialized)
 423 * @deferred_work_node:   element for binder_deferred_list
 424 *                        (protected by binder_deferred_lock)
 425 * @deferred_work:        bitmap of deferred work to perform
 426 *                        (protected by binder_deferred_lock)
 427 * @is_dead:              process is dead and awaiting free
 428 *                        when outstanding transactions are cleaned up
 429 *                        (protected by @inner_lock)
 430 * @todo:                 list of work for this process
 431 *                        (protected by @inner_lock)
 432 * @stats:                per-process binder statistics
 433 *                        (atomics, no lock needed)
 434 * @delivered_death:      list of delivered death notification
 435 *                        (protected by @inner_lock)
 436 * @max_threads:          cap on number of binder threads
 437 *                        (protected by @inner_lock)
 438 * @requested_threads:    number of binder threads requested but not
 439 *                        yet started. In current implementation, can
 440 *                        only be 0 or 1.
 441 *                        (protected by @inner_lock)
 442 * @requested_threads_started: number binder threads started
 443 *                        (protected by @inner_lock)
 444 * @tmp_ref:              temporary reference to indicate proc is in use
 445 *                        (protected by @inner_lock)
 446 * @default_priority:     default scheduler priority
 447 *                        (invariant after initialized)
 448 * @debugfs_entry:        debugfs node
 449 * @alloc:                binder allocator bookkeeping
 450 * @context:              binder_context for this proc
 451 *                        (invariant after initialized)
 452 * @inner_lock:           can nest under outer_lock and/or node lock
 453 * @outer_lock:           no nesting under innor or node lock
 454 *                        Lock order: 1) outer, 2) node, 3) inner
 455 * @binderfs_entry:       process-specific binderfs log file
 456 *
 457 * Bookkeeping structure for binder processes
 458 */
 459struct binder_proc {
 460	struct hlist_node proc_node;
 461	struct rb_root threads;
 462	struct rb_root nodes;
 463	struct rb_root refs_by_desc;
 464	struct rb_root refs_by_node;
 465	struct list_head waiting_threads;
 466	int pid;
 467	struct task_struct *tsk;
 468	struct hlist_node deferred_work_node;
 469	int deferred_work;
 470	bool is_dead;
 471
 472	struct list_head todo;
 473	struct binder_stats stats;
 474	struct list_head delivered_death;
 475	int max_threads;
 476	int requested_threads;
 477	int requested_threads_started;
 478	int tmp_ref;
 479	long default_priority;
 480	struct dentry *debugfs_entry;
 481	struct binder_alloc alloc;
 482	struct binder_context *context;
 483	spinlock_t inner_lock;
 484	spinlock_t outer_lock;
 485	struct dentry *binderfs_entry;
 486};
 487
 488enum {
 489	BINDER_LOOPER_STATE_REGISTERED  = 0x01,
 490	BINDER_LOOPER_STATE_ENTERED     = 0x02,
 491	BINDER_LOOPER_STATE_EXITED      = 0x04,
 492	BINDER_LOOPER_STATE_INVALID     = 0x08,
 493	BINDER_LOOPER_STATE_WAITING     = 0x10,
 494	BINDER_LOOPER_STATE_POLL        = 0x20,
 495};
 496
 497/**
 498 * struct binder_thread - binder thread bookkeeping
 499 * @proc:                 binder process for this thread
 500 *                        (invariant after initialization)
 501 * @rb_node:              element for proc->threads rbtree
 502 *                        (protected by @proc->inner_lock)
 503 * @waiting_thread_node:  element for @proc->waiting_threads list
 504 *                        (protected by @proc->inner_lock)
 505 * @pid:                  PID for this thread
 506 *                        (invariant after initialization)
 507 * @looper:               bitmap of looping state
 508 *                        (only accessed by this thread)
 509 * @looper_needs_return:  looping thread needs to exit driver
 510 *                        (no lock needed)
 511 * @transaction_stack:    stack of in-progress transactions for this thread
 512 *                        (protected by @proc->inner_lock)
 513 * @todo:                 list of work to do for this thread
 514 *                        (protected by @proc->inner_lock)
 515 * @process_todo:         whether work in @todo should be processed
 516 *                        (protected by @proc->inner_lock)
 517 * @return_error:         transaction errors reported by this thread
 518 *                        (only accessed by this thread)
 519 * @reply_error:          transaction errors reported by target thread
 520 *                        (protected by @proc->inner_lock)
 521 * @wait:                 wait queue for thread work
 522 * @stats:                per-thread statistics
 523 *                        (atomics, no lock needed)
 524 * @tmp_ref:              temporary reference to indicate thread is in use
 525 *                        (atomic since @proc->inner_lock cannot
 526 *                        always be acquired)
 527 * @is_dead:              thread is dead and awaiting free
 528 *                        when outstanding transactions are cleaned up
 529 *                        (protected by @proc->inner_lock)
 530 *
 531 * Bookkeeping structure for binder threads.
 532 */
 533struct binder_thread {
 534	struct binder_proc *proc;
 535	struct rb_node rb_node;
 536	struct list_head waiting_thread_node;
 537	int pid;
 538	int looper;              /* only modified by this thread */
 539	bool looper_need_return; /* can be written by other thread */
 540	struct binder_transaction *transaction_stack;
 541	struct list_head todo;
 542	bool process_todo;
 543	struct binder_error return_error;
 544	struct binder_error reply_error;
 545	wait_queue_head_t wait;
 546	struct binder_stats stats;
 547	atomic_t tmp_ref;
 548	bool is_dead;
 549};
 550
 551/**
 552 * struct binder_txn_fd_fixup - transaction fd fixup list element
 553 * @fixup_entry:          list entry
 554 * @file:                 struct file to be associated with new fd
 555 * @offset:               offset in buffer data to this fixup
 556 *
 557 * List element for fd fixups in a transaction. Since file
 558 * descriptors need to be allocated in the context of the
 559 * target process, we pass each fd to be processed in this
 560 * struct.
 561 */
 562struct binder_txn_fd_fixup {
 563	struct list_head fixup_entry;
 564	struct file *file;
 565	size_t offset;
 566};
 567
 568struct binder_transaction {
 569	int debug_id;
 570	struct binder_work work;
 571	struct binder_thread *from;
 572	struct binder_transaction *from_parent;
 573	struct binder_proc *to_proc;
 574	struct binder_thread *to_thread;
 575	struct binder_transaction *to_parent;
 576	unsigned need_reply:1;
 577	/* unsigned is_dead:1; */	/* not used at the moment */
 578
 579	struct binder_buffer *buffer;
 580	unsigned int	code;
 581	unsigned int	flags;
 582	long	priority;
 583	long	saved_priority;
 584	kuid_t	sender_euid;
 585	struct list_head fd_fixups;
 586	binder_uintptr_t security_ctx;
 587	/**
 588	 * @lock:  protects @from, @to_proc, and @to_thread
 589	 *
 590	 * @from, @to_proc, and @to_thread can be set to NULL
 591	 * during thread teardown
 592	 */
 593	spinlock_t lock;
 594};
 595
 596/**
 597 * struct binder_object - union of flat binder object types
 598 * @hdr:   generic object header
 599 * @fbo:   binder object (nodes and refs)
 600 * @fdo:   file descriptor object
 601 * @bbo:   binder buffer pointer
 602 * @fdao:  file descriptor array
 603 *
 604 * Used for type-independent object copies
 605 */
 606struct binder_object {
 607	union {
 608		struct binder_object_header hdr;
 609		struct flat_binder_object fbo;
 610		struct binder_fd_object fdo;
 611		struct binder_buffer_object bbo;
 612		struct binder_fd_array_object fdao;
 613	};
 614};
 615
 616/**
 617 * binder_proc_lock() - Acquire outer lock for given binder_proc
 618 * @proc:         struct binder_proc to acquire
 619 *
 620 * Acquires proc->outer_lock. Used to protect binder_ref
 621 * structures associated with the given proc.
 622 */
 623#define binder_proc_lock(proc) _binder_proc_lock(proc, __LINE__)
 624static void
 625_binder_proc_lock(struct binder_proc *proc, int line)
 626	__acquires(&proc->outer_lock)
 627{
 628	binder_debug(BINDER_DEBUG_SPINLOCKS,
 629		     "%s: line=%d\n", __func__, line);
 630	spin_lock(&proc->outer_lock);
 631}
 632
 633/**
 634 * binder_proc_unlock() - Release spinlock for given binder_proc
 635 * @proc:         struct binder_proc to acquire
 636 *
 637 * Release lock acquired via binder_proc_lock()
 638 */
 639#define binder_proc_unlock(_proc) _binder_proc_unlock(_proc, __LINE__)
 640static void
 641_binder_proc_unlock(struct binder_proc *proc, int line)
 642	__releases(&proc->outer_lock)
 643{
 644	binder_debug(BINDER_DEBUG_SPINLOCKS,
 645		     "%s: line=%d\n", __func__, line);
 646	spin_unlock(&proc->outer_lock);
 647}
 648
 649/**
 650 * binder_inner_proc_lock() - Acquire inner lock for given binder_proc
 651 * @proc:         struct binder_proc to acquire
 652 *
 653 * Acquires proc->inner_lock. Used to protect todo lists
 654 */
 655#define binder_inner_proc_lock(proc) _binder_inner_proc_lock(proc, __LINE__)
 656static void
 657_binder_inner_proc_lock(struct binder_proc *proc, int line)
 658	__acquires(&proc->inner_lock)
 659{
 660	binder_debug(BINDER_DEBUG_SPINLOCKS,
 661		     "%s: line=%d\n", __func__, line);
 662	spin_lock(&proc->inner_lock);
 663}
 664
 665/**
 666 * binder_inner_proc_unlock() - Release inner lock for given binder_proc
 667 * @proc:         struct binder_proc to acquire
 668 *
 669 * Release lock acquired via binder_inner_proc_lock()
 670 */
 671#define binder_inner_proc_unlock(proc) _binder_inner_proc_unlock(proc, __LINE__)
 672static void
 673_binder_inner_proc_unlock(struct binder_proc *proc, int line)
 674	__releases(&proc->inner_lock)
 675{
 676	binder_debug(BINDER_DEBUG_SPINLOCKS,
 677		     "%s: line=%d\n", __func__, line);
 678	spin_unlock(&proc->inner_lock);
 679}
 680
 681/**
 682 * binder_node_lock() - Acquire spinlock for given binder_node
 683 * @node:         struct binder_node to acquire
 684 *
 685 * Acquires node->lock. Used to protect binder_node fields
 686 */
 687#define binder_node_lock(node) _binder_node_lock(node, __LINE__)
 688static void
 689_binder_node_lock(struct binder_node *node, int line)
 690	__acquires(&node->lock)
 691{
 692	binder_debug(BINDER_DEBUG_SPINLOCKS,
 693		     "%s: line=%d\n", __func__, line);
 694	spin_lock(&node->lock);
 695}
 696
 697/**
 698 * binder_node_unlock() - Release spinlock for given binder_proc
 699 * @node:         struct binder_node to acquire
 700 *
 701 * Release lock acquired via binder_node_lock()
 702 */
 703#define binder_node_unlock(node) _binder_node_unlock(node, __LINE__)
 704static void
 705_binder_node_unlock(struct binder_node *node, int line)
 706	__releases(&node->lock)
 707{
 708	binder_debug(BINDER_DEBUG_SPINLOCKS,
 709		     "%s: line=%d\n", __func__, line);
 710	spin_unlock(&node->lock);
 711}
 712
 713/**
 714 * binder_node_inner_lock() - Acquire node and inner locks
 715 * @node:         struct binder_node to acquire
 716 *
 717 * Acquires node->lock. If node->proc also acquires
 718 * proc->inner_lock. Used to protect binder_node fields
 719 */
 720#define binder_node_inner_lock(node) _binder_node_inner_lock(node, __LINE__)
 721static void
 722_binder_node_inner_lock(struct binder_node *node, int line)
 723	__acquires(&node->lock) __acquires(&node->proc->inner_lock)
 724{
 725	binder_debug(BINDER_DEBUG_SPINLOCKS,
 726		     "%s: line=%d\n", __func__, line);
 727	spin_lock(&node->lock);
 728	if (node->proc)
 729		binder_inner_proc_lock(node->proc);
 730	else
 731		/* annotation for sparse */
 732		__acquire(&node->proc->inner_lock);
 733}
 734
 735/**
 736 * binder_node_unlock() - Release node and inner locks
 737 * @node:         struct binder_node to acquire
 738 *
 739 * Release lock acquired via binder_node_lock()
 740 */
 741#define binder_node_inner_unlock(node) _binder_node_inner_unlock(node, __LINE__)
 742static void
 743_binder_node_inner_unlock(struct binder_node *node, int line)
 744	__releases(&node->lock) __releases(&node->proc->inner_lock)
 745{
 746	struct binder_proc *proc = node->proc;
 747
 748	binder_debug(BINDER_DEBUG_SPINLOCKS,
 749		     "%s: line=%d\n", __func__, line);
 750	if (proc)
 751		binder_inner_proc_unlock(proc);
 752	else
 753		/* annotation for sparse */
 754		__release(&node->proc->inner_lock);
 755	spin_unlock(&node->lock);
 756}
 757
 758static bool binder_worklist_empty_ilocked(struct list_head *list)
 759{
 760	return list_empty(list);
 761}
 762
 763/**
 764 * binder_worklist_empty() - Check if no items on the work list
 765 * @proc:       binder_proc associated with list
 766 * @list:	list to check
 767 *
 768 * Return: true if there are no items on list, else false
 769 */
 770static bool binder_worklist_empty(struct binder_proc *proc,
 771				  struct list_head *list)
 772{
 773	bool ret;
 774
 775	binder_inner_proc_lock(proc);
 776	ret = binder_worklist_empty_ilocked(list);
 777	binder_inner_proc_unlock(proc);
 778	return ret;
 779}
 780
 781/**
 782 * binder_enqueue_work_ilocked() - Add an item to the work list
 783 * @work:         struct binder_work to add to list
 784 * @target_list:  list to add work to
 785 *
 786 * Adds the work to the specified list. Asserts that work
 787 * is not already on a list.
 788 *
 789 * Requires the proc->inner_lock to be held.
 790 */
 791static void
 792binder_enqueue_work_ilocked(struct binder_work *work,
 793			   struct list_head *target_list)
 794{
 795	BUG_ON(target_list == NULL);
 796	BUG_ON(work->entry.next && !list_empty(&work->entry));
 797	list_add_tail(&work->entry, target_list);
 798}
 799
 800/**
 801 * binder_enqueue_deferred_thread_work_ilocked() - Add deferred thread work
 802 * @thread:       thread to queue work to
 803 * @work:         struct binder_work to add to list
 804 *
 805 * Adds the work to the todo list of the thread. Doesn't set the process_todo
 806 * flag, which means that (if it wasn't already set) the thread will go to
 807 * sleep without handling this work when it calls read.
 808 *
 809 * Requires the proc->inner_lock to be held.
 810 */
 811static void
 812binder_enqueue_deferred_thread_work_ilocked(struct binder_thread *thread,
 813					    struct binder_work *work)
 814{
 815	WARN_ON(!list_empty(&thread->waiting_thread_node));
 816	binder_enqueue_work_ilocked(work, &thread->todo);
 817}
 818
 819/**
 820 * binder_enqueue_thread_work_ilocked() - Add an item to the thread work list
 821 * @thread:       thread to queue work to
 822 * @work:         struct binder_work to add to list
 823 *
 824 * Adds the work to the todo list of the thread, and enables processing
 825 * of the todo queue.
 826 *
 827 * Requires the proc->inner_lock to be held.
 828 */
 829static void
 830binder_enqueue_thread_work_ilocked(struct binder_thread *thread,
 831				   struct binder_work *work)
 832{
 833	WARN_ON(!list_empty(&thread->waiting_thread_node));
 834	binder_enqueue_work_ilocked(work, &thread->todo);
 
 
 
 
 
 
 
 
 
 
 835	thread->process_todo = true;
 836}
 837
 838/**
 839 * binder_enqueue_thread_work() - Add an item to the thread work list
 840 * @thread:       thread to queue work to
 841 * @work:         struct binder_work to add to list
 842 *
 843 * Adds the work to the todo list of the thread, and enables processing
 844 * of the todo queue.
 845 */
 846static void
 847binder_enqueue_thread_work(struct binder_thread *thread,
 848			   struct binder_work *work)
 849{
 850	binder_inner_proc_lock(thread->proc);
 851	binder_enqueue_thread_work_ilocked(thread, work);
 852	binder_inner_proc_unlock(thread->proc);
 853}
 854
 855static void
 856binder_dequeue_work_ilocked(struct binder_work *work)
 857{
 858	list_del_init(&work->entry);
 859}
 860
 861/**
 862 * binder_dequeue_work() - Removes an item from the work list
 863 * @proc:         binder_proc associated with list
 864 * @work:         struct binder_work to remove from list
 865 *
 866 * Removes the specified work item from whatever list it is on.
 867 * Can safely be called if work is not on any list.
 868 */
 869static void
 870binder_dequeue_work(struct binder_proc *proc, struct binder_work *work)
 871{
 872	binder_inner_proc_lock(proc);
 873	binder_dequeue_work_ilocked(work);
 874	binder_inner_proc_unlock(proc);
 875}
 876
 877static struct binder_work *binder_dequeue_work_head_ilocked(
 878					struct list_head *list)
 879{
 880	struct binder_work *w;
 881
 882	w = list_first_entry_or_null(list, struct binder_work, entry);
 883	if (w)
 884		list_del_init(&w->entry);
 885	return w;
 886}
 887
 888/**
 889 * binder_dequeue_work_head() - Dequeues the item at head of list
 890 * @proc:         binder_proc associated with list
 891 * @list:         list to dequeue head
 892 *
 893 * Removes the head of the list if there are items on the list
 894 *
 895 * Return: pointer dequeued binder_work, NULL if list was empty
 896 */
 897static struct binder_work *binder_dequeue_work_head(
 898					struct binder_proc *proc,
 899					struct list_head *list)
 900{
 901	struct binder_work *w;
 902
 903	binder_inner_proc_lock(proc);
 904	w = binder_dequeue_work_head_ilocked(list);
 905	binder_inner_proc_unlock(proc);
 906	return w;
 907}
 908
 909static void
 910binder_defer_work(struct binder_proc *proc, enum binder_deferred_state defer);
 911static void binder_free_thread(struct binder_thread *thread);
 912static void binder_free_proc(struct binder_proc *proc);
 913static void binder_inc_node_tmpref_ilocked(struct binder_node *node);
 914
 915static bool binder_has_work_ilocked(struct binder_thread *thread,
 916				    bool do_proc_work)
 917{
 918	return thread->process_todo ||
 919		thread->looper_need_return ||
 920		(do_proc_work &&
 921		 !binder_worklist_empty_ilocked(&thread->proc->todo));
 922}
 923
 924static bool binder_has_work(struct binder_thread *thread, bool do_proc_work)
 925{
 926	bool has_work;
 927
 928	binder_inner_proc_lock(thread->proc);
 929	has_work = binder_has_work_ilocked(thread, do_proc_work);
 930	binder_inner_proc_unlock(thread->proc);
 931
 932	return has_work;
 933}
 934
 935static bool binder_available_for_proc_work_ilocked(struct binder_thread *thread)
 936{
 937	return !thread->transaction_stack &&
 938		binder_worklist_empty_ilocked(&thread->todo) &&
 939		(thread->looper & (BINDER_LOOPER_STATE_ENTERED |
 940				   BINDER_LOOPER_STATE_REGISTERED));
 941}
 942
 943static void binder_wakeup_poll_threads_ilocked(struct binder_proc *proc,
 944					       bool sync)
 945{
 946	struct rb_node *n;
 947	struct binder_thread *thread;
 948
 949	for (n = rb_first(&proc->threads); n != NULL; n = rb_next(n)) {
 950		thread = rb_entry(n, struct binder_thread, rb_node);
 951		if (thread->looper & BINDER_LOOPER_STATE_POLL &&
 952		    binder_available_for_proc_work_ilocked(thread)) {
 953			if (sync)
 954				wake_up_interruptible_sync(&thread->wait);
 955			else
 956				wake_up_interruptible(&thread->wait);
 957		}
 958	}
 959}
 960
 961/**
 962 * binder_select_thread_ilocked() - selects a thread for doing proc work.
 963 * @proc:	process to select a thread from
 964 *
 965 * Note that calling this function moves the thread off the waiting_threads
 966 * list, so it can only be woken up by the caller of this function, or a
 967 * signal. Therefore, callers *should* always wake up the thread this function
 968 * returns.
 969 *
 970 * Return:	If there's a thread currently waiting for process work,
 971 *		returns that thread. Otherwise returns NULL.
 972 */
 973static struct binder_thread *
 974binder_select_thread_ilocked(struct binder_proc *proc)
 975{
 976	struct binder_thread *thread;
 977
 978	assert_spin_locked(&proc->inner_lock);
 979	thread = list_first_entry_or_null(&proc->waiting_threads,
 980					  struct binder_thread,
 981					  waiting_thread_node);
 982
 983	if (thread)
 984		list_del_init(&thread->waiting_thread_node);
 985
 986	return thread;
 987}
 988
 989/**
 990 * binder_wakeup_thread_ilocked() - wakes up a thread for doing proc work.
 991 * @proc:	process to wake up a thread in
 992 * @thread:	specific thread to wake-up (may be NULL)
 993 * @sync:	whether to do a synchronous wake-up
 994 *
 995 * This function wakes up a thread in the @proc process.
 996 * The caller may provide a specific thread to wake-up in
 997 * the @thread parameter. If @thread is NULL, this function
 998 * will wake up threads that have called poll().
 999 *
1000 * Note that for this function to work as expected, callers
1001 * should first call binder_select_thread() to find a thread
1002 * to handle the work (if they don't have a thread already),
1003 * and pass the result into the @thread parameter.
1004 */
1005static void binder_wakeup_thread_ilocked(struct binder_proc *proc,
1006					 struct binder_thread *thread,
1007					 bool sync)
1008{
1009	assert_spin_locked(&proc->inner_lock);
1010
1011	if (thread) {
1012		if (sync)
1013			wake_up_interruptible_sync(&thread->wait);
1014		else
1015			wake_up_interruptible(&thread->wait);
1016		return;
1017	}
1018
1019	/* Didn't find a thread waiting for proc work; this can happen
1020	 * in two scenarios:
1021	 * 1. All threads are busy handling transactions
1022	 *    In that case, one of those threads should call back into
1023	 *    the kernel driver soon and pick up this work.
1024	 * 2. Threads are using the (e)poll interface, in which case
1025	 *    they may be blocked on the waitqueue without having been
1026	 *    added to waiting_threads. For this case, we just iterate
1027	 *    over all threads not handling transaction work, and
1028	 *    wake them all up. We wake all because we don't know whether
1029	 *    a thread that called into (e)poll is handling non-binder
1030	 *    work currently.
1031	 */
1032	binder_wakeup_poll_threads_ilocked(proc, sync);
1033}
1034
1035static void binder_wakeup_proc_ilocked(struct binder_proc *proc)
1036{
1037	struct binder_thread *thread = binder_select_thread_ilocked(proc);
1038
1039	binder_wakeup_thread_ilocked(proc, thread, /* sync = */false);
1040}
1041
1042static void binder_set_nice(long nice)
1043{
1044	long min_nice;
1045
1046	if (can_nice(current, nice)) {
1047		set_user_nice(current, nice);
1048		return;
1049	}
1050	min_nice = rlimit_to_nice(rlimit(RLIMIT_NICE));
1051	binder_debug(BINDER_DEBUG_PRIORITY_CAP,
1052		     "%d: nice value %ld not allowed use %ld instead\n",
1053		      current->pid, nice, min_nice);
1054	set_user_nice(current, min_nice);
1055	if (min_nice <= MAX_NICE)
1056		return;
1057	binder_user_error("%d RLIMIT_NICE not set\n", current->pid);
1058}
1059
1060static struct binder_node *binder_get_node_ilocked(struct binder_proc *proc,
1061						   binder_uintptr_t ptr)
1062{
1063	struct rb_node *n = proc->nodes.rb_node;
1064	struct binder_node *node;
1065
1066	assert_spin_locked(&proc->inner_lock);
1067
1068	while (n) {
1069		node = rb_entry(n, struct binder_node, rb_node);
1070
1071		if (ptr < node->ptr)
1072			n = n->rb_left;
1073		else if (ptr > node->ptr)
1074			n = n->rb_right;
1075		else {
1076			/*
1077			 * take an implicit weak reference
1078			 * to ensure node stays alive until
1079			 * call to binder_put_node()
1080			 */
1081			binder_inc_node_tmpref_ilocked(node);
1082			return node;
1083		}
1084	}
1085	return NULL;
1086}
1087
1088static struct binder_node *binder_get_node(struct binder_proc *proc,
1089					   binder_uintptr_t ptr)
1090{
1091	struct binder_node *node;
1092
1093	binder_inner_proc_lock(proc);
1094	node = binder_get_node_ilocked(proc, ptr);
1095	binder_inner_proc_unlock(proc);
1096	return node;
1097}
1098
1099static struct binder_node *binder_init_node_ilocked(
1100						struct binder_proc *proc,
1101						struct binder_node *new_node,
1102						struct flat_binder_object *fp)
1103{
1104	struct rb_node **p = &proc->nodes.rb_node;
1105	struct rb_node *parent = NULL;
1106	struct binder_node *node;
1107	binder_uintptr_t ptr = fp ? fp->binder : 0;
1108	binder_uintptr_t cookie = fp ? fp->cookie : 0;
1109	__u32 flags = fp ? fp->flags : 0;
1110
1111	assert_spin_locked(&proc->inner_lock);
1112
1113	while (*p) {
1114
1115		parent = *p;
1116		node = rb_entry(parent, struct binder_node, rb_node);
1117
1118		if (ptr < node->ptr)
1119			p = &(*p)->rb_left;
1120		else if (ptr > node->ptr)
1121			p = &(*p)->rb_right;
1122		else {
1123			/*
1124			 * A matching node is already in
1125			 * the rb tree. Abandon the init
1126			 * and return it.
1127			 */
1128			binder_inc_node_tmpref_ilocked(node);
1129			return node;
1130		}
1131	}
1132	node = new_node;
1133	binder_stats_created(BINDER_STAT_NODE);
1134	node->tmp_refs++;
1135	rb_link_node(&node->rb_node, parent, p);
1136	rb_insert_color(&node->rb_node, &proc->nodes);
1137	node->debug_id = atomic_inc_return(&binder_last_id);
1138	node->proc = proc;
1139	node->ptr = ptr;
1140	node->cookie = cookie;
1141	node->work.type = BINDER_WORK_NODE;
1142	node->min_priority = flags & FLAT_BINDER_FLAG_PRIORITY_MASK;
1143	node->accept_fds = !!(flags & FLAT_BINDER_FLAG_ACCEPTS_FDS);
1144	node->txn_security_ctx = !!(flags & FLAT_BINDER_FLAG_TXN_SECURITY_CTX);
1145	spin_lock_init(&node->lock);
1146	INIT_LIST_HEAD(&node->work.entry);
1147	INIT_LIST_HEAD(&node->async_todo);
1148	binder_debug(BINDER_DEBUG_INTERNAL_REFS,
1149		     "%d:%d node %d u%016llx c%016llx created\n",
1150		     proc->pid, current->pid, node->debug_id,
1151		     (u64)node->ptr, (u64)node->cookie);
1152
1153	return node;
1154}
1155
1156static struct binder_node *binder_new_node(struct binder_proc *proc,
1157					   struct flat_binder_object *fp)
1158{
1159	struct binder_node *node;
1160	struct binder_node *new_node = kzalloc(sizeof(*node), GFP_KERNEL);
1161
1162	if (!new_node)
1163		return NULL;
1164	binder_inner_proc_lock(proc);
1165	node = binder_init_node_ilocked(proc, new_node, fp);
1166	binder_inner_proc_unlock(proc);
1167	if (node != new_node)
1168		/*
1169		 * The node was already added by another thread
1170		 */
1171		kfree(new_node);
1172
1173	return node;
1174}
1175
1176static void binder_free_node(struct binder_node *node)
1177{
1178	kfree(node);
1179	binder_stats_deleted(BINDER_STAT_NODE);
1180}
1181
1182static int binder_inc_node_nilocked(struct binder_node *node, int strong,
1183				    int internal,
1184				    struct list_head *target_list)
1185{
1186	struct binder_proc *proc = node->proc;
1187
1188	assert_spin_locked(&node->lock);
1189	if (proc)
1190		assert_spin_locked(&proc->inner_lock);
1191	if (strong) {
1192		if (internal) {
1193			if (target_list == NULL &&
1194			    node->internal_strong_refs == 0 &&
1195			    !(node->proc &&
1196			      node == node->proc->context->binder_context_mgr_node &&
1197			      node->has_strong_ref)) {
1198				pr_err("invalid inc strong node for %d\n",
1199					node->debug_id);
1200				return -EINVAL;
1201			}
1202			node->internal_strong_refs++;
1203		} else
1204			node->local_strong_refs++;
1205		if (!node->has_strong_ref && target_list) {
1206			struct binder_thread *thread = container_of(target_list,
1207						    struct binder_thread, todo);
1208			binder_dequeue_work_ilocked(&node->work);
1209			BUG_ON(&thread->todo != target_list);
1210			binder_enqueue_deferred_thread_work_ilocked(thread,
1211								   &node->work);
1212		}
1213	} else {
1214		if (!internal)
1215			node->local_weak_refs++;
1216		if (!node->has_weak_ref && list_empty(&node->work.entry)) {
1217			if (target_list == NULL) {
1218				pr_err("invalid inc weak node for %d\n",
1219					node->debug_id);
1220				return -EINVAL;
1221			}
1222			/*
1223			 * See comment above
1224			 */
1225			binder_enqueue_work_ilocked(&node->work, target_list);
1226		}
1227	}
1228	return 0;
1229}
1230
1231static int binder_inc_node(struct binder_node *node, int strong, int internal,
1232			   struct list_head *target_list)
1233{
1234	int ret;
1235
1236	binder_node_inner_lock(node);
1237	ret = binder_inc_node_nilocked(node, strong, internal, target_list);
1238	binder_node_inner_unlock(node);
1239
1240	return ret;
1241}
1242
1243static bool binder_dec_node_nilocked(struct binder_node *node,
1244				     int strong, int internal)
1245{
1246	struct binder_proc *proc = node->proc;
1247
1248	assert_spin_locked(&node->lock);
1249	if (proc)
1250		assert_spin_locked(&proc->inner_lock);
1251	if (strong) {
1252		if (internal)
1253			node->internal_strong_refs--;
1254		else
1255			node->local_strong_refs--;
1256		if (node->local_strong_refs || node->internal_strong_refs)
1257			return false;
1258	} else {
1259		if (!internal)
1260			node->local_weak_refs--;
1261		if (node->local_weak_refs || node->tmp_refs ||
1262				!hlist_empty(&node->refs))
1263			return false;
1264	}
1265
1266	if (proc && (node->has_strong_ref || node->has_weak_ref)) {
1267		if (list_empty(&node->work.entry)) {
1268			binder_enqueue_work_ilocked(&node->work, &proc->todo);
1269			binder_wakeup_proc_ilocked(proc);
1270		}
1271	} else {
1272		if (hlist_empty(&node->refs) && !node->local_strong_refs &&
1273		    !node->local_weak_refs && !node->tmp_refs) {
1274			if (proc) {
1275				binder_dequeue_work_ilocked(&node->work);
1276				rb_erase(&node->rb_node, &proc->nodes);
1277				binder_debug(BINDER_DEBUG_INTERNAL_REFS,
1278					     "refless node %d deleted\n",
1279					     node->debug_id);
1280			} else {
1281				BUG_ON(!list_empty(&node->work.entry));
1282				spin_lock(&binder_dead_nodes_lock);
1283				/*
1284				 * tmp_refs could have changed so
1285				 * check it again
1286				 */
1287				if (node->tmp_refs) {
1288					spin_unlock(&binder_dead_nodes_lock);
1289					return false;
1290				}
1291				hlist_del(&node->dead_node);
1292				spin_unlock(&binder_dead_nodes_lock);
1293				binder_debug(BINDER_DEBUG_INTERNAL_REFS,
1294					     "dead node %d deleted\n",
1295					     node->debug_id);
1296			}
1297			return true;
1298		}
1299	}
1300	return false;
1301}
1302
1303static void binder_dec_node(struct binder_node *node, int strong, int internal)
1304{
1305	bool free_node;
1306
1307	binder_node_inner_lock(node);
1308	free_node = binder_dec_node_nilocked(node, strong, internal);
1309	binder_node_inner_unlock(node);
1310	if (free_node)
1311		binder_free_node(node);
1312}
1313
1314static void binder_inc_node_tmpref_ilocked(struct binder_node *node)
1315{
1316	/*
1317	 * No call to binder_inc_node() is needed since we
1318	 * don't need to inform userspace of any changes to
1319	 * tmp_refs
1320	 */
1321	node->tmp_refs++;
1322}
1323
1324/**
1325 * binder_inc_node_tmpref() - take a temporary reference on node
1326 * @node:	node to reference
1327 *
1328 * Take reference on node to prevent the node from being freed
1329 * while referenced only by a local variable. The inner lock is
1330 * needed to serialize with the node work on the queue (which
1331 * isn't needed after the node is dead). If the node is dead
1332 * (node->proc is NULL), use binder_dead_nodes_lock to protect
1333 * node->tmp_refs against dead-node-only cases where the node
1334 * lock cannot be acquired (eg traversing the dead node list to
1335 * print nodes)
1336 */
1337static void binder_inc_node_tmpref(struct binder_node *node)
1338{
1339	binder_node_lock(node);
1340	if (node->proc)
1341		binder_inner_proc_lock(node->proc);
1342	else
1343		spin_lock(&binder_dead_nodes_lock);
1344	binder_inc_node_tmpref_ilocked(node);
1345	if (node->proc)
1346		binder_inner_proc_unlock(node->proc);
1347	else
1348		spin_unlock(&binder_dead_nodes_lock);
1349	binder_node_unlock(node);
1350}
1351
1352/**
1353 * binder_dec_node_tmpref() - remove a temporary reference on node
1354 * @node:	node to reference
1355 *
1356 * Release temporary reference on node taken via binder_inc_node_tmpref()
1357 */
1358static void binder_dec_node_tmpref(struct binder_node *node)
1359{
1360	bool free_node;
1361
1362	binder_node_inner_lock(node);
1363	if (!node->proc)
1364		spin_lock(&binder_dead_nodes_lock);
1365	else
1366		__acquire(&binder_dead_nodes_lock);
1367	node->tmp_refs--;
1368	BUG_ON(node->tmp_refs < 0);
1369	if (!node->proc)
1370		spin_unlock(&binder_dead_nodes_lock);
1371	else
1372		__release(&binder_dead_nodes_lock);
1373	/*
1374	 * Call binder_dec_node() to check if all refcounts are 0
1375	 * and cleanup is needed. Calling with strong=0 and internal=1
1376	 * causes no actual reference to be released in binder_dec_node().
1377	 * If that changes, a change is needed here too.
1378	 */
1379	free_node = binder_dec_node_nilocked(node, 0, 1);
1380	binder_node_inner_unlock(node);
1381	if (free_node)
1382		binder_free_node(node);
1383}
1384
1385static void binder_put_node(struct binder_node *node)
1386{
1387	binder_dec_node_tmpref(node);
1388}
1389
1390static struct binder_ref *binder_get_ref_olocked(struct binder_proc *proc,
1391						 u32 desc, bool need_strong_ref)
1392{
1393	struct rb_node *n = proc->refs_by_desc.rb_node;
1394	struct binder_ref *ref;
1395
1396	while (n) {
1397		ref = rb_entry(n, struct binder_ref, rb_node_desc);
1398
1399		if (desc < ref->data.desc) {
1400			n = n->rb_left;
1401		} else if (desc > ref->data.desc) {
1402			n = n->rb_right;
1403		} else if (need_strong_ref && !ref->data.strong) {
1404			binder_user_error("tried to use weak ref as strong ref\n");
1405			return NULL;
1406		} else {
1407			return ref;
1408		}
1409	}
1410	return NULL;
1411}
1412
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
1413/**
1414 * binder_get_ref_for_node_olocked() - get the ref associated with given node
1415 * @proc:	binder_proc that owns the ref
1416 * @node:	binder_node of target
1417 * @new_ref:	newly allocated binder_ref to be initialized or %NULL
1418 *
1419 * Look up the ref for the given node and return it if it exists
1420 *
1421 * If it doesn't exist and the caller provides a newly allocated
1422 * ref, initialize the fields of the newly allocated ref and insert
1423 * into the given proc rb_trees and node refs list.
1424 *
1425 * Return:	the ref for node. It is possible that another thread
1426 *		allocated/initialized the ref first in which case the
1427 *		returned ref would be different than the passed-in
1428 *		new_ref. new_ref must be kfree'd by the caller in
1429 *		this case.
1430 */
1431static struct binder_ref *binder_get_ref_for_node_olocked(
1432					struct binder_proc *proc,
1433					struct binder_node *node,
1434					struct binder_ref *new_ref)
1435{
1436	struct binder_context *context = proc->context;
1437	struct rb_node **p = &proc->refs_by_node.rb_node;
1438	struct rb_node *parent = NULL;
1439	struct binder_ref *ref;
1440	struct rb_node *n;
 
 
1441
 
 
 
1442	while (*p) {
1443		parent = *p;
1444		ref = rb_entry(parent, struct binder_ref, rb_node_node);
1445
1446		if (node < ref->node)
1447			p = &(*p)->rb_left;
1448		else if (node > ref->node)
1449			p = &(*p)->rb_right;
1450		else
1451			return ref;
1452	}
1453	if (!new_ref)
1454		return NULL;
1455
 
 
 
 
1456	binder_stats_created(BINDER_STAT_REF);
1457	new_ref->data.debug_id = atomic_inc_return(&binder_last_id);
1458	new_ref->proc = proc;
1459	new_ref->node = node;
1460	rb_link_node(&new_ref->rb_node_node, parent, p);
1461	rb_insert_color(&new_ref->rb_node_node, &proc->refs_by_node);
1462
1463	new_ref->data.desc = (node == context->binder_context_mgr_node) ? 0 : 1;
1464	for (n = rb_first(&proc->refs_by_desc); n != NULL; n = rb_next(n)) {
1465		ref = rb_entry(n, struct binder_ref, rb_node_desc);
1466		if (ref->data.desc > new_ref->data.desc)
1467			break;
1468		new_ref->data.desc = ref->data.desc + 1;
1469	}
1470
1471	p = &proc->refs_by_desc.rb_node;
1472	while (*p) {
1473		parent = *p;
1474		ref = rb_entry(parent, struct binder_ref, rb_node_desc);
1475
1476		if (new_ref->data.desc < ref->data.desc)
1477			p = &(*p)->rb_left;
1478		else if (new_ref->data.desc > ref->data.desc)
1479			p = &(*p)->rb_right;
1480		else
1481			BUG();
1482	}
1483	rb_link_node(&new_ref->rb_node_desc, parent, p);
1484	rb_insert_color(&new_ref->rb_node_desc, &proc->refs_by_desc);
1485
1486	binder_node_lock(node);
1487	hlist_add_head(&new_ref->node_entry, &node->refs);
1488
1489	binder_debug(BINDER_DEBUG_INTERNAL_REFS,
1490		     "%d new ref %d desc %d for node %d\n",
1491		      proc->pid, new_ref->data.debug_id, new_ref->data.desc,
1492		      node->debug_id);
1493	binder_node_unlock(node);
1494	return new_ref;
1495}
1496
1497static void binder_cleanup_ref_olocked(struct binder_ref *ref)
1498{
 
1499	bool delete_node = false;
1500
1501	binder_debug(BINDER_DEBUG_INTERNAL_REFS,
1502		     "%d delete ref %d desc %d for node %d\n",
1503		      ref->proc->pid, ref->data.debug_id, ref->data.desc,
1504		      ref->node->debug_id);
1505
 
 
1506	rb_erase(&ref->rb_node_desc, &ref->proc->refs_by_desc);
1507	rb_erase(&ref->rb_node_node, &ref->proc->refs_by_node);
1508
1509	binder_node_inner_lock(ref->node);
1510	if (ref->data.strong)
1511		binder_dec_node_nilocked(ref->node, 1, 1);
1512
1513	hlist_del(&ref->node_entry);
1514	delete_node = binder_dec_node_nilocked(ref->node, 0, 1);
1515	binder_node_inner_unlock(ref->node);
1516	/*
1517	 * Clear ref->node unless we want the caller to free the node
1518	 */
1519	if (!delete_node) {
1520		/*
1521		 * The caller uses ref->node to determine
1522		 * whether the node needs to be freed. Clear
1523		 * it since the node is still alive.
1524		 */
1525		ref->node = NULL;
1526	}
1527
1528	if (ref->death) {
1529		binder_debug(BINDER_DEBUG_DEAD_BINDER,
1530			     "%d delete ref %d desc %d has death notification\n",
1531			      ref->proc->pid, ref->data.debug_id,
1532			      ref->data.desc);
1533		binder_dequeue_work(ref->proc, &ref->death->work);
1534		binder_stats_deleted(BINDER_STAT_DEATH);
1535	}
 
 
 
 
 
 
1536	binder_stats_deleted(BINDER_STAT_REF);
1537}
1538
1539/**
1540 * binder_inc_ref_olocked() - increment the ref for given handle
1541 * @ref:         ref to be incremented
1542 * @strong:      if true, strong increment, else weak
1543 * @target_list: list to queue node work on
1544 *
1545 * Increment the ref. @ref->proc->outer_lock must be held on entry
1546 *
1547 * Return: 0, if successful, else errno
1548 */
1549static int binder_inc_ref_olocked(struct binder_ref *ref, int strong,
1550				  struct list_head *target_list)
1551{
1552	int ret;
1553
1554	if (strong) {
1555		if (ref->data.strong == 0) {
1556			ret = binder_inc_node(ref->node, 1, 1, target_list);
1557			if (ret)
1558				return ret;
1559		}
1560		ref->data.strong++;
1561	} else {
1562		if (ref->data.weak == 0) {
1563			ret = binder_inc_node(ref->node, 0, 1, target_list);
1564			if (ret)
1565				return ret;
1566		}
1567		ref->data.weak++;
1568	}
1569	return 0;
1570}
1571
1572/**
1573 * binder_dec_ref() - dec the ref for given handle
1574 * @ref:	ref to be decremented
1575 * @strong:	if true, strong decrement, else weak
1576 *
1577 * Decrement the ref.
1578 *
1579 * Return: true if ref is cleaned up and ready to be freed
1580 */
1581static bool binder_dec_ref_olocked(struct binder_ref *ref, int strong)
1582{
1583	if (strong) {
1584		if (ref->data.strong == 0) {
1585			binder_user_error("%d invalid dec strong, ref %d desc %d s %d w %d\n",
1586					  ref->proc->pid, ref->data.debug_id,
1587					  ref->data.desc, ref->data.strong,
1588					  ref->data.weak);
1589			return false;
1590		}
1591		ref->data.strong--;
1592		if (ref->data.strong == 0)
1593			binder_dec_node(ref->node, strong, 1);
1594	} else {
1595		if (ref->data.weak == 0) {
1596			binder_user_error("%d invalid dec weak, ref %d desc %d s %d w %d\n",
1597					  ref->proc->pid, ref->data.debug_id,
1598					  ref->data.desc, ref->data.strong,
1599					  ref->data.weak);
1600			return false;
1601		}
1602		ref->data.weak--;
1603	}
1604	if (ref->data.strong == 0 && ref->data.weak == 0) {
1605		binder_cleanup_ref_olocked(ref);
1606		return true;
1607	}
1608	return false;
1609}
1610
1611/**
1612 * binder_get_node_from_ref() - get the node from the given proc/desc
1613 * @proc:	proc containing the ref
1614 * @desc:	the handle associated with the ref
1615 * @need_strong_ref: if true, only return node if ref is strong
1616 * @rdata:	the id/refcount data for the ref
1617 *
1618 * Given a proc and ref handle, return the associated binder_node
1619 *
1620 * Return: a binder_node or NULL if not found or not strong when strong required
1621 */
1622static struct binder_node *binder_get_node_from_ref(
1623		struct binder_proc *proc,
1624		u32 desc, bool need_strong_ref,
1625		struct binder_ref_data *rdata)
1626{
1627	struct binder_node *node;
1628	struct binder_ref *ref;
1629
1630	binder_proc_lock(proc);
1631	ref = binder_get_ref_olocked(proc, desc, need_strong_ref);
1632	if (!ref)
1633		goto err_no_ref;
1634	node = ref->node;
1635	/*
1636	 * Take an implicit reference on the node to ensure
1637	 * it stays alive until the call to binder_put_node()
1638	 */
1639	binder_inc_node_tmpref(node);
1640	if (rdata)
1641		*rdata = ref->data;
1642	binder_proc_unlock(proc);
1643
1644	return node;
1645
1646err_no_ref:
1647	binder_proc_unlock(proc);
1648	return NULL;
1649}
1650
1651/**
1652 * binder_free_ref() - free the binder_ref
1653 * @ref:	ref to free
1654 *
1655 * Free the binder_ref. Free the binder_node indicated by ref->node
1656 * (if non-NULL) and the binder_ref_death indicated by ref->death.
1657 */
1658static void binder_free_ref(struct binder_ref *ref)
1659{
1660	if (ref->node)
1661		binder_free_node(ref->node);
1662	kfree(ref->death);
 
1663	kfree(ref);
1664}
1665
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
1666/**
1667 * binder_update_ref_for_handle() - inc/dec the ref for given handle
1668 * @proc:	proc containing the ref
1669 * @desc:	the handle associated with the ref
1670 * @increment:	true=inc reference, false=dec reference
1671 * @strong:	true=strong reference, false=weak reference
1672 * @rdata:	the id/refcount data for the ref
1673 *
1674 * Given a proc and ref handle, increment or decrement the ref
1675 * according to "increment" arg.
1676 *
1677 * Return: 0 if successful, else errno
1678 */
1679static int binder_update_ref_for_handle(struct binder_proc *proc,
1680		uint32_t desc, bool increment, bool strong,
1681		struct binder_ref_data *rdata)
1682{
1683	int ret = 0;
1684	struct binder_ref *ref;
1685	bool delete_ref = false;
1686
1687	binder_proc_lock(proc);
1688	ref = binder_get_ref_olocked(proc, desc, strong);
1689	if (!ref) {
1690		ret = -EINVAL;
1691		goto err_no_ref;
1692	}
1693	if (increment)
1694		ret = binder_inc_ref_olocked(ref, strong, NULL);
1695	else
1696		delete_ref = binder_dec_ref_olocked(ref, strong);
1697
1698	if (rdata)
1699		*rdata = ref->data;
1700	binder_proc_unlock(proc);
1701
1702	if (delete_ref)
1703		binder_free_ref(ref);
 
 
1704	return ret;
1705
1706err_no_ref:
1707	binder_proc_unlock(proc);
1708	return ret;
1709}
1710
1711/**
1712 * binder_dec_ref_for_handle() - dec the ref for given handle
1713 * @proc:	proc containing the ref
1714 * @desc:	the handle associated with the ref
1715 * @strong:	true=strong reference, false=weak reference
1716 * @rdata:	the id/refcount data for the ref
1717 *
1718 * Just calls binder_update_ref_for_handle() to decrement the ref.
1719 *
1720 * Return: 0 if successful, else errno
1721 */
1722static int binder_dec_ref_for_handle(struct binder_proc *proc,
1723		uint32_t desc, bool strong, struct binder_ref_data *rdata)
1724{
1725	return binder_update_ref_for_handle(proc, desc, false, strong, rdata);
1726}
1727
1728
1729/**
1730 * binder_inc_ref_for_node() - increment the ref for given proc/node
1731 * @proc:	 proc containing the ref
1732 * @node:	 target node
1733 * @strong:	 true=strong reference, false=weak reference
1734 * @target_list: worklist to use if node is incremented
1735 * @rdata:	 the id/refcount data for the ref
1736 *
1737 * Given a proc and node, increment the ref. Create the ref if it
1738 * doesn't already exist
1739 *
1740 * Return: 0 if successful, else errno
1741 */
1742static int binder_inc_ref_for_node(struct binder_proc *proc,
1743			struct binder_node *node,
1744			bool strong,
1745			struct list_head *target_list,
1746			struct binder_ref_data *rdata)
1747{
1748	struct binder_ref *ref;
1749	struct binder_ref *new_ref = NULL;
1750	int ret = 0;
1751
1752	binder_proc_lock(proc);
1753	ref = binder_get_ref_for_node_olocked(proc, node, NULL);
1754	if (!ref) {
1755		binder_proc_unlock(proc);
1756		new_ref = kzalloc(sizeof(*ref), GFP_KERNEL);
1757		if (!new_ref)
1758			return -ENOMEM;
1759		binder_proc_lock(proc);
1760		ref = binder_get_ref_for_node_olocked(proc, node, new_ref);
1761	}
1762	ret = binder_inc_ref_olocked(ref, strong, target_list);
1763	*rdata = ref->data;
 
 
 
 
 
 
 
 
 
 
 
 
1764	binder_proc_unlock(proc);
1765	if (new_ref && ref != new_ref)
1766		/*
1767		 * Another thread created the ref first so
1768		 * free the one we allocated
1769		 */
1770		kfree(new_ref);
1771	return ret;
1772}
1773
1774static void binder_pop_transaction_ilocked(struct binder_thread *target_thread,
1775					   struct binder_transaction *t)
1776{
1777	BUG_ON(!target_thread);
1778	assert_spin_locked(&target_thread->proc->inner_lock);
1779	BUG_ON(target_thread->transaction_stack != t);
1780	BUG_ON(target_thread->transaction_stack->from != target_thread);
1781	target_thread->transaction_stack =
1782		target_thread->transaction_stack->from_parent;
1783	t->from = NULL;
1784}
1785
1786/**
1787 * binder_thread_dec_tmpref() - decrement thread->tmp_ref
1788 * @thread:	thread to decrement
1789 *
1790 * A thread needs to be kept alive while being used to create or
1791 * handle a transaction. binder_get_txn_from() is used to safely
1792 * extract t->from from a binder_transaction and keep the thread
1793 * indicated by t->from from being freed. When done with that
1794 * binder_thread, this function is called to decrement the
1795 * tmp_ref and free if appropriate (thread has been released
1796 * and no transaction being processed by the driver)
1797 */
1798static void binder_thread_dec_tmpref(struct binder_thread *thread)
1799{
1800	/*
1801	 * atomic is used to protect the counter value while
1802	 * it cannot reach zero or thread->is_dead is false
1803	 */
1804	binder_inner_proc_lock(thread->proc);
1805	atomic_dec(&thread->tmp_ref);
1806	if (thread->is_dead && !atomic_read(&thread->tmp_ref)) {
1807		binder_inner_proc_unlock(thread->proc);
1808		binder_free_thread(thread);
1809		return;
1810	}
1811	binder_inner_proc_unlock(thread->proc);
1812}
1813
1814/**
1815 * binder_proc_dec_tmpref() - decrement proc->tmp_ref
1816 * @proc:	proc to decrement
1817 *
1818 * A binder_proc needs to be kept alive while being used to create or
1819 * handle a transaction. proc->tmp_ref is incremented when
1820 * creating a new transaction or the binder_proc is currently in-use
1821 * by threads that are being released. When done with the binder_proc,
1822 * this function is called to decrement the counter and free the
1823 * proc if appropriate (proc has been released, all threads have
1824 * been released and not currenly in-use to process a transaction).
1825 */
1826static void binder_proc_dec_tmpref(struct binder_proc *proc)
1827{
1828	binder_inner_proc_lock(proc);
1829	proc->tmp_ref--;
1830	if (proc->is_dead && RB_EMPTY_ROOT(&proc->threads) &&
1831			!proc->tmp_ref) {
1832		binder_inner_proc_unlock(proc);
1833		binder_free_proc(proc);
1834		return;
1835	}
1836	binder_inner_proc_unlock(proc);
1837}
1838
1839/**
1840 * binder_get_txn_from() - safely extract the "from" thread in transaction
1841 * @t:	binder transaction for t->from
1842 *
1843 * Atomically return the "from" thread and increment the tmp_ref
1844 * count for the thread to ensure it stays alive until
1845 * binder_thread_dec_tmpref() is called.
1846 *
1847 * Return: the value of t->from
1848 */
1849static struct binder_thread *binder_get_txn_from(
1850		struct binder_transaction *t)
1851{
1852	struct binder_thread *from;
1853
1854	spin_lock(&t->lock);
1855	from = t->from;
1856	if (from)
1857		atomic_inc(&from->tmp_ref);
1858	spin_unlock(&t->lock);
1859	return from;
1860}
1861
1862/**
1863 * binder_get_txn_from_and_acq_inner() - get t->from and acquire inner lock
1864 * @t:	binder transaction for t->from
1865 *
1866 * Same as binder_get_txn_from() except it also acquires the proc->inner_lock
1867 * to guarantee that the thread cannot be released while operating on it.
1868 * The caller must call binder_inner_proc_unlock() to release the inner lock
1869 * as well as call binder_dec_thread_txn() to release the reference.
1870 *
1871 * Return: the value of t->from
1872 */
1873static struct binder_thread *binder_get_txn_from_and_acq_inner(
1874		struct binder_transaction *t)
1875	__acquires(&t->from->proc->inner_lock)
1876{
1877	struct binder_thread *from;
1878
1879	from = binder_get_txn_from(t);
1880	if (!from) {
1881		__acquire(&from->proc->inner_lock);
1882		return NULL;
1883	}
1884	binder_inner_proc_lock(from->proc);
1885	if (t->from) {
1886		BUG_ON(from != t->from);
1887		return from;
1888	}
1889	binder_inner_proc_unlock(from->proc);
1890	__acquire(&from->proc->inner_lock);
1891	binder_thread_dec_tmpref(from);
1892	return NULL;
1893}
1894
1895/**
1896 * binder_free_txn_fixups() - free unprocessed fd fixups
1897 * @t:	binder transaction for t->from
1898 *
1899 * If the transaction is being torn down prior to being
1900 * processed by the target process, free all of the
1901 * fd fixups and fput the file structs. It is safe to
1902 * call this function after the fixups have been
1903 * processed -- in that case, the list will be empty.
1904 */
1905static void binder_free_txn_fixups(struct binder_transaction *t)
1906{
1907	struct binder_txn_fd_fixup *fixup, *tmp;
1908
1909	list_for_each_entry_safe(fixup, tmp, &t->fd_fixups, fixup_entry) {
1910		fput(fixup->file);
 
 
1911		list_del(&fixup->fixup_entry);
1912		kfree(fixup);
1913	}
1914}
1915
 
 
 
 
 
 
 
 
 
 
 
 
 
 
1916static void binder_free_transaction(struct binder_transaction *t)
1917{
1918	struct binder_proc *target_proc = t->to_proc;
1919
1920	if (target_proc) {
1921		binder_inner_proc_lock(target_proc);
 
 
 
 
 
 
1922		if (t->buffer)
1923			t->buffer->transaction = NULL;
1924		binder_inner_proc_unlock(target_proc);
1925	}
 
 
1926	/*
1927	 * If the transaction has no target_proc, then
1928	 * t->buffer->transaction has already been cleared.
1929	 */
1930	binder_free_txn_fixups(t);
1931	kfree(t);
1932	binder_stats_deleted(BINDER_STAT_TRANSACTION);
1933}
1934
1935static void binder_send_failed_reply(struct binder_transaction *t,
1936				     uint32_t error_code)
1937{
1938	struct binder_thread *target_thread;
1939	struct binder_transaction *next;
1940
1941	BUG_ON(t->flags & TF_ONE_WAY);
1942	while (1) {
1943		target_thread = binder_get_txn_from_and_acq_inner(t);
1944		if (target_thread) {
1945			binder_debug(BINDER_DEBUG_FAILED_TRANSACTION,
1946				     "send failed reply for transaction %d to %d:%d\n",
1947				      t->debug_id,
1948				      target_thread->proc->pid,
1949				      target_thread->pid);
1950
1951			binder_pop_transaction_ilocked(target_thread, t);
1952			if (target_thread->reply_error.cmd == BR_OK) {
1953				target_thread->reply_error.cmd = error_code;
1954				binder_enqueue_thread_work_ilocked(
1955					target_thread,
1956					&target_thread->reply_error.work);
1957				wake_up_interruptible(&target_thread->wait);
1958			} else {
1959				/*
1960				 * Cannot get here for normal operation, but
1961				 * we can if multiple synchronous transactions
1962				 * are sent without blocking for responses.
1963				 * Just ignore the 2nd error in this case.
1964				 */
1965				pr_warn("Unexpected reply error: %u\n",
1966					target_thread->reply_error.cmd);
1967			}
1968			binder_inner_proc_unlock(target_thread->proc);
1969			binder_thread_dec_tmpref(target_thread);
1970			binder_free_transaction(t);
1971			return;
1972		}
1973		__release(&target_thread->proc->inner_lock);
1974		next = t->from_parent;
1975
1976		binder_debug(BINDER_DEBUG_FAILED_TRANSACTION,
1977			     "send failed reply for transaction %d, target dead\n",
1978			     t->debug_id);
1979
1980		binder_free_transaction(t);
1981		if (next == NULL) {
1982			binder_debug(BINDER_DEBUG_DEAD_BINDER,
1983				     "reply failed, no target thread at root\n");
1984			return;
1985		}
1986		t = next;
1987		binder_debug(BINDER_DEBUG_DEAD_BINDER,
1988			     "reply failed, no target thread -- retry %d\n",
1989			      t->debug_id);
1990	}
1991}
1992
1993/**
1994 * binder_cleanup_transaction() - cleans up undelivered transaction
1995 * @t:		transaction that needs to be cleaned up
1996 * @reason:	reason the transaction wasn't delivered
1997 * @error_code:	error to return to caller (if synchronous call)
1998 */
1999static void binder_cleanup_transaction(struct binder_transaction *t,
2000				       const char *reason,
2001				       uint32_t error_code)
2002{
2003	if (t->buffer->target_node && !(t->flags & TF_ONE_WAY)) {
2004		binder_send_failed_reply(t, error_code);
2005	} else {
2006		binder_debug(BINDER_DEBUG_DEAD_TRANSACTION,
2007			"undelivered transaction %d, %s\n",
2008			t->debug_id, reason);
2009		binder_free_transaction(t);
2010	}
2011}
2012
2013/**
2014 * binder_get_object() - gets object and checks for valid metadata
2015 * @proc:	binder_proc owning the buffer
 
2016 * @buffer:	binder_buffer that we're parsing.
2017 * @offset:	offset in the @buffer at which to validate an object.
2018 * @object:	struct binder_object to read into
2019 *
2020 * Return:	If there's a valid metadata object at @offset in @buffer, the
 
 
 
 
2021 *		size of that object. Otherwise, it returns zero. The object
2022 *		is read into the struct binder_object pointed to by @object.
2023 */
2024static size_t binder_get_object(struct binder_proc *proc,
 
2025				struct binder_buffer *buffer,
2026				unsigned long offset,
2027				struct binder_object *object)
2028{
2029	size_t read_size;
2030	struct binder_object_header *hdr;
2031	size_t object_size = 0;
2032
2033	read_size = min_t(size_t, sizeof(*object), buffer->data_size - offset);
2034	if (offset > buffer->data_size || read_size < sizeof(*hdr) ||
2035	    binder_alloc_copy_from_buffer(&proc->alloc, object, buffer,
2036					  offset, read_size))
2037		return 0;
2038
 
 
 
 
 
 
 
 
 
2039	/* Ok, now see if we read a complete object. */
2040	hdr = &object->hdr;
2041	switch (hdr->type) {
2042	case BINDER_TYPE_BINDER:
2043	case BINDER_TYPE_WEAK_BINDER:
2044	case BINDER_TYPE_HANDLE:
2045	case BINDER_TYPE_WEAK_HANDLE:
2046		object_size = sizeof(struct flat_binder_object);
2047		break;
2048	case BINDER_TYPE_FD:
2049		object_size = sizeof(struct binder_fd_object);
2050		break;
2051	case BINDER_TYPE_PTR:
2052		object_size = sizeof(struct binder_buffer_object);
2053		break;
2054	case BINDER_TYPE_FDA:
2055		object_size = sizeof(struct binder_fd_array_object);
2056		break;
2057	default:
2058		return 0;
2059	}
2060	if (offset <= buffer->data_size - object_size &&
2061	    buffer->data_size >= object_size)
2062		return object_size;
2063	else
2064		return 0;
2065}
2066
2067/**
2068 * binder_validate_ptr() - validates binder_buffer_object in a binder_buffer.
2069 * @proc:	binder_proc owning the buffer
2070 * @b:		binder_buffer containing the object
2071 * @object:	struct binder_object to read into
2072 * @index:	index in offset array at which the binder_buffer_object is
2073 *		located
2074 * @start_offset: points to the start of the offset array
2075 * @object_offsetp: offset of @object read from @b
2076 * @num_valid:	the number of valid offsets in the offset array
2077 *
2078 * Return:	If @index is within the valid range of the offset array
2079 *		described by @start and @num_valid, and if there's a valid
2080 *		binder_buffer_object at the offset found in index @index
2081 *		of the offset array, that object is returned. Otherwise,
2082 *		%NULL is returned.
2083 *		Note that the offset found in index @index itself is not
2084 *		verified; this function assumes that @num_valid elements
2085 *		from @start were previously verified to have valid offsets.
2086 *		If @object_offsetp is non-NULL, then the offset within
2087 *		@b is written to it.
2088 */
2089static struct binder_buffer_object *binder_validate_ptr(
2090						struct binder_proc *proc,
2091						struct binder_buffer *b,
2092						struct binder_object *object,
2093						binder_size_t index,
2094						binder_size_t start_offset,
2095						binder_size_t *object_offsetp,
2096						binder_size_t num_valid)
2097{
2098	size_t object_size;
2099	binder_size_t object_offset;
2100	unsigned long buffer_offset;
2101
2102	if (index >= num_valid)
2103		return NULL;
2104
2105	buffer_offset = start_offset + sizeof(binder_size_t) * index;
2106	if (binder_alloc_copy_from_buffer(&proc->alloc, &object_offset,
2107					  b, buffer_offset,
2108					  sizeof(object_offset)))
2109		return NULL;
2110	object_size = binder_get_object(proc, b, object_offset, object);
2111	if (!object_size || object->hdr.type != BINDER_TYPE_PTR)
2112		return NULL;
2113	if (object_offsetp)
2114		*object_offsetp = object_offset;
2115
2116	return &object->bbo;
2117}
2118
2119/**
2120 * binder_validate_fixup() - validates pointer/fd fixups happen in order.
2121 * @proc:		binder_proc owning the buffer
2122 * @b:			transaction buffer
2123 * @objects_start_offset: offset to start of objects buffer
2124 * @buffer_obj_offset:	offset to binder_buffer_object in which to fix up
2125 * @fixup_offset:	start offset in @buffer to fix up
2126 * @last_obj_offset:	offset to last binder_buffer_object that we fixed
2127 * @last_min_offset:	minimum fixup offset in object at @last_obj_offset
2128 *
2129 * Return:		%true if a fixup in buffer @buffer at offset @offset is
2130 *			allowed.
2131 *
2132 * For safety reasons, we only allow fixups inside a buffer to happen
2133 * at increasing offsets; additionally, we only allow fixup on the last
2134 * buffer object that was verified, or one of its parents.
2135 *
2136 * Example of what is allowed:
2137 *
2138 * A
2139 *   B (parent = A, offset = 0)
2140 *   C (parent = A, offset = 16)
2141 *     D (parent = C, offset = 0)
2142 *   E (parent = A, offset = 32) // min_offset is 16 (C.parent_offset)
2143 *
2144 * Examples of what is not allowed:
2145 *
2146 * Decreasing offsets within the same parent:
2147 * A
2148 *   C (parent = A, offset = 16)
2149 *   B (parent = A, offset = 0) // decreasing offset within A
2150 *
2151 * Referring to a parent that wasn't the last object or any of its parents:
2152 * A
2153 *   B (parent = A, offset = 0)
2154 *   C (parent = A, offset = 0)
2155 *   C (parent = A, offset = 16)
2156 *     D (parent = B, offset = 0) // B is not A or any of A's parents
2157 */
2158static bool binder_validate_fixup(struct binder_proc *proc,
2159				  struct binder_buffer *b,
2160				  binder_size_t objects_start_offset,
2161				  binder_size_t buffer_obj_offset,
2162				  binder_size_t fixup_offset,
2163				  binder_size_t last_obj_offset,
2164				  binder_size_t last_min_offset)
2165{
2166	if (!last_obj_offset) {
2167		/* Nothing to fix up in */
2168		return false;
2169	}
2170
2171	while (last_obj_offset != buffer_obj_offset) {
2172		unsigned long buffer_offset;
2173		struct binder_object last_object;
2174		struct binder_buffer_object *last_bbo;
2175		size_t object_size = binder_get_object(proc, b, last_obj_offset,
 
2176						       &last_object);
2177		if (object_size != sizeof(*last_bbo))
2178			return false;
2179
2180		last_bbo = &last_object.bbo;
2181		/*
2182		 * Safe to retrieve the parent of last_obj, since it
2183		 * was already previously verified by the driver.
2184		 */
2185		if ((last_bbo->flags & BINDER_BUFFER_FLAG_HAS_PARENT) == 0)
2186			return false;
2187		last_min_offset = last_bbo->parent_offset + sizeof(uintptr_t);
2188		buffer_offset = objects_start_offset +
2189			sizeof(binder_size_t) * last_bbo->parent;
2190		if (binder_alloc_copy_from_buffer(&proc->alloc,
2191						  &last_obj_offset,
2192						  b, buffer_offset,
2193						  sizeof(last_obj_offset)))
2194			return false;
2195	}
2196	return (fixup_offset >= last_min_offset);
2197}
2198
2199/**
2200 * struct binder_task_work_cb - for deferred close
2201 *
2202 * @twork:                callback_head for task work
2203 * @fd:                   fd to close
2204 *
2205 * Structure to pass task work to be handled after
2206 * returning from binder_ioctl() via task_work_add().
2207 */
2208struct binder_task_work_cb {
2209	struct callback_head twork;
2210	struct file *file;
2211};
2212
2213/**
2214 * binder_do_fd_close() - close list of file descriptors
2215 * @twork:	callback head for task work
2216 *
2217 * It is not safe to call ksys_close() during the binder_ioctl()
2218 * function if there is a chance that binder's own file descriptor
2219 * might be closed. This is to meet the requirements for using
2220 * fdget() (see comments for __fget_light()). Therefore use
2221 * task_work_add() to schedule the close operation once we have
2222 * returned from binder_ioctl(). This function is a callback
2223 * for that mechanism and does the actual ksys_close() on the
2224 * given file descriptor.
2225 */
2226static void binder_do_fd_close(struct callback_head *twork)
2227{
2228	struct binder_task_work_cb *twcb = container_of(twork,
2229			struct binder_task_work_cb, twork);
2230
2231	fput(twcb->file);
2232	kfree(twcb);
2233}
2234
2235/**
2236 * binder_deferred_fd_close() - schedule a close for the given file-descriptor
2237 * @fd:		file-descriptor to close
2238 *
2239 * See comments in binder_do_fd_close(). This function is used to schedule
2240 * a file-descriptor to be closed after returning from binder_ioctl().
2241 */
2242static void binder_deferred_fd_close(int fd)
2243{
2244	struct binder_task_work_cb *twcb;
2245
2246	twcb = kzalloc(sizeof(*twcb), GFP_KERNEL);
2247	if (!twcb)
2248		return;
2249	init_task_work(&twcb->twork, binder_do_fd_close);
2250	__close_fd_get_file(fd, &twcb->file);
2251	if (twcb->file) {
 
 
2252		filp_close(twcb->file, current->files);
2253		task_work_add(current, &twcb->twork, true);
2254	} else {
2255		kfree(twcb);
2256	}
2257}
2258
2259static void binder_transaction_buffer_release(struct binder_proc *proc,
 
2260					      struct binder_buffer *buffer,
2261					      binder_size_t failed_at,
2262					      bool is_failure)
2263{
2264	int debug_id = buffer->debug_id;
2265	binder_size_t off_start_offset, buffer_offset, off_end_offset;
2266
2267	binder_debug(BINDER_DEBUG_TRANSACTION,
2268		     "%d buffer release %d, size %zd-%zd, failed at %llx\n",
2269		     proc->pid, buffer->debug_id,
2270		     buffer->data_size, buffer->offsets_size,
2271		     (unsigned long long)failed_at);
2272
2273	if (buffer->target_node)
2274		binder_dec_node(buffer->target_node, 1, 0);
2275
2276	off_start_offset = ALIGN(buffer->data_size, sizeof(void *));
2277	off_end_offset = is_failure ? failed_at :
2278				off_start_offset + buffer->offsets_size;
2279	for (buffer_offset = off_start_offset; buffer_offset < off_end_offset;
2280	     buffer_offset += sizeof(binder_size_t)) {
2281		struct binder_object_header *hdr;
2282		size_t object_size = 0;
2283		struct binder_object object;
2284		binder_size_t object_offset;
2285
2286		if (!binder_alloc_copy_from_buffer(&proc->alloc, &object_offset,
2287						   buffer, buffer_offset,
2288						   sizeof(object_offset)))
2289			object_size = binder_get_object(proc, buffer,
2290							object_offset, &object);
2291		if (object_size == 0) {
2292			pr_err("transaction release %d bad object at offset %lld, size %zd\n",
2293			       debug_id, (u64)object_offset, buffer->data_size);
2294			continue;
2295		}
2296		hdr = &object.hdr;
2297		switch (hdr->type) {
2298		case BINDER_TYPE_BINDER:
2299		case BINDER_TYPE_WEAK_BINDER: {
2300			struct flat_binder_object *fp;
2301			struct binder_node *node;
2302
2303			fp = to_flat_binder_object(hdr);
2304			node = binder_get_node(proc, fp->binder);
2305			if (node == NULL) {
2306				pr_err("transaction release %d bad node %016llx\n",
2307				       debug_id, (u64)fp->binder);
2308				break;
2309			}
2310			binder_debug(BINDER_DEBUG_TRANSACTION,
2311				     "        node %d u%016llx\n",
2312				     node->debug_id, (u64)node->ptr);
2313			binder_dec_node(node, hdr->type == BINDER_TYPE_BINDER,
2314					0);
2315			binder_put_node(node);
2316		} break;
2317		case BINDER_TYPE_HANDLE:
2318		case BINDER_TYPE_WEAK_HANDLE: {
2319			struct flat_binder_object *fp;
2320			struct binder_ref_data rdata;
2321			int ret;
2322
2323			fp = to_flat_binder_object(hdr);
2324			ret = binder_dec_ref_for_handle(proc, fp->handle,
2325				hdr->type == BINDER_TYPE_HANDLE, &rdata);
2326
2327			if (ret) {
2328				pr_err("transaction release %d bad handle %d, ret = %d\n",
2329				 debug_id, fp->handle, ret);
2330				break;
2331			}
2332			binder_debug(BINDER_DEBUG_TRANSACTION,
2333				     "        ref %d desc %d\n",
2334				     rdata.debug_id, rdata.desc);
2335		} break;
2336
2337		case BINDER_TYPE_FD: {
2338			/*
2339			 * No need to close the file here since user-space
2340			 * closes it for for successfully delivered
2341			 * transactions. For transactions that weren't
2342			 * delivered, the new fd was never allocated so
2343			 * there is no need to close and the fput on the
2344			 * file is done when the transaction is torn
2345			 * down.
2346			 */
2347			WARN_ON(failed_at &&
2348				proc->tsk == current->group_leader);
2349		} break;
2350		case BINDER_TYPE_PTR:
2351			/*
2352			 * Nothing to do here, this will get cleaned up when the
2353			 * transaction buffer gets freed
2354			 */
2355			break;
2356		case BINDER_TYPE_FDA: {
2357			struct binder_fd_array_object *fda;
2358			struct binder_buffer_object *parent;
2359			struct binder_object ptr_object;
2360			binder_size_t fda_offset;
2361			size_t fd_index;
2362			binder_size_t fd_buf_size;
2363			binder_size_t num_valid;
2364
2365			if (proc->tsk != current->group_leader) {
2366				/*
2367				 * Nothing to do if running in sender context
2368				 * The fd fixups have not been applied so no
2369				 * fds need to be closed.
2370				 */
2371				continue;
2372			}
2373
2374			num_valid = (buffer_offset - off_start_offset) /
2375						sizeof(binder_size_t);
2376			fda = to_binder_fd_array_object(hdr);
2377			parent = binder_validate_ptr(proc, buffer, &ptr_object,
2378						     fda->parent,
2379						     off_start_offset,
2380						     NULL,
2381						     num_valid);
2382			if (!parent) {
2383				pr_err("transaction release %d bad parent offset\n",
2384				       debug_id);
2385				continue;
2386			}
2387			fd_buf_size = sizeof(u32) * fda->num_fds;
2388			if (fda->num_fds >= SIZE_MAX / sizeof(u32)) {
2389				pr_err("transaction release %d invalid number of fds (%lld)\n",
2390				       debug_id, (u64)fda->num_fds);
2391				continue;
2392			}
2393			if (fd_buf_size > parent->length ||
2394			    fda->parent_offset > parent->length - fd_buf_size) {
2395				/* No space for all file descriptors here. */
2396				pr_err("transaction release %d not enough space for %lld fds in buffer\n",
2397				       debug_id, (u64)fda->num_fds);
2398				continue;
2399			}
2400			/*
2401			 * the source data for binder_buffer_object is visible
2402			 * to user-space and the @buffer element is the user
2403			 * pointer to the buffer_object containing the fd_array.
2404			 * Convert the address to an offset relative to
2405			 * the base of the transaction buffer.
2406			 */
2407			fda_offset =
2408			    (parent->buffer - (uintptr_t)buffer->user_data) +
2409			    fda->parent_offset;
2410			for (fd_index = 0; fd_index < fda->num_fds;
2411			     fd_index++) {
2412				u32 fd;
2413				int err;
2414				binder_size_t offset = fda_offset +
2415					fd_index * sizeof(fd);
2416
2417				err = binder_alloc_copy_from_buffer(
2418						&proc->alloc, &fd, buffer,
2419						offset, sizeof(fd));
2420				WARN_ON(err);
2421				if (!err)
2422					binder_deferred_fd_close(fd);
 
 
 
 
 
 
 
 
2423			}
2424		} break;
2425		default:
2426			pr_err("transaction release %d bad object type %x\n",
2427				debug_id, hdr->type);
2428			break;
2429		}
2430	}
2431}
2432
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
2433static int binder_translate_binder(struct flat_binder_object *fp,
2434				   struct binder_transaction *t,
2435				   struct binder_thread *thread)
2436{
2437	struct binder_node *node;
2438	struct binder_proc *proc = thread->proc;
2439	struct binder_proc *target_proc = t->to_proc;
2440	struct binder_ref_data rdata;
2441	int ret = 0;
2442
2443	node = binder_get_node(proc, fp->binder);
2444	if (!node) {
2445		node = binder_new_node(proc, fp);
2446		if (!node)
2447			return -ENOMEM;
2448	}
2449	if (fp->cookie != node->cookie) {
2450		binder_user_error("%d:%d sending u%016llx node %d, cookie mismatch %016llx != %016llx\n",
2451				  proc->pid, thread->pid, (u64)fp->binder,
2452				  node->debug_id, (u64)fp->cookie,
2453				  (u64)node->cookie);
2454		ret = -EINVAL;
2455		goto done;
2456	}
2457	if (security_binder_transfer_binder(proc->tsk, target_proc->tsk)) {
2458		ret = -EPERM;
2459		goto done;
2460	}
2461
2462	ret = binder_inc_ref_for_node(target_proc, node,
2463			fp->hdr.type == BINDER_TYPE_BINDER,
2464			&thread->todo, &rdata);
2465	if (ret)
2466		goto done;
2467
2468	if (fp->hdr.type == BINDER_TYPE_BINDER)
2469		fp->hdr.type = BINDER_TYPE_HANDLE;
2470	else
2471		fp->hdr.type = BINDER_TYPE_WEAK_HANDLE;
2472	fp->binder = 0;
2473	fp->handle = rdata.desc;
2474	fp->cookie = 0;
2475
2476	trace_binder_transaction_node_to_ref(t, node, &rdata);
2477	binder_debug(BINDER_DEBUG_TRANSACTION,
2478		     "        node %d u%016llx -> ref %d desc %d\n",
2479		     node->debug_id, (u64)node->ptr,
2480		     rdata.debug_id, rdata.desc);
2481done:
2482	binder_put_node(node);
2483	return ret;
2484}
2485
2486static int binder_translate_handle(struct flat_binder_object *fp,
2487				   struct binder_transaction *t,
2488				   struct binder_thread *thread)
2489{
2490	struct binder_proc *proc = thread->proc;
2491	struct binder_proc *target_proc = t->to_proc;
2492	struct binder_node *node;
2493	struct binder_ref_data src_rdata;
2494	int ret = 0;
2495
2496	node = binder_get_node_from_ref(proc, fp->handle,
2497			fp->hdr.type == BINDER_TYPE_HANDLE, &src_rdata);
2498	if (!node) {
2499		binder_user_error("%d:%d got transaction with invalid handle, %d\n",
2500				  proc->pid, thread->pid, fp->handle);
2501		return -EINVAL;
2502	}
2503	if (security_binder_transfer_binder(proc->tsk, target_proc->tsk)) {
2504		ret = -EPERM;
2505		goto done;
2506	}
2507
2508	binder_node_lock(node);
2509	if (node->proc == target_proc) {
2510		if (fp->hdr.type == BINDER_TYPE_HANDLE)
2511			fp->hdr.type = BINDER_TYPE_BINDER;
2512		else
2513			fp->hdr.type = BINDER_TYPE_WEAK_BINDER;
2514		fp->binder = node->ptr;
2515		fp->cookie = node->cookie;
2516		if (node->proc)
2517			binder_inner_proc_lock(node->proc);
2518		else
2519			__acquire(&node->proc->inner_lock);
2520		binder_inc_node_nilocked(node,
2521					 fp->hdr.type == BINDER_TYPE_BINDER,
2522					 0, NULL);
2523		if (node->proc)
2524			binder_inner_proc_unlock(node->proc);
2525		else
2526			__release(&node->proc->inner_lock);
2527		trace_binder_transaction_ref_to_node(t, node, &src_rdata);
2528		binder_debug(BINDER_DEBUG_TRANSACTION,
2529			     "        ref %d desc %d -> node %d u%016llx\n",
2530			     src_rdata.debug_id, src_rdata.desc, node->debug_id,
2531			     (u64)node->ptr);
2532		binder_node_unlock(node);
2533	} else {
2534		struct binder_ref_data dest_rdata;
2535
2536		binder_node_unlock(node);
2537		ret = binder_inc_ref_for_node(target_proc, node,
2538				fp->hdr.type == BINDER_TYPE_HANDLE,
2539				NULL, &dest_rdata);
2540		if (ret)
2541			goto done;
2542
2543		fp->binder = 0;
2544		fp->handle = dest_rdata.desc;
2545		fp->cookie = 0;
2546		trace_binder_transaction_ref_to_ref(t, node, &src_rdata,
2547						    &dest_rdata);
2548		binder_debug(BINDER_DEBUG_TRANSACTION,
2549			     "        ref %d desc %d -> ref %d desc %d (node %d)\n",
2550			     src_rdata.debug_id, src_rdata.desc,
2551			     dest_rdata.debug_id, dest_rdata.desc,
2552			     node->debug_id);
2553	}
2554done:
2555	binder_put_node(node);
2556	return ret;
2557}
2558
2559static int binder_translate_fd(u32 fd, binder_size_t fd_offset,
2560			       struct binder_transaction *t,
2561			       struct binder_thread *thread,
2562			       struct binder_transaction *in_reply_to)
2563{
2564	struct binder_proc *proc = thread->proc;
2565	struct binder_proc *target_proc = t->to_proc;
2566	struct binder_txn_fd_fixup *fixup;
2567	struct file *file;
2568	int ret = 0;
2569	bool target_allows_fd;
2570
2571	if (in_reply_to)
2572		target_allows_fd = !!(in_reply_to->flags & TF_ACCEPT_FDS);
2573	else
2574		target_allows_fd = t->buffer->target_node->accept_fds;
2575	if (!target_allows_fd) {
2576		binder_user_error("%d:%d got %s with fd, %d, but target does not allow fds\n",
2577				  proc->pid, thread->pid,
2578				  in_reply_to ? "reply" : "transaction",
2579				  fd);
2580		ret = -EPERM;
2581		goto err_fd_not_accepted;
2582	}
2583
2584	file = fget(fd);
2585	if (!file) {
2586		binder_user_error("%d:%d got transaction with invalid fd, %d\n",
2587				  proc->pid, thread->pid, fd);
2588		ret = -EBADF;
2589		goto err_fget;
2590	}
2591	ret = security_binder_transfer_file(proc->tsk, target_proc->tsk, file);
2592	if (ret < 0) {
2593		ret = -EPERM;
2594		goto err_security;
2595	}
2596
2597	/*
2598	 * Add fixup record for this transaction. The allocation
2599	 * of the fd in the target needs to be done from a
2600	 * target thread.
2601	 */
2602	fixup = kzalloc(sizeof(*fixup), GFP_KERNEL);
2603	if (!fixup) {
2604		ret = -ENOMEM;
2605		goto err_alloc;
2606	}
2607	fixup->file = file;
2608	fixup->offset = fd_offset;
 
2609	trace_binder_transaction_fd_send(t, fd, fixup->offset);
2610	list_add_tail(&fixup->fixup_entry, &t->fd_fixups);
2611
2612	return ret;
2613
2614err_alloc:
2615err_security:
2616	fput(file);
2617err_fget:
2618err_fd_not_accepted:
2619	return ret;
2620}
2621
2622static int binder_translate_fd_array(struct binder_fd_array_object *fda,
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
2623				     struct binder_buffer_object *parent,
 
2624				     struct binder_transaction *t,
2625				     struct binder_thread *thread,
2626				     struct binder_transaction *in_reply_to)
2627{
2628	binder_size_t fdi, fd_buf_size;
2629	binder_size_t fda_offset;
 
2630	struct binder_proc *proc = thread->proc;
2631	struct binder_proc *target_proc = t->to_proc;
 
 
 
2632
2633	fd_buf_size = sizeof(u32) * fda->num_fds;
2634	if (fda->num_fds >= SIZE_MAX / sizeof(u32)) {
2635		binder_user_error("%d:%d got transaction with invalid number of fds (%lld)\n",
2636				  proc->pid, thread->pid, (u64)fda->num_fds);
2637		return -EINVAL;
2638	}
2639	if (fd_buf_size > parent->length ||
2640	    fda->parent_offset > parent->length - fd_buf_size) {
2641		/* No space for all file descriptors here. */
2642		binder_user_error("%d:%d not enough space to store %lld fds in buffer\n",
2643				  proc->pid, thread->pid, (u64)fda->num_fds);
2644		return -EINVAL;
2645	}
2646	/*
2647	 * the source data for binder_buffer_object is visible
2648	 * to user-space and the @buffer element is the user
2649	 * pointer to the buffer_object containing the fd_array.
2650	 * Convert the address to an offset relative to
2651	 * the base of the transaction buffer.
2652	 */
2653	fda_offset = (parent->buffer - (uintptr_t)t->buffer->user_data) +
2654		fda->parent_offset;
2655	if (!IS_ALIGNED((unsigned long)fda_offset, sizeof(u32))) {
 
 
 
 
2656		binder_user_error("%d:%d parent offset not aligned correctly.\n",
2657				  proc->pid, thread->pid);
2658		return -EINVAL;
2659	}
 
 
 
 
2660	for (fdi = 0; fdi < fda->num_fds; fdi++) {
2661		u32 fd;
2662		int ret;
2663		binder_size_t offset = fda_offset + fdi * sizeof(fd);
 
2664
2665		ret = binder_alloc_copy_from_buffer(&target_proc->alloc,
2666						    &fd, t->buffer,
2667						    offset, sizeof(fd));
2668		if (!ret)
2669			ret = binder_translate_fd(fd, offset, t, thread,
2670						  in_reply_to);
2671		if (ret < 0)
2672			return ret;
2673	}
2674	return 0;
2675}
2676
2677static int binder_fixup_parent(struct binder_transaction *t,
 
2678			       struct binder_thread *thread,
2679			       struct binder_buffer_object *bp,
2680			       binder_size_t off_start_offset,
2681			       binder_size_t num_valid,
2682			       binder_size_t last_fixup_obj_off,
2683			       binder_size_t last_fixup_min_off)
2684{
2685	struct binder_buffer_object *parent;
2686	struct binder_buffer *b = t->buffer;
2687	struct binder_proc *proc = thread->proc;
2688	struct binder_proc *target_proc = t->to_proc;
2689	struct binder_object object;
2690	binder_size_t buffer_offset;
2691	binder_size_t parent_offset;
2692
2693	if (!(bp->flags & BINDER_BUFFER_FLAG_HAS_PARENT))
2694		return 0;
2695
2696	parent = binder_validate_ptr(target_proc, b, &object, bp->parent,
2697				     off_start_offset, &parent_offset,
2698				     num_valid);
2699	if (!parent) {
2700		binder_user_error("%d:%d got transaction with invalid parent offset or type\n",
2701				  proc->pid, thread->pid);
2702		return -EINVAL;
2703	}
2704
2705	if (!binder_validate_fixup(target_proc, b, off_start_offset,
2706				   parent_offset, bp->parent_offset,
2707				   last_fixup_obj_off,
2708				   last_fixup_min_off)) {
2709		binder_user_error("%d:%d got transaction with out-of-order buffer fixup\n",
2710				  proc->pid, thread->pid);
2711		return -EINVAL;
2712	}
2713
2714	if (parent->length < sizeof(binder_uintptr_t) ||
2715	    bp->parent_offset > parent->length - sizeof(binder_uintptr_t)) {
2716		/* No space for a pointer here! */
2717		binder_user_error("%d:%d got transaction with invalid parent offset\n",
2718				  proc->pid, thread->pid);
2719		return -EINVAL;
2720	}
2721	buffer_offset = bp->parent_offset +
2722			(uintptr_t)parent->buffer - (uintptr_t)b->user_data;
2723	if (binder_alloc_copy_to_buffer(&target_proc->alloc, b, buffer_offset,
2724					&bp->buffer, sizeof(bp->buffer))) {
2725		binder_user_error("%d:%d got transaction with invalid parent offset\n",
2726				  proc->pid, thread->pid);
2727		return -EINVAL;
2728	}
2729
2730	return 0;
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
2731}
2732
2733/**
2734 * binder_proc_transaction() - sends a transaction to a process and wakes it up
2735 * @t:		transaction to send
2736 * @proc:	process to send the transaction to
2737 * @thread:	thread in @proc to send the transaction to (may be NULL)
2738 *
2739 * This function queues a transaction to the specified process. It will try
2740 * to find a thread in the target process to handle the transaction and
2741 * wake it up. If no thread is found, the work is queued to the proc
2742 * waitqueue.
2743 *
2744 * If the @thread parameter is not NULL, the transaction is always queued
2745 * to the waitlist of that specific thread.
2746 *
2747 * Return:	true if the transactions was successfully queued
2748 *		false if the target process or thread is dead
 
 
 
 
2749 */
2750static bool binder_proc_transaction(struct binder_transaction *t,
2751				    struct binder_proc *proc,
2752				    struct binder_thread *thread)
2753{
2754	struct binder_node *node = t->buffer->target_node;
2755	bool oneway = !!(t->flags & TF_ONE_WAY);
2756	bool pending_async = false;
 
 
2757
2758	BUG_ON(!node);
2759	binder_node_lock(node);
2760	if (oneway) {
2761		BUG_ON(thread);
2762		if (node->has_async_transaction)
2763			pending_async = true;
2764		else
2765			node->has_async_transaction = true;
2766	}
2767
2768	binder_inner_proc_lock(proc);
 
 
 
 
 
2769
2770	if (proc->is_dead || (thread && thread->is_dead)) {
 
2771		binder_inner_proc_unlock(proc);
2772		binder_node_unlock(node);
2773		return false;
2774	}
2775
2776	if (!thread && !pending_async)
2777		thread = binder_select_thread_ilocked(proc);
2778
2779	if (thread)
2780		binder_enqueue_thread_work_ilocked(thread, &t->work);
2781	else if (!pending_async)
2782		binder_enqueue_work_ilocked(&t->work, &proc->todo);
2783	else
 
 
 
 
 
 
 
 
 
 
 
2784		binder_enqueue_work_ilocked(&t->work, &node->async_todo);
 
2785
2786	if (!pending_async)
2787		binder_wakeup_thread_ilocked(proc, thread, !oneway /* sync */);
2788
 
2789	binder_inner_proc_unlock(proc);
2790	binder_node_unlock(node);
2791
2792	return true;
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
2793}
2794
2795/**
2796 * binder_get_node_refs_for_txn() - Get required refs on node for txn
2797 * @node:         struct binder_node for which to get refs
2798 * @proc:         returns @node->proc if valid
2799 * @error:        if no @proc then returns BR_DEAD_REPLY
2800 *
2801 * User-space normally keeps the node alive when creating a transaction
2802 * since it has a reference to the target. The local strong ref keeps it
2803 * alive if the sending process dies before the target process processes
2804 * the transaction. If the source process is malicious or has a reference
2805 * counting bug, relying on the local strong ref can fail.
2806 *
2807 * Since user-space can cause the local strong ref to go away, we also take
2808 * a tmpref on the node to ensure it survives while we are constructing
2809 * the transaction. We also need a tmpref on the proc while we are
2810 * constructing the transaction, so we take that here as well.
2811 *
2812 * Return: The target_node with refs taken or NULL if no @node->proc is NULL.
2813 * Also sets @proc if valid. If the @node->proc is NULL indicating that the
2814 * target proc has died, @error is set to BR_DEAD_REPLY
2815 */
2816static struct binder_node *binder_get_node_refs_for_txn(
2817		struct binder_node *node,
2818		struct binder_proc **procp,
2819		uint32_t *error)
2820{
2821	struct binder_node *target_node = NULL;
2822
2823	binder_node_inner_lock(node);
2824	if (node->proc) {
2825		target_node = node;
2826		binder_inc_node_nilocked(node, 1, 0, NULL);
2827		binder_inc_node_tmpref_ilocked(node);
2828		node->proc->tmp_ref++;
2829		*procp = node->proc;
2830	} else
2831		*error = BR_DEAD_REPLY;
2832	binder_node_inner_unlock(node);
2833
2834	return target_node;
2835}
2836
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
2837static void binder_transaction(struct binder_proc *proc,
2838			       struct binder_thread *thread,
2839			       struct binder_transaction_data *tr, int reply,
2840			       binder_size_t extra_buffers_size)
2841{
2842	int ret;
2843	struct binder_transaction *t;
2844	struct binder_work *w;
2845	struct binder_work *tcomplete;
2846	binder_size_t buffer_offset = 0;
2847	binder_size_t off_start_offset, off_end_offset;
2848	binder_size_t off_min;
2849	binder_size_t sg_buf_offset, sg_buf_end_offset;
 
2850	struct binder_proc *target_proc = NULL;
2851	struct binder_thread *target_thread = NULL;
2852	struct binder_node *target_node = NULL;
2853	struct binder_transaction *in_reply_to = NULL;
2854	struct binder_transaction_log_entry *e;
2855	uint32_t return_error = 0;
2856	uint32_t return_error_param = 0;
2857	uint32_t return_error_line = 0;
2858	binder_size_t last_fixup_obj_off = 0;
2859	binder_size_t last_fixup_min_off = 0;
2860	struct binder_context *context = proc->context;
2861	int t_debug_id = atomic_inc_return(&binder_last_id);
 
2862	char *secctx = NULL;
2863	u32 secctx_sz = 0;
 
 
 
 
 
 
2864
2865	e = binder_transaction_log_add(&binder_transaction_log);
2866	e->debug_id = t_debug_id;
2867	e->call_type = reply ? 2 : !!(tr->flags & TF_ONE_WAY);
2868	e->from_proc = proc->pid;
2869	e->from_thread = thread->pid;
2870	e->target_handle = tr->target.handle;
2871	e->data_size = tr->data_size;
2872	e->offsets_size = tr->offsets_size;
2873	strscpy(e->context_name, proc->context->name, BINDERFS_MAX_NAME);
2874
 
 
 
 
2875	if (reply) {
2876		binder_inner_proc_lock(proc);
2877		in_reply_to = thread->transaction_stack;
2878		if (in_reply_to == NULL) {
2879			binder_inner_proc_unlock(proc);
2880			binder_user_error("%d:%d got reply transaction with no transaction stack\n",
2881					  proc->pid, thread->pid);
2882			return_error = BR_FAILED_REPLY;
2883			return_error_param = -EPROTO;
2884			return_error_line = __LINE__;
2885			goto err_empty_call_stack;
2886		}
2887		if (in_reply_to->to_thread != thread) {
2888			spin_lock(&in_reply_to->lock);
2889			binder_user_error("%d:%d got reply transaction with bad transaction stack, transaction %d has target %d:%d\n",
2890				proc->pid, thread->pid, in_reply_to->debug_id,
2891				in_reply_to->to_proc ?
2892				in_reply_to->to_proc->pid : 0,
2893				in_reply_to->to_thread ?
2894				in_reply_to->to_thread->pid : 0);
2895			spin_unlock(&in_reply_to->lock);
2896			binder_inner_proc_unlock(proc);
2897			return_error = BR_FAILED_REPLY;
2898			return_error_param = -EPROTO;
2899			return_error_line = __LINE__;
2900			in_reply_to = NULL;
2901			goto err_bad_call_stack;
2902		}
2903		thread->transaction_stack = in_reply_to->to_parent;
2904		binder_inner_proc_unlock(proc);
2905		binder_set_nice(in_reply_to->saved_priority);
2906		target_thread = binder_get_txn_from_and_acq_inner(in_reply_to);
2907		if (target_thread == NULL) {
2908			/* annotation for sparse */
2909			__release(&target_thread->proc->inner_lock);
 
 
2910			return_error = BR_DEAD_REPLY;
2911			return_error_line = __LINE__;
2912			goto err_dead_binder;
2913		}
2914		if (target_thread->transaction_stack != in_reply_to) {
2915			binder_user_error("%d:%d got reply transaction with bad target transaction stack %d, expected %d\n",
2916				proc->pid, thread->pid,
2917				target_thread->transaction_stack ?
2918				target_thread->transaction_stack->debug_id : 0,
2919				in_reply_to->debug_id);
2920			binder_inner_proc_unlock(target_thread->proc);
2921			return_error = BR_FAILED_REPLY;
2922			return_error_param = -EPROTO;
2923			return_error_line = __LINE__;
2924			in_reply_to = NULL;
2925			target_thread = NULL;
2926			goto err_dead_binder;
2927		}
2928		target_proc = target_thread->proc;
2929		target_proc->tmp_ref++;
2930		binder_inner_proc_unlock(target_thread->proc);
2931	} else {
2932		if (tr->target.handle) {
2933			struct binder_ref *ref;
2934
2935			/*
2936			 * There must already be a strong ref
2937			 * on this node. If so, do a strong
2938			 * increment on the node to ensure it
2939			 * stays alive until the transaction is
2940			 * done.
2941			 */
2942			binder_proc_lock(proc);
2943			ref = binder_get_ref_olocked(proc, tr->target.handle,
2944						     true);
2945			if (ref) {
2946				target_node = binder_get_node_refs_for_txn(
2947						ref->node, &target_proc,
2948						&return_error);
2949			} else {
2950				binder_user_error("%d:%d got transaction to invalid handle\n",
2951						  proc->pid, thread->pid);
2952				return_error = BR_FAILED_REPLY;
2953			}
2954			binder_proc_unlock(proc);
2955		} else {
2956			mutex_lock(&context->context_mgr_node_lock);
2957			target_node = context->binder_context_mgr_node;
2958			if (target_node)
2959				target_node = binder_get_node_refs_for_txn(
2960						target_node, &target_proc,
2961						&return_error);
2962			else
2963				return_error = BR_DEAD_REPLY;
2964			mutex_unlock(&context->context_mgr_node_lock);
2965			if (target_node && target_proc->pid == proc->pid) {
2966				binder_user_error("%d:%d got transaction to context manager from process owning it\n",
2967						  proc->pid, thread->pid);
2968				return_error = BR_FAILED_REPLY;
2969				return_error_param = -EINVAL;
2970				return_error_line = __LINE__;
2971				goto err_invalid_target_handle;
2972			}
2973		}
2974		if (!target_node) {
 
 
2975			/*
2976			 * return_error is set above
2977			 */
2978			return_error_param = -EINVAL;
2979			return_error_line = __LINE__;
2980			goto err_dead_binder;
2981		}
2982		e->to_node = target_node->debug_id;
2983		if (WARN_ON(proc == target_proc)) {
 
 
2984			return_error = BR_FAILED_REPLY;
2985			return_error_param = -EINVAL;
2986			return_error_line = __LINE__;
2987			goto err_invalid_target_handle;
2988		}
2989		if (security_binder_transaction(proc->tsk,
2990						target_proc->tsk) < 0) {
 
 
2991			return_error = BR_FAILED_REPLY;
2992			return_error_param = -EPERM;
2993			return_error_line = __LINE__;
2994			goto err_invalid_target_handle;
2995		}
2996		binder_inner_proc_lock(proc);
2997
2998		w = list_first_entry_or_null(&thread->todo,
2999					     struct binder_work, entry);
3000		if (!(tr->flags & TF_ONE_WAY) && w &&
3001		    w->type == BINDER_WORK_TRANSACTION) {
3002			/*
3003			 * Do not allow new outgoing transaction from a
3004			 * thread that has a transaction at the head of
3005			 * its todo list. Only need to check the head
3006			 * because binder_select_thread_ilocked picks a
3007			 * thread from proc->waiting_threads to enqueue
3008			 * the transaction, and nothing is queued to the
3009			 * todo list while the thread is on waiting_threads.
3010			 */
3011			binder_user_error("%d:%d new transaction not allowed when there is a transaction on thread todo\n",
3012					  proc->pid, thread->pid);
3013			binder_inner_proc_unlock(proc);
3014			return_error = BR_FAILED_REPLY;
3015			return_error_param = -EPROTO;
3016			return_error_line = __LINE__;
3017			goto err_bad_todo_list;
3018		}
3019
3020		if (!(tr->flags & TF_ONE_WAY) && thread->transaction_stack) {
3021			struct binder_transaction *tmp;
3022
3023			tmp = thread->transaction_stack;
3024			if (tmp->to_thread != thread) {
3025				spin_lock(&tmp->lock);
3026				binder_user_error("%d:%d got new transaction with bad transaction stack, transaction %d has target %d:%d\n",
3027					proc->pid, thread->pid, tmp->debug_id,
3028					tmp->to_proc ? tmp->to_proc->pid : 0,
3029					tmp->to_thread ?
3030					tmp->to_thread->pid : 0);
3031				spin_unlock(&tmp->lock);
3032				binder_inner_proc_unlock(proc);
3033				return_error = BR_FAILED_REPLY;
3034				return_error_param = -EPROTO;
3035				return_error_line = __LINE__;
3036				goto err_bad_call_stack;
3037			}
3038			while (tmp) {
3039				struct binder_thread *from;
3040
3041				spin_lock(&tmp->lock);
3042				from = tmp->from;
3043				if (from && from->proc == target_proc) {
3044					atomic_inc(&from->tmp_ref);
3045					target_thread = from;
3046					spin_unlock(&tmp->lock);
3047					break;
3048				}
3049				spin_unlock(&tmp->lock);
3050				tmp = tmp->from_parent;
3051			}
3052		}
3053		binder_inner_proc_unlock(proc);
3054	}
3055	if (target_thread)
3056		e->to_thread = target_thread->pid;
3057	e->to_proc = target_proc->pid;
3058
3059	/* TODO: reuse incoming transaction for reply */
3060	t = kzalloc(sizeof(*t), GFP_KERNEL);
3061	if (t == NULL) {
 
 
3062		return_error = BR_FAILED_REPLY;
3063		return_error_param = -ENOMEM;
3064		return_error_line = __LINE__;
3065		goto err_alloc_t_failed;
3066	}
3067	INIT_LIST_HEAD(&t->fd_fixups);
3068	binder_stats_created(BINDER_STAT_TRANSACTION);
3069	spin_lock_init(&t->lock);
3070
3071	tcomplete = kzalloc(sizeof(*tcomplete), GFP_KERNEL);
3072	if (tcomplete == NULL) {
 
 
3073		return_error = BR_FAILED_REPLY;
3074		return_error_param = -ENOMEM;
3075		return_error_line = __LINE__;
3076		goto err_alloc_tcomplete_failed;
3077	}
3078	binder_stats_created(BINDER_STAT_TRANSACTION_COMPLETE);
3079
3080	t->debug_id = t_debug_id;
 
3081
3082	if (reply)
3083		binder_debug(BINDER_DEBUG_TRANSACTION,
3084			     "%d:%d BC_REPLY %d -> %d:%d, data %016llx-%016llx size %lld-%lld-%lld\n",
3085			     proc->pid, thread->pid, t->debug_id,
3086			     target_proc->pid, target_thread->pid,
3087			     (u64)tr->data.ptr.buffer,
3088			     (u64)tr->data.ptr.offsets,
3089			     (u64)tr->data_size, (u64)tr->offsets_size,
3090			     (u64)extra_buffers_size);
3091	else
3092		binder_debug(BINDER_DEBUG_TRANSACTION,
3093			     "%d:%d BC_TRANSACTION %d -> %d - node %d, data %016llx-%016llx size %lld-%lld-%lld\n",
3094			     proc->pid, thread->pid, t->debug_id,
3095			     target_proc->pid, target_node->debug_id,
3096			     (u64)tr->data.ptr.buffer,
3097			     (u64)tr->data.ptr.offsets,
3098			     (u64)tr->data_size, (u64)tr->offsets_size,
3099			     (u64)extra_buffers_size);
3100
3101	if (!reply && !(tr->flags & TF_ONE_WAY))
3102		t->from = thread;
3103	else
3104		t->from = NULL;
 
 
3105	t->sender_euid = task_euid(proc->tsk);
3106	t->to_proc = target_proc;
3107	t->to_thread = target_thread;
3108	t->code = tr->code;
3109	t->flags = tr->flags;
3110	t->priority = task_nice(current);
3111
3112	if (target_node && target_node->txn_security_ctx) {
3113		u32 secid;
3114		size_t added_size;
3115
3116		security_task_getsecid(proc->tsk, &secid);
3117		ret = security_secid_to_secctx(secid, &secctx, &secctx_sz);
3118		if (ret) {
 
 
3119			return_error = BR_FAILED_REPLY;
3120			return_error_param = ret;
3121			return_error_line = __LINE__;
3122			goto err_get_secctx_failed;
3123		}
3124		added_size = ALIGN(secctx_sz, sizeof(u64));
3125		extra_buffers_size += added_size;
3126		if (extra_buffers_size < added_size) {
3127			/* integer overflow of extra_buffers_size */
 
3128			return_error = BR_FAILED_REPLY;
3129			return_error_param = EINVAL;
3130			return_error_line = __LINE__;
3131			goto err_bad_extra_size;
3132		}
3133	}
3134
3135	trace_binder_transaction(reply, t, target_node);
3136
3137	t->buffer = binder_alloc_new_buf(&target_proc->alloc, tr->data_size,
3138		tr->offsets_size, extra_buffers_size,
3139		!reply && (t->flags & TF_ONE_WAY));
3140	if (IS_ERR(t->buffer)) {
3141		/*
3142		 * -ESRCH indicates VMA cleared. The target is dying.
3143		 */
 
 
 
 
 
 
3144		return_error_param = PTR_ERR(t->buffer);
3145		return_error = return_error_param == -ESRCH ?
3146			BR_DEAD_REPLY : BR_FAILED_REPLY;
3147		return_error_line = __LINE__;
3148		t->buffer = NULL;
3149		goto err_binder_alloc_buf_failed;
3150	}
3151	if (secctx) {
3152		int err;
3153		size_t buf_offset = ALIGN(tr->data_size, sizeof(void *)) +
3154				    ALIGN(tr->offsets_size, sizeof(void *)) +
3155				    ALIGN(extra_buffers_size, sizeof(void *)) -
3156				    ALIGN(secctx_sz, sizeof(u64));
3157
3158		t->security_ctx = (uintptr_t)t->buffer->user_data + buf_offset;
3159		err = binder_alloc_copy_to_buffer(&target_proc->alloc,
3160						  t->buffer, buf_offset,
3161						  secctx, secctx_sz);
3162		if (err) {
3163			t->security_ctx = 0;
3164			WARN_ON(1);
3165		}
3166		security_release_secctx(secctx, secctx_sz);
3167		secctx = NULL;
3168	}
3169	t->buffer->debug_id = t->debug_id;
3170	t->buffer->transaction = t;
3171	t->buffer->target_node = target_node;
 
3172	trace_binder_transaction_alloc_buf(t->buffer);
3173
3174	if (binder_alloc_copy_user_to_buffer(
3175				&target_proc->alloc,
3176				t->buffer, 0,
3177				(const void __user *)
3178					(uintptr_t)tr->data.ptr.buffer,
3179				tr->data_size)) {
3180		binder_user_error("%d:%d got transaction with invalid data ptr\n",
3181				proc->pid, thread->pid);
3182		return_error = BR_FAILED_REPLY;
3183		return_error_param = -EFAULT;
3184		return_error_line = __LINE__;
3185		goto err_copy_data_failed;
3186	}
3187	if (binder_alloc_copy_user_to_buffer(
3188				&target_proc->alloc,
3189				t->buffer,
3190				ALIGN(tr->data_size, sizeof(void *)),
3191				(const void __user *)
3192					(uintptr_t)tr->data.ptr.offsets,
3193				tr->offsets_size)) {
3194		binder_user_error("%d:%d got transaction with invalid offsets ptr\n",
3195				proc->pid, thread->pid);
3196		return_error = BR_FAILED_REPLY;
3197		return_error_param = -EFAULT;
3198		return_error_line = __LINE__;
3199		goto err_copy_data_failed;
3200	}
3201	if (!IS_ALIGNED(tr->offsets_size, sizeof(binder_size_t))) {
3202		binder_user_error("%d:%d got transaction with invalid offsets size, %lld\n",
3203				proc->pid, thread->pid, (u64)tr->offsets_size);
3204		return_error = BR_FAILED_REPLY;
3205		return_error_param = -EINVAL;
3206		return_error_line = __LINE__;
3207		goto err_bad_offset;
3208	}
3209	if (!IS_ALIGNED(extra_buffers_size, sizeof(u64))) {
3210		binder_user_error("%d:%d got transaction with unaligned buffers size, %lld\n",
3211				  proc->pid, thread->pid,
3212				  (u64)extra_buffers_size);
3213		return_error = BR_FAILED_REPLY;
3214		return_error_param = -EINVAL;
3215		return_error_line = __LINE__;
3216		goto err_bad_offset;
3217	}
3218	off_start_offset = ALIGN(tr->data_size, sizeof(void *));
3219	buffer_offset = off_start_offset;
3220	off_end_offset = off_start_offset + tr->offsets_size;
3221	sg_buf_offset = ALIGN(off_end_offset, sizeof(void *));
3222	sg_buf_end_offset = sg_buf_offset + extra_buffers_size -
3223		ALIGN(secctx_sz, sizeof(u64));
3224	off_min = 0;
3225	for (buffer_offset = off_start_offset; buffer_offset < off_end_offset;
3226	     buffer_offset += sizeof(binder_size_t)) {
3227		struct binder_object_header *hdr;
3228		size_t object_size;
3229		struct binder_object object;
3230		binder_size_t object_offset;
 
3231
3232		if (binder_alloc_copy_from_buffer(&target_proc->alloc,
3233						  &object_offset,
3234						  t->buffer,
3235						  buffer_offset,
3236						  sizeof(object_offset))) {
 
 
3237			return_error = BR_FAILED_REPLY;
3238			return_error_param = -EINVAL;
3239			return_error_line = __LINE__;
3240			goto err_bad_offset;
3241		}
3242		object_size = binder_get_object(target_proc, t->buffer,
3243						object_offset, &object);
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
3244		if (object_size == 0 || object_offset < off_min) {
3245			binder_user_error("%d:%d got transaction with invalid offset (%lld, min %lld max %lld) or object.\n",
3246					  proc->pid, thread->pid,
3247					  (u64)object_offset,
3248					  (u64)off_min,
3249					  (u64)t->buffer->data_size);
3250			return_error = BR_FAILED_REPLY;
3251			return_error_param = -EINVAL;
3252			return_error_line = __LINE__;
3253			goto err_bad_offset;
3254		}
 
 
 
 
 
3255
3256		hdr = &object.hdr;
3257		off_min = object_offset + object_size;
3258		switch (hdr->type) {
3259		case BINDER_TYPE_BINDER:
3260		case BINDER_TYPE_WEAK_BINDER: {
3261			struct flat_binder_object *fp;
3262
3263			fp = to_flat_binder_object(hdr);
3264			ret = binder_translate_binder(fp, t, thread);
3265
3266			if (ret < 0 ||
3267			    binder_alloc_copy_to_buffer(&target_proc->alloc,
3268							t->buffer,
3269							object_offset,
3270							fp, sizeof(*fp))) {
 
 
3271				return_error = BR_FAILED_REPLY;
3272				return_error_param = ret;
3273				return_error_line = __LINE__;
3274				goto err_translate_failed;
3275			}
3276		} break;
3277		case BINDER_TYPE_HANDLE:
3278		case BINDER_TYPE_WEAK_HANDLE: {
3279			struct flat_binder_object *fp;
3280
3281			fp = to_flat_binder_object(hdr);
3282			ret = binder_translate_handle(fp, t, thread);
3283			if (ret < 0 ||
3284			    binder_alloc_copy_to_buffer(&target_proc->alloc,
3285							t->buffer,
3286							object_offset,
3287							fp, sizeof(*fp))) {
 
 
3288				return_error = BR_FAILED_REPLY;
3289				return_error_param = ret;
3290				return_error_line = __LINE__;
3291				goto err_translate_failed;
3292			}
3293		} break;
3294
3295		case BINDER_TYPE_FD: {
3296			struct binder_fd_object *fp = to_binder_fd_object(hdr);
3297			binder_size_t fd_offset = object_offset +
3298				(uintptr_t)&fp->fd - (uintptr_t)fp;
3299			int ret = binder_translate_fd(fp->fd, fd_offset, t,
3300						      thread, in_reply_to);
3301
3302			fp->pad_binder = 0;
3303			if (ret < 0 ||
3304			    binder_alloc_copy_to_buffer(&target_proc->alloc,
3305							t->buffer,
3306							object_offset,
3307							fp, sizeof(*fp))) {
 
 
3308				return_error = BR_FAILED_REPLY;
3309				return_error_param = ret;
3310				return_error_line = __LINE__;
3311				goto err_translate_failed;
3312			}
3313		} break;
3314		case BINDER_TYPE_FDA: {
3315			struct binder_object ptr_object;
3316			binder_size_t parent_offset;
 
 
3317			struct binder_fd_array_object *fda =
3318				to_binder_fd_array_object(hdr);
3319			size_t num_valid = (buffer_offset - off_start_offset) /
3320						sizeof(binder_size_t);
3321			struct binder_buffer_object *parent =
3322				binder_validate_ptr(target_proc, t->buffer,
3323						    &ptr_object, fda->parent,
3324						    off_start_offset,
3325						    &parent_offset,
3326						    num_valid);
3327			if (!parent) {
3328				binder_user_error("%d:%d got transaction with invalid parent offset or type\n",
3329						  proc->pid, thread->pid);
3330				return_error = BR_FAILED_REPLY;
3331				return_error_param = -EINVAL;
3332				return_error_line = __LINE__;
3333				goto err_bad_parent;
3334			}
3335			if (!binder_validate_fixup(target_proc, t->buffer,
3336						   off_start_offset,
3337						   parent_offset,
3338						   fda->parent_offset,
3339						   last_fixup_obj_off,
3340						   last_fixup_min_off)) {
3341				binder_user_error("%d:%d got transaction with out-of-order buffer fixup\n",
3342						  proc->pid, thread->pid);
3343				return_error = BR_FAILED_REPLY;
3344				return_error_param = -EINVAL;
3345				return_error_line = __LINE__;
3346				goto err_bad_parent;
3347			}
3348			ret = binder_translate_fd_array(fda, parent, t, thread,
3349							in_reply_to);
3350			if (ret < 0) {
 
 
 
 
 
 
 
 
 
3351				return_error = BR_FAILED_REPLY;
3352				return_error_param = ret;
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
3353				return_error_line = __LINE__;
3354				goto err_translate_failed;
3355			}
3356			last_fixup_obj_off = parent_offset;
3357			last_fixup_min_off =
3358				fda->parent_offset + sizeof(u32) * fda->num_fds;
3359		} break;
3360		case BINDER_TYPE_PTR: {
3361			struct binder_buffer_object *bp =
3362				to_binder_buffer_object(hdr);
3363			size_t buf_left = sg_buf_end_offset - sg_buf_offset;
3364			size_t num_valid;
3365
3366			if (bp->length > buf_left) {
3367				binder_user_error("%d:%d got transaction with too large buffer\n",
3368						  proc->pid, thread->pid);
3369				return_error = BR_FAILED_REPLY;
3370				return_error_param = -EINVAL;
3371				return_error_line = __LINE__;
3372				goto err_bad_offset;
3373			}
3374			if (binder_alloc_copy_user_to_buffer(
3375						&target_proc->alloc,
3376						t->buffer,
3377						sg_buf_offset,
3378						(const void __user *)
3379							(uintptr_t)bp->buffer,
3380						bp->length)) {
3381				binder_user_error("%d:%d got transaction with invalid offsets ptr\n",
3382						  proc->pid, thread->pid);
3383				return_error_param = -EFAULT;
3384				return_error = BR_FAILED_REPLY;
 
3385				return_error_line = __LINE__;
3386				goto err_copy_data_failed;
3387			}
3388			/* Fixup buffer pointer to target proc address space */
3389			bp->buffer = (uintptr_t)
3390				t->buffer->user_data + sg_buf_offset;
3391			sg_buf_offset += ALIGN(bp->length, sizeof(u64));
3392
3393			num_valid = (buffer_offset - off_start_offset) /
3394					sizeof(binder_size_t);
3395			ret = binder_fixup_parent(t, thread, bp,
 
3396						  off_start_offset,
3397						  num_valid,
3398						  last_fixup_obj_off,
3399						  last_fixup_min_off);
3400			if (ret < 0 ||
3401			    binder_alloc_copy_to_buffer(&target_proc->alloc,
3402							t->buffer,
3403							object_offset,
3404							bp, sizeof(*bp))) {
 
 
3405				return_error = BR_FAILED_REPLY;
3406				return_error_param = ret;
3407				return_error_line = __LINE__;
3408				goto err_translate_failed;
3409			}
3410			last_fixup_obj_off = object_offset;
3411			last_fixup_min_off = 0;
3412		} break;
3413		default:
3414			binder_user_error("%d:%d got transaction with invalid object type, %x\n",
3415				proc->pid, thread->pid, hdr->type);
3416			return_error = BR_FAILED_REPLY;
3417			return_error_param = -EINVAL;
3418			return_error_line = __LINE__;
3419			goto err_bad_object_type;
3420		}
3421	}
3422	tcomplete->type = BINDER_WORK_TRANSACTION_COMPLETE;
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
3423	t->work.type = BINDER_WORK_TRANSACTION;
3424
3425	if (reply) {
3426		binder_enqueue_thread_work(thread, tcomplete);
3427		binder_inner_proc_lock(target_proc);
3428		if (target_thread->is_dead) {
 
3429			binder_inner_proc_unlock(target_proc);
3430			goto err_dead_proc_or_thread;
3431		}
3432		BUG_ON(t->buffer->async_transaction != 0);
3433		binder_pop_transaction_ilocked(target_thread, in_reply_to);
3434		binder_enqueue_thread_work_ilocked(target_thread, &t->work);
 
3435		binder_inner_proc_unlock(target_proc);
3436		wake_up_interruptible_sync(&target_thread->wait);
3437		binder_free_transaction(in_reply_to);
3438	} else if (!(t->flags & TF_ONE_WAY)) {
3439		BUG_ON(t->buffer->async_transaction != 0);
3440		binder_inner_proc_lock(proc);
3441		/*
3442		 * Defer the TRANSACTION_COMPLETE, so we don't return to
3443		 * userspace immediately; this allows the target process to
3444		 * immediately start processing this transaction, reducing
3445		 * latency. We will then return the TRANSACTION_COMPLETE when
3446		 * the target replies (or there is an error).
3447		 */
3448		binder_enqueue_deferred_thread_work_ilocked(thread, tcomplete);
3449		t->need_reply = 1;
3450		t->from_parent = thread->transaction_stack;
3451		thread->transaction_stack = t;
3452		binder_inner_proc_unlock(proc);
3453		if (!binder_proc_transaction(t, target_proc, target_thread)) {
 
 
3454			binder_inner_proc_lock(proc);
3455			binder_pop_transaction_ilocked(thread, t);
3456			binder_inner_proc_unlock(proc);
3457			goto err_dead_proc_or_thread;
3458		}
3459	} else {
3460		BUG_ON(target_node == NULL);
3461		BUG_ON(t->buffer->async_transaction != 1);
 
 
 
 
 
 
 
 
3462		binder_enqueue_thread_work(thread, tcomplete);
3463		if (!binder_proc_transaction(t, target_proc, NULL))
 
3464			goto err_dead_proc_or_thread;
3465	}
3466	if (target_thread)
3467		binder_thread_dec_tmpref(target_thread);
3468	binder_proc_dec_tmpref(target_proc);
3469	if (target_node)
3470		binder_dec_node_tmpref(target_node);
3471	/*
3472	 * write barrier to synchronize with initialization
3473	 * of log entry
3474	 */
3475	smp_wmb();
3476	WRITE_ONCE(e->debug_id_done, t_debug_id);
3477	return;
3478
3479err_dead_proc_or_thread:
3480	return_error = BR_DEAD_REPLY;
 
3481	return_error_line = __LINE__;
3482	binder_dequeue_work(proc, tcomplete);
3483err_translate_failed:
3484err_bad_object_type:
3485err_bad_offset:
3486err_bad_parent:
3487err_copy_data_failed:
 
3488	binder_free_txn_fixups(t);
3489	trace_binder_transaction_failed_buffer_release(t->buffer);
3490	binder_transaction_buffer_release(target_proc, t->buffer,
3491					  buffer_offset, true);
3492	if (target_node)
3493		binder_dec_node_tmpref(target_node);
3494	target_node = NULL;
3495	t->buffer->transaction = NULL;
3496	binder_alloc_free_buf(&target_proc->alloc, t->buffer);
3497err_binder_alloc_buf_failed:
3498err_bad_extra_size:
3499	if (secctx)
3500		security_release_secctx(secctx, secctx_sz);
3501err_get_secctx_failed:
3502	kfree(tcomplete);
3503	binder_stats_deleted(BINDER_STAT_TRANSACTION_COMPLETE);
3504err_alloc_tcomplete_failed:
 
 
3505	kfree(t);
3506	binder_stats_deleted(BINDER_STAT_TRANSACTION);
3507err_alloc_t_failed:
3508err_bad_todo_list:
3509err_bad_call_stack:
3510err_empty_call_stack:
3511err_dead_binder:
3512err_invalid_target_handle:
3513	if (target_thread)
3514		binder_thread_dec_tmpref(target_thread);
3515	if (target_proc)
3516		binder_proc_dec_tmpref(target_proc);
3517	if (target_node) {
3518		binder_dec_node(target_node, 1, 0);
3519		binder_dec_node_tmpref(target_node);
3520	}
3521
3522	binder_debug(BINDER_DEBUG_FAILED_TRANSACTION,
3523		     "%d:%d transaction failed %d/%d, size %lld-%lld line %d\n",
3524		     proc->pid, thread->pid, return_error, return_error_param,
 
 
 
 
3525		     (u64)tr->data_size, (u64)tr->offsets_size,
3526		     return_error_line);
3527
 
 
 
 
 
3528	{
3529		struct binder_transaction_log_entry *fe;
3530
3531		e->return_error = return_error;
3532		e->return_error_param = return_error_param;
3533		e->return_error_line = return_error_line;
3534		fe = binder_transaction_log_add(&binder_transaction_log_failed);
3535		*fe = *e;
3536		/*
3537		 * write barrier to synchronize with initialization
3538		 * of log entry
3539		 */
3540		smp_wmb();
3541		WRITE_ONCE(e->debug_id_done, t_debug_id);
3542		WRITE_ONCE(fe->debug_id_done, t_debug_id);
3543	}
3544
3545	BUG_ON(thread->return_error.cmd != BR_OK);
3546	if (in_reply_to) {
 
 
3547		thread->return_error.cmd = BR_TRANSACTION_COMPLETE;
3548		binder_enqueue_thread_work(thread, &thread->return_error.work);
3549		binder_send_failed_reply(in_reply_to, return_error);
3550	} else {
 
 
 
 
3551		thread->return_error.cmd = return_error;
3552		binder_enqueue_thread_work(thread, &thread->return_error.work);
3553	}
3554}
3555
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
3556/**
3557 * binder_free_buf() - free the specified buffer
3558 * @proc:	binder proc that owns buffer
3559 * @buffer:	buffer to be freed
 
3560 *
3561 * If buffer for an async transaction, enqueue the next async
3562 * transaction from the node.
3563 *
3564 * Cleanup buffer and free it.
3565 */
3566static void
3567binder_free_buf(struct binder_proc *proc, struct binder_buffer *buffer)
 
 
3568{
3569	binder_inner_proc_lock(proc);
3570	if (buffer->transaction) {
3571		buffer->transaction->buffer = NULL;
3572		buffer->transaction = NULL;
3573	}
3574	binder_inner_proc_unlock(proc);
3575	if (buffer->async_transaction && buffer->target_node) {
3576		struct binder_node *buf_node;
3577		struct binder_work *w;
3578
3579		buf_node = buffer->target_node;
3580		binder_node_inner_lock(buf_node);
3581		BUG_ON(!buf_node->has_async_transaction);
3582		BUG_ON(buf_node->proc != proc);
3583		w = binder_dequeue_work_head_ilocked(
3584				&buf_node->async_todo);
3585		if (!w) {
3586			buf_node->has_async_transaction = false;
3587		} else {
3588			binder_enqueue_work_ilocked(
3589					w, &proc->todo);
3590			binder_wakeup_proc_ilocked(proc);
3591		}
3592		binder_node_inner_unlock(buf_node);
3593	}
3594	trace_binder_transaction_buffer_release(buffer);
3595	binder_transaction_buffer_release(proc, buffer, 0, false);
3596	binder_alloc_free_buf(&proc->alloc, buffer);
3597}
3598
3599static int binder_thread_write(struct binder_proc *proc,
3600			struct binder_thread *thread,
3601			binder_uintptr_t binder_buffer, size_t size,
3602			binder_size_t *consumed)
3603{
3604	uint32_t cmd;
3605	struct binder_context *context = proc->context;
3606	void __user *buffer = (void __user *)(uintptr_t)binder_buffer;
3607	void __user *ptr = buffer + *consumed;
3608	void __user *end = buffer + size;
3609
3610	while (ptr < end && thread->return_error.cmd == BR_OK) {
3611		int ret;
3612
3613		if (get_user(cmd, (uint32_t __user *)ptr))
3614			return -EFAULT;
3615		ptr += sizeof(uint32_t);
3616		trace_binder_command(cmd);
3617		if (_IOC_NR(cmd) < ARRAY_SIZE(binder_stats.bc)) {
3618			atomic_inc(&binder_stats.bc[_IOC_NR(cmd)]);
3619			atomic_inc(&proc->stats.bc[_IOC_NR(cmd)]);
3620			atomic_inc(&thread->stats.bc[_IOC_NR(cmd)]);
3621		}
3622		switch (cmd) {
3623		case BC_INCREFS:
3624		case BC_ACQUIRE:
3625		case BC_RELEASE:
3626		case BC_DECREFS: {
3627			uint32_t target;
3628			const char *debug_string;
3629			bool strong = cmd == BC_ACQUIRE || cmd == BC_RELEASE;
3630			bool increment = cmd == BC_INCREFS || cmd == BC_ACQUIRE;
3631			struct binder_ref_data rdata;
3632
3633			if (get_user(target, (uint32_t __user *)ptr))
3634				return -EFAULT;
3635
3636			ptr += sizeof(uint32_t);
3637			ret = -1;
3638			if (increment && !target) {
3639				struct binder_node *ctx_mgr_node;
 
3640				mutex_lock(&context->context_mgr_node_lock);
3641				ctx_mgr_node = context->binder_context_mgr_node;
3642				if (ctx_mgr_node) {
3643					if (ctx_mgr_node->proc == proc) {
3644						binder_user_error("%d:%d context manager tried to acquire desc 0\n",
3645								  proc->pid, thread->pid);
3646						mutex_unlock(&context->context_mgr_node_lock);
3647						return -EINVAL;
3648					}
3649					ret = binder_inc_ref_for_node(
3650							proc, ctx_mgr_node,
3651							strong, NULL, &rdata);
3652				}
3653				mutex_unlock(&context->context_mgr_node_lock);
3654			}
3655			if (ret)
3656				ret = binder_update_ref_for_handle(
3657						proc, target, increment, strong,
3658						&rdata);
3659			if (!ret && rdata.desc != target) {
3660				binder_user_error("%d:%d tried to acquire reference to desc %d, got %d instead\n",
3661					proc->pid, thread->pid,
3662					target, rdata.desc);
3663			}
3664			switch (cmd) {
3665			case BC_INCREFS:
3666				debug_string = "IncRefs";
3667				break;
3668			case BC_ACQUIRE:
3669				debug_string = "Acquire";
3670				break;
3671			case BC_RELEASE:
3672				debug_string = "Release";
3673				break;
3674			case BC_DECREFS:
3675			default:
3676				debug_string = "DecRefs";
3677				break;
3678			}
3679			if (ret) {
3680				binder_user_error("%d:%d %s %d refcount change on invalid ref %d ret %d\n",
3681					proc->pid, thread->pid, debug_string,
3682					strong, target, ret);
3683				break;
3684			}
3685			binder_debug(BINDER_DEBUG_USER_REFS,
3686				     "%d:%d %s ref %d desc %d s %d w %d\n",
3687				     proc->pid, thread->pid, debug_string,
3688				     rdata.debug_id, rdata.desc, rdata.strong,
3689				     rdata.weak);
3690			break;
3691		}
3692		case BC_INCREFS_DONE:
3693		case BC_ACQUIRE_DONE: {
3694			binder_uintptr_t node_ptr;
3695			binder_uintptr_t cookie;
3696			struct binder_node *node;
3697			bool free_node;
3698
3699			if (get_user(node_ptr, (binder_uintptr_t __user *)ptr))
3700				return -EFAULT;
3701			ptr += sizeof(binder_uintptr_t);
3702			if (get_user(cookie, (binder_uintptr_t __user *)ptr))
3703				return -EFAULT;
3704			ptr += sizeof(binder_uintptr_t);
3705			node = binder_get_node(proc, node_ptr);
3706			if (node == NULL) {
3707				binder_user_error("%d:%d %s u%016llx no match\n",
3708					proc->pid, thread->pid,
3709					cmd == BC_INCREFS_DONE ?
3710					"BC_INCREFS_DONE" :
3711					"BC_ACQUIRE_DONE",
3712					(u64)node_ptr);
3713				break;
3714			}
3715			if (cookie != node->cookie) {
3716				binder_user_error("%d:%d %s u%016llx node %d cookie mismatch %016llx != %016llx\n",
3717					proc->pid, thread->pid,
3718					cmd == BC_INCREFS_DONE ?
3719					"BC_INCREFS_DONE" : "BC_ACQUIRE_DONE",
3720					(u64)node_ptr, node->debug_id,
3721					(u64)cookie, (u64)node->cookie);
3722				binder_put_node(node);
3723				break;
3724			}
3725			binder_node_inner_lock(node);
3726			if (cmd == BC_ACQUIRE_DONE) {
3727				if (node->pending_strong_ref == 0) {
3728					binder_user_error("%d:%d BC_ACQUIRE_DONE node %d has no pending acquire request\n",
3729						proc->pid, thread->pid,
3730						node->debug_id);
3731					binder_node_inner_unlock(node);
3732					binder_put_node(node);
3733					break;
3734				}
3735				node->pending_strong_ref = 0;
3736			} else {
3737				if (node->pending_weak_ref == 0) {
3738					binder_user_error("%d:%d BC_INCREFS_DONE node %d has no pending increfs request\n",
3739						proc->pid, thread->pid,
3740						node->debug_id);
3741					binder_node_inner_unlock(node);
3742					binder_put_node(node);
3743					break;
3744				}
3745				node->pending_weak_ref = 0;
3746			}
3747			free_node = binder_dec_node_nilocked(node,
3748					cmd == BC_ACQUIRE_DONE, 0);
3749			WARN_ON(free_node);
3750			binder_debug(BINDER_DEBUG_USER_REFS,
3751				     "%d:%d %s node %d ls %d lw %d tr %d\n",
3752				     proc->pid, thread->pid,
3753				     cmd == BC_INCREFS_DONE ? "BC_INCREFS_DONE" : "BC_ACQUIRE_DONE",
3754				     node->debug_id, node->local_strong_refs,
3755				     node->local_weak_refs, node->tmp_refs);
3756			binder_node_inner_unlock(node);
3757			binder_put_node(node);
3758			break;
3759		}
3760		case BC_ATTEMPT_ACQUIRE:
3761			pr_err("BC_ATTEMPT_ACQUIRE not supported\n");
3762			return -EINVAL;
3763		case BC_ACQUIRE_RESULT:
3764			pr_err("BC_ACQUIRE_RESULT not supported\n");
3765			return -EINVAL;
3766
3767		case BC_FREE_BUFFER: {
3768			binder_uintptr_t data_ptr;
3769			struct binder_buffer *buffer;
3770
3771			if (get_user(data_ptr, (binder_uintptr_t __user *)ptr))
3772				return -EFAULT;
3773			ptr += sizeof(binder_uintptr_t);
3774
3775			buffer = binder_alloc_prepare_to_free(&proc->alloc,
3776							      data_ptr);
3777			if (IS_ERR_OR_NULL(buffer)) {
3778				if (PTR_ERR(buffer) == -EPERM) {
3779					binder_user_error(
3780						"%d:%d BC_FREE_BUFFER u%016llx matched unreturned or currently freeing buffer\n",
3781						proc->pid, thread->pid,
3782						(u64)data_ptr);
3783				} else {
3784					binder_user_error(
3785						"%d:%d BC_FREE_BUFFER u%016llx no match\n",
3786						proc->pid, thread->pid,
3787						(u64)data_ptr);
3788				}
3789				break;
3790			}
3791			binder_debug(BINDER_DEBUG_FREE_BUFFER,
3792				     "%d:%d BC_FREE_BUFFER u%016llx found buffer %d for %s transaction\n",
3793				     proc->pid, thread->pid, (u64)data_ptr,
3794				     buffer->debug_id,
3795				     buffer->transaction ? "active" : "finished");
3796			binder_free_buf(proc, buffer);
3797			break;
3798		}
3799
3800		case BC_TRANSACTION_SG:
3801		case BC_REPLY_SG: {
3802			struct binder_transaction_data_sg tr;
3803
3804			if (copy_from_user(&tr, ptr, sizeof(tr)))
3805				return -EFAULT;
3806			ptr += sizeof(tr);
3807			binder_transaction(proc, thread, &tr.transaction_data,
3808					   cmd == BC_REPLY_SG, tr.buffers_size);
3809			break;
3810		}
3811		case BC_TRANSACTION:
3812		case BC_REPLY: {
3813			struct binder_transaction_data tr;
3814
3815			if (copy_from_user(&tr, ptr, sizeof(tr)))
3816				return -EFAULT;
3817			ptr += sizeof(tr);
3818			binder_transaction(proc, thread, &tr,
3819					   cmd == BC_REPLY, 0);
3820			break;
3821		}
3822
3823		case BC_REGISTER_LOOPER:
3824			binder_debug(BINDER_DEBUG_THREADS,
3825				     "%d:%d BC_REGISTER_LOOPER\n",
3826				     proc->pid, thread->pid);
3827			binder_inner_proc_lock(proc);
3828			if (thread->looper & BINDER_LOOPER_STATE_ENTERED) {
3829				thread->looper |= BINDER_LOOPER_STATE_INVALID;
3830				binder_user_error("%d:%d ERROR: BC_REGISTER_LOOPER called after BC_ENTER_LOOPER\n",
3831					proc->pid, thread->pid);
3832			} else if (proc->requested_threads == 0) {
3833				thread->looper |= BINDER_LOOPER_STATE_INVALID;
3834				binder_user_error("%d:%d ERROR: BC_REGISTER_LOOPER called without request\n",
3835					proc->pid, thread->pid);
3836			} else {
3837				proc->requested_threads--;
3838				proc->requested_threads_started++;
3839			}
3840			thread->looper |= BINDER_LOOPER_STATE_REGISTERED;
3841			binder_inner_proc_unlock(proc);
3842			break;
3843		case BC_ENTER_LOOPER:
3844			binder_debug(BINDER_DEBUG_THREADS,
3845				     "%d:%d BC_ENTER_LOOPER\n",
3846				     proc->pid, thread->pid);
3847			if (thread->looper & BINDER_LOOPER_STATE_REGISTERED) {
3848				thread->looper |= BINDER_LOOPER_STATE_INVALID;
3849				binder_user_error("%d:%d ERROR: BC_ENTER_LOOPER called after BC_REGISTER_LOOPER\n",
3850					proc->pid, thread->pid);
3851			}
3852			thread->looper |= BINDER_LOOPER_STATE_ENTERED;
3853			break;
3854		case BC_EXIT_LOOPER:
3855			binder_debug(BINDER_DEBUG_THREADS,
3856				     "%d:%d BC_EXIT_LOOPER\n",
3857				     proc->pid, thread->pid);
3858			thread->looper |= BINDER_LOOPER_STATE_EXITED;
3859			break;
3860
3861		case BC_REQUEST_DEATH_NOTIFICATION:
3862		case BC_CLEAR_DEATH_NOTIFICATION: {
3863			uint32_t target;
3864			binder_uintptr_t cookie;
3865			struct binder_ref *ref;
3866			struct binder_ref_death *death = NULL;
3867
3868			if (get_user(target, (uint32_t __user *)ptr))
3869				return -EFAULT;
3870			ptr += sizeof(uint32_t);
3871			if (get_user(cookie, (binder_uintptr_t __user *)ptr))
3872				return -EFAULT;
3873			ptr += sizeof(binder_uintptr_t);
3874			if (cmd == BC_REQUEST_DEATH_NOTIFICATION) {
3875				/*
3876				 * Allocate memory for death notification
3877				 * before taking lock
3878				 */
3879				death = kzalloc(sizeof(*death), GFP_KERNEL);
3880				if (death == NULL) {
3881					WARN_ON(thread->return_error.cmd !=
3882						BR_OK);
3883					thread->return_error.cmd = BR_ERROR;
3884					binder_enqueue_thread_work(
3885						thread,
3886						&thread->return_error.work);
3887					binder_debug(
3888						BINDER_DEBUG_FAILED_TRANSACTION,
3889						"%d:%d BC_REQUEST_DEATH_NOTIFICATION failed\n",
3890						proc->pid, thread->pid);
3891					break;
3892				}
3893			}
3894			binder_proc_lock(proc);
3895			ref = binder_get_ref_olocked(proc, target, false);
3896			if (ref == NULL) {
3897				binder_user_error("%d:%d %s invalid ref %d\n",
3898					proc->pid, thread->pid,
3899					cmd == BC_REQUEST_DEATH_NOTIFICATION ?
3900					"BC_REQUEST_DEATH_NOTIFICATION" :
3901					"BC_CLEAR_DEATH_NOTIFICATION",
3902					target);
3903				binder_proc_unlock(proc);
3904				kfree(death);
3905				break;
3906			}
3907
3908			binder_debug(BINDER_DEBUG_DEATH_NOTIFICATION,
3909				     "%d:%d %s %016llx ref %d desc %d s %d w %d for node %d\n",
3910				     proc->pid, thread->pid,
3911				     cmd == BC_REQUEST_DEATH_NOTIFICATION ?
3912				     "BC_REQUEST_DEATH_NOTIFICATION" :
3913				     "BC_CLEAR_DEATH_NOTIFICATION",
3914				     (u64)cookie, ref->data.debug_id,
3915				     ref->data.desc, ref->data.strong,
3916				     ref->data.weak, ref->node->debug_id);
3917
3918			binder_node_lock(ref->node);
3919			if (cmd == BC_REQUEST_DEATH_NOTIFICATION) {
3920				if (ref->death) {
3921					binder_user_error("%d:%d BC_REQUEST_DEATH_NOTIFICATION death notification already set\n",
3922						proc->pid, thread->pid);
3923					binder_node_unlock(ref->node);
3924					binder_proc_unlock(proc);
3925					kfree(death);
3926					break;
3927				}
3928				binder_stats_created(BINDER_STAT_DEATH);
3929				INIT_LIST_HEAD(&death->work.entry);
3930				death->cookie = cookie;
3931				ref->death = death;
3932				if (ref->node->proc == NULL) {
3933					ref->death->work.type = BINDER_WORK_DEAD_BINDER;
3934
3935					binder_inner_proc_lock(proc);
3936					binder_enqueue_work_ilocked(
3937						&ref->death->work, &proc->todo);
3938					binder_wakeup_proc_ilocked(proc);
3939					binder_inner_proc_unlock(proc);
3940				}
3941			} else {
3942				if (ref->death == NULL) {
3943					binder_user_error("%d:%d BC_CLEAR_DEATH_NOTIFICATION death notification not active\n",
3944						proc->pid, thread->pid);
3945					binder_node_unlock(ref->node);
3946					binder_proc_unlock(proc);
3947					break;
3948				}
3949				death = ref->death;
3950				if (death->cookie != cookie) {
3951					binder_user_error("%d:%d BC_CLEAR_DEATH_NOTIFICATION death notification cookie mismatch %016llx != %016llx\n",
3952						proc->pid, thread->pid,
3953						(u64)death->cookie,
3954						(u64)cookie);
3955					binder_node_unlock(ref->node);
3956					binder_proc_unlock(proc);
3957					break;
3958				}
3959				ref->death = NULL;
3960				binder_inner_proc_lock(proc);
3961				if (list_empty(&death->work.entry)) {
3962					death->work.type = BINDER_WORK_CLEAR_DEATH_NOTIFICATION;
3963					if (thread->looper &
3964					    (BINDER_LOOPER_STATE_REGISTERED |
3965					     BINDER_LOOPER_STATE_ENTERED))
3966						binder_enqueue_thread_work_ilocked(
3967								thread,
3968								&death->work);
3969					else {
3970						binder_enqueue_work_ilocked(
3971								&death->work,
3972								&proc->todo);
3973						binder_wakeup_proc_ilocked(
3974								proc);
3975					}
3976				} else {
3977					BUG_ON(death->work.type != BINDER_WORK_DEAD_BINDER);
3978					death->work.type = BINDER_WORK_DEAD_BINDER_AND_CLEAR;
3979				}
3980				binder_inner_proc_unlock(proc);
3981			}
3982			binder_node_unlock(ref->node);
3983			binder_proc_unlock(proc);
3984		} break;
3985		case BC_DEAD_BINDER_DONE: {
3986			struct binder_work *w;
3987			binder_uintptr_t cookie;
3988			struct binder_ref_death *death = NULL;
3989
3990			if (get_user(cookie, (binder_uintptr_t __user *)ptr))
3991				return -EFAULT;
3992
3993			ptr += sizeof(cookie);
3994			binder_inner_proc_lock(proc);
3995			list_for_each_entry(w, &proc->delivered_death,
3996					    entry) {
3997				struct binder_ref_death *tmp_death =
3998					container_of(w,
3999						     struct binder_ref_death,
4000						     work);
4001
4002				if (tmp_death->cookie == cookie) {
4003					death = tmp_death;
4004					break;
4005				}
4006			}
4007			binder_debug(BINDER_DEBUG_DEAD_BINDER,
4008				     "%d:%d BC_DEAD_BINDER_DONE %016llx found %pK\n",
4009				     proc->pid, thread->pid, (u64)cookie,
4010				     death);
4011			if (death == NULL) {
4012				binder_user_error("%d:%d BC_DEAD_BINDER_DONE %016llx not found\n",
4013					proc->pid, thread->pid, (u64)cookie);
4014				binder_inner_proc_unlock(proc);
4015				break;
4016			}
4017			binder_dequeue_work_ilocked(&death->work);
4018			if (death->work.type == BINDER_WORK_DEAD_BINDER_AND_CLEAR) {
4019				death->work.type = BINDER_WORK_CLEAR_DEATH_NOTIFICATION;
4020				if (thread->looper &
4021					(BINDER_LOOPER_STATE_REGISTERED |
4022					 BINDER_LOOPER_STATE_ENTERED))
4023					binder_enqueue_thread_work_ilocked(
4024						thread, &death->work);
4025				else {
4026					binder_enqueue_work_ilocked(
4027							&death->work,
4028							&proc->todo);
4029					binder_wakeup_proc_ilocked(proc);
4030				}
4031			}
4032			binder_inner_proc_unlock(proc);
4033		} break;
4034
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
4035		default:
4036			pr_err("%d:%d unknown command %d\n",
4037			       proc->pid, thread->pid, cmd);
4038			return -EINVAL;
4039		}
4040		*consumed = ptr - buffer;
4041	}
4042	return 0;
4043}
4044
4045static void binder_stat_br(struct binder_proc *proc,
4046			   struct binder_thread *thread, uint32_t cmd)
4047{
4048	trace_binder_return(cmd);
4049	if (_IOC_NR(cmd) < ARRAY_SIZE(binder_stats.br)) {
4050		atomic_inc(&binder_stats.br[_IOC_NR(cmd)]);
4051		atomic_inc(&proc->stats.br[_IOC_NR(cmd)]);
4052		atomic_inc(&thread->stats.br[_IOC_NR(cmd)]);
4053	}
4054}
4055
4056static int binder_put_node_cmd(struct binder_proc *proc,
4057			       struct binder_thread *thread,
4058			       void __user **ptrp,
4059			       binder_uintptr_t node_ptr,
4060			       binder_uintptr_t node_cookie,
4061			       int node_debug_id,
4062			       uint32_t cmd, const char *cmd_name)
4063{
4064	void __user *ptr = *ptrp;
4065
4066	if (put_user(cmd, (uint32_t __user *)ptr))
4067		return -EFAULT;
4068	ptr += sizeof(uint32_t);
4069
4070	if (put_user(node_ptr, (binder_uintptr_t __user *)ptr))
4071		return -EFAULT;
4072	ptr += sizeof(binder_uintptr_t);
4073
4074	if (put_user(node_cookie, (binder_uintptr_t __user *)ptr))
4075		return -EFAULT;
4076	ptr += sizeof(binder_uintptr_t);
4077
4078	binder_stat_br(proc, thread, cmd);
4079	binder_debug(BINDER_DEBUG_USER_REFS, "%d:%d %s %d u%016llx c%016llx\n",
4080		     proc->pid, thread->pid, cmd_name, node_debug_id,
4081		     (u64)node_ptr, (u64)node_cookie);
4082
4083	*ptrp = ptr;
4084	return 0;
4085}
4086
4087static int binder_wait_for_work(struct binder_thread *thread,
4088				bool do_proc_work)
4089{
4090	DEFINE_WAIT(wait);
4091	struct binder_proc *proc = thread->proc;
4092	int ret = 0;
4093
4094	freezer_do_not_count();
4095	binder_inner_proc_lock(proc);
4096	for (;;) {
4097		prepare_to_wait(&thread->wait, &wait, TASK_INTERRUPTIBLE);
4098		if (binder_has_work_ilocked(thread, do_proc_work))
4099			break;
4100		if (do_proc_work)
4101			list_add(&thread->waiting_thread_node,
4102				 &proc->waiting_threads);
4103		binder_inner_proc_unlock(proc);
4104		schedule();
4105		binder_inner_proc_lock(proc);
4106		list_del_init(&thread->waiting_thread_node);
4107		if (signal_pending(current)) {
4108			ret = -ERESTARTSYS;
4109			break;
4110		}
4111	}
4112	finish_wait(&thread->wait, &wait);
4113	binder_inner_proc_unlock(proc);
4114	freezer_count();
4115
4116	return ret;
4117}
4118
4119/**
4120 * binder_apply_fd_fixups() - finish fd translation
4121 * @proc:         binder_proc associated @t->buffer
4122 * @t:	binder transaction with list of fd fixups
4123 *
4124 * Now that we are in the context of the transaction target
4125 * process, we can allocate and install fds. Process the
4126 * list of fds to translate and fixup the buffer with the
4127 * new fds.
4128 *
4129 * If we fail to allocate an fd, then free the resources by
4130 * fput'ing files that have not been processed and ksys_close'ing
4131 * any fds that have already been allocated.
4132 */
4133static int binder_apply_fd_fixups(struct binder_proc *proc,
4134				  struct binder_transaction *t)
4135{
4136	struct binder_txn_fd_fixup *fixup, *tmp;
4137	int ret = 0;
4138
4139	list_for_each_entry(fixup, &t->fd_fixups, fixup_entry) {
4140		int fd = get_unused_fd_flags(O_CLOEXEC);
4141
4142		if (fd < 0) {
4143			binder_debug(BINDER_DEBUG_TRANSACTION,
4144				     "failed fd fixup txn %d fd %d\n",
4145				     t->debug_id, fd);
4146			ret = -ENOMEM;
4147			break;
4148		}
4149		binder_debug(BINDER_DEBUG_TRANSACTION,
4150			     "fd fixup txn %d fd %d\n",
4151			     t->debug_id, fd);
4152		trace_binder_transaction_fd_recv(t, fd, fixup->offset);
4153		fd_install(fd, fixup->file);
4154		fixup->file = NULL;
4155		if (binder_alloc_copy_to_buffer(&proc->alloc, t->buffer,
4156						fixup->offset, &fd,
4157						sizeof(u32))) {
4158			ret = -EINVAL;
4159			break;
4160		}
4161	}
4162	list_for_each_entry_safe(fixup, tmp, &t->fd_fixups, fixup_entry) {
4163		if (fixup->file) {
4164			fput(fixup->file);
4165		} else if (ret) {
4166			u32 fd;
4167			int err;
4168
4169			err = binder_alloc_copy_from_buffer(&proc->alloc, &fd,
4170							    t->buffer,
4171							    fixup->offset,
4172							    sizeof(fd));
4173			WARN_ON(err);
4174			if (!err)
4175				binder_deferred_fd_close(fd);
4176		}
4177		list_del(&fixup->fixup_entry);
4178		kfree(fixup);
4179	}
4180
4181	return ret;
 
 
 
 
4182}
4183
4184static int binder_thread_read(struct binder_proc *proc,
4185			      struct binder_thread *thread,
4186			      binder_uintptr_t binder_buffer, size_t size,
4187			      binder_size_t *consumed, int non_block)
4188{
4189	void __user *buffer = (void __user *)(uintptr_t)binder_buffer;
4190	void __user *ptr = buffer + *consumed;
4191	void __user *end = buffer + size;
4192
4193	int ret = 0;
4194	int wait_for_proc_work;
4195
4196	if (*consumed == 0) {
4197		if (put_user(BR_NOOP, (uint32_t __user *)ptr))
4198			return -EFAULT;
4199		ptr += sizeof(uint32_t);
4200	}
4201
4202retry:
4203	binder_inner_proc_lock(proc);
4204	wait_for_proc_work = binder_available_for_proc_work_ilocked(thread);
4205	binder_inner_proc_unlock(proc);
4206
4207	thread->looper |= BINDER_LOOPER_STATE_WAITING;
4208
4209	trace_binder_wait_for_work(wait_for_proc_work,
4210				   !!thread->transaction_stack,
4211				   !binder_worklist_empty(proc, &thread->todo));
4212	if (wait_for_proc_work) {
4213		if (!(thread->looper & (BINDER_LOOPER_STATE_REGISTERED |
4214					BINDER_LOOPER_STATE_ENTERED))) {
4215			binder_user_error("%d:%d ERROR: Thread waiting for process work before calling BC_REGISTER_LOOPER or BC_ENTER_LOOPER (state %x)\n",
4216				proc->pid, thread->pid, thread->looper);
4217			wait_event_interruptible(binder_user_error_wait,
4218						 binder_stop_on_user_error < 2);
4219		}
4220		binder_set_nice(proc->default_priority);
4221	}
4222
4223	if (non_block) {
4224		if (!binder_has_work(thread, wait_for_proc_work))
4225			ret = -EAGAIN;
4226	} else {
4227		ret = binder_wait_for_work(thread, wait_for_proc_work);
4228	}
4229
4230	thread->looper &= ~BINDER_LOOPER_STATE_WAITING;
4231
4232	if (ret)
4233		return ret;
4234
4235	while (1) {
4236		uint32_t cmd;
4237		struct binder_transaction_data_secctx tr;
4238		struct binder_transaction_data *trd = &tr.transaction_data;
4239		struct binder_work *w = NULL;
4240		struct list_head *list = NULL;
4241		struct binder_transaction *t = NULL;
4242		struct binder_thread *t_from;
4243		size_t trsize = sizeof(*trd);
4244
4245		binder_inner_proc_lock(proc);
4246		if (!binder_worklist_empty_ilocked(&thread->todo))
4247			list = &thread->todo;
4248		else if (!binder_worklist_empty_ilocked(&proc->todo) &&
4249			   wait_for_proc_work)
4250			list = &proc->todo;
4251		else {
4252			binder_inner_proc_unlock(proc);
4253
4254			/* no data added */
4255			if (ptr - buffer == 4 && !thread->looper_need_return)
4256				goto retry;
4257			break;
4258		}
4259
4260		if (end - ptr < sizeof(tr) + 4) {
4261			binder_inner_proc_unlock(proc);
4262			break;
4263		}
4264		w = binder_dequeue_work_head_ilocked(list);
4265		if (binder_worklist_empty_ilocked(&thread->todo))
4266			thread->process_todo = false;
4267
4268		switch (w->type) {
4269		case BINDER_WORK_TRANSACTION: {
4270			binder_inner_proc_unlock(proc);
4271			t = container_of(w, struct binder_transaction, work);
4272		} break;
4273		case BINDER_WORK_RETURN_ERROR: {
4274			struct binder_error *e = container_of(
4275					w, struct binder_error, work);
4276
4277			WARN_ON(e->cmd == BR_OK);
4278			binder_inner_proc_unlock(proc);
4279			if (put_user(e->cmd, (uint32_t __user *)ptr))
4280				return -EFAULT;
4281			cmd = e->cmd;
4282			e->cmd = BR_OK;
4283			ptr += sizeof(uint32_t);
4284
4285			binder_stat_br(proc, thread, cmd);
4286		} break;
4287		case BINDER_WORK_TRANSACTION_COMPLETE: {
 
 
 
 
 
 
 
 
 
4288			binder_inner_proc_unlock(proc);
4289			cmd = BR_TRANSACTION_COMPLETE;
4290			kfree(w);
4291			binder_stats_deleted(BINDER_STAT_TRANSACTION_COMPLETE);
4292			if (put_user(cmd, (uint32_t __user *)ptr))
4293				return -EFAULT;
4294			ptr += sizeof(uint32_t);
4295
4296			binder_stat_br(proc, thread, cmd);
4297			binder_debug(BINDER_DEBUG_TRANSACTION_COMPLETE,
4298				     "%d:%d BR_TRANSACTION_COMPLETE\n",
4299				     proc->pid, thread->pid);
4300		} break;
4301		case BINDER_WORK_NODE: {
4302			struct binder_node *node = container_of(w, struct binder_node, work);
4303			int strong, weak;
4304			binder_uintptr_t node_ptr = node->ptr;
4305			binder_uintptr_t node_cookie = node->cookie;
4306			int node_debug_id = node->debug_id;
4307			int has_weak_ref;
4308			int has_strong_ref;
4309			void __user *orig_ptr = ptr;
4310
4311			BUG_ON(proc != node->proc);
4312			strong = node->internal_strong_refs ||
4313					node->local_strong_refs;
4314			weak = !hlist_empty(&node->refs) ||
4315					node->local_weak_refs ||
4316					node->tmp_refs || strong;
4317			has_strong_ref = node->has_strong_ref;
4318			has_weak_ref = node->has_weak_ref;
4319
4320			if (weak && !has_weak_ref) {
4321				node->has_weak_ref = 1;
4322				node->pending_weak_ref = 1;
4323				node->local_weak_refs++;
4324			}
4325			if (strong && !has_strong_ref) {
4326				node->has_strong_ref = 1;
4327				node->pending_strong_ref = 1;
4328				node->local_strong_refs++;
4329			}
4330			if (!strong && has_strong_ref)
4331				node->has_strong_ref = 0;
4332			if (!weak && has_weak_ref)
4333				node->has_weak_ref = 0;
4334			if (!weak && !strong) {
4335				binder_debug(BINDER_DEBUG_INTERNAL_REFS,
4336					     "%d:%d node %d u%016llx c%016llx deleted\n",
4337					     proc->pid, thread->pid,
4338					     node_debug_id,
4339					     (u64)node_ptr,
4340					     (u64)node_cookie);
4341				rb_erase(&node->rb_node, &proc->nodes);
4342				binder_inner_proc_unlock(proc);
4343				binder_node_lock(node);
4344				/*
4345				 * Acquire the node lock before freeing the
4346				 * node to serialize with other threads that
4347				 * may have been holding the node lock while
4348				 * decrementing this node (avoids race where
4349				 * this thread frees while the other thread
4350				 * is unlocking the node after the final
4351				 * decrement)
4352				 */
4353				binder_node_unlock(node);
4354				binder_free_node(node);
4355			} else
4356				binder_inner_proc_unlock(proc);
4357
4358			if (weak && !has_weak_ref)
4359				ret = binder_put_node_cmd(
4360						proc, thread, &ptr, node_ptr,
4361						node_cookie, node_debug_id,
4362						BR_INCREFS, "BR_INCREFS");
4363			if (!ret && strong && !has_strong_ref)
4364				ret = binder_put_node_cmd(
4365						proc, thread, &ptr, node_ptr,
4366						node_cookie, node_debug_id,
4367						BR_ACQUIRE, "BR_ACQUIRE");
4368			if (!ret && !strong && has_strong_ref)
4369				ret = binder_put_node_cmd(
4370						proc, thread, &ptr, node_ptr,
4371						node_cookie, node_debug_id,
4372						BR_RELEASE, "BR_RELEASE");
4373			if (!ret && !weak && has_weak_ref)
4374				ret = binder_put_node_cmd(
4375						proc, thread, &ptr, node_ptr,
4376						node_cookie, node_debug_id,
4377						BR_DECREFS, "BR_DECREFS");
4378			if (orig_ptr == ptr)
4379				binder_debug(BINDER_DEBUG_INTERNAL_REFS,
4380					     "%d:%d node %d u%016llx c%016llx state unchanged\n",
4381					     proc->pid, thread->pid,
4382					     node_debug_id,
4383					     (u64)node_ptr,
4384					     (u64)node_cookie);
4385			if (ret)
4386				return ret;
4387		} break;
4388		case BINDER_WORK_DEAD_BINDER:
4389		case BINDER_WORK_DEAD_BINDER_AND_CLEAR:
4390		case BINDER_WORK_CLEAR_DEATH_NOTIFICATION: {
4391			struct binder_ref_death *death;
4392			uint32_t cmd;
4393			binder_uintptr_t cookie;
4394
4395			death = container_of(w, struct binder_ref_death, work);
4396			if (w->type == BINDER_WORK_CLEAR_DEATH_NOTIFICATION)
4397				cmd = BR_CLEAR_DEATH_NOTIFICATION_DONE;
4398			else
4399				cmd = BR_DEAD_BINDER;
4400			cookie = death->cookie;
4401
4402			binder_debug(BINDER_DEBUG_DEATH_NOTIFICATION,
4403				     "%d:%d %s %016llx\n",
4404				      proc->pid, thread->pid,
4405				      cmd == BR_DEAD_BINDER ?
4406				      "BR_DEAD_BINDER" :
4407				      "BR_CLEAR_DEATH_NOTIFICATION_DONE",
4408				      (u64)cookie);
4409			if (w->type == BINDER_WORK_CLEAR_DEATH_NOTIFICATION) {
4410				binder_inner_proc_unlock(proc);
4411				kfree(death);
4412				binder_stats_deleted(BINDER_STAT_DEATH);
4413			} else {
4414				binder_enqueue_work_ilocked(
4415						w, &proc->delivered_death);
4416				binder_inner_proc_unlock(proc);
4417			}
4418			if (put_user(cmd, (uint32_t __user *)ptr))
4419				return -EFAULT;
4420			ptr += sizeof(uint32_t);
4421			if (put_user(cookie,
4422				     (binder_uintptr_t __user *)ptr))
4423				return -EFAULT;
4424			ptr += sizeof(binder_uintptr_t);
4425			binder_stat_br(proc, thread, cmd);
4426			if (cmd == BR_DEAD_BINDER)
4427				goto done; /* DEAD_BINDER notifications can cause transactions */
4428		} break;
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
4429		default:
4430			binder_inner_proc_unlock(proc);
4431			pr_err("%d:%d: bad work type %d\n",
4432			       proc->pid, thread->pid, w->type);
4433			break;
4434		}
4435
4436		if (!t)
4437			continue;
4438
4439		BUG_ON(t->buffer == NULL);
4440		if (t->buffer->target_node) {
4441			struct binder_node *target_node = t->buffer->target_node;
4442
4443			trd->target.ptr = target_node->ptr;
4444			trd->cookie =  target_node->cookie;
4445			t->saved_priority = task_nice(current);
4446			if (t->priority < target_node->min_priority &&
4447			    !(t->flags & TF_ONE_WAY))
4448				binder_set_nice(t->priority);
4449			else if (!(t->flags & TF_ONE_WAY) ||
4450				 t->saved_priority > target_node->min_priority)
4451				binder_set_nice(target_node->min_priority);
4452			cmd = BR_TRANSACTION;
4453		} else {
4454			trd->target.ptr = 0;
4455			trd->cookie = 0;
4456			cmd = BR_REPLY;
4457		}
4458		trd->code = t->code;
4459		trd->flags = t->flags;
4460		trd->sender_euid = from_kuid(current_user_ns(), t->sender_euid);
4461
4462		t_from = binder_get_txn_from(t);
4463		if (t_from) {
4464			struct task_struct *sender = t_from->proc->tsk;
4465
4466			trd->sender_pid =
4467				task_tgid_nr_ns(sender,
4468						task_active_pid_ns(current));
4469		} else {
4470			trd->sender_pid = 0;
4471		}
4472
4473		ret = binder_apply_fd_fixups(proc, t);
4474		if (ret) {
4475			struct binder_buffer *buffer = t->buffer;
4476			bool oneway = !!(t->flags & TF_ONE_WAY);
4477			int tid = t->debug_id;
4478
4479			if (t_from)
4480				binder_thread_dec_tmpref(t_from);
4481			buffer->transaction = NULL;
4482			binder_cleanup_transaction(t, "fd fixups failed",
4483						   BR_FAILED_REPLY);
4484			binder_free_buf(proc, buffer);
4485			binder_debug(BINDER_DEBUG_FAILED_TRANSACTION,
4486				     "%d:%d %stransaction %d fd fixups failed %d/%d, line %d\n",
4487				     proc->pid, thread->pid,
4488				     oneway ? "async " :
4489					(cmd == BR_REPLY ? "reply " : ""),
4490				     tid, BR_FAILED_REPLY, ret, __LINE__);
4491			if (cmd == BR_REPLY) {
4492				cmd = BR_FAILED_REPLY;
4493				if (put_user(cmd, (uint32_t __user *)ptr))
4494					return -EFAULT;
4495				ptr += sizeof(uint32_t);
4496				binder_stat_br(proc, thread, cmd);
4497				break;
4498			}
4499			continue;
4500		}
4501		trd->data_size = t->buffer->data_size;
4502		trd->offsets_size = t->buffer->offsets_size;
4503		trd->data.ptr.buffer = (uintptr_t)t->buffer->user_data;
4504		trd->data.ptr.offsets = trd->data.ptr.buffer +
4505					ALIGN(t->buffer->data_size,
4506					    sizeof(void *));
4507
4508		tr.secctx = t->security_ctx;
4509		if (t->security_ctx) {
4510			cmd = BR_TRANSACTION_SEC_CTX;
4511			trsize = sizeof(tr);
4512		}
4513		if (put_user(cmd, (uint32_t __user *)ptr)) {
4514			if (t_from)
4515				binder_thread_dec_tmpref(t_from);
4516
4517			binder_cleanup_transaction(t, "put_user failed",
4518						   BR_FAILED_REPLY);
4519
4520			return -EFAULT;
4521		}
4522		ptr += sizeof(uint32_t);
4523		if (copy_to_user(ptr, &tr, trsize)) {
4524			if (t_from)
4525				binder_thread_dec_tmpref(t_from);
4526
4527			binder_cleanup_transaction(t, "copy_to_user failed",
4528						   BR_FAILED_REPLY);
4529
4530			return -EFAULT;
4531		}
4532		ptr += trsize;
4533
4534		trace_binder_transaction_received(t);
4535		binder_stat_br(proc, thread, cmd);
4536		binder_debug(BINDER_DEBUG_TRANSACTION,
4537			     "%d:%d %s %d %d:%d, cmd %d size %zd-%zd ptr %016llx-%016llx\n",
4538			     proc->pid, thread->pid,
4539			     (cmd == BR_TRANSACTION) ? "BR_TRANSACTION" :
4540				(cmd == BR_TRANSACTION_SEC_CTX) ?
4541				     "BR_TRANSACTION_SEC_CTX" : "BR_REPLY",
4542			     t->debug_id, t_from ? t_from->proc->pid : 0,
4543			     t_from ? t_from->pid : 0, cmd,
4544			     t->buffer->data_size, t->buffer->offsets_size,
4545			     (u64)trd->data.ptr.buffer,
4546			     (u64)trd->data.ptr.offsets);
4547
4548		if (t_from)
4549			binder_thread_dec_tmpref(t_from);
4550		t->buffer->allow_user_free = 1;
4551		if (cmd != BR_REPLY && !(t->flags & TF_ONE_WAY)) {
4552			binder_inner_proc_lock(thread->proc);
4553			t->to_parent = thread->transaction_stack;
4554			t->to_thread = thread;
4555			thread->transaction_stack = t;
4556			binder_inner_proc_unlock(thread->proc);
4557		} else {
4558			binder_free_transaction(t);
4559		}
4560		break;
4561	}
4562
4563done:
4564
4565	*consumed = ptr - buffer;
4566	binder_inner_proc_lock(proc);
4567	if (proc->requested_threads == 0 &&
4568	    list_empty(&thread->proc->waiting_threads) &&
4569	    proc->requested_threads_started < proc->max_threads &&
4570	    (thread->looper & (BINDER_LOOPER_STATE_REGISTERED |
4571	     BINDER_LOOPER_STATE_ENTERED)) /* the user-space code fails to */
4572	     /*spawn a new thread if we leave this out */) {
4573		proc->requested_threads++;
4574		binder_inner_proc_unlock(proc);
4575		binder_debug(BINDER_DEBUG_THREADS,
4576			     "%d:%d BR_SPAWN_LOOPER\n",
4577			     proc->pid, thread->pid);
4578		if (put_user(BR_SPAWN_LOOPER, (uint32_t __user *)buffer))
4579			return -EFAULT;
4580		binder_stat_br(proc, thread, BR_SPAWN_LOOPER);
4581	} else
4582		binder_inner_proc_unlock(proc);
4583	return 0;
4584}
4585
4586static void binder_release_work(struct binder_proc *proc,
4587				struct list_head *list)
4588{
4589	struct binder_work *w;
 
4590
4591	while (1) {
4592		w = binder_dequeue_work_head(proc, list);
 
 
 
4593		if (!w)
4594			return;
4595
4596		switch (w->type) {
4597		case BINDER_WORK_TRANSACTION: {
4598			struct binder_transaction *t;
4599
4600			t = container_of(w, struct binder_transaction, work);
4601
4602			binder_cleanup_transaction(t, "process died.",
4603						   BR_DEAD_REPLY);
4604		} break;
4605		case BINDER_WORK_RETURN_ERROR: {
4606			struct binder_error *e = container_of(
4607					w, struct binder_error, work);
4608
4609			binder_debug(BINDER_DEBUG_DEAD_TRANSACTION,
4610				"undelivered TRANSACTION_ERROR: %u\n",
4611				e->cmd);
4612		} break;
 
 
4613		case BINDER_WORK_TRANSACTION_COMPLETE: {
4614			binder_debug(BINDER_DEBUG_DEAD_TRANSACTION,
4615				"undelivered TRANSACTION_COMPLETE\n");
4616			kfree(w);
4617			binder_stats_deleted(BINDER_STAT_TRANSACTION_COMPLETE);
4618		} break;
4619		case BINDER_WORK_DEAD_BINDER_AND_CLEAR:
4620		case BINDER_WORK_CLEAR_DEATH_NOTIFICATION: {
4621			struct binder_ref_death *death;
4622
4623			death = container_of(w, struct binder_ref_death, work);
4624			binder_debug(BINDER_DEBUG_DEAD_TRANSACTION,
4625				"undelivered death notification, %016llx\n",
4626				(u64)death->cookie);
4627			kfree(death);
4628			binder_stats_deleted(BINDER_STAT_DEATH);
4629		} break;
 
 
 
 
 
 
 
 
 
 
 
 
4630		default:
4631			pr_err("unexpected work type, %d, not freed\n",
4632			       w->type);
4633			break;
4634		}
4635	}
4636
4637}
4638
4639static struct binder_thread *binder_get_thread_ilocked(
4640		struct binder_proc *proc, struct binder_thread *new_thread)
4641{
4642	struct binder_thread *thread = NULL;
4643	struct rb_node *parent = NULL;
4644	struct rb_node **p = &proc->threads.rb_node;
4645
4646	while (*p) {
4647		parent = *p;
4648		thread = rb_entry(parent, struct binder_thread, rb_node);
4649
4650		if (current->pid < thread->pid)
4651			p = &(*p)->rb_left;
4652		else if (current->pid > thread->pid)
4653			p = &(*p)->rb_right;
4654		else
4655			return thread;
4656	}
4657	if (!new_thread)
4658		return NULL;
4659	thread = new_thread;
4660	binder_stats_created(BINDER_STAT_THREAD);
4661	thread->proc = proc;
4662	thread->pid = current->pid;
4663	atomic_set(&thread->tmp_ref, 0);
4664	init_waitqueue_head(&thread->wait);
4665	INIT_LIST_HEAD(&thread->todo);
4666	rb_link_node(&thread->rb_node, parent, p);
4667	rb_insert_color(&thread->rb_node, &proc->threads);
4668	thread->looper_need_return = true;
4669	thread->return_error.work.type = BINDER_WORK_RETURN_ERROR;
4670	thread->return_error.cmd = BR_OK;
4671	thread->reply_error.work.type = BINDER_WORK_RETURN_ERROR;
4672	thread->reply_error.cmd = BR_OK;
 
4673	INIT_LIST_HEAD(&new_thread->waiting_thread_node);
4674	return thread;
4675}
4676
4677static struct binder_thread *binder_get_thread(struct binder_proc *proc)
4678{
4679	struct binder_thread *thread;
4680	struct binder_thread *new_thread;
4681
4682	binder_inner_proc_lock(proc);
4683	thread = binder_get_thread_ilocked(proc, NULL);
4684	binder_inner_proc_unlock(proc);
4685	if (!thread) {
4686		new_thread = kzalloc(sizeof(*thread), GFP_KERNEL);
4687		if (new_thread == NULL)
4688			return NULL;
4689		binder_inner_proc_lock(proc);
4690		thread = binder_get_thread_ilocked(proc, new_thread);
4691		binder_inner_proc_unlock(proc);
4692		if (thread != new_thread)
4693			kfree(new_thread);
4694	}
4695	return thread;
4696}
4697
4698static void binder_free_proc(struct binder_proc *proc)
4699{
4700	struct binder_device *device;
4701
4702	BUG_ON(!list_empty(&proc->todo));
4703	BUG_ON(!list_empty(&proc->delivered_death));
 
 
 
4704	device = container_of(proc->context, struct binder_device, context);
4705	if (refcount_dec_and_test(&device->ref)) {
4706		kfree(proc->context->name);
4707		kfree(device);
4708	}
4709	binder_alloc_deferred_release(&proc->alloc);
4710	put_task_struct(proc->tsk);
 
4711	binder_stats_deleted(BINDER_STAT_PROC);
 
4712	kfree(proc);
4713}
4714
4715static void binder_free_thread(struct binder_thread *thread)
4716{
4717	BUG_ON(!list_empty(&thread->todo));
4718	binder_stats_deleted(BINDER_STAT_THREAD);
4719	binder_proc_dec_tmpref(thread->proc);
4720	kfree(thread);
4721}
4722
4723static int binder_thread_release(struct binder_proc *proc,
4724				 struct binder_thread *thread)
4725{
4726	struct binder_transaction *t;
4727	struct binder_transaction *send_reply = NULL;
4728	int active_transactions = 0;
4729	struct binder_transaction *last_t = NULL;
4730
4731	binder_inner_proc_lock(thread->proc);
4732	/*
4733	 * take a ref on the proc so it survives
4734	 * after we remove this thread from proc->threads.
4735	 * The corresponding dec is when we actually
4736	 * free the thread in binder_free_thread()
4737	 */
4738	proc->tmp_ref++;
4739	/*
4740	 * take a ref on this thread to ensure it
4741	 * survives while we are releasing it
4742	 */
4743	atomic_inc(&thread->tmp_ref);
4744	rb_erase(&thread->rb_node, &proc->threads);
4745	t = thread->transaction_stack;
4746	if (t) {
4747		spin_lock(&t->lock);
4748		if (t->to_thread == thread)
4749			send_reply = t;
4750	} else {
4751		__acquire(&t->lock);
4752	}
4753	thread->is_dead = true;
4754
4755	while (t) {
4756		last_t = t;
4757		active_transactions++;
4758		binder_debug(BINDER_DEBUG_DEAD_TRANSACTION,
4759			     "release %d:%d transaction %d %s, still active\n",
4760			      proc->pid, thread->pid,
4761			     t->debug_id,
4762			     (t->to_thread == thread) ? "in" : "out");
4763
4764		if (t->to_thread == thread) {
 
4765			t->to_proc = NULL;
4766			t->to_thread = NULL;
4767			if (t->buffer) {
4768				t->buffer->transaction = NULL;
4769				t->buffer = NULL;
4770			}
4771			t = t->to_parent;
4772		} else if (t->from == thread) {
4773			t->from = NULL;
4774			t = t->from_parent;
4775		} else
4776			BUG();
4777		spin_unlock(&last_t->lock);
4778		if (t)
4779			spin_lock(&t->lock);
4780		else
4781			__acquire(&t->lock);
4782	}
4783	/* annotation for sparse, lock not acquired in last iteration above */
4784	__release(&t->lock);
4785
4786	/*
4787	 * If this thread used poll, make sure we remove the waitqueue
4788	 * from any epoll data structures holding it with POLLFREE.
4789	 * waitqueue_active() is safe to use here because we're holding
4790	 * the inner lock.
4791	 */
4792	if ((thread->looper & BINDER_LOOPER_STATE_POLL) &&
4793	    waitqueue_active(&thread->wait)) {
4794		wake_up_poll(&thread->wait, EPOLLHUP | POLLFREE);
4795	}
4796
4797	binder_inner_proc_unlock(thread->proc);
4798
4799	/*
4800	 * This is needed to avoid races between wake_up_poll() above and
4801	 * and ep_remove_waitqueue() called for other reasons (eg the epoll file
4802	 * descriptor being closed); ep_remove_waitqueue() holds an RCU read
4803	 * lock, so we can be sure it's done after calling synchronize_rcu().
 
4804	 */
4805	if (thread->looper & BINDER_LOOPER_STATE_POLL)
4806		synchronize_rcu();
4807
4808	if (send_reply)
4809		binder_send_failed_reply(send_reply, BR_DEAD_REPLY);
4810	binder_release_work(proc, &thread->todo);
4811	binder_thread_dec_tmpref(thread);
4812	return active_transactions;
4813}
4814
4815static __poll_t binder_poll(struct file *filp,
4816				struct poll_table_struct *wait)
4817{
4818	struct binder_proc *proc = filp->private_data;
4819	struct binder_thread *thread = NULL;
4820	bool wait_for_proc_work;
4821
4822	thread = binder_get_thread(proc);
4823	if (!thread)
4824		return POLLERR;
4825
4826	binder_inner_proc_lock(thread->proc);
4827	thread->looper |= BINDER_LOOPER_STATE_POLL;
4828	wait_for_proc_work = binder_available_for_proc_work_ilocked(thread);
4829
4830	binder_inner_proc_unlock(thread->proc);
4831
4832	poll_wait(filp, &thread->wait, wait);
4833
4834	if (binder_has_work(thread, wait_for_proc_work))
4835		return EPOLLIN;
4836
4837	return 0;
4838}
4839
4840static int binder_ioctl_write_read(struct file *filp,
4841				unsigned int cmd, unsigned long arg,
4842				struct binder_thread *thread)
4843{
4844	int ret = 0;
4845	struct binder_proc *proc = filp->private_data;
4846	unsigned int size = _IOC_SIZE(cmd);
4847	void __user *ubuf = (void __user *)arg;
4848	struct binder_write_read bwr;
4849
4850	if (size != sizeof(struct binder_write_read)) {
4851		ret = -EINVAL;
4852		goto out;
4853	}
4854	if (copy_from_user(&bwr, ubuf, sizeof(bwr))) {
4855		ret = -EFAULT;
4856		goto out;
4857	}
4858	binder_debug(BINDER_DEBUG_READ_WRITE,
4859		     "%d:%d write %lld at %016llx, read %lld at %016llx\n",
4860		     proc->pid, thread->pid,
4861		     (u64)bwr.write_size, (u64)bwr.write_buffer,
4862		     (u64)bwr.read_size, (u64)bwr.read_buffer);
4863
4864	if (bwr.write_size > 0) {
4865		ret = binder_thread_write(proc, thread,
4866					  bwr.write_buffer,
4867					  bwr.write_size,
4868					  &bwr.write_consumed);
4869		trace_binder_write_done(ret);
4870		if (ret < 0) {
4871			bwr.read_consumed = 0;
4872			if (copy_to_user(ubuf, &bwr, sizeof(bwr)))
4873				ret = -EFAULT;
4874			goto out;
4875		}
4876	}
4877	if (bwr.read_size > 0) {
4878		ret = binder_thread_read(proc, thread, bwr.read_buffer,
4879					 bwr.read_size,
4880					 &bwr.read_consumed,
4881					 filp->f_flags & O_NONBLOCK);
4882		trace_binder_read_done(ret);
4883		binder_inner_proc_lock(proc);
4884		if (!binder_worklist_empty_ilocked(&proc->todo))
4885			binder_wakeup_proc_ilocked(proc);
4886		binder_inner_proc_unlock(proc);
4887		if (ret < 0) {
4888			if (copy_to_user(ubuf, &bwr, sizeof(bwr)))
4889				ret = -EFAULT;
4890			goto out;
4891		}
4892	}
4893	binder_debug(BINDER_DEBUG_READ_WRITE,
4894		     "%d:%d wrote %lld of %lld, read return %lld of %lld\n",
4895		     proc->pid, thread->pid,
4896		     (u64)bwr.write_consumed, (u64)bwr.write_size,
4897		     (u64)bwr.read_consumed, (u64)bwr.read_size);
4898	if (copy_to_user(ubuf, &bwr, sizeof(bwr))) {
4899		ret = -EFAULT;
4900		goto out;
4901	}
4902out:
4903	return ret;
4904}
4905
4906static int binder_ioctl_set_ctx_mgr(struct file *filp,
4907				    struct flat_binder_object *fbo)
4908{
4909	int ret = 0;
4910	struct binder_proc *proc = filp->private_data;
4911	struct binder_context *context = proc->context;
4912	struct binder_node *new_node;
4913	kuid_t curr_euid = current_euid();
4914
4915	mutex_lock(&context->context_mgr_node_lock);
4916	if (context->binder_context_mgr_node) {
4917		pr_err("BINDER_SET_CONTEXT_MGR already set\n");
4918		ret = -EBUSY;
4919		goto out;
4920	}
4921	ret = security_binder_set_context_mgr(proc->tsk);
4922	if (ret < 0)
4923		goto out;
4924	if (uid_valid(context->binder_context_mgr_uid)) {
4925		if (!uid_eq(context->binder_context_mgr_uid, curr_euid)) {
4926			pr_err("BINDER_SET_CONTEXT_MGR bad uid %d != %d\n",
4927			       from_kuid(&init_user_ns, curr_euid),
4928			       from_kuid(&init_user_ns,
4929					 context->binder_context_mgr_uid));
4930			ret = -EPERM;
4931			goto out;
4932		}
4933	} else {
4934		context->binder_context_mgr_uid = curr_euid;
4935	}
4936	new_node = binder_new_node(proc, fbo);
4937	if (!new_node) {
4938		ret = -ENOMEM;
4939		goto out;
4940	}
4941	binder_node_lock(new_node);
4942	new_node->local_weak_refs++;
4943	new_node->local_strong_refs++;
4944	new_node->has_strong_ref = 1;
4945	new_node->has_weak_ref = 1;
4946	context->binder_context_mgr_node = new_node;
4947	binder_node_unlock(new_node);
4948	binder_put_node(new_node);
4949out:
4950	mutex_unlock(&context->context_mgr_node_lock);
4951	return ret;
4952}
4953
4954static int binder_ioctl_get_node_info_for_ref(struct binder_proc *proc,
4955		struct binder_node_info_for_ref *info)
4956{
4957	struct binder_node *node;
4958	struct binder_context *context = proc->context;
4959	__u32 handle = info->handle;
4960
4961	if (info->strong_count || info->weak_count || info->reserved1 ||
4962	    info->reserved2 || info->reserved3) {
4963		binder_user_error("%d BINDER_GET_NODE_INFO_FOR_REF: only handle may be non-zero.",
4964				  proc->pid);
4965		return -EINVAL;
4966	}
4967
4968	/* This ioctl may only be used by the context manager */
4969	mutex_lock(&context->context_mgr_node_lock);
4970	if (!context->binder_context_mgr_node ||
4971		context->binder_context_mgr_node->proc != proc) {
4972		mutex_unlock(&context->context_mgr_node_lock);
4973		return -EPERM;
4974	}
4975	mutex_unlock(&context->context_mgr_node_lock);
4976
4977	node = binder_get_node_from_ref(proc, handle, true, NULL);
4978	if (!node)
4979		return -EINVAL;
4980
4981	info->strong_count = node->local_strong_refs +
4982		node->internal_strong_refs;
4983	info->weak_count = node->local_weak_refs;
4984
4985	binder_put_node(node);
4986
4987	return 0;
4988}
4989
4990static int binder_ioctl_get_node_debug_info(struct binder_proc *proc,
4991				struct binder_node_debug_info *info)
4992{
4993	struct rb_node *n;
4994	binder_uintptr_t ptr = info->ptr;
4995
4996	memset(info, 0, sizeof(*info));
4997
4998	binder_inner_proc_lock(proc);
4999	for (n = rb_first(&proc->nodes); n != NULL; n = rb_next(n)) {
5000		struct binder_node *node = rb_entry(n, struct binder_node,
5001						    rb_node);
5002		if (node->ptr > ptr) {
5003			info->ptr = node->ptr;
5004			info->cookie = node->cookie;
5005			info->has_strong_ref = node->has_strong_ref;
5006			info->has_weak_ref = node->has_weak_ref;
5007			break;
5008		}
5009	}
5010	binder_inner_proc_unlock(proc);
5011
5012	return 0;
5013}
5014
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
5015static long binder_ioctl(struct file *filp, unsigned int cmd, unsigned long arg)
5016{
5017	int ret;
5018	struct binder_proc *proc = filp->private_data;
5019	struct binder_thread *thread;
5020	unsigned int size = _IOC_SIZE(cmd);
5021	void __user *ubuf = (void __user *)arg;
5022
5023	/*pr_info("binder_ioctl: %d:%d %x %lx\n",
5024			proc->pid, current->pid, cmd, arg);*/
5025
5026	binder_selftest_alloc(&proc->alloc);
5027
5028	trace_binder_ioctl(cmd, arg);
5029
5030	ret = wait_event_interruptible(binder_user_error_wait, binder_stop_on_user_error < 2);
5031	if (ret)
5032		goto err_unlocked;
5033
5034	thread = binder_get_thread(proc);
5035	if (thread == NULL) {
5036		ret = -ENOMEM;
5037		goto err;
5038	}
5039
5040	switch (cmd) {
5041	case BINDER_WRITE_READ:
5042		ret = binder_ioctl_write_read(filp, cmd, arg, thread);
5043		if (ret)
5044			goto err;
5045		break;
5046	case BINDER_SET_MAX_THREADS: {
5047		int max_threads;
5048
5049		if (copy_from_user(&max_threads, ubuf,
5050				   sizeof(max_threads))) {
5051			ret = -EINVAL;
5052			goto err;
5053		}
5054		binder_inner_proc_lock(proc);
5055		proc->max_threads = max_threads;
5056		binder_inner_proc_unlock(proc);
5057		break;
5058	}
5059	case BINDER_SET_CONTEXT_MGR_EXT: {
5060		struct flat_binder_object fbo;
5061
5062		if (copy_from_user(&fbo, ubuf, sizeof(fbo))) {
5063			ret = -EINVAL;
5064			goto err;
5065		}
5066		ret = binder_ioctl_set_ctx_mgr(filp, &fbo);
5067		if (ret)
5068			goto err;
5069		break;
5070	}
5071	case BINDER_SET_CONTEXT_MGR:
5072		ret = binder_ioctl_set_ctx_mgr(filp, NULL);
5073		if (ret)
5074			goto err;
5075		break;
5076	case BINDER_THREAD_EXIT:
5077		binder_debug(BINDER_DEBUG_THREADS, "%d:%d exit\n",
5078			     proc->pid, thread->pid);
5079		binder_thread_release(proc, thread);
5080		thread = NULL;
5081		break;
5082	case BINDER_VERSION: {
5083		struct binder_version __user *ver = ubuf;
5084
5085		if (size != sizeof(struct binder_version)) {
5086			ret = -EINVAL;
5087			goto err;
5088		}
5089		if (put_user(BINDER_CURRENT_PROTOCOL_VERSION,
5090			     &ver->protocol_version)) {
5091			ret = -EINVAL;
5092			goto err;
5093		}
5094		break;
5095	}
5096	case BINDER_GET_NODE_INFO_FOR_REF: {
5097		struct binder_node_info_for_ref info;
5098
5099		if (copy_from_user(&info, ubuf, sizeof(info))) {
5100			ret = -EFAULT;
5101			goto err;
5102		}
5103
5104		ret = binder_ioctl_get_node_info_for_ref(proc, &info);
5105		if (ret < 0)
5106			goto err;
5107
5108		if (copy_to_user(ubuf, &info, sizeof(info))) {
5109			ret = -EFAULT;
5110			goto err;
5111		}
5112
5113		break;
5114	}
5115	case BINDER_GET_NODE_DEBUG_INFO: {
5116		struct binder_node_debug_info info;
5117
5118		if (copy_from_user(&info, ubuf, sizeof(info))) {
5119			ret = -EFAULT;
5120			goto err;
5121		}
5122
5123		ret = binder_ioctl_get_node_debug_info(proc, &info);
5124		if (ret < 0)
5125			goto err;
5126
5127		if (copy_to_user(ubuf, &info, sizeof(info))) {
5128			ret = -EFAULT;
5129			goto err;
5130		}
5131		break;
5132	}
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
5133	default:
5134		ret = -EINVAL;
5135		goto err;
5136	}
5137	ret = 0;
5138err:
5139	if (thread)
5140		thread->looper_need_return = false;
5141	wait_event_interruptible(binder_user_error_wait, binder_stop_on_user_error < 2);
5142	if (ret && ret != -ERESTARTSYS)
5143		pr_info("%d:%d ioctl %x %lx returned %d\n", proc->pid, current->pid, cmd, arg, ret);
5144err_unlocked:
5145	trace_binder_ioctl_done(ret);
5146	return ret;
5147}
5148
5149static void binder_vma_open(struct vm_area_struct *vma)
5150{
5151	struct binder_proc *proc = vma->vm_private_data;
5152
5153	binder_debug(BINDER_DEBUG_OPEN_CLOSE,
5154		     "%d open vm area %lx-%lx (%ld K) vma %lx pagep %lx\n",
5155		     proc->pid, vma->vm_start, vma->vm_end,
5156		     (vma->vm_end - vma->vm_start) / SZ_1K, vma->vm_flags,
5157		     (unsigned long)pgprot_val(vma->vm_page_prot));
5158}
5159
5160static void binder_vma_close(struct vm_area_struct *vma)
5161{
5162	struct binder_proc *proc = vma->vm_private_data;
5163
5164	binder_debug(BINDER_DEBUG_OPEN_CLOSE,
5165		     "%d close vm area %lx-%lx (%ld K) vma %lx pagep %lx\n",
5166		     proc->pid, vma->vm_start, vma->vm_end,
5167		     (vma->vm_end - vma->vm_start) / SZ_1K, vma->vm_flags,
5168		     (unsigned long)pgprot_val(vma->vm_page_prot));
5169	binder_alloc_vma_close(&proc->alloc);
5170}
5171
5172static vm_fault_t binder_vm_fault(struct vm_fault *vmf)
5173{
5174	return VM_FAULT_SIGBUS;
5175}
5176
5177static const struct vm_operations_struct binder_vm_ops = {
5178	.open = binder_vma_open,
5179	.close = binder_vma_close,
5180	.fault = binder_vm_fault,
5181};
5182
5183static int binder_mmap(struct file *filp, struct vm_area_struct *vma)
5184{
5185	int ret;
5186	struct binder_proc *proc = filp->private_data;
5187	const char *failure_string;
5188
5189	if (proc->tsk != current->group_leader)
5190		return -EINVAL;
5191
5192	binder_debug(BINDER_DEBUG_OPEN_CLOSE,
5193		     "%s: %d %lx-%lx (%ld K) vma %lx pagep %lx\n",
5194		     __func__, proc->pid, vma->vm_start, vma->vm_end,
5195		     (vma->vm_end - vma->vm_start) / SZ_1K, vma->vm_flags,
5196		     (unsigned long)pgprot_val(vma->vm_page_prot));
5197
5198	if (vma->vm_flags & FORBIDDEN_MMAP_FLAGS) {
5199		ret = -EPERM;
5200		failure_string = "bad vm_flags";
5201		goto err_bad_arg;
5202	}
5203	vma->vm_flags |= VM_DONTCOPY | VM_MIXEDMAP;
5204	vma->vm_flags &= ~VM_MAYWRITE;
5205
5206	vma->vm_ops = &binder_vm_ops;
5207	vma->vm_private_data = proc;
5208
5209	ret = binder_alloc_mmap_handler(&proc->alloc, vma);
5210	if (ret)
5211		return ret;
5212	return 0;
5213
5214err_bad_arg:
5215	pr_err("%s: %d %lx-%lx %s failed %d\n", __func__,
5216	       proc->pid, vma->vm_start, vma->vm_end, failure_string, ret);
5217	return ret;
5218}
5219
5220static int binder_open(struct inode *nodp, struct file *filp)
5221{
5222	struct binder_proc *proc, *itr;
5223	struct binder_device *binder_dev;
5224	struct binderfs_info *info;
5225	struct dentry *binder_binderfs_dir_entry_proc = NULL;
5226	bool existing_pid = false;
5227
5228	binder_debug(BINDER_DEBUG_OPEN_CLOSE, "%s: %d:%d\n", __func__,
5229		     current->group_leader->pid, current->pid);
5230
5231	proc = kzalloc(sizeof(*proc), GFP_KERNEL);
5232	if (proc == NULL)
5233		return -ENOMEM;
 
 
5234	spin_lock_init(&proc->inner_lock);
5235	spin_lock_init(&proc->outer_lock);
5236	get_task_struct(current->group_leader);
5237	proc->tsk = current->group_leader;
 
5238	INIT_LIST_HEAD(&proc->todo);
 
5239	proc->default_priority = task_nice(current);
5240	/* binderfs stashes devices in i_private */
5241	if (is_binderfs_device(nodp)) {
5242		binder_dev = nodp->i_private;
5243		info = nodp->i_sb->s_fs_info;
5244		binder_binderfs_dir_entry_proc = info->proc_log_dir;
5245	} else {
5246		binder_dev = container_of(filp->private_data,
5247					  struct binder_device, miscdev);
5248	}
5249	refcount_inc(&binder_dev->ref);
5250	proc->context = &binder_dev->context;
5251	binder_alloc_init(&proc->alloc);
5252
5253	binder_stats_created(BINDER_STAT_PROC);
5254	proc->pid = current->group_leader->pid;
5255	INIT_LIST_HEAD(&proc->delivered_death);
 
5256	INIT_LIST_HEAD(&proc->waiting_threads);
5257	filp->private_data = proc;
5258
5259	mutex_lock(&binder_procs_lock);
5260	hlist_for_each_entry(itr, &binder_procs, proc_node) {
5261		if (itr->pid == proc->pid) {
5262			existing_pid = true;
5263			break;
5264		}
5265	}
5266	hlist_add_head(&proc->proc_node, &binder_procs);
5267	mutex_unlock(&binder_procs_lock);
5268
5269	if (binder_debugfs_dir_entry_proc && !existing_pid) {
5270		char strbuf[11];
5271
5272		snprintf(strbuf, sizeof(strbuf), "%u", proc->pid);
5273		/*
5274		 * proc debug entries are shared between contexts.
5275		 * Only create for the first PID to avoid debugfs log spamming
5276		 * The printing code will anyway print all contexts for a given
5277		 * PID so this is not a problem.
5278		 */
5279		proc->debugfs_entry = debugfs_create_file(strbuf, 0444,
5280			binder_debugfs_dir_entry_proc,
5281			(void *)(unsigned long)proc->pid,
5282			&proc_fops);
5283	}
5284
5285	if (binder_binderfs_dir_entry_proc && !existing_pid) {
5286		char strbuf[11];
5287		struct dentry *binderfs_entry;
5288
5289		snprintf(strbuf, sizeof(strbuf), "%u", proc->pid);
5290		/*
5291		 * Similar to debugfs, the process specific log file is shared
5292		 * between contexts. Only create for the first PID.
5293		 * This is ok since same as debugfs, the log file will contain
5294		 * information on all contexts of a given PID.
5295		 */
5296		binderfs_entry = binderfs_create_file(binder_binderfs_dir_entry_proc,
5297			strbuf, &proc_fops, (void *)(unsigned long)proc->pid);
5298		if (!IS_ERR(binderfs_entry)) {
5299			proc->binderfs_entry = binderfs_entry;
5300		} else {
5301			int error;
5302
5303			error = PTR_ERR(binderfs_entry);
5304			pr_warn("Unable to create file %s in binderfs (error %d)\n",
5305				strbuf, error);
5306		}
5307	}
5308
5309	return 0;
5310}
5311
5312static int binder_flush(struct file *filp, fl_owner_t id)
5313{
5314	struct binder_proc *proc = filp->private_data;
5315
5316	binder_defer_work(proc, BINDER_DEFERRED_FLUSH);
5317
5318	return 0;
5319}
5320
5321static void binder_deferred_flush(struct binder_proc *proc)
5322{
5323	struct rb_node *n;
5324	int wake_count = 0;
5325
5326	binder_inner_proc_lock(proc);
5327	for (n = rb_first(&proc->threads); n != NULL; n = rb_next(n)) {
5328		struct binder_thread *thread = rb_entry(n, struct binder_thread, rb_node);
5329
5330		thread->looper_need_return = true;
5331		if (thread->looper & BINDER_LOOPER_STATE_WAITING) {
5332			wake_up_interruptible(&thread->wait);
5333			wake_count++;
5334		}
5335	}
5336	binder_inner_proc_unlock(proc);
5337
5338	binder_debug(BINDER_DEBUG_OPEN_CLOSE,
5339		     "binder_flush: %d woke %d threads\n", proc->pid,
5340		     wake_count);
5341}
5342
5343static int binder_release(struct inode *nodp, struct file *filp)
5344{
5345	struct binder_proc *proc = filp->private_data;
5346
5347	debugfs_remove(proc->debugfs_entry);
5348
5349	if (proc->binderfs_entry) {
5350		binderfs_remove_file(proc->binderfs_entry);
5351		proc->binderfs_entry = NULL;
5352	}
5353
5354	binder_defer_work(proc, BINDER_DEFERRED_RELEASE);
5355
5356	return 0;
5357}
5358
5359static int binder_node_release(struct binder_node *node, int refs)
5360{
5361	struct binder_ref *ref;
5362	int death = 0;
5363	struct binder_proc *proc = node->proc;
5364
5365	binder_release_work(proc, &node->async_todo);
5366
5367	binder_node_lock(node);
5368	binder_inner_proc_lock(proc);
5369	binder_dequeue_work_ilocked(&node->work);
5370	/*
5371	 * The caller must have taken a temporary ref on the node,
5372	 */
5373	BUG_ON(!node->tmp_refs);
5374	if (hlist_empty(&node->refs) && node->tmp_refs == 1) {
5375		binder_inner_proc_unlock(proc);
5376		binder_node_unlock(node);
5377		binder_free_node(node);
5378
5379		return refs;
5380	}
5381
5382	node->proc = NULL;
5383	node->local_strong_refs = 0;
5384	node->local_weak_refs = 0;
5385	binder_inner_proc_unlock(proc);
5386
5387	spin_lock(&binder_dead_nodes_lock);
5388	hlist_add_head(&node->dead_node, &binder_dead_nodes);
5389	spin_unlock(&binder_dead_nodes_lock);
5390
5391	hlist_for_each_entry(ref, &node->refs, node_entry) {
5392		refs++;
5393		/*
5394		 * Need the node lock to synchronize
5395		 * with new notification requests and the
5396		 * inner lock to synchronize with queued
5397		 * death notifications.
5398		 */
5399		binder_inner_proc_lock(ref->proc);
5400		if (!ref->death) {
5401			binder_inner_proc_unlock(ref->proc);
5402			continue;
5403		}
5404
5405		death++;
5406
5407		BUG_ON(!list_empty(&ref->death->work.entry));
5408		ref->death->work.type = BINDER_WORK_DEAD_BINDER;
5409		binder_enqueue_work_ilocked(&ref->death->work,
5410					    &ref->proc->todo);
5411		binder_wakeup_proc_ilocked(ref->proc);
5412		binder_inner_proc_unlock(ref->proc);
5413	}
5414
5415	binder_debug(BINDER_DEBUG_DEAD_BINDER,
5416		     "node %d now dead, refs %d, death %d\n",
5417		     node->debug_id, refs, death);
5418	binder_node_unlock(node);
5419	binder_put_node(node);
5420
5421	return refs;
5422}
5423
5424static void binder_deferred_release(struct binder_proc *proc)
5425{
5426	struct binder_context *context = proc->context;
5427	struct rb_node *n;
5428	int threads, nodes, incoming_refs, outgoing_refs, active_transactions;
5429
5430	mutex_lock(&binder_procs_lock);
5431	hlist_del(&proc->proc_node);
5432	mutex_unlock(&binder_procs_lock);
5433
5434	mutex_lock(&context->context_mgr_node_lock);
5435	if (context->binder_context_mgr_node &&
5436	    context->binder_context_mgr_node->proc == proc) {
5437		binder_debug(BINDER_DEBUG_DEAD_BINDER,
5438			     "%s: %d context_mgr_node gone\n",
5439			     __func__, proc->pid);
5440		context->binder_context_mgr_node = NULL;
5441	}
5442	mutex_unlock(&context->context_mgr_node_lock);
5443	binder_inner_proc_lock(proc);
5444	/*
5445	 * Make sure proc stays alive after we
5446	 * remove all the threads
5447	 */
5448	proc->tmp_ref++;
5449
5450	proc->is_dead = true;
 
 
 
5451	threads = 0;
5452	active_transactions = 0;
5453	while ((n = rb_first(&proc->threads))) {
5454		struct binder_thread *thread;
5455
5456		thread = rb_entry(n, struct binder_thread, rb_node);
5457		binder_inner_proc_unlock(proc);
5458		threads++;
5459		active_transactions += binder_thread_release(proc, thread);
5460		binder_inner_proc_lock(proc);
5461	}
5462
5463	nodes = 0;
5464	incoming_refs = 0;
5465	while ((n = rb_first(&proc->nodes))) {
5466		struct binder_node *node;
5467
5468		node = rb_entry(n, struct binder_node, rb_node);
5469		nodes++;
5470		/*
5471		 * take a temporary ref on the node before
5472		 * calling binder_node_release() which will either
5473		 * kfree() the node or call binder_put_node()
5474		 */
5475		binder_inc_node_tmpref_ilocked(node);
5476		rb_erase(&node->rb_node, &proc->nodes);
5477		binder_inner_proc_unlock(proc);
5478		incoming_refs = binder_node_release(node, incoming_refs);
5479		binder_inner_proc_lock(proc);
5480	}
5481	binder_inner_proc_unlock(proc);
5482
5483	outgoing_refs = 0;
5484	binder_proc_lock(proc);
5485	while ((n = rb_first(&proc->refs_by_desc))) {
5486		struct binder_ref *ref;
5487
5488		ref = rb_entry(n, struct binder_ref, rb_node_desc);
5489		outgoing_refs++;
5490		binder_cleanup_ref_olocked(ref);
5491		binder_proc_unlock(proc);
5492		binder_free_ref(ref);
5493		binder_proc_lock(proc);
5494	}
5495	binder_proc_unlock(proc);
5496
5497	binder_release_work(proc, &proc->todo);
5498	binder_release_work(proc, &proc->delivered_death);
 
5499
5500	binder_debug(BINDER_DEBUG_OPEN_CLOSE,
5501		     "%s: %d threads %d, nodes %d (ref %d), refs %d, active transactions %d\n",
5502		     __func__, proc->pid, threads, nodes, incoming_refs,
5503		     outgoing_refs, active_transactions);
5504
5505	binder_proc_dec_tmpref(proc);
5506}
5507
5508static void binder_deferred_func(struct work_struct *work)
5509{
5510	struct binder_proc *proc;
5511
5512	int defer;
5513
5514	do {
5515		mutex_lock(&binder_deferred_lock);
5516		if (!hlist_empty(&binder_deferred_list)) {
5517			proc = hlist_entry(binder_deferred_list.first,
5518					struct binder_proc, deferred_work_node);
5519			hlist_del_init(&proc->deferred_work_node);
5520			defer = proc->deferred_work;
5521			proc->deferred_work = 0;
5522		} else {
5523			proc = NULL;
5524			defer = 0;
5525		}
5526		mutex_unlock(&binder_deferred_lock);
5527
5528		if (defer & BINDER_DEFERRED_FLUSH)
5529			binder_deferred_flush(proc);
5530
5531		if (defer & BINDER_DEFERRED_RELEASE)
5532			binder_deferred_release(proc); /* frees proc */
5533	} while (proc);
5534}
5535static DECLARE_WORK(binder_deferred_work, binder_deferred_func);
5536
5537static void
5538binder_defer_work(struct binder_proc *proc, enum binder_deferred_state defer)
5539{
5540	mutex_lock(&binder_deferred_lock);
5541	proc->deferred_work |= defer;
5542	if (hlist_unhashed(&proc->deferred_work_node)) {
5543		hlist_add_head(&proc->deferred_work_node,
5544				&binder_deferred_list);
5545		schedule_work(&binder_deferred_work);
5546	}
5547	mutex_unlock(&binder_deferred_lock);
5548}
5549
5550static void print_binder_transaction_ilocked(struct seq_file *m,
5551					     struct binder_proc *proc,
5552					     const char *prefix,
5553					     struct binder_transaction *t)
5554{
5555	struct binder_proc *to_proc;
5556	struct binder_buffer *buffer = t->buffer;
 
5557
5558	spin_lock(&t->lock);
5559	to_proc = t->to_proc;
5560	seq_printf(m,
5561		   "%s %d: %pK from %d:%d to %d:%d code %x flags %x pri %ld r%d",
5562		   prefix, t->debug_id, t,
5563		   t->from ? t->from->proc->pid : 0,
5564		   t->from ? t->from->pid : 0,
5565		   to_proc ? to_proc->pid : 0,
5566		   t->to_thread ? t->to_thread->pid : 0,
5567		   t->code, t->flags, t->priority, t->need_reply);
 
5568	spin_unlock(&t->lock);
5569
5570	if (proc != to_proc) {
5571		/*
5572		 * Can only safely deref buffer if we are holding the
5573		 * correct proc inner lock for this node
5574		 */
5575		seq_puts(m, "\n");
5576		return;
5577	}
5578
5579	if (buffer == NULL) {
5580		seq_puts(m, " buffer free\n");
5581		return;
5582	}
5583	if (buffer->target_node)
5584		seq_printf(m, " node %d", buffer->target_node->debug_id);
5585	seq_printf(m, " size %zd:%zd data %pK\n",
5586		   buffer->data_size, buffer->offsets_size,
5587		   buffer->user_data);
5588}
5589
5590static void print_binder_work_ilocked(struct seq_file *m,
5591				     struct binder_proc *proc,
5592				     const char *prefix,
5593				     const char *transaction_prefix,
5594				     struct binder_work *w)
5595{
5596	struct binder_node *node;
5597	struct binder_transaction *t;
5598
5599	switch (w->type) {
5600	case BINDER_WORK_TRANSACTION:
5601		t = container_of(w, struct binder_transaction, work);
5602		print_binder_transaction_ilocked(
5603				m, proc, transaction_prefix, t);
5604		break;
5605	case BINDER_WORK_RETURN_ERROR: {
5606		struct binder_error *e = container_of(
5607				w, struct binder_error, work);
5608
5609		seq_printf(m, "%stransaction error: %u\n",
5610			   prefix, e->cmd);
5611	} break;
5612	case BINDER_WORK_TRANSACTION_COMPLETE:
5613		seq_printf(m, "%stransaction complete\n", prefix);
5614		break;
5615	case BINDER_WORK_NODE:
5616		node = container_of(w, struct binder_node, work);
5617		seq_printf(m, "%snode work %d: u%016llx c%016llx\n",
5618			   prefix, node->debug_id,
5619			   (u64)node->ptr, (u64)node->cookie);
5620		break;
5621	case BINDER_WORK_DEAD_BINDER:
5622		seq_printf(m, "%shas dead binder\n", prefix);
5623		break;
5624	case BINDER_WORK_DEAD_BINDER_AND_CLEAR:
5625		seq_printf(m, "%shas cleared dead binder\n", prefix);
5626		break;
5627	case BINDER_WORK_CLEAR_DEATH_NOTIFICATION:
5628		seq_printf(m, "%shas cleared death notification\n", prefix);
5629		break;
 
 
 
 
 
 
5630	default:
5631		seq_printf(m, "%sunknown work: type %d\n", prefix, w->type);
5632		break;
5633	}
5634}
5635
5636static void print_binder_thread_ilocked(struct seq_file *m,
5637					struct binder_thread *thread,
5638					int print_always)
5639{
5640	struct binder_transaction *t;
5641	struct binder_work *w;
5642	size_t start_pos = m->count;
5643	size_t header_pos;
5644
5645	seq_printf(m, "  thread %d: l %02x need_return %d tr %d\n",
5646			thread->pid, thread->looper,
5647			thread->looper_need_return,
5648			atomic_read(&thread->tmp_ref));
5649	header_pos = m->count;
5650	t = thread->transaction_stack;
5651	while (t) {
5652		if (t->from == thread) {
5653			print_binder_transaction_ilocked(m, thread->proc,
5654					"    outgoing transaction", t);
5655			t = t->from_parent;
5656		} else if (t->to_thread == thread) {
5657			print_binder_transaction_ilocked(m, thread->proc,
5658						 "    incoming transaction", t);
5659			t = t->to_parent;
5660		} else {
5661			print_binder_transaction_ilocked(m, thread->proc,
5662					"    bad transaction", t);
5663			t = NULL;
5664		}
5665	}
5666	list_for_each_entry(w, &thread->todo, entry) {
5667		print_binder_work_ilocked(m, thread->proc, "    ",
5668					  "    pending transaction", w);
5669	}
5670	if (!print_always && m->count == header_pos)
5671		m->count = start_pos;
5672}
5673
5674static void print_binder_node_nilocked(struct seq_file *m,
5675				       struct binder_node *node)
5676{
5677	struct binder_ref *ref;
5678	struct binder_work *w;
5679	int count;
5680
5681	count = 0;
5682	hlist_for_each_entry(ref, &node->refs, node_entry)
5683		count++;
5684
5685	seq_printf(m, "  node %d: u%016llx c%016llx hs %d hw %d ls %d lw %d is %d iw %d tr %d",
5686		   node->debug_id, (u64)node->ptr, (u64)node->cookie,
5687		   node->has_strong_ref, node->has_weak_ref,
5688		   node->local_strong_refs, node->local_weak_refs,
5689		   node->internal_strong_refs, count, node->tmp_refs);
5690	if (count) {
5691		seq_puts(m, " proc");
5692		hlist_for_each_entry(ref, &node->refs, node_entry)
5693			seq_printf(m, " %d", ref->proc->pid);
5694	}
5695	seq_puts(m, "\n");
5696	if (node->proc) {
5697		list_for_each_entry(w, &node->async_todo, entry)
5698			print_binder_work_ilocked(m, node->proc, "    ",
5699					  "    pending async transaction", w);
5700	}
5701}
5702
5703static void print_binder_ref_olocked(struct seq_file *m,
5704				     struct binder_ref *ref)
5705{
5706	binder_node_lock(ref->node);
5707	seq_printf(m, "  ref %d: desc %d %snode %d s %d w %d d %pK\n",
5708		   ref->data.debug_id, ref->data.desc,
5709		   ref->node->proc ? "" : "dead ",
5710		   ref->node->debug_id, ref->data.strong,
5711		   ref->data.weak, ref->death);
5712	binder_node_unlock(ref->node);
5713}
5714
5715static void print_binder_proc(struct seq_file *m,
5716			      struct binder_proc *proc, int print_all)
5717{
5718	struct binder_work *w;
5719	struct rb_node *n;
5720	size_t start_pos = m->count;
5721	size_t header_pos;
5722	struct binder_node *last_node = NULL;
5723
5724	seq_printf(m, "proc %d\n", proc->pid);
5725	seq_printf(m, "context %s\n", proc->context->name);
5726	header_pos = m->count;
5727
5728	binder_inner_proc_lock(proc);
5729	for (n = rb_first(&proc->threads); n != NULL; n = rb_next(n))
5730		print_binder_thread_ilocked(m, rb_entry(n, struct binder_thread,
5731						rb_node), print_all);
5732
5733	for (n = rb_first(&proc->nodes); n != NULL; n = rb_next(n)) {
5734		struct binder_node *node = rb_entry(n, struct binder_node,
5735						    rb_node);
5736		if (!print_all && !node->has_async_transaction)
5737			continue;
5738
5739		/*
5740		 * take a temporary reference on the node so it
5741		 * survives and isn't removed from the tree
5742		 * while we print it.
5743		 */
5744		binder_inc_node_tmpref_ilocked(node);
5745		/* Need to drop inner lock to take node lock */
5746		binder_inner_proc_unlock(proc);
5747		if (last_node)
5748			binder_put_node(last_node);
5749		binder_node_inner_lock(node);
5750		print_binder_node_nilocked(m, node);
5751		binder_node_inner_unlock(node);
5752		last_node = node;
5753		binder_inner_proc_lock(proc);
5754	}
5755	binder_inner_proc_unlock(proc);
5756	if (last_node)
5757		binder_put_node(last_node);
5758
5759	if (print_all) {
5760		binder_proc_lock(proc);
5761		for (n = rb_first(&proc->refs_by_desc);
5762		     n != NULL;
5763		     n = rb_next(n))
5764			print_binder_ref_olocked(m, rb_entry(n,
5765							    struct binder_ref,
5766							    rb_node_desc));
5767		binder_proc_unlock(proc);
5768	}
5769	binder_alloc_print_allocated(m, &proc->alloc);
5770	binder_inner_proc_lock(proc);
5771	list_for_each_entry(w, &proc->todo, entry)
5772		print_binder_work_ilocked(m, proc, "  ",
5773					  "  pending transaction", w);
5774	list_for_each_entry(w, &proc->delivered_death, entry) {
5775		seq_puts(m, "  has delivered dead binder\n");
5776		break;
5777	}
 
 
 
 
5778	binder_inner_proc_unlock(proc);
5779	if (!print_all && m->count == header_pos)
5780		m->count = start_pos;
5781}
5782
5783static const char * const binder_return_strings[] = {
5784	"BR_ERROR",
5785	"BR_OK",
5786	"BR_TRANSACTION",
5787	"BR_REPLY",
5788	"BR_ACQUIRE_RESULT",
5789	"BR_DEAD_REPLY",
5790	"BR_TRANSACTION_COMPLETE",
5791	"BR_INCREFS",
5792	"BR_ACQUIRE",
5793	"BR_RELEASE",
5794	"BR_DECREFS",
5795	"BR_ATTEMPT_ACQUIRE",
5796	"BR_NOOP",
5797	"BR_SPAWN_LOOPER",
5798	"BR_FINISHED",
5799	"BR_DEAD_BINDER",
5800	"BR_CLEAR_DEATH_NOTIFICATION_DONE",
5801	"BR_FAILED_REPLY"
 
 
 
 
 
5802};
5803
5804static const char * const binder_command_strings[] = {
5805	"BC_TRANSACTION",
5806	"BC_REPLY",
5807	"BC_ACQUIRE_RESULT",
5808	"BC_FREE_BUFFER",
5809	"BC_INCREFS",
5810	"BC_ACQUIRE",
5811	"BC_RELEASE",
5812	"BC_DECREFS",
5813	"BC_INCREFS_DONE",
5814	"BC_ACQUIRE_DONE",
5815	"BC_ATTEMPT_ACQUIRE",
5816	"BC_REGISTER_LOOPER",
5817	"BC_ENTER_LOOPER",
5818	"BC_EXIT_LOOPER",
5819	"BC_REQUEST_DEATH_NOTIFICATION",
5820	"BC_CLEAR_DEATH_NOTIFICATION",
5821	"BC_DEAD_BINDER_DONE",
5822	"BC_TRANSACTION_SG",
5823	"BC_REPLY_SG",
 
 
 
5824};
5825
5826static const char * const binder_objstat_strings[] = {
5827	"proc",
5828	"thread",
5829	"node",
5830	"ref",
5831	"death",
5832	"transaction",
5833	"transaction_complete"
 
5834};
5835
5836static void print_binder_stats(struct seq_file *m, const char *prefix,
5837			       struct binder_stats *stats)
5838{
5839	int i;
5840
5841	BUILD_BUG_ON(ARRAY_SIZE(stats->bc) !=
5842		     ARRAY_SIZE(binder_command_strings));
5843	for (i = 0; i < ARRAY_SIZE(stats->bc); i++) {
5844		int temp = atomic_read(&stats->bc[i]);
5845
5846		if (temp)
5847			seq_printf(m, "%s%s: %d\n", prefix,
5848				   binder_command_strings[i], temp);
5849	}
5850
5851	BUILD_BUG_ON(ARRAY_SIZE(stats->br) !=
5852		     ARRAY_SIZE(binder_return_strings));
5853	for (i = 0; i < ARRAY_SIZE(stats->br); i++) {
5854		int temp = atomic_read(&stats->br[i]);
5855
5856		if (temp)
5857			seq_printf(m, "%s%s: %d\n", prefix,
5858				   binder_return_strings[i], temp);
5859	}
5860
5861	BUILD_BUG_ON(ARRAY_SIZE(stats->obj_created) !=
5862		     ARRAY_SIZE(binder_objstat_strings));
5863	BUILD_BUG_ON(ARRAY_SIZE(stats->obj_created) !=
5864		     ARRAY_SIZE(stats->obj_deleted));
5865	for (i = 0; i < ARRAY_SIZE(stats->obj_created); i++) {
5866		int created = atomic_read(&stats->obj_created[i]);
5867		int deleted = atomic_read(&stats->obj_deleted[i]);
5868
5869		if (created || deleted)
5870			seq_printf(m, "%s%s: active %d total %d\n",
5871				prefix,
5872				binder_objstat_strings[i],
5873				created - deleted,
5874				created);
5875	}
5876}
5877
5878static void print_binder_proc_stats(struct seq_file *m,
5879				    struct binder_proc *proc)
5880{
5881	struct binder_work *w;
5882	struct binder_thread *thread;
5883	struct rb_node *n;
5884	int count, strong, weak, ready_threads;
5885	size_t free_async_space =
5886		binder_alloc_get_free_async_space(&proc->alloc);
5887
5888	seq_printf(m, "proc %d\n", proc->pid);
5889	seq_printf(m, "context %s\n", proc->context->name);
5890	count = 0;
5891	ready_threads = 0;
5892	binder_inner_proc_lock(proc);
5893	for (n = rb_first(&proc->threads); n != NULL; n = rb_next(n))
5894		count++;
5895
5896	list_for_each_entry(thread, &proc->waiting_threads, waiting_thread_node)
5897		ready_threads++;
5898
5899	seq_printf(m, "  threads: %d\n", count);
5900	seq_printf(m, "  requested threads: %d+%d/%d\n"
5901			"  ready threads %d\n"
5902			"  free async space %zd\n", proc->requested_threads,
5903			proc->requested_threads_started, proc->max_threads,
5904			ready_threads,
5905			free_async_space);
5906	count = 0;
5907	for (n = rb_first(&proc->nodes); n != NULL; n = rb_next(n))
5908		count++;
5909	binder_inner_proc_unlock(proc);
5910	seq_printf(m, "  nodes: %d\n", count);
5911	count = 0;
5912	strong = 0;
5913	weak = 0;
5914	binder_proc_lock(proc);
5915	for (n = rb_first(&proc->refs_by_desc); n != NULL; n = rb_next(n)) {
5916		struct binder_ref *ref = rb_entry(n, struct binder_ref,
5917						  rb_node_desc);
5918		count++;
5919		strong += ref->data.strong;
5920		weak += ref->data.weak;
5921	}
5922	binder_proc_unlock(proc);
5923	seq_printf(m, "  refs: %d s %d w %d\n", count, strong, weak);
5924
5925	count = binder_alloc_get_allocated_count(&proc->alloc);
5926	seq_printf(m, "  buffers: %d\n", count);
5927
5928	binder_alloc_print_pages(m, &proc->alloc);
5929
5930	count = 0;
5931	binder_inner_proc_lock(proc);
5932	list_for_each_entry(w, &proc->todo, entry) {
5933		if (w->type == BINDER_WORK_TRANSACTION)
5934			count++;
5935	}
5936	binder_inner_proc_unlock(proc);
5937	seq_printf(m, "  pending transactions: %d\n", count);
5938
5939	print_binder_stats(m, "  ", &proc->stats);
5940}
5941
5942
5943int binder_state_show(struct seq_file *m, void *unused)
5944{
5945	struct binder_proc *proc;
5946	struct binder_node *node;
5947	struct binder_node *last_node = NULL;
5948
5949	seq_puts(m, "binder state:\n");
5950
5951	spin_lock(&binder_dead_nodes_lock);
5952	if (!hlist_empty(&binder_dead_nodes))
5953		seq_puts(m, "dead nodes:\n");
5954	hlist_for_each_entry(node, &binder_dead_nodes, dead_node) {
5955		/*
5956		 * take a temporary reference on the node so it
5957		 * survives and isn't removed from the list
5958		 * while we print it.
5959		 */
5960		node->tmp_refs++;
5961		spin_unlock(&binder_dead_nodes_lock);
5962		if (last_node)
5963			binder_put_node(last_node);
5964		binder_node_lock(node);
5965		print_binder_node_nilocked(m, node);
5966		binder_node_unlock(node);
5967		last_node = node;
5968		spin_lock(&binder_dead_nodes_lock);
5969	}
5970	spin_unlock(&binder_dead_nodes_lock);
5971	if (last_node)
5972		binder_put_node(last_node);
5973
5974	mutex_lock(&binder_procs_lock);
5975	hlist_for_each_entry(proc, &binder_procs, proc_node)
5976		print_binder_proc(m, proc, 1);
5977	mutex_unlock(&binder_procs_lock);
5978
5979	return 0;
5980}
5981
5982int binder_stats_show(struct seq_file *m, void *unused)
5983{
5984	struct binder_proc *proc;
5985
5986	seq_puts(m, "binder stats:\n");
5987
5988	print_binder_stats(m, "", &binder_stats);
5989
5990	mutex_lock(&binder_procs_lock);
5991	hlist_for_each_entry(proc, &binder_procs, proc_node)
5992		print_binder_proc_stats(m, proc);
5993	mutex_unlock(&binder_procs_lock);
5994
5995	return 0;
5996}
5997
5998int binder_transactions_show(struct seq_file *m, void *unused)
5999{
6000	struct binder_proc *proc;
6001
6002	seq_puts(m, "binder transactions:\n");
6003	mutex_lock(&binder_procs_lock);
6004	hlist_for_each_entry(proc, &binder_procs, proc_node)
6005		print_binder_proc(m, proc, 0);
6006	mutex_unlock(&binder_procs_lock);
6007
6008	return 0;
6009}
6010
6011static int proc_show(struct seq_file *m, void *unused)
6012{
6013	struct binder_proc *itr;
6014	int pid = (unsigned long)m->private;
6015
6016	mutex_lock(&binder_procs_lock);
6017	hlist_for_each_entry(itr, &binder_procs, proc_node) {
6018		if (itr->pid == pid) {
6019			seq_puts(m, "binder proc state:\n");
6020			print_binder_proc(m, itr, 1);
6021		}
6022	}
6023	mutex_unlock(&binder_procs_lock);
6024
6025	return 0;
6026}
6027
6028static void print_binder_transaction_log_entry(struct seq_file *m,
6029					struct binder_transaction_log_entry *e)
6030{
6031	int debug_id = READ_ONCE(e->debug_id_done);
6032	/*
6033	 * read barrier to guarantee debug_id_done read before
6034	 * we print the log values
6035	 */
6036	smp_rmb();
6037	seq_printf(m,
6038		   "%d: %s from %d:%d to %d:%d context %s node %d handle %d size %d:%d ret %d/%d l=%d",
6039		   e->debug_id, (e->call_type == 2) ? "reply" :
6040		   ((e->call_type == 1) ? "async" : "call "), e->from_proc,
6041		   e->from_thread, e->to_proc, e->to_thread, e->context_name,
6042		   e->to_node, e->target_handle, e->data_size, e->offsets_size,
6043		   e->return_error, e->return_error_param,
6044		   e->return_error_line);
6045	/*
6046	 * read-barrier to guarantee read of debug_id_done after
6047	 * done printing the fields of the entry
6048	 */
6049	smp_rmb();
6050	seq_printf(m, debug_id && debug_id == READ_ONCE(e->debug_id_done) ?
6051			"\n" : " (incomplete)\n");
6052}
6053
6054int binder_transaction_log_show(struct seq_file *m, void *unused)
6055{
6056	struct binder_transaction_log *log = m->private;
6057	unsigned int log_cur = atomic_read(&log->cur);
6058	unsigned int count;
6059	unsigned int cur;
6060	int i;
6061
6062	count = log_cur + 1;
6063	cur = count < ARRAY_SIZE(log->entry) && !log->full ?
6064		0 : count % ARRAY_SIZE(log->entry);
6065	if (count > ARRAY_SIZE(log->entry) || log->full)
6066		count = ARRAY_SIZE(log->entry);
6067	for (i = 0; i < count; i++) {
6068		unsigned int index = cur++ % ARRAY_SIZE(log->entry);
6069
6070		print_binder_transaction_log_entry(m, &log->entry[index]);
6071	}
6072	return 0;
6073}
6074
6075const struct file_operations binder_fops = {
6076	.owner = THIS_MODULE,
6077	.poll = binder_poll,
6078	.unlocked_ioctl = binder_ioctl,
6079	.compat_ioctl = compat_ptr_ioctl,
6080	.mmap = binder_mmap,
6081	.open = binder_open,
6082	.flush = binder_flush,
6083	.release = binder_release,
6084};
6085
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
6086static int __init init_binder_device(const char *name)
6087{
6088	int ret;
6089	struct binder_device *binder_device;
6090
6091	binder_device = kzalloc(sizeof(*binder_device), GFP_KERNEL);
6092	if (!binder_device)
6093		return -ENOMEM;
6094
6095	binder_device->miscdev.fops = &binder_fops;
6096	binder_device->miscdev.minor = MISC_DYNAMIC_MINOR;
6097	binder_device->miscdev.name = name;
6098
6099	refcount_set(&binder_device->ref, 1);
6100	binder_device->context.binder_context_mgr_uid = INVALID_UID;
6101	binder_device->context.name = name;
6102	mutex_init(&binder_device->context.context_mgr_node_lock);
6103
6104	ret = misc_register(&binder_device->miscdev);
6105	if (ret < 0) {
6106		kfree(binder_device);
6107		return ret;
6108	}
6109
6110	hlist_add_head(&binder_device->hlist, &binder_devices);
6111
6112	return ret;
6113}
6114
6115static int __init binder_init(void)
6116{
6117	int ret;
6118	char *device_name, *device_tmp;
6119	struct binder_device *device;
6120	struct hlist_node *tmp;
6121	char *device_names = NULL;
 
6122
6123	ret = binder_alloc_shrinker_init();
6124	if (ret)
6125		return ret;
6126
6127	atomic_set(&binder_transaction_log.cur, ~0U);
6128	atomic_set(&binder_transaction_log_failed.cur, ~0U);
6129
6130	binder_debugfs_dir_entry_root = debugfs_create_dir("binder", NULL);
6131	if (binder_debugfs_dir_entry_root)
6132		binder_debugfs_dir_entry_proc = debugfs_create_dir("proc",
6133						 binder_debugfs_dir_entry_root);
6134
6135	if (binder_debugfs_dir_entry_root) {
6136		debugfs_create_file("state",
6137				    0444,
6138				    binder_debugfs_dir_entry_root,
6139				    NULL,
6140				    &binder_state_fops);
6141		debugfs_create_file("stats",
6142				    0444,
6143				    binder_debugfs_dir_entry_root,
6144				    NULL,
6145				    &binder_stats_fops);
6146		debugfs_create_file("transactions",
6147				    0444,
6148				    binder_debugfs_dir_entry_root,
6149				    NULL,
6150				    &binder_transactions_fops);
6151		debugfs_create_file("transaction_log",
6152				    0444,
6153				    binder_debugfs_dir_entry_root,
6154				    &binder_transaction_log,
6155				    &binder_transaction_log_fops);
6156		debugfs_create_file("failed_transaction_log",
6157				    0444,
6158				    binder_debugfs_dir_entry_root,
6159				    &binder_transaction_log_failed,
6160				    &binder_transaction_log_fops);
6161	}
6162
6163	if (!IS_ENABLED(CONFIG_ANDROID_BINDERFS) &&
6164	    strcmp(binder_devices_param, "") != 0) {
6165		/*
6166		* Copy the module_parameter string, because we don't want to
6167		* tokenize it in-place.
6168		 */
6169		device_names = kstrdup(binder_devices_param, GFP_KERNEL);
6170		if (!device_names) {
6171			ret = -ENOMEM;
6172			goto err_alloc_device_names_failed;
6173		}
6174
6175		device_tmp = device_names;
6176		while ((device_name = strsep(&device_tmp, ","))) {
6177			ret = init_binder_device(device_name);
6178			if (ret)
6179				goto err_init_binder_device_failed;
6180		}
6181	}
6182
6183	ret = init_binderfs();
6184	if (ret)
6185		goto err_init_binder_device_failed;
6186
6187	return ret;
6188
6189err_init_binder_device_failed:
6190	hlist_for_each_entry_safe(device, tmp, &binder_devices, hlist) {
6191		misc_deregister(&device->miscdev);
6192		hlist_del(&device->hlist);
6193		kfree(device);
6194	}
6195
6196	kfree(device_names);
6197
6198err_alloc_device_names_failed:
6199	debugfs_remove_recursive(binder_debugfs_dir_entry_root);
 
6200
6201	return ret;
6202}
6203
6204device_initcall(binder_init);
6205
6206#define CREATE_TRACE_POINTS
6207#include "binder_trace.h"
6208
6209MODULE_LICENSE("GPL v2");
v6.13.7
   1// SPDX-License-Identifier: GPL-2.0-only
   2/* binder.c
   3 *
   4 * Android IPC Subsystem
   5 *
   6 * Copyright (C) 2007-2008 Google, Inc.
   7 */
   8
   9/*
  10 * Locking overview
  11 *
  12 * There are 3 main spinlocks which must be acquired in the
  13 * order shown:
  14 *
  15 * 1) proc->outer_lock : protects binder_ref
  16 *    binder_proc_lock() and binder_proc_unlock() are
  17 *    used to acq/rel.
  18 * 2) node->lock : protects most fields of binder_node.
  19 *    binder_node_lock() and binder_node_unlock() are
  20 *    used to acq/rel
  21 * 3) proc->inner_lock : protects the thread and node lists
  22 *    (proc->threads, proc->waiting_threads, proc->nodes)
  23 *    and all todo lists associated with the binder_proc
  24 *    (proc->todo, thread->todo, proc->delivered_death and
  25 *    node->async_todo), as well as thread->transaction_stack
  26 *    binder_inner_proc_lock() and binder_inner_proc_unlock()
  27 *    are used to acq/rel
  28 *
  29 * Any lock under procA must never be nested under any lock at the same
  30 * level or below on procB.
  31 *
  32 * Functions that require a lock held on entry indicate which lock
  33 * in the suffix of the function name:
  34 *
  35 * foo_olocked() : requires node->outer_lock
  36 * foo_nlocked() : requires node->lock
  37 * foo_ilocked() : requires proc->inner_lock
  38 * foo_oilocked(): requires proc->outer_lock and proc->inner_lock
  39 * foo_nilocked(): requires node->lock and proc->inner_lock
  40 * ...
  41 */
  42
  43#define pr_fmt(fmt) KBUILD_MODNAME ": " fmt
  44
  45#include <linux/fdtable.h>
  46#include <linux/file.h>
  47#include <linux/freezer.h>
  48#include <linux/fs.h>
  49#include <linux/list.h>
  50#include <linux/miscdevice.h>
  51#include <linux/module.h>
  52#include <linux/mutex.h>
  53#include <linux/nsproxy.h>
  54#include <linux/poll.h>
  55#include <linux/debugfs.h>
  56#include <linux/rbtree.h>
  57#include <linux/sched/signal.h>
  58#include <linux/sched/mm.h>
  59#include <linux/seq_file.h>
  60#include <linux/string.h>
  61#include <linux/uaccess.h>
  62#include <linux/pid_namespace.h>
  63#include <linux/security.h>
  64#include <linux/spinlock.h>
  65#include <linux/ratelimit.h>
  66#include <linux/syscalls.h>
  67#include <linux/task_work.h>
  68#include <linux/sizes.h>
  69#include <linux/ktime.h>
  70
  71#include <uapi/linux/android/binder.h>
 
  72
  73#include <linux/cacheflush.h>
  74
 
  75#include "binder_internal.h"
  76#include "binder_trace.h"
  77
  78static HLIST_HEAD(binder_deferred_list);
  79static DEFINE_MUTEX(binder_deferred_lock);
  80
  81static HLIST_HEAD(binder_devices);
  82static HLIST_HEAD(binder_procs);
  83static DEFINE_MUTEX(binder_procs_lock);
  84
  85static HLIST_HEAD(binder_dead_nodes);
  86static DEFINE_SPINLOCK(binder_dead_nodes_lock);
  87
  88static struct dentry *binder_debugfs_dir_entry_root;
  89static struct dentry *binder_debugfs_dir_entry_proc;
  90static atomic_t binder_last_id;
  91
  92static int proc_show(struct seq_file *m, void *unused);
  93DEFINE_SHOW_ATTRIBUTE(proc);
  94
  95#define FORBIDDEN_MMAP_FLAGS                (VM_WRITE)
  96
  97enum {
  98	BINDER_DEBUG_USER_ERROR             = 1U << 0,
  99	BINDER_DEBUG_FAILED_TRANSACTION     = 1U << 1,
 100	BINDER_DEBUG_DEAD_TRANSACTION       = 1U << 2,
 101	BINDER_DEBUG_OPEN_CLOSE             = 1U << 3,
 102	BINDER_DEBUG_DEAD_BINDER            = 1U << 4,
 103	BINDER_DEBUG_DEATH_NOTIFICATION     = 1U << 5,
 104	BINDER_DEBUG_READ_WRITE             = 1U << 6,
 105	BINDER_DEBUG_USER_REFS              = 1U << 7,
 106	BINDER_DEBUG_THREADS                = 1U << 8,
 107	BINDER_DEBUG_TRANSACTION            = 1U << 9,
 108	BINDER_DEBUG_TRANSACTION_COMPLETE   = 1U << 10,
 109	BINDER_DEBUG_FREE_BUFFER            = 1U << 11,
 110	BINDER_DEBUG_INTERNAL_REFS          = 1U << 12,
 111	BINDER_DEBUG_PRIORITY_CAP           = 1U << 13,
 112	BINDER_DEBUG_SPINLOCKS              = 1U << 14,
 113};
 114static uint32_t binder_debug_mask = BINDER_DEBUG_USER_ERROR |
 115	BINDER_DEBUG_FAILED_TRANSACTION | BINDER_DEBUG_DEAD_TRANSACTION;
 116module_param_named(debug_mask, binder_debug_mask, uint, 0644);
 117
 118char *binder_devices_param = CONFIG_ANDROID_BINDER_DEVICES;
 119module_param_named(devices, binder_devices_param, charp, 0444);
 120
 121static DECLARE_WAIT_QUEUE_HEAD(binder_user_error_wait);
 122static int binder_stop_on_user_error;
 123
 124static int binder_set_stop_on_user_error(const char *val,
 125					 const struct kernel_param *kp)
 126{
 127	int ret;
 128
 129	ret = param_set_int(val, kp);
 130	if (binder_stop_on_user_error < 2)
 131		wake_up(&binder_user_error_wait);
 132	return ret;
 133}
 134module_param_call(stop_on_user_error, binder_set_stop_on_user_error,
 135	param_get_int, &binder_stop_on_user_error, 0644);
 136
 137static __printf(2, 3) void binder_debug(int mask, const char *format, ...)
 138{
 139	struct va_format vaf;
 140	va_list args;
 141
 142	if (binder_debug_mask & mask) {
 143		va_start(args, format);
 144		vaf.va = &args;
 145		vaf.fmt = format;
 146		pr_info_ratelimited("%pV", &vaf);
 147		va_end(args);
 148	}
 149}
 150
 151#define binder_txn_error(x...) \
 152	binder_debug(BINDER_DEBUG_FAILED_TRANSACTION, x)
 153
 154static __printf(1, 2) void binder_user_error(const char *format, ...)
 155{
 156	struct va_format vaf;
 157	va_list args;
 158
 159	if (binder_debug_mask & BINDER_DEBUG_USER_ERROR) {
 160		va_start(args, format);
 161		vaf.va = &args;
 162		vaf.fmt = format;
 163		pr_info_ratelimited("%pV", &vaf);
 164		va_end(args);
 165	}
 166
 167	if (binder_stop_on_user_error)
 168		binder_stop_on_user_error = 2;
 169}
 170
 171#define binder_set_extended_error(ee, _id, _command, _param) \
 172	do { \
 173		(ee)->id = _id; \
 174		(ee)->command = _command; \
 175		(ee)->param = _param; \
 
 176	} while (0)
 177
 178#define to_flat_binder_object(hdr) \
 179	container_of(hdr, struct flat_binder_object, hdr)
 180
 181#define to_binder_fd_object(hdr) container_of(hdr, struct binder_fd_object, hdr)
 182
 183#define to_binder_buffer_object(hdr) \
 184	container_of(hdr, struct binder_buffer_object, hdr)
 185
 186#define to_binder_fd_array_object(hdr) \
 187	container_of(hdr, struct binder_fd_array_object, hdr)
 188
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 189static struct binder_stats binder_stats;
 190
 191static inline void binder_stats_deleted(enum binder_stat_types type)
 192{
 193	atomic_inc(&binder_stats.obj_deleted[type]);
 194}
 195
 196static inline void binder_stats_created(enum binder_stat_types type)
 197{
 198	atomic_inc(&binder_stats.obj_created[type]);
 199}
 200
 201struct binder_transaction_log_entry {
 202	int debug_id;
 203	int debug_id_done;
 204	int call_type;
 205	int from_proc;
 206	int from_thread;
 207	int target_handle;
 208	int to_proc;
 209	int to_thread;
 210	int to_node;
 211	int data_size;
 212	int offsets_size;
 213	int return_error_line;
 214	uint32_t return_error;
 215	uint32_t return_error_param;
 216	char context_name[BINDERFS_MAX_NAME + 1];
 217};
 218
 219struct binder_transaction_log {
 220	atomic_t cur;
 221	bool full;
 222	struct binder_transaction_log_entry entry[32];
 223};
 224
 225static struct binder_transaction_log binder_transaction_log;
 226static struct binder_transaction_log binder_transaction_log_failed;
 227
 228static struct binder_transaction_log_entry *binder_transaction_log_add(
 229	struct binder_transaction_log *log)
 230{
 231	struct binder_transaction_log_entry *e;
 232	unsigned int cur = atomic_inc_return(&log->cur);
 233
 234	if (cur >= ARRAY_SIZE(log->entry))
 235		log->full = true;
 236	e = &log->entry[cur % ARRAY_SIZE(log->entry)];
 237	WRITE_ONCE(e->debug_id_done, 0);
 238	/*
 239	 * write-barrier to synchronize access to e->debug_id_done.
 240	 * We make sure the initialized 0 value is seen before
 241	 * memset() other fields are zeroed by memset.
 242	 */
 243	smp_wmb();
 244	memset(e, 0, sizeof(*e));
 245	return e;
 246}
 247
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 248enum binder_deferred_state {
 249	BINDER_DEFERRED_FLUSH        = 0x01,
 250	BINDER_DEFERRED_RELEASE      = 0x02,
 251};
 252
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 253enum {
 254	BINDER_LOOPER_STATE_REGISTERED  = 0x01,
 255	BINDER_LOOPER_STATE_ENTERED     = 0x02,
 256	BINDER_LOOPER_STATE_EXITED      = 0x04,
 257	BINDER_LOOPER_STATE_INVALID     = 0x08,
 258	BINDER_LOOPER_STATE_WAITING     = 0x10,
 259	BINDER_LOOPER_STATE_POLL        = 0x20,
 260};
 261
 262/**
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 263 * binder_proc_lock() - Acquire outer lock for given binder_proc
 264 * @proc:         struct binder_proc to acquire
 265 *
 266 * Acquires proc->outer_lock. Used to protect binder_ref
 267 * structures associated with the given proc.
 268 */
 269#define binder_proc_lock(proc) _binder_proc_lock(proc, __LINE__)
 270static void
 271_binder_proc_lock(struct binder_proc *proc, int line)
 272	__acquires(&proc->outer_lock)
 273{
 274	binder_debug(BINDER_DEBUG_SPINLOCKS,
 275		     "%s: line=%d\n", __func__, line);
 276	spin_lock(&proc->outer_lock);
 277}
 278
 279/**
 280 * binder_proc_unlock() - Release outer lock for given binder_proc
 281 * @proc:                struct binder_proc to acquire
 282 *
 283 * Release lock acquired via binder_proc_lock()
 284 */
 285#define binder_proc_unlock(proc) _binder_proc_unlock(proc, __LINE__)
 286static void
 287_binder_proc_unlock(struct binder_proc *proc, int line)
 288	__releases(&proc->outer_lock)
 289{
 290	binder_debug(BINDER_DEBUG_SPINLOCKS,
 291		     "%s: line=%d\n", __func__, line);
 292	spin_unlock(&proc->outer_lock);
 293}
 294
 295/**
 296 * binder_inner_proc_lock() - Acquire inner lock for given binder_proc
 297 * @proc:         struct binder_proc to acquire
 298 *
 299 * Acquires proc->inner_lock. Used to protect todo lists
 300 */
 301#define binder_inner_proc_lock(proc) _binder_inner_proc_lock(proc, __LINE__)
 302static void
 303_binder_inner_proc_lock(struct binder_proc *proc, int line)
 304	__acquires(&proc->inner_lock)
 305{
 306	binder_debug(BINDER_DEBUG_SPINLOCKS,
 307		     "%s: line=%d\n", __func__, line);
 308	spin_lock(&proc->inner_lock);
 309}
 310
 311/**
 312 * binder_inner_proc_unlock() - Release inner lock for given binder_proc
 313 * @proc:         struct binder_proc to acquire
 314 *
 315 * Release lock acquired via binder_inner_proc_lock()
 316 */
 317#define binder_inner_proc_unlock(proc) _binder_inner_proc_unlock(proc, __LINE__)
 318static void
 319_binder_inner_proc_unlock(struct binder_proc *proc, int line)
 320	__releases(&proc->inner_lock)
 321{
 322	binder_debug(BINDER_DEBUG_SPINLOCKS,
 323		     "%s: line=%d\n", __func__, line);
 324	spin_unlock(&proc->inner_lock);
 325}
 326
 327/**
 328 * binder_node_lock() - Acquire spinlock for given binder_node
 329 * @node:         struct binder_node to acquire
 330 *
 331 * Acquires node->lock. Used to protect binder_node fields
 332 */
 333#define binder_node_lock(node) _binder_node_lock(node, __LINE__)
 334static void
 335_binder_node_lock(struct binder_node *node, int line)
 336	__acquires(&node->lock)
 337{
 338	binder_debug(BINDER_DEBUG_SPINLOCKS,
 339		     "%s: line=%d\n", __func__, line);
 340	spin_lock(&node->lock);
 341}
 342
 343/**
 344 * binder_node_unlock() - Release spinlock for given binder_proc
 345 * @node:         struct binder_node to acquire
 346 *
 347 * Release lock acquired via binder_node_lock()
 348 */
 349#define binder_node_unlock(node) _binder_node_unlock(node, __LINE__)
 350static void
 351_binder_node_unlock(struct binder_node *node, int line)
 352	__releases(&node->lock)
 353{
 354	binder_debug(BINDER_DEBUG_SPINLOCKS,
 355		     "%s: line=%d\n", __func__, line);
 356	spin_unlock(&node->lock);
 357}
 358
 359/**
 360 * binder_node_inner_lock() - Acquire node and inner locks
 361 * @node:         struct binder_node to acquire
 362 *
 363 * Acquires node->lock. If node->proc also acquires
 364 * proc->inner_lock. Used to protect binder_node fields
 365 */
 366#define binder_node_inner_lock(node) _binder_node_inner_lock(node, __LINE__)
 367static void
 368_binder_node_inner_lock(struct binder_node *node, int line)
 369	__acquires(&node->lock) __acquires(&node->proc->inner_lock)
 370{
 371	binder_debug(BINDER_DEBUG_SPINLOCKS,
 372		     "%s: line=%d\n", __func__, line);
 373	spin_lock(&node->lock);
 374	if (node->proc)
 375		binder_inner_proc_lock(node->proc);
 376	else
 377		/* annotation for sparse */
 378		__acquire(&node->proc->inner_lock);
 379}
 380
 381/**
 382 * binder_node_inner_unlock() - Release node and inner locks
 383 * @node:         struct binder_node to acquire
 384 *
 385 * Release lock acquired via binder_node_lock()
 386 */
 387#define binder_node_inner_unlock(node) _binder_node_inner_unlock(node, __LINE__)
 388static void
 389_binder_node_inner_unlock(struct binder_node *node, int line)
 390	__releases(&node->lock) __releases(&node->proc->inner_lock)
 391{
 392	struct binder_proc *proc = node->proc;
 393
 394	binder_debug(BINDER_DEBUG_SPINLOCKS,
 395		     "%s: line=%d\n", __func__, line);
 396	if (proc)
 397		binder_inner_proc_unlock(proc);
 398	else
 399		/* annotation for sparse */
 400		__release(&node->proc->inner_lock);
 401	spin_unlock(&node->lock);
 402}
 403
 404static bool binder_worklist_empty_ilocked(struct list_head *list)
 405{
 406	return list_empty(list);
 407}
 408
 409/**
 410 * binder_worklist_empty() - Check if no items on the work list
 411 * @proc:       binder_proc associated with list
 412 * @list:	list to check
 413 *
 414 * Return: true if there are no items on list, else false
 415 */
 416static bool binder_worklist_empty(struct binder_proc *proc,
 417				  struct list_head *list)
 418{
 419	bool ret;
 420
 421	binder_inner_proc_lock(proc);
 422	ret = binder_worklist_empty_ilocked(list);
 423	binder_inner_proc_unlock(proc);
 424	return ret;
 425}
 426
 427/**
 428 * binder_enqueue_work_ilocked() - Add an item to the work list
 429 * @work:         struct binder_work to add to list
 430 * @target_list:  list to add work to
 431 *
 432 * Adds the work to the specified list. Asserts that work
 433 * is not already on a list.
 434 *
 435 * Requires the proc->inner_lock to be held.
 436 */
 437static void
 438binder_enqueue_work_ilocked(struct binder_work *work,
 439			   struct list_head *target_list)
 440{
 441	BUG_ON(target_list == NULL);
 442	BUG_ON(work->entry.next && !list_empty(&work->entry));
 443	list_add_tail(&work->entry, target_list);
 444}
 445
 446/**
 447 * binder_enqueue_deferred_thread_work_ilocked() - Add deferred thread work
 448 * @thread:       thread to queue work to
 449 * @work:         struct binder_work to add to list
 450 *
 451 * Adds the work to the todo list of the thread. Doesn't set the process_todo
 452 * flag, which means that (if it wasn't already set) the thread will go to
 453 * sleep without handling this work when it calls read.
 454 *
 455 * Requires the proc->inner_lock to be held.
 456 */
 457static void
 458binder_enqueue_deferred_thread_work_ilocked(struct binder_thread *thread,
 459					    struct binder_work *work)
 460{
 461	WARN_ON(!list_empty(&thread->waiting_thread_node));
 462	binder_enqueue_work_ilocked(work, &thread->todo);
 463}
 464
 465/**
 466 * binder_enqueue_thread_work_ilocked() - Add an item to the thread work list
 467 * @thread:       thread to queue work to
 468 * @work:         struct binder_work to add to list
 469 *
 470 * Adds the work to the todo list of the thread, and enables processing
 471 * of the todo queue.
 472 *
 473 * Requires the proc->inner_lock to be held.
 474 */
 475static void
 476binder_enqueue_thread_work_ilocked(struct binder_thread *thread,
 477				   struct binder_work *work)
 478{
 479	WARN_ON(!list_empty(&thread->waiting_thread_node));
 480	binder_enqueue_work_ilocked(work, &thread->todo);
 481
 482	/* (e)poll-based threads require an explicit wakeup signal when
 483	 * queuing their own work; they rely on these events to consume
 484	 * messages without I/O block. Without it, threads risk waiting
 485	 * indefinitely without handling the work.
 486	 */
 487	if (thread->looper & BINDER_LOOPER_STATE_POLL &&
 488	    thread->pid == current->pid && !thread->process_todo)
 489		wake_up_interruptible_sync(&thread->wait);
 490
 491	thread->process_todo = true;
 492}
 493
 494/**
 495 * binder_enqueue_thread_work() - Add an item to the thread work list
 496 * @thread:       thread to queue work to
 497 * @work:         struct binder_work to add to list
 498 *
 499 * Adds the work to the todo list of the thread, and enables processing
 500 * of the todo queue.
 501 */
 502static void
 503binder_enqueue_thread_work(struct binder_thread *thread,
 504			   struct binder_work *work)
 505{
 506	binder_inner_proc_lock(thread->proc);
 507	binder_enqueue_thread_work_ilocked(thread, work);
 508	binder_inner_proc_unlock(thread->proc);
 509}
 510
 511static void
 512binder_dequeue_work_ilocked(struct binder_work *work)
 513{
 514	list_del_init(&work->entry);
 515}
 516
 517/**
 518 * binder_dequeue_work() - Removes an item from the work list
 519 * @proc:         binder_proc associated with list
 520 * @work:         struct binder_work to remove from list
 521 *
 522 * Removes the specified work item from whatever list it is on.
 523 * Can safely be called if work is not on any list.
 524 */
 525static void
 526binder_dequeue_work(struct binder_proc *proc, struct binder_work *work)
 527{
 528	binder_inner_proc_lock(proc);
 529	binder_dequeue_work_ilocked(work);
 530	binder_inner_proc_unlock(proc);
 531}
 532
 533static struct binder_work *binder_dequeue_work_head_ilocked(
 534					struct list_head *list)
 535{
 536	struct binder_work *w;
 537
 538	w = list_first_entry_or_null(list, struct binder_work, entry);
 539	if (w)
 540		list_del_init(&w->entry);
 541	return w;
 542}
 543
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 544static void
 545binder_defer_work(struct binder_proc *proc, enum binder_deferred_state defer);
 546static void binder_free_thread(struct binder_thread *thread);
 547static void binder_free_proc(struct binder_proc *proc);
 548static void binder_inc_node_tmpref_ilocked(struct binder_node *node);
 549
 550static bool binder_has_work_ilocked(struct binder_thread *thread,
 551				    bool do_proc_work)
 552{
 553	return thread->process_todo ||
 554		thread->looper_need_return ||
 555		(do_proc_work &&
 556		 !binder_worklist_empty_ilocked(&thread->proc->todo));
 557}
 558
 559static bool binder_has_work(struct binder_thread *thread, bool do_proc_work)
 560{
 561	bool has_work;
 562
 563	binder_inner_proc_lock(thread->proc);
 564	has_work = binder_has_work_ilocked(thread, do_proc_work);
 565	binder_inner_proc_unlock(thread->proc);
 566
 567	return has_work;
 568}
 569
 570static bool binder_available_for_proc_work_ilocked(struct binder_thread *thread)
 571{
 572	return !thread->transaction_stack &&
 573		binder_worklist_empty_ilocked(&thread->todo);
 
 
 574}
 575
 576static void binder_wakeup_poll_threads_ilocked(struct binder_proc *proc,
 577					       bool sync)
 578{
 579	struct rb_node *n;
 580	struct binder_thread *thread;
 581
 582	for (n = rb_first(&proc->threads); n != NULL; n = rb_next(n)) {
 583		thread = rb_entry(n, struct binder_thread, rb_node);
 584		if (thread->looper & BINDER_LOOPER_STATE_POLL &&
 585		    binder_available_for_proc_work_ilocked(thread)) {
 586			if (sync)
 587				wake_up_interruptible_sync(&thread->wait);
 588			else
 589				wake_up_interruptible(&thread->wait);
 590		}
 591	}
 592}
 593
 594/**
 595 * binder_select_thread_ilocked() - selects a thread for doing proc work.
 596 * @proc:	process to select a thread from
 597 *
 598 * Note that calling this function moves the thread off the waiting_threads
 599 * list, so it can only be woken up by the caller of this function, or a
 600 * signal. Therefore, callers *should* always wake up the thread this function
 601 * returns.
 602 *
 603 * Return:	If there's a thread currently waiting for process work,
 604 *		returns that thread. Otherwise returns NULL.
 605 */
 606static struct binder_thread *
 607binder_select_thread_ilocked(struct binder_proc *proc)
 608{
 609	struct binder_thread *thread;
 610
 611	assert_spin_locked(&proc->inner_lock);
 612	thread = list_first_entry_or_null(&proc->waiting_threads,
 613					  struct binder_thread,
 614					  waiting_thread_node);
 615
 616	if (thread)
 617		list_del_init(&thread->waiting_thread_node);
 618
 619	return thread;
 620}
 621
 622/**
 623 * binder_wakeup_thread_ilocked() - wakes up a thread for doing proc work.
 624 * @proc:	process to wake up a thread in
 625 * @thread:	specific thread to wake-up (may be NULL)
 626 * @sync:	whether to do a synchronous wake-up
 627 *
 628 * This function wakes up a thread in the @proc process.
 629 * The caller may provide a specific thread to wake-up in
 630 * the @thread parameter. If @thread is NULL, this function
 631 * will wake up threads that have called poll().
 632 *
 633 * Note that for this function to work as expected, callers
 634 * should first call binder_select_thread() to find a thread
 635 * to handle the work (if they don't have a thread already),
 636 * and pass the result into the @thread parameter.
 637 */
 638static void binder_wakeup_thread_ilocked(struct binder_proc *proc,
 639					 struct binder_thread *thread,
 640					 bool sync)
 641{
 642	assert_spin_locked(&proc->inner_lock);
 643
 644	if (thread) {
 645		if (sync)
 646			wake_up_interruptible_sync(&thread->wait);
 647		else
 648			wake_up_interruptible(&thread->wait);
 649		return;
 650	}
 651
 652	/* Didn't find a thread waiting for proc work; this can happen
 653	 * in two scenarios:
 654	 * 1. All threads are busy handling transactions
 655	 *    In that case, one of those threads should call back into
 656	 *    the kernel driver soon and pick up this work.
 657	 * 2. Threads are using the (e)poll interface, in which case
 658	 *    they may be blocked on the waitqueue without having been
 659	 *    added to waiting_threads. For this case, we just iterate
 660	 *    over all threads not handling transaction work, and
 661	 *    wake them all up. We wake all because we don't know whether
 662	 *    a thread that called into (e)poll is handling non-binder
 663	 *    work currently.
 664	 */
 665	binder_wakeup_poll_threads_ilocked(proc, sync);
 666}
 667
 668static void binder_wakeup_proc_ilocked(struct binder_proc *proc)
 669{
 670	struct binder_thread *thread = binder_select_thread_ilocked(proc);
 671
 672	binder_wakeup_thread_ilocked(proc, thread, /* sync = */false);
 673}
 674
 675static void binder_set_nice(long nice)
 676{
 677	long min_nice;
 678
 679	if (can_nice(current, nice)) {
 680		set_user_nice(current, nice);
 681		return;
 682	}
 683	min_nice = rlimit_to_nice(rlimit(RLIMIT_NICE));
 684	binder_debug(BINDER_DEBUG_PRIORITY_CAP,
 685		     "%d: nice value %ld not allowed use %ld instead\n",
 686		      current->pid, nice, min_nice);
 687	set_user_nice(current, min_nice);
 688	if (min_nice <= MAX_NICE)
 689		return;
 690	binder_user_error("%d RLIMIT_NICE not set\n", current->pid);
 691}
 692
 693static struct binder_node *binder_get_node_ilocked(struct binder_proc *proc,
 694						   binder_uintptr_t ptr)
 695{
 696	struct rb_node *n = proc->nodes.rb_node;
 697	struct binder_node *node;
 698
 699	assert_spin_locked(&proc->inner_lock);
 700
 701	while (n) {
 702		node = rb_entry(n, struct binder_node, rb_node);
 703
 704		if (ptr < node->ptr)
 705			n = n->rb_left;
 706		else if (ptr > node->ptr)
 707			n = n->rb_right;
 708		else {
 709			/*
 710			 * take an implicit weak reference
 711			 * to ensure node stays alive until
 712			 * call to binder_put_node()
 713			 */
 714			binder_inc_node_tmpref_ilocked(node);
 715			return node;
 716		}
 717	}
 718	return NULL;
 719}
 720
 721static struct binder_node *binder_get_node(struct binder_proc *proc,
 722					   binder_uintptr_t ptr)
 723{
 724	struct binder_node *node;
 725
 726	binder_inner_proc_lock(proc);
 727	node = binder_get_node_ilocked(proc, ptr);
 728	binder_inner_proc_unlock(proc);
 729	return node;
 730}
 731
 732static struct binder_node *binder_init_node_ilocked(
 733						struct binder_proc *proc,
 734						struct binder_node *new_node,
 735						struct flat_binder_object *fp)
 736{
 737	struct rb_node **p = &proc->nodes.rb_node;
 738	struct rb_node *parent = NULL;
 739	struct binder_node *node;
 740	binder_uintptr_t ptr = fp ? fp->binder : 0;
 741	binder_uintptr_t cookie = fp ? fp->cookie : 0;
 742	__u32 flags = fp ? fp->flags : 0;
 743
 744	assert_spin_locked(&proc->inner_lock);
 745
 746	while (*p) {
 747
 748		parent = *p;
 749		node = rb_entry(parent, struct binder_node, rb_node);
 750
 751		if (ptr < node->ptr)
 752			p = &(*p)->rb_left;
 753		else if (ptr > node->ptr)
 754			p = &(*p)->rb_right;
 755		else {
 756			/*
 757			 * A matching node is already in
 758			 * the rb tree. Abandon the init
 759			 * and return it.
 760			 */
 761			binder_inc_node_tmpref_ilocked(node);
 762			return node;
 763		}
 764	}
 765	node = new_node;
 766	binder_stats_created(BINDER_STAT_NODE);
 767	node->tmp_refs++;
 768	rb_link_node(&node->rb_node, parent, p);
 769	rb_insert_color(&node->rb_node, &proc->nodes);
 770	node->debug_id = atomic_inc_return(&binder_last_id);
 771	node->proc = proc;
 772	node->ptr = ptr;
 773	node->cookie = cookie;
 774	node->work.type = BINDER_WORK_NODE;
 775	node->min_priority = flags & FLAT_BINDER_FLAG_PRIORITY_MASK;
 776	node->accept_fds = !!(flags & FLAT_BINDER_FLAG_ACCEPTS_FDS);
 777	node->txn_security_ctx = !!(flags & FLAT_BINDER_FLAG_TXN_SECURITY_CTX);
 778	spin_lock_init(&node->lock);
 779	INIT_LIST_HEAD(&node->work.entry);
 780	INIT_LIST_HEAD(&node->async_todo);
 781	binder_debug(BINDER_DEBUG_INTERNAL_REFS,
 782		     "%d:%d node %d u%016llx c%016llx created\n",
 783		     proc->pid, current->pid, node->debug_id,
 784		     (u64)node->ptr, (u64)node->cookie);
 785
 786	return node;
 787}
 788
 789static struct binder_node *binder_new_node(struct binder_proc *proc,
 790					   struct flat_binder_object *fp)
 791{
 792	struct binder_node *node;
 793	struct binder_node *new_node = kzalloc(sizeof(*node), GFP_KERNEL);
 794
 795	if (!new_node)
 796		return NULL;
 797	binder_inner_proc_lock(proc);
 798	node = binder_init_node_ilocked(proc, new_node, fp);
 799	binder_inner_proc_unlock(proc);
 800	if (node != new_node)
 801		/*
 802		 * The node was already added by another thread
 803		 */
 804		kfree(new_node);
 805
 806	return node;
 807}
 808
 809static void binder_free_node(struct binder_node *node)
 810{
 811	kfree(node);
 812	binder_stats_deleted(BINDER_STAT_NODE);
 813}
 814
 815static int binder_inc_node_nilocked(struct binder_node *node, int strong,
 816				    int internal,
 817				    struct list_head *target_list)
 818{
 819	struct binder_proc *proc = node->proc;
 820
 821	assert_spin_locked(&node->lock);
 822	if (proc)
 823		assert_spin_locked(&proc->inner_lock);
 824	if (strong) {
 825		if (internal) {
 826			if (target_list == NULL &&
 827			    node->internal_strong_refs == 0 &&
 828			    !(node->proc &&
 829			      node == node->proc->context->binder_context_mgr_node &&
 830			      node->has_strong_ref)) {
 831				pr_err("invalid inc strong node for %d\n",
 832					node->debug_id);
 833				return -EINVAL;
 834			}
 835			node->internal_strong_refs++;
 836		} else
 837			node->local_strong_refs++;
 838		if (!node->has_strong_ref && target_list) {
 839			struct binder_thread *thread = container_of(target_list,
 840						    struct binder_thread, todo);
 841			binder_dequeue_work_ilocked(&node->work);
 842			BUG_ON(&thread->todo != target_list);
 843			binder_enqueue_deferred_thread_work_ilocked(thread,
 844								   &node->work);
 845		}
 846	} else {
 847		if (!internal)
 848			node->local_weak_refs++;
 849		if (!node->has_weak_ref && list_empty(&node->work.entry)) {
 850			if (target_list == NULL) {
 851				pr_err("invalid inc weak node for %d\n",
 852					node->debug_id);
 853				return -EINVAL;
 854			}
 855			/*
 856			 * See comment above
 857			 */
 858			binder_enqueue_work_ilocked(&node->work, target_list);
 859		}
 860	}
 861	return 0;
 862}
 863
 864static int binder_inc_node(struct binder_node *node, int strong, int internal,
 865			   struct list_head *target_list)
 866{
 867	int ret;
 868
 869	binder_node_inner_lock(node);
 870	ret = binder_inc_node_nilocked(node, strong, internal, target_list);
 871	binder_node_inner_unlock(node);
 872
 873	return ret;
 874}
 875
 876static bool binder_dec_node_nilocked(struct binder_node *node,
 877				     int strong, int internal)
 878{
 879	struct binder_proc *proc = node->proc;
 880
 881	assert_spin_locked(&node->lock);
 882	if (proc)
 883		assert_spin_locked(&proc->inner_lock);
 884	if (strong) {
 885		if (internal)
 886			node->internal_strong_refs--;
 887		else
 888			node->local_strong_refs--;
 889		if (node->local_strong_refs || node->internal_strong_refs)
 890			return false;
 891	} else {
 892		if (!internal)
 893			node->local_weak_refs--;
 894		if (node->local_weak_refs || node->tmp_refs ||
 895				!hlist_empty(&node->refs))
 896			return false;
 897	}
 898
 899	if (proc && (node->has_strong_ref || node->has_weak_ref)) {
 900		if (list_empty(&node->work.entry)) {
 901			binder_enqueue_work_ilocked(&node->work, &proc->todo);
 902			binder_wakeup_proc_ilocked(proc);
 903		}
 904	} else {
 905		if (hlist_empty(&node->refs) && !node->local_strong_refs &&
 906		    !node->local_weak_refs && !node->tmp_refs) {
 907			if (proc) {
 908				binder_dequeue_work_ilocked(&node->work);
 909				rb_erase(&node->rb_node, &proc->nodes);
 910				binder_debug(BINDER_DEBUG_INTERNAL_REFS,
 911					     "refless node %d deleted\n",
 912					     node->debug_id);
 913			} else {
 914				BUG_ON(!list_empty(&node->work.entry));
 915				spin_lock(&binder_dead_nodes_lock);
 916				/*
 917				 * tmp_refs could have changed so
 918				 * check it again
 919				 */
 920				if (node->tmp_refs) {
 921					spin_unlock(&binder_dead_nodes_lock);
 922					return false;
 923				}
 924				hlist_del(&node->dead_node);
 925				spin_unlock(&binder_dead_nodes_lock);
 926				binder_debug(BINDER_DEBUG_INTERNAL_REFS,
 927					     "dead node %d deleted\n",
 928					     node->debug_id);
 929			}
 930			return true;
 931		}
 932	}
 933	return false;
 934}
 935
 936static void binder_dec_node(struct binder_node *node, int strong, int internal)
 937{
 938	bool free_node;
 939
 940	binder_node_inner_lock(node);
 941	free_node = binder_dec_node_nilocked(node, strong, internal);
 942	binder_node_inner_unlock(node);
 943	if (free_node)
 944		binder_free_node(node);
 945}
 946
 947static void binder_inc_node_tmpref_ilocked(struct binder_node *node)
 948{
 949	/*
 950	 * No call to binder_inc_node() is needed since we
 951	 * don't need to inform userspace of any changes to
 952	 * tmp_refs
 953	 */
 954	node->tmp_refs++;
 955}
 956
 957/**
 958 * binder_inc_node_tmpref() - take a temporary reference on node
 959 * @node:	node to reference
 960 *
 961 * Take reference on node to prevent the node from being freed
 962 * while referenced only by a local variable. The inner lock is
 963 * needed to serialize with the node work on the queue (which
 964 * isn't needed after the node is dead). If the node is dead
 965 * (node->proc is NULL), use binder_dead_nodes_lock to protect
 966 * node->tmp_refs against dead-node-only cases where the node
 967 * lock cannot be acquired (eg traversing the dead node list to
 968 * print nodes)
 969 */
 970static void binder_inc_node_tmpref(struct binder_node *node)
 971{
 972	binder_node_lock(node);
 973	if (node->proc)
 974		binder_inner_proc_lock(node->proc);
 975	else
 976		spin_lock(&binder_dead_nodes_lock);
 977	binder_inc_node_tmpref_ilocked(node);
 978	if (node->proc)
 979		binder_inner_proc_unlock(node->proc);
 980	else
 981		spin_unlock(&binder_dead_nodes_lock);
 982	binder_node_unlock(node);
 983}
 984
 985/**
 986 * binder_dec_node_tmpref() - remove a temporary reference on node
 987 * @node:	node to reference
 988 *
 989 * Release temporary reference on node taken via binder_inc_node_tmpref()
 990 */
 991static void binder_dec_node_tmpref(struct binder_node *node)
 992{
 993	bool free_node;
 994
 995	binder_node_inner_lock(node);
 996	if (!node->proc)
 997		spin_lock(&binder_dead_nodes_lock);
 998	else
 999		__acquire(&binder_dead_nodes_lock);
1000	node->tmp_refs--;
1001	BUG_ON(node->tmp_refs < 0);
1002	if (!node->proc)
1003		spin_unlock(&binder_dead_nodes_lock);
1004	else
1005		__release(&binder_dead_nodes_lock);
1006	/*
1007	 * Call binder_dec_node() to check if all refcounts are 0
1008	 * and cleanup is needed. Calling with strong=0 and internal=1
1009	 * causes no actual reference to be released in binder_dec_node().
1010	 * If that changes, a change is needed here too.
1011	 */
1012	free_node = binder_dec_node_nilocked(node, 0, 1);
1013	binder_node_inner_unlock(node);
1014	if (free_node)
1015		binder_free_node(node);
1016}
1017
1018static void binder_put_node(struct binder_node *node)
1019{
1020	binder_dec_node_tmpref(node);
1021}
1022
1023static struct binder_ref *binder_get_ref_olocked(struct binder_proc *proc,
1024						 u32 desc, bool need_strong_ref)
1025{
1026	struct rb_node *n = proc->refs_by_desc.rb_node;
1027	struct binder_ref *ref;
1028
1029	while (n) {
1030		ref = rb_entry(n, struct binder_ref, rb_node_desc);
1031
1032		if (desc < ref->data.desc) {
1033			n = n->rb_left;
1034		} else if (desc > ref->data.desc) {
1035			n = n->rb_right;
1036		} else if (need_strong_ref && !ref->data.strong) {
1037			binder_user_error("tried to use weak ref as strong ref\n");
1038			return NULL;
1039		} else {
1040			return ref;
1041		}
1042	}
1043	return NULL;
1044}
1045
1046/* Find the smallest unused descriptor the "slow way" */
1047static u32 slow_desc_lookup_olocked(struct binder_proc *proc, u32 offset)
1048{
1049	struct binder_ref *ref;
1050	struct rb_node *n;
1051	u32 desc;
1052
1053	desc = offset;
1054	for (n = rb_first(&proc->refs_by_desc); n; n = rb_next(n)) {
1055		ref = rb_entry(n, struct binder_ref, rb_node_desc);
1056		if (ref->data.desc > desc)
1057			break;
1058		desc = ref->data.desc + 1;
1059	}
1060
1061	return desc;
1062}
1063
1064/*
1065 * Find an available reference descriptor ID. The proc->outer_lock might
1066 * be released in the process, in which case -EAGAIN is returned and the
1067 * @desc should be considered invalid.
1068 */
1069static int get_ref_desc_olocked(struct binder_proc *proc,
1070				struct binder_node *node,
1071				u32 *desc)
1072{
1073	struct dbitmap *dmap = &proc->dmap;
1074	unsigned int nbits, offset;
1075	unsigned long *new, bit;
1076
1077	/* 0 is reserved for the context manager */
1078	offset = (node == proc->context->binder_context_mgr_node) ? 0 : 1;
1079
1080	if (!dbitmap_enabled(dmap)) {
1081		*desc = slow_desc_lookup_olocked(proc, offset);
1082		return 0;
1083	}
1084
1085	if (dbitmap_acquire_next_zero_bit(dmap, offset, &bit) == 0) {
1086		*desc = bit;
1087		return 0;
1088	}
1089
1090	/*
1091	 * The dbitmap is full and needs to grow. The proc->outer_lock
1092	 * is briefly released to allocate the new bitmap safely.
1093	 */
1094	nbits = dbitmap_grow_nbits(dmap);
1095	binder_proc_unlock(proc);
1096	new = bitmap_zalloc(nbits, GFP_KERNEL);
1097	binder_proc_lock(proc);
1098	dbitmap_grow(dmap, new, nbits);
1099
1100	return -EAGAIN;
1101}
1102
1103/**
1104 * binder_get_ref_for_node_olocked() - get the ref associated with given node
1105 * @proc:	binder_proc that owns the ref
1106 * @node:	binder_node of target
1107 * @new_ref:	newly allocated binder_ref to be initialized or %NULL
1108 *
1109 * Look up the ref for the given node and return it if it exists
1110 *
1111 * If it doesn't exist and the caller provides a newly allocated
1112 * ref, initialize the fields of the newly allocated ref and insert
1113 * into the given proc rb_trees and node refs list.
1114 *
1115 * Return:	the ref for node. It is possible that another thread
1116 *		allocated/initialized the ref first in which case the
1117 *		returned ref would be different than the passed-in
1118 *		new_ref. new_ref must be kfree'd by the caller in
1119 *		this case.
1120 */
1121static struct binder_ref *binder_get_ref_for_node_olocked(
1122					struct binder_proc *proc,
1123					struct binder_node *node,
1124					struct binder_ref *new_ref)
1125{
 
 
 
1126	struct binder_ref *ref;
1127	struct rb_node *parent;
1128	struct rb_node **p;
1129	u32 desc;
1130
1131retry:
1132	p = &proc->refs_by_node.rb_node;
1133	parent = NULL;
1134	while (*p) {
1135		parent = *p;
1136		ref = rb_entry(parent, struct binder_ref, rb_node_node);
1137
1138		if (node < ref->node)
1139			p = &(*p)->rb_left;
1140		else if (node > ref->node)
1141			p = &(*p)->rb_right;
1142		else
1143			return ref;
1144	}
1145	if (!new_ref)
1146		return NULL;
1147
1148	/* might release the proc->outer_lock */
1149	if (get_ref_desc_olocked(proc, node, &desc) == -EAGAIN)
1150		goto retry;
1151
1152	binder_stats_created(BINDER_STAT_REF);
1153	new_ref->data.debug_id = atomic_inc_return(&binder_last_id);
1154	new_ref->proc = proc;
1155	new_ref->node = node;
1156	rb_link_node(&new_ref->rb_node_node, parent, p);
1157	rb_insert_color(&new_ref->rb_node_node, &proc->refs_by_node);
1158
1159	new_ref->data.desc = desc;
 
 
 
 
 
 
 
1160	p = &proc->refs_by_desc.rb_node;
1161	while (*p) {
1162		parent = *p;
1163		ref = rb_entry(parent, struct binder_ref, rb_node_desc);
1164
1165		if (new_ref->data.desc < ref->data.desc)
1166			p = &(*p)->rb_left;
1167		else if (new_ref->data.desc > ref->data.desc)
1168			p = &(*p)->rb_right;
1169		else
1170			BUG();
1171	}
1172	rb_link_node(&new_ref->rb_node_desc, parent, p);
1173	rb_insert_color(&new_ref->rb_node_desc, &proc->refs_by_desc);
1174
1175	binder_node_lock(node);
1176	hlist_add_head(&new_ref->node_entry, &node->refs);
1177
1178	binder_debug(BINDER_DEBUG_INTERNAL_REFS,
1179		     "%d new ref %d desc %d for node %d\n",
1180		      proc->pid, new_ref->data.debug_id, new_ref->data.desc,
1181		      node->debug_id);
1182	binder_node_unlock(node);
1183	return new_ref;
1184}
1185
1186static void binder_cleanup_ref_olocked(struct binder_ref *ref)
1187{
1188	struct dbitmap *dmap = &ref->proc->dmap;
1189	bool delete_node = false;
1190
1191	binder_debug(BINDER_DEBUG_INTERNAL_REFS,
1192		     "%d delete ref %d desc %d for node %d\n",
1193		      ref->proc->pid, ref->data.debug_id, ref->data.desc,
1194		      ref->node->debug_id);
1195
1196	if (dbitmap_enabled(dmap))
1197		dbitmap_clear_bit(dmap, ref->data.desc);
1198	rb_erase(&ref->rb_node_desc, &ref->proc->refs_by_desc);
1199	rb_erase(&ref->rb_node_node, &ref->proc->refs_by_node);
1200
1201	binder_node_inner_lock(ref->node);
1202	if (ref->data.strong)
1203		binder_dec_node_nilocked(ref->node, 1, 1);
1204
1205	hlist_del(&ref->node_entry);
1206	delete_node = binder_dec_node_nilocked(ref->node, 0, 1);
1207	binder_node_inner_unlock(ref->node);
1208	/*
1209	 * Clear ref->node unless we want the caller to free the node
1210	 */
1211	if (!delete_node) {
1212		/*
1213		 * The caller uses ref->node to determine
1214		 * whether the node needs to be freed. Clear
1215		 * it since the node is still alive.
1216		 */
1217		ref->node = NULL;
1218	}
1219
1220	if (ref->death) {
1221		binder_debug(BINDER_DEBUG_DEAD_BINDER,
1222			     "%d delete ref %d desc %d has death notification\n",
1223			      ref->proc->pid, ref->data.debug_id,
1224			      ref->data.desc);
1225		binder_dequeue_work(ref->proc, &ref->death->work);
1226		binder_stats_deleted(BINDER_STAT_DEATH);
1227	}
1228
1229	if (ref->freeze) {
1230		binder_dequeue_work(ref->proc, &ref->freeze->work);
1231		binder_stats_deleted(BINDER_STAT_FREEZE);
1232	}
1233
1234	binder_stats_deleted(BINDER_STAT_REF);
1235}
1236
1237/**
1238 * binder_inc_ref_olocked() - increment the ref for given handle
1239 * @ref:         ref to be incremented
1240 * @strong:      if true, strong increment, else weak
1241 * @target_list: list to queue node work on
1242 *
1243 * Increment the ref. @ref->proc->outer_lock must be held on entry
1244 *
1245 * Return: 0, if successful, else errno
1246 */
1247static int binder_inc_ref_olocked(struct binder_ref *ref, int strong,
1248				  struct list_head *target_list)
1249{
1250	int ret;
1251
1252	if (strong) {
1253		if (ref->data.strong == 0) {
1254			ret = binder_inc_node(ref->node, 1, 1, target_list);
1255			if (ret)
1256				return ret;
1257		}
1258		ref->data.strong++;
1259	} else {
1260		if (ref->data.weak == 0) {
1261			ret = binder_inc_node(ref->node, 0, 1, target_list);
1262			if (ret)
1263				return ret;
1264		}
1265		ref->data.weak++;
1266	}
1267	return 0;
1268}
1269
1270/**
1271 * binder_dec_ref_olocked() - dec the ref for given handle
1272 * @ref:	ref to be decremented
1273 * @strong:	if true, strong decrement, else weak
1274 *
1275 * Decrement the ref.
1276 *
1277 * Return: %true if ref is cleaned up and ready to be freed.
1278 */
1279static bool binder_dec_ref_olocked(struct binder_ref *ref, int strong)
1280{
1281	if (strong) {
1282		if (ref->data.strong == 0) {
1283			binder_user_error("%d invalid dec strong, ref %d desc %d s %d w %d\n",
1284					  ref->proc->pid, ref->data.debug_id,
1285					  ref->data.desc, ref->data.strong,
1286					  ref->data.weak);
1287			return false;
1288		}
1289		ref->data.strong--;
1290		if (ref->data.strong == 0)
1291			binder_dec_node(ref->node, strong, 1);
1292	} else {
1293		if (ref->data.weak == 0) {
1294			binder_user_error("%d invalid dec weak, ref %d desc %d s %d w %d\n",
1295					  ref->proc->pid, ref->data.debug_id,
1296					  ref->data.desc, ref->data.strong,
1297					  ref->data.weak);
1298			return false;
1299		}
1300		ref->data.weak--;
1301	}
1302	if (ref->data.strong == 0 && ref->data.weak == 0) {
1303		binder_cleanup_ref_olocked(ref);
1304		return true;
1305	}
1306	return false;
1307}
1308
1309/**
1310 * binder_get_node_from_ref() - get the node from the given proc/desc
1311 * @proc:	proc containing the ref
1312 * @desc:	the handle associated with the ref
1313 * @need_strong_ref: if true, only return node if ref is strong
1314 * @rdata:	the id/refcount data for the ref
1315 *
1316 * Given a proc and ref handle, return the associated binder_node
1317 *
1318 * Return: a binder_node or NULL if not found or not strong when strong required
1319 */
1320static struct binder_node *binder_get_node_from_ref(
1321		struct binder_proc *proc,
1322		u32 desc, bool need_strong_ref,
1323		struct binder_ref_data *rdata)
1324{
1325	struct binder_node *node;
1326	struct binder_ref *ref;
1327
1328	binder_proc_lock(proc);
1329	ref = binder_get_ref_olocked(proc, desc, need_strong_ref);
1330	if (!ref)
1331		goto err_no_ref;
1332	node = ref->node;
1333	/*
1334	 * Take an implicit reference on the node to ensure
1335	 * it stays alive until the call to binder_put_node()
1336	 */
1337	binder_inc_node_tmpref(node);
1338	if (rdata)
1339		*rdata = ref->data;
1340	binder_proc_unlock(proc);
1341
1342	return node;
1343
1344err_no_ref:
1345	binder_proc_unlock(proc);
1346	return NULL;
1347}
1348
1349/**
1350 * binder_free_ref() - free the binder_ref
1351 * @ref:	ref to free
1352 *
1353 * Free the binder_ref. Free the binder_node indicated by ref->node
1354 * (if non-NULL) and the binder_ref_death indicated by ref->death.
1355 */
1356static void binder_free_ref(struct binder_ref *ref)
1357{
1358	if (ref->node)
1359		binder_free_node(ref->node);
1360	kfree(ref->death);
1361	kfree(ref->freeze);
1362	kfree(ref);
1363}
1364
1365/* shrink descriptor bitmap if needed */
1366static void try_shrink_dmap(struct binder_proc *proc)
1367{
1368	unsigned long *new;
1369	int nbits;
1370
1371	binder_proc_lock(proc);
1372	nbits = dbitmap_shrink_nbits(&proc->dmap);
1373	binder_proc_unlock(proc);
1374
1375	if (!nbits)
1376		return;
1377
1378	new = bitmap_zalloc(nbits, GFP_KERNEL);
1379	binder_proc_lock(proc);
1380	dbitmap_shrink(&proc->dmap, new, nbits);
1381	binder_proc_unlock(proc);
1382}
1383
1384/**
1385 * binder_update_ref_for_handle() - inc/dec the ref for given handle
1386 * @proc:	proc containing the ref
1387 * @desc:	the handle associated with the ref
1388 * @increment:	true=inc reference, false=dec reference
1389 * @strong:	true=strong reference, false=weak reference
1390 * @rdata:	the id/refcount data for the ref
1391 *
1392 * Given a proc and ref handle, increment or decrement the ref
1393 * according to "increment" arg.
1394 *
1395 * Return: 0 if successful, else errno
1396 */
1397static int binder_update_ref_for_handle(struct binder_proc *proc,
1398		uint32_t desc, bool increment, bool strong,
1399		struct binder_ref_data *rdata)
1400{
1401	int ret = 0;
1402	struct binder_ref *ref;
1403	bool delete_ref = false;
1404
1405	binder_proc_lock(proc);
1406	ref = binder_get_ref_olocked(proc, desc, strong);
1407	if (!ref) {
1408		ret = -EINVAL;
1409		goto err_no_ref;
1410	}
1411	if (increment)
1412		ret = binder_inc_ref_olocked(ref, strong, NULL);
1413	else
1414		delete_ref = binder_dec_ref_olocked(ref, strong);
1415
1416	if (rdata)
1417		*rdata = ref->data;
1418	binder_proc_unlock(proc);
1419
1420	if (delete_ref) {
1421		binder_free_ref(ref);
1422		try_shrink_dmap(proc);
1423	}
1424	return ret;
1425
1426err_no_ref:
1427	binder_proc_unlock(proc);
1428	return ret;
1429}
1430
1431/**
1432 * binder_dec_ref_for_handle() - dec the ref for given handle
1433 * @proc:	proc containing the ref
1434 * @desc:	the handle associated with the ref
1435 * @strong:	true=strong reference, false=weak reference
1436 * @rdata:	the id/refcount data for the ref
1437 *
1438 * Just calls binder_update_ref_for_handle() to decrement the ref.
1439 *
1440 * Return: 0 if successful, else errno
1441 */
1442static int binder_dec_ref_for_handle(struct binder_proc *proc,
1443		uint32_t desc, bool strong, struct binder_ref_data *rdata)
1444{
1445	return binder_update_ref_for_handle(proc, desc, false, strong, rdata);
1446}
1447
1448
1449/**
1450 * binder_inc_ref_for_node() - increment the ref for given proc/node
1451 * @proc:	 proc containing the ref
1452 * @node:	 target node
1453 * @strong:	 true=strong reference, false=weak reference
1454 * @target_list: worklist to use if node is incremented
1455 * @rdata:	 the id/refcount data for the ref
1456 *
1457 * Given a proc and node, increment the ref. Create the ref if it
1458 * doesn't already exist
1459 *
1460 * Return: 0 if successful, else errno
1461 */
1462static int binder_inc_ref_for_node(struct binder_proc *proc,
1463			struct binder_node *node,
1464			bool strong,
1465			struct list_head *target_list,
1466			struct binder_ref_data *rdata)
1467{
1468	struct binder_ref *ref;
1469	struct binder_ref *new_ref = NULL;
1470	int ret = 0;
1471
1472	binder_proc_lock(proc);
1473	ref = binder_get_ref_for_node_olocked(proc, node, NULL);
1474	if (!ref) {
1475		binder_proc_unlock(proc);
1476		new_ref = kzalloc(sizeof(*ref), GFP_KERNEL);
1477		if (!new_ref)
1478			return -ENOMEM;
1479		binder_proc_lock(proc);
1480		ref = binder_get_ref_for_node_olocked(proc, node, new_ref);
1481	}
1482	ret = binder_inc_ref_olocked(ref, strong, target_list);
1483	*rdata = ref->data;
1484	if (ret && ref == new_ref) {
1485		/*
1486		 * Cleanup the failed reference here as the target
1487		 * could now be dead and have already released its
1488		 * references by now. Calling on the new reference
1489		 * with strong=0 and a tmp_refs will not decrement
1490		 * the node. The new_ref gets kfree'd below.
1491		 */
1492		binder_cleanup_ref_olocked(new_ref);
1493		ref = NULL;
1494	}
1495
1496	binder_proc_unlock(proc);
1497	if (new_ref && ref != new_ref)
1498		/*
1499		 * Another thread created the ref first so
1500		 * free the one we allocated
1501		 */
1502		kfree(new_ref);
1503	return ret;
1504}
1505
1506static void binder_pop_transaction_ilocked(struct binder_thread *target_thread,
1507					   struct binder_transaction *t)
1508{
1509	BUG_ON(!target_thread);
1510	assert_spin_locked(&target_thread->proc->inner_lock);
1511	BUG_ON(target_thread->transaction_stack != t);
1512	BUG_ON(target_thread->transaction_stack->from != target_thread);
1513	target_thread->transaction_stack =
1514		target_thread->transaction_stack->from_parent;
1515	t->from = NULL;
1516}
1517
1518/**
1519 * binder_thread_dec_tmpref() - decrement thread->tmp_ref
1520 * @thread:	thread to decrement
1521 *
1522 * A thread needs to be kept alive while being used to create or
1523 * handle a transaction. binder_get_txn_from() is used to safely
1524 * extract t->from from a binder_transaction and keep the thread
1525 * indicated by t->from from being freed. When done with that
1526 * binder_thread, this function is called to decrement the
1527 * tmp_ref and free if appropriate (thread has been released
1528 * and no transaction being processed by the driver)
1529 */
1530static void binder_thread_dec_tmpref(struct binder_thread *thread)
1531{
1532	/*
1533	 * atomic is used to protect the counter value while
1534	 * it cannot reach zero or thread->is_dead is false
1535	 */
1536	binder_inner_proc_lock(thread->proc);
1537	atomic_dec(&thread->tmp_ref);
1538	if (thread->is_dead && !atomic_read(&thread->tmp_ref)) {
1539		binder_inner_proc_unlock(thread->proc);
1540		binder_free_thread(thread);
1541		return;
1542	}
1543	binder_inner_proc_unlock(thread->proc);
1544}
1545
1546/**
1547 * binder_proc_dec_tmpref() - decrement proc->tmp_ref
1548 * @proc:	proc to decrement
1549 *
1550 * A binder_proc needs to be kept alive while being used to create or
1551 * handle a transaction. proc->tmp_ref is incremented when
1552 * creating a new transaction or the binder_proc is currently in-use
1553 * by threads that are being released. When done with the binder_proc,
1554 * this function is called to decrement the counter and free the
1555 * proc if appropriate (proc has been released, all threads have
1556 * been released and not currently in-use to process a transaction).
1557 */
1558static void binder_proc_dec_tmpref(struct binder_proc *proc)
1559{
1560	binder_inner_proc_lock(proc);
1561	proc->tmp_ref--;
1562	if (proc->is_dead && RB_EMPTY_ROOT(&proc->threads) &&
1563			!proc->tmp_ref) {
1564		binder_inner_proc_unlock(proc);
1565		binder_free_proc(proc);
1566		return;
1567	}
1568	binder_inner_proc_unlock(proc);
1569}
1570
1571/**
1572 * binder_get_txn_from() - safely extract the "from" thread in transaction
1573 * @t:	binder transaction for t->from
1574 *
1575 * Atomically return the "from" thread and increment the tmp_ref
1576 * count for the thread to ensure it stays alive until
1577 * binder_thread_dec_tmpref() is called.
1578 *
1579 * Return: the value of t->from
1580 */
1581static struct binder_thread *binder_get_txn_from(
1582		struct binder_transaction *t)
1583{
1584	struct binder_thread *from;
1585
1586	spin_lock(&t->lock);
1587	from = t->from;
1588	if (from)
1589		atomic_inc(&from->tmp_ref);
1590	spin_unlock(&t->lock);
1591	return from;
1592}
1593
1594/**
1595 * binder_get_txn_from_and_acq_inner() - get t->from and acquire inner lock
1596 * @t:	binder transaction for t->from
1597 *
1598 * Same as binder_get_txn_from() except it also acquires the proc->inner_lock
1599 * to guarantee that the thread cannot be released while operating on it.
1600 * The caller must call binder_inner_proc_unlock() to release the inner lock
1601 * as well as call binder_dec_thread_txn() to release the reference.
1602 *
1603 * Return: the value of t->from
1604 */
1605static struct binder_thread *binder_get_txn_from_and_acq_inner(
1606		struct binder_transaction *t)
1607	__acquires(&t->from->proc->inner_lock)
1608{
1609	struct binder_thread *from;
1610
1611	from = binder_get_txn_from(t);
1612	if (!from) {
1613		__acquire(&from->proc->inner_lock);
1614		return NULL;
1615	}
1616	binder_inner_proc_lock(from->proc);
1617	if (t->from) {
1618		BUG_ON(from != t->from);
1619		return from;
1620	}
1621	binder_inner_proc_unlock(from->proc);
1622	__acquire(&from->proc->inner_lock);
1623	binder_thread_dec_tmpref(from);
1624	return NULL;
1625}
1626
1627/**
1628 * binder_free_txn_fixups() - free unprocessed fd fixups
1629 * @t:	binder transaction for t->from
1630 *
1631 * If the transaction is being torn down prior to being
1632 * processed by the target process, free all of the
1633 * fd fixups and fput the file structs. It is safe to
1634 * call this function after the fixups have been
1635 * processed -- in that case, the list will be empty.
1636 */
1637static void binder_free_txn_fixups(struct binder_transaction *t)
1638{
1639	struct binder_txn_fd_fixup *fixup, *tmp;
1640
1641	list_for_each_entry_safe(fixup, tmp, &t->fd_fixups, fixup_entry) {
1642		fput(fixup->file);
1643		if (fixup->target_fd >= 0)
1644			put_unused_fd(fixup->target_fd);
1645		list_del(&fixup->fixup_entry);
1646		kfree(fixup);
1647	}
1648}
1649
1650static void binder_txn_latency_free(struct binder_transaction *t)
1651{
1652	int from_proc, from_thread, to_proc, to_thread;
1653
1654	spin_lock(&t->lock);
1655	from_proc = t->from ? t->from->proc->pid : 0;
1656	from_thread = t->from ? t->from->pid : 0;
1657	to_proc = t->to_proc ? t->to_proc->pid : 0;
1658	to_thread = t->to_thread ? t->to_thread->pid : 0;
1659	spin_unlock(&t->lock);
1660
1661	trace_binder_txn_latency_free(t, from_proc, from_thread, to_proc, to_thread);
1662}
1663
1664static void binder_free_transaction(struct binder_transaction *t)
1665{
1666	struct binder_proc *target_proc = t->to_proc;
1667
1668	if (target_proc) {
1669		binder_inner_proc_lock(target_proc);
1670		target_proc->outstanding_txns--;
1671		if (target_proc->outstanding_txns < 0)
1672			pr_warn("%s: Unexpected outstanding_txns %d\n",
1673				__func__, target_proc->outstanding_txns);
1674		if (!target_proc->outstanding_txns && target_proc->is_frozen)
1675			wake_up_interruptible_all(&target_proc->freeze_wait);
1676		if (t->buffer)
1677			t->buffer->transaction = NULL;
1678		binder_inner_proc_unlock(target_proc);
1679	}
1680	if (trace_binder_txn_latency_free_enabled())
1681		binder_txn_latency_free(t);
1682	/*
1683	 * If the transaction has no target_proc, then
1684	 * t->buffer->transaction has already been cleared.
1685	 */
1686	binder_free_txn_fixups(t);
1687	kfree(t);
1688	binder_stats_deleted(BINDER_STAT_TRANSACTION);
1689}
1690
1691static void binder_send_failed_reply(struct binder_transaction *t,
1692				     uint32_t error_code)
1693{
1694	struct binder_thread *target_thread;
1695	struct binder_transaction *next;
1696
1697	BUG_ON(t->flags & TF_ONE_WAY);
1698	while (1) {
1699		target_thread = binder_get_txn_from_and_acq_inner(t);
1700		if (target_thread) {
1701			binder_debug(BINDER_DEBUG_FAILED_TRANSACTION,
1702				     "send failed reply for transaction %d to %d:%d\n",
1703				      t->debug_id,
1704				      target_thread->proc->pid,
1705				      target_thread->pid);
1706
1707			binder_pop_transaction_ilocked(target_thread, t);
1708			if (target_thread->reply_error.cmd == BR_OK) {
1709				target_thread->reply_error.cmd = error_code;
1710				binder_enqueue_thread_work_ilocked(
1711					target_thread,
1712					&target_thread->reply_error.work);
1713				wake_up_interruptible(&target_thread->wait);
1714			} else {
1715				/*
1716				 * Cannot get here for normal operation, but
1717				 * we can if multiple synchronous transactions
1718				 * are sent without blocking for responses.
1719				 * Just ignore the 2nd error in this case.
1720				 */
1721				pr_warn("Unexpected reply error: %u\n",
1722					target_thread->reply_error.cmd);
1723			}
1724			binder_inner_proc_unlock(target_thread->proc);
1725			binder_thread_dec_tmpref(target_thread);
1726			binder_free_transaction(t);
1727			return;
1728		}
1729		__release(&target_thread->proc->inner_lock);
1730		next = t->from_parent;
1731
1732		binder_debug(BINDER_DEBUG_FAILED_TRANSACTION,
1733			     "send failed reply for transaction %d, target dead\n",
1734			     t->debug_id);
1735
1736		binder_free_transaction(t);
1737		if (next == NULL) {
1738			binder_debug(BINDER_DEBUG_DEAD_BINDER,
1739				     "reply failed, no target thread at root\n");
1740			return;
1741		}
1742		t = next;
1743		binder_debug(BINDER_DEBUG_DEAD_BINDER,
1744			     "reply failed, no target thread -- retry %d\n",
1745			      t->debug_id);
1746	}
1747}
1748
1749/**
1750 * binder_cleanup_transaction() - cleans up undelivered transaction
1751 * @t:		transaction that needs to be cleaned up
1752 * @reason:	reason the transaction wasn't delivered
1753 * @error_code:	error to return to caller (if synchronous call)
1754 */
1755static void binder_cleanup_transaction(struct binder_transaction *t,
1756				       const char *reason,
1757				       uint32_t error_code)
1758{
1759	if (t->buffer->target_node && !(t->flags & TF_ONE_WAY)) {
1760		binder_send_failed_reply(t, error_code);
1761	} else {
1762		binder_debug(BINDER_DEBUG_DEAD_TRANSACTION,
1763			"undelivered transaction %d, %s\n",
1764			t->debug_id, reason);
1765		binder_free_transaction(t);
1766	}
1767}
1768
1769/**
1770 * binder_get_object() - gets object and checks for valid metadata
1771 * @proc:	binder_proc owning the buffer
1772 * @u:		sender's user pointer to base of buffer
1773 * @buffer:	binder_buffer that we're parsing.
1774 * @offset:	offset in the @buffer at which to validate an object.
1775 * @object:	struct binder_object to read into
1776 *
1777 * Copy the binder object at the given offset into @object. If @u is
1778 * provided then the copy is from the sender's buffer. If not, then
1779 * it is copied from the target's @buffer.
1780 *
1781 * Return:	If there's a valid metadata object at @offset, the
1782 *		size of that object. Otherwise, it returns zero. The object
1783 *		is read into the struct binder_object pointed to by @object.
1784 */
1785static size_t binder_get_object(struct binder_proc *proc,
1786				const void __user *u,
1787				struct binder_buffer *buffer,
1788				unsigned long offset,
1789				struct binder_object *object)
1790{
1791	size_t read_size;
1792	struct binder_object_header *hdr;
1793	size_t object_size = 0;
1794
1795	read_size = min_t(size_t, sizeof(*object), buffer->data_size - offset);
1796	if (offset > buffer->data_size || read_size < sizeof(*hdr) ||
1797	    !IS_ALIGNED(offset, sizeof(u32)))
 
1798		return 0;
1799
1800	if (u) {
1801		if (copy_from_user(object, u + offset, read_size))
1802			return 0;
1803	} else {
1804		if (binder_alloc_copy_from_buffer(&proc->alloc, object, buffer,
1805						  offset, read_size))
1806			return 0;
1807	}
1808
1809	/* Ok, now see if we read a complete object. */
1810	hdr = &object->hdr;
1811	switch (hdr->type) {
1812	case BINDER_TYPE_BINDER:
1813	case BINDER_TYPE_WEAK_BINDER:
1814	case BINDER_TYPE_HANDLE:
1815	case BINDER_TYPE_WEAK_HANDLE:
1816		object_size = sizeof(struct flat_binder_object);
1817		break;
1818	case BINDER_TYPE_FD:
1819		object_size = sizeof(struct binder_fd_object);
1820		break;
1821	case BINDER_TYPE_PTR:
1822		object_size = sizeof(struct binder_buffer_object);
1823		break;
1824	case BINDER_TYPE_FDA:
1825		object_size = sizeof(struct binder_fd_array_object);
1826		break;
1827	default:
1828		return 0;
1829	}
1830	if (offset <= buffer->data_size - object_size &&
1831	    buffer->data_size >= object_size)
1832		return object_size;
1833	else
1834		return 0;
1835}
1836
1837/**
1838 * binder_validate_ptr() - validates binder_buffer_object in a binder_buffer.
1839 * @proc:	binder_proc owning the buffer
1840 * @b:		binder_buffer containing the object
1841 * @object:	struct binder_object to read into
1842 * @index:	index in offset array at which the binder_buffer_object is
1843 *		located
1844 * @start_offset: points to the start of the offset array
1845 * @object_offsetp: offset of @object read from @b
1846 * @num_valid:	the number of valid offsets in the offset array
1847 *
1848 * Return:	If @index is within the valid range of the offset array
1849 *		described by @start and @num_valid, and if there's a valid
1850 *		binder_buffer_object at the offset found in index @index
1851 *		of the offset array, that object is returned. Otherwise,
1852 *		%NULL is returned.
1853 *		Note that the offset found in index @index itself is not
1854 *		verified; this function assumes that @num_valid elements
1855 *		from @start were previously verified to have valid offsets.
1856 *		If @object_offsetp is non-NULL, then the offset within
1857 *		@b is written to it.
1858 */
1859static struct binder_buffer_object *binder_validate_ptr(
1860						struct binder_proc *proc,
1861						struct binder_buffer *b,
1862						struct binder_object *object,
1863						binder_size_t index,
1864						binder_size_t start_offset,
1865						binder_size_t *object_offsetp,
1866						binder_size_t num_valid)
1867{
1868	size_t object_size;
1869	binder_size_t object_offset;
1870	unsigned long buffer_offset;
1871
1872	if (index >= num_valid)
1873		return NULL;
1874
1875	buffer_offset = start_offset + sizeof(binder_size_t) * index;
1876	if (binder_alloc_copy_from_buffer(&proc->alloc, &object_offset,
1877					  b, buffer_offset,
1878					  sizeof(object_offset)))
1879		return NULL;
1880	object_size = binder_get_object(proc, NULL, b, object_offset, object);
1881	if (!object_size || object->hdr.type != BINDER_TYPE_PTR)
1882		return NULL;
1883	if (object_offsetp)
1884		*object_offsetp = object_offset;
1885
1886	return &object->bbo;
1887}
1888
1889/**
1890 * binder_validate_fixup() - validates pointer/fd fixups happen in order.
1891 * @proc:		binder_proc owning the buffer
1892 * @b:			transaction buffer
1893 * @objects_start_offset: offset to start of objects buffer
1894 * @buffer_obj_offset:	offset to binder_buffer_object in which to fix up
1895 * @fixup_offset:	start offset in @buffer to fix up
1896 * @last_obj_offset:	offset to last binder_buffer_object that we fixed
1897 * @last_min_offset:	minimum fixup offset in object at @last_obj_offset
1898 *
1899 * Return:		%true if a fixup in buffer @buffer at offset @offset is
1900 *			allowed.
1901 *
1902 * For safety reasons, we only allow fixups inside a buffer to happen
1903 * at increasing offsets; additionally, we only allow fixup on the last
1904 * buffer object that was verified, or one of its parents.
1905 *
1906 * Example of what is allowed:
1907 *
1908 * A
1909 *   B (parent = A, offset = 0)
1910 *   C (parent = A, offset = 16)
1911 *     D (parent = C, offset = 0)
1912 *   E (parent = A, offset = 32) // min_offset is 16 (C.parent_offset)
1913 *
1914 * Examples of what is not allowed:
1915 *
1916 * Decreasing offsets within the same parent:
1917 * A
1918 *   C (parent = A, offset = 16)
1919 *   B (parent = A, offset = 0) // decreasing offset within A
1920 *
1921 * Referring to a parent that wasn't the last object or any of its parents:
1922 * A
1923 *   B (parent = A, offset = 0)
1924 *   C (parent = A, offset = 0)
1925 *   C (parent = A, offset = 16)
1926 *     D (parent = B, offset = 0) // B is not A or any of A's parents
1927 */
1928static bool binder_validate_fixup(struct binder_proc *proc,
1929				  struct binder_buffer *b,
1930				  binder_size_t objects_start_offset,
1931				  binder_size_t buffer_obj_offset,
1932				  binder_size_t fixup_offset,
1933				  binder_size_t last_obj_offset,
1934				  binder_size_t last_min_offset)
1935{
1936	if (!last_obj_offset) {
1937		/* Nothing to fix up in */
1938		return false;
1939	}
1940
1941	while (last_obj_offset != buffer_obj_offset) {
1942		unsigned long buffer_offset;
1943		struct binder_object last_object;
1944		struct binder_buffer_object *last_bbo;
1945		size_t object_size = binder_get_object(proc, NULL, b,
1946						       last_obj_offset,
1947						       &last_object);
1948		if (object_size != sizeof(*last_bbo))
1949			return false;
1950
1951		last_bbo = &last_object.bbo;
1952		/*
1953		 * Safe to retrieve the parent of last_obj, since it
1954		 * was already previously verified by the driver.
1955		 */
1956		if ((last_bbo->flags & BINDER_BUFFER_FLAG_HAS_PARENT) == 0)
1957			return false;
1958		last_min_offset = last_bbo->parent_offset + sizeof(uintptr_t);
1959		buffer_offset = objects_start_offset +
1960			sizeof(binder_size_t) * last_bbo->parent;
1961		if (binder_alloc_copy_from_buffer(&proc->alloc,
1962						  &last_obj_offset,
1963						  b, buffer_offset,
1964						  sizeof(last_obj_offset)))
1965			return false;
1966	}
1967	return (fixup_offset >= last_min_offset);
1968}
1969
1970/**
1971 * struct binder_task_work_cb - for deferred close
1972 *
1973 * @twork:                callback_head for task work
1974 * @fd:                   fd to close
1975 *
1976 * Structure to pass task work to be handled after
1977 * returning from binder_ioctl() via task_work_add().
1978 */
1979struct binder_task_work_cb {
1980	struct callback_head twork;
1981	struct file *file;
1982};
1983
1984/**
1985 * binder_do_fd_close() - close list of file descriptors
1986 * @twork:	callback head for task work
1987 *
1988 * It is not safe to call ksys_close() during the binder_ioctl()
1989 * function if there is a chance that binder's own file descriptor
1990 * might be closed. This is to meet the requirements for using
1991 * fdget() (see comments for __fget_light()). Therefore use
1992 * task_work_add() to schedule the close operation once we have
1993 * returned from binder_ioctl(). This function is a callback
1994 * for that mechanism and does the actual ksys_close() on the
1995 * given file descriptor.
1996 */
1997static void binder_do_fd_close(struct callback_head *twork)
1998{
1999	struct binder_task_work_cb *twcb = container_of(twork,
2000			struct binder_task_work_cb, twork);
2001
2002	fput(twcb->file);
2003	kfree(twcb);
2004}
2005
2006/**
2007 * binder_deferred_fd_close() - schedule a close for the given file-descriptor
2008 * @fd:		file-descriptor to close
2009 *
2010 * See comments in binder_do_fd_close(). This function is used to schedule
2011 * a file-descriptor to be closed after returning from binder_ioctl().
2012 */
2013static void binder_deferred_fd_close(int fd)
2014{
2015	struct binder_task_work_cb *twcb;
2016
2017	twcb = kzalloc(sizeof(*twcb), GFP_KERNEL);
2018	if (!twcb)
2019		return;
2020	init_task_work(&twcb->twork, binder_do_fd_close);
2021	twcb->file = file_close_fd(fd);
2022	if (twcb->file) {
2023		// pin it until binder_do_fd_close(); see comments there
2024		get_file(twcb->file);
2025		filp_close(twcb->file, current->files);
2026		task_work_add(current, &twcb->twork, TWA_RESUME);
2027	} else {
2028		kfree(twcb);
2029	}
2030}
2031
2032static void binder_transaction_buffer_release(struct binder_proc *proc,
2033					      struct binder_thread *thread,
2034					      struct binder_buffer *buffer,
2035					      binder_size_t off_end_offset,
2036					      bool is_failure)
2037{
2038	int debug_id = buffer->debug_id;
2039	binder_size_t off_start_offset, buffer_offset;
2040
2041	binder_debug(BINDER_DEBUG_TRANSACTION,
2042		     "%d buffer release %d, size %zd-%zd, failed at %llx\n",
2043		     proc->pid, buffer->debug_id,
2044		     buffer->data_size, buffer->offsets_size,
2045		     (unsigned long long)off_end_offset);
2046
2047	if (buffer->target_node)
2048		binder_dec_node(buffer->target_node, 1, 0);
2049
2050	off_start_offset = ALIGN(buffer->data_size, sizeof(void *));
2051
 
2052	for (buffer_offset = off_start_offset; buffer_offset < off_end_offset;
2053	     buffer_offset += sizeof(binder_size_t)) {
2054		struct binder_object_header *hdr;
2055		size_t object_size = 0;
2056		struct binder_object object;
2057		binder_size_t object_offset;
2058
2059		if (!binder_alloc_copy_from_buffer(&proc->alloc, &object_offset,
2060						   buffer, buffer_offset,
2061						   sizeof(object_offset)))
2062			object_size = binder_get_object(proc, NULL, buffer,
2063							object_offset, &object);
2064		if (object_size == 0) {
2065			pr_err("transaction release %d bad object at offset %lld, size %zd\n",
2066			       debug_id, (u64)object_offset, buffer->data_size);
2067			continue;
2068		}
2069		hdr = &object.hdr;
2070		switch (hdr->type) {
2071		case BINDER_TYPE_BINDER:
2072		case BINDER_TYPE_WEAK_BINDER: {
2073			struct flat_binder_object *fp;
2074			struct binder_node *node;
2075
2076			fp = to_flat_binder_object(hdr);
2077			node = binder_get_node(proc, fp->binder);
2078			if (node == NULL) {
2079				pr_err("transaction release %d bad node %016llx\n",
2080				       debug_id, (u64)fp->binder);
2081				break;
2082			}
2083			binder_debug(BINDER_DEBUG_TRANSACTION,
2084				     "        node %d u%016llx\n",
2085				     node->debug_id, (u64)node->ptr);
2086			binder_dec_node(node, hdr->type == BINDER_TYPE_BINDER,
2087					0);
2088			binder_put_node(node);
2089		} break;
2090		case BINDER_TYPE_HANDLE:
2091		case BINDER_TYPE_WEAK_HANDLE: {
2092			struct flat_binder_object *fp;
2093			struct binder_ref_data rdata;
2094			int ret;
2095
2096			fp = to_flat_binder_object(hdr);
2097			ret = binder_dec_ref_for_handle(proc, fp->handle,
2098				hdr->type == BINDER_TYPE_HANDLE, &rdata);
2099
2100			if (ret) {
2101				pr_err("transaction release %d bad handle %d, ret = %d\n",
2102				 debug_id, fp->handle, ret);
2103				break;
2104			}
2105			binder_debug(BINDER_DEBUG_TRANSACTION,
2106				     "        ref %d desc %d\n",
2107				     rdata.debug_id, rdata.desc);
2108		} break;
2109
2110		case BINDER_TYPE_FD: {
2111			/*
2112			 * No need to close the file here since user-space
2113			 * closes it for successfully delivered
2114			 * transactions. For transactions that weren't
2115			 * delivered, the new fd was never allocated so
2116			 * there is no need to close and the fput on the
2117			 * file is done when the transaction is torn
2118			 * down.
2119			 */
 
 
2120		} break;
2121		case BINDER_TYPE_PTR:
2122			/*
2123			 * Nothing to do here, this will get cleaned up when the
2124			 * transaction buffer gets freed
2125			 */
2126			break;
2127		case BINDER_TYPE_FDA: {
2128			struct binder_fd_array_object *fda;
2129			struct binder_buffer_object *parent;
2130			struct binder_object ptr_object;
2131			binder_size_t fda_offset;
2132			size_t fd_index;
2133			binder_size_t fd_buf_size;
2134			binder_size_t num_valid;
2135
2136			if (is_failure) {
2137				/*
 
2138				 * The fd fixups have not been applied so no
2139				 * fds need to be closed.
2140				 */
2141				continue;
2142			}
2143
2144			num_valid = (buffer_offset - off_start_offset) /
2145						sizeof(binder_size_t);
2146			fda = to_binder_fd_array_object(hdr);
2147			parent = binder_validate_ptr(proc, buffer, &ptr_object,
2148						     fda->parent,
2149						     off_start_offset,
2150						     NULL,
2151						     num_valid);
2152			if (!parent) {
2153				pr_err("transaction release %d bad parent offset\n",
2154				       debug_id);
2155				continue;
2156			}
2157			fd_buf_size = sizeof(u32) * fda->num_fds;
2158			if (fda->num_fds >= SIZE_MAX / sizeof(u32)) {
2159				pr_err("transaction release %d invalid number of fds (%lld)\n",
2160				       debug_id, (u64)fda->num_fds);
2161				continue;
2162			}
2163			if (fd_buf_size > parent->length ||
2164			    fda->parent_offset > parent->length - fd_buf_size) {
2165				/* No space for all file descriptors here. */
2166				pr_err("transaction release %d not enough space for %lld fds in buffer\n",
2167				       debug_id, (u64)fda->num_fds);
2168				continue;
2169			}
2170			/*
2171			 * the source data for binder_buffer_object is visible
2172			 * to user-space and the @buffer element is the user
2173			 * pointer to the buffer_object containing the fd_array.
2174			 * Convert the address to an offset relative to
2175			 * the base of the transaction buffer.
2176			 */
2177			fda_offset = parent->buffer - buffer->user_data +
2178				fda->parent_offset;
 
2179			for (fd_index = 0; fd_index < fda->num_fds;
2180			     fd_index++) {
2181				u32 fd;
2182				int err;
2183				binder_size_t offset = fda_offset +
2184					fd_index * sizeof(fd);
2185
2186				err = binder_alloc_copy_from_buffer(
2187						&proc->alloc, &fd, buffer,
2188						offset, sizeof(fd));
2189				WARN_ON(err);
2190				if (!err) {
2191					binder_deferred_fd_close(fd);
2192					/*
2193					 * Need to make sure the thread goes
2194					 * back to userspace to complete the
2195					 * deferred close
2196					 */
2197					if (thread)
2198						thread->looper_need_return = true;
2199				}
2200			}
2201		} break;
2202		default:
2203			pr_err("transaction release %d bad object type %x\n",
2204				debug_id, hdr->type);
2205			break;
2206		}
2207	}
2208}
2209
2210/* Clean up all the objects in the buffer */
2211static inline void binder_release_entire_buffer(struct binder_proc *proc,
2212						struct binder_thread *thread,
2213						struct binder_buffer *buffer,
2214						bool is_failure)
2215{
2216	binder_size_t off_end_offset;
2217
2218	off_end_offset = ALIGN(buffer->data_size, sizeof(void *));
2219	off_end_offset += buffer->offsets_size;
2220
2221	binder_transaction_buffer_release(proc, thread, buffer,
2222					  off_end_offset, is_failure);
2223}
2224
2225static int binder_translate_binder(struct flat_binder_object *fp,
2226				   struct binder_transaction *t,
2227				   struct binder_thread *thread)
2228{
2229	struct binder_node *node;
2230	struct binder_proc *proc = thread->proc;
2231	struct binder_proc *target_proc = t->to_proc;
2232	struct binder_ref_data rdata;
2233	int ret = 0;
2234
2235	node = binder_get_node(proc, fp->binder);
2236	if (!node) {
2237		node = binder_new_node(proc, fp);
2238		if (!node)
2239			return -ENOMEM;
2240	}
2241	if (fp->cookie != node->cookie) {
2242		binder_user_error("%d:%d sending u%016llx node %d, cookie mismatch %016llx != %016llx\n",
2243				  proc->pid, thread->pid, (u64)fp->binder,
2244				  node->debug_id, (u64)fp->cookie,
2245				  (u64)node->cookie);
2246		ret = -EINVAL;
2247		goto done;
2248	}
2249	if (security_binder_transfer_binder(proc->cred, target_proc->cred)) {
2250		ret = -EPERM;
2251		goto done;
2252	}
2253
2254	ret = binder_inc_ref_for_node(target_proc, node,
2255			fp->hdr.type == BINDER_TYPE_BINDER,
2256			&thread->todo, &rdata);
2257	if (ret)
2258		goto done;
2259
2260	if (fp->hdr.type == BINDER_TYPE_BINDER)
2261		fp->hdr.type = BINDER_TYPE_HANDLE;
2262	else
2263		fp->hdr.type = BINDER_TYPE_WEAK_HANDLE;
2264	fp->binder = 0;
2265	fp->handle = rdata.desc;
2266	fp->cookie = 0;
2267
2268	trace_binder_transaction_node_to_ref(t, node, &rdata);
2269	binder_debug(BINDER_DEBUG_TRANSACTION,
2270		     "        node %d u%016llx -> ref %d desc %d\n",
2271		     node->debug_id, (u64)node->ptr,
2272		     rdata.debug_id, rdata.desc);
2273done:
2274	binder_put_node(node);
2275	return ret;
2276}
2277
2278static int binder_translate_handle(struct flat_binder_object *fp,
2279				   struct binder_transaction *t,
2280				   struct binder_thread *thread)
2281{
2282	struct binder_proc *proc = thread->proc;
2283	struct binder_proc *target_proc = t->to_proc;
2284	struct binder_node *node;
2285	struct binder_ref_data src_rdata;
2286	int ret = 0;
2287
2288	node = binder_get_node_from_ref(proc, fp->handle,
2289			fp->hdr.type == BINDER_TYPE_HANDLE, &src_rdata);
2290	if (!node) {
2291		binder_user_error("%d:%d got transaction with invalid handle, %d\n",
2292				  proc->pid, thread->pid, fp->handle);
2293		return -EINVAL;
2294	}
2295	if (security_binder_transfer_binder(proc->cred, target_proc->cred)) {
2296		ret = -EPERM;
2297		goto done;
2298	}
2299
2300	binder_node_lock(node);
2301	if (node->proc == target_proc) {
2302		if (fp->hdr.type == BINDER_TYPE_HANDLE)
2303			fp->hdr.type = BINDER_TYPE_BINDER;
2304		else
2305			fp->hdr.type = BINDER_TYPE_WEAK_BINDER;
2306		fp->binder = node->ptr;
2307		fp->cookie = node->cookie;
2308		if (node->proc)
2309			binder_inner_proc_lock(node->proc);
2310		else
2311			__acquire(&node->proc->inner_lock);
2312		binder_inc_node_nilocked(node,
2313					 fp->hdr.type == BINDER_TYPE_BINDER,
2314					 0, NULL);
2315		if (node->proc)
2316			binder_inner_proc_unlock(node->proc);
2317		else
2318			__release(&node->proc->inner_lock);
2319		trace_binder_transaction_ref_to_node(t, node, &src_rdata);
2320		binder_debug(BINDER_DEBUG_TRANSACTION,
2321			     "        ref %d desc %d -> node %d u%016llx\n",
2322			     src_rdata.debug_id, src_rdata.desc, node->debug_id,
2323			     (u64)node->ptr);
2324		binder_node_unlock(node);
2325	} else {
2326		struct binder_ref_data dest_rdata;
2327
2328		binder_node_unlock(node);
2329		ret = binder_inc_ref_for_node(target_proc, node,
2330				fp->hdr.type == BINDER_TYPE_HANDLE,
2331				NULL, &dest_rdata);
2332		if (ret)
2333			goto done;
2334
2335		fp->binder = 0;
2336		fp->handle = dest_rdata.desc;
2337		fp->cookie = 0;
2338		trace_binder_transaction_ref_to_ref(t, node, &src_rdata,
2339						    &dest_rdata);
2340		binder_debug(BINDER_DEBUG_TRANSACTION,
2341			     "        ref %d desc %d -> ref %d desc %d (node %d)\n",
2342			     src_rdata.debug_id, src_rdata.desc,
2343			     dest_rdata.debug_id, dest_rdata.desc,
2344			     node->debug_id);
2345	}
2346done:
2347	binder_put_node(node);
2348	return ret;
2349}
2350
2351static int binder_translate_fd(u32 fd, binder_size_t fd_offset,
2352			       struct binder_transaction *t,
2353			       struct binder_thread *thread,
2354			       struct binder_transaction *in_reply_to)
2355{
2356	struct binder_proc *proc = thread->proc;
2357	struct binder_proc *target_proc = t->to_proc;
2358	struct binder_txn_fd_fixup *fixup;
2359	struct file *file;
2360	int ret = 0;
2361	bool target_allows_fd;
2362
2363	if (in_reply_to)
2364		target_allows_fd = !!(in_reply_to->flags & TF_ACCEPT_FDS);
2365	else
2366		target_allows_fd = t->buffer->target_node->accept_fds;
2367	if (!target_allows_fd) {
2368		binder_user_error("%d:%d got %s with fd, %d, but target does not allow fds\n",
2369				  proc->pid, thread->pid,
2370				  in_reply_to ? "reply" : "transaction",
2371				  fd);
2372		ret = -EPERM;
2373		goto err_fd_not_accepted;
2374	}
2375
2376	file = fget(fd);
2377	if (!file) {
2378		binder_user_error("%d:%d got transaction with invalid fd, %d\n",
2379				  proc->pid, thread->pid, fd);
2380		ret = -EBADF;
2381		goto err_fget;
2382	}
2383	ret = security_binder_transfer_file(proc->cred, target_proc->cred, file);
2384	if (ret < 0) {
2385		ret = -EPERM;
2386		goto err_security;
2387	}
2388
2389	/*
2390	 * Add fixup record for this transaction. The allocation
2391	 * of the fd in the target needs to be done from a
2392	 * target thread.
2393	 */
2394	fixup = kzalloc(sizeof(*fixup), GFP_KERNEL);
2395	if (!fixup) {
2396		ret = -ENOMEM;
2397		goto err_alloc;
2398	}
2399	fixup->file = file;
2400	fixup->offset = fd_offset;
2401	fixup->target_fd = -1;
2402	trace_binder_transaction_fd_send(t, fd, fixup->offset);
2403	list_add_tail(&fixup->fixup_entry, &t->fd_fixups);
2404
2405	return ret;
2406
2407err_alloc:
2408err_security:
2409	fput(file);
2410err_fget:
2411err_fd_not_accepted:
2412	return ret;
2413}
2414
2415/**
2416 * struct binder_ptr_fixup - data to be fixed-up in target buffer
2417 * @offset	offset in target buffer to fixup
2418 * @skip_size	bytes to skip in copy (fixup will be written later)
2419 * @fixup_data	data to write at fixup offset
2420 * @node	list node
2421 *
2422 * This is used for the pointer fixup list (pf) which is created and consumed
2423 * during binder_transaction() and is only accessed locally. No
2424 * locking is necessary.
2425 *
2426 * The list is ordered by @offset.
2427 */
2428struct binder_ptr_fixup {
2429	binder_size_t offset;
2430	size_t skip_size;
2431	binder_uintptr_t fixup_data;
2432	struct list_head node;
2433};
2434
2435/**
2436 * struct binder_sg_copy - scatter-gather data to be copied
2437 * @offset		offset in target buffer
2438 * @sender_uaddr	user address in source buffer
2439 * @length		bytes to copy
2440 * @node		list node
2441 *
2442 * This is used for the sg copy list (sgc) which is created and consumed
2443 * during binder_transaction() and is only accessed locally. No
2444 * locking is necessary.
2445 *
2446 * The list is ordered by @offset.
2447 */
2448struct binder_sg_copy {
2449	binder_size_t offset;
2450	const void __user *sender_uaddr;
2451	size_t length;
2452	struct list_head node;
2453};
2454
2455/**
2456 * binder_do_deferred_txn_copies() - copy and fixup scatter-gather data
2457 * @alloc:	binder_alloc associated with @buffer
2458 * @buffer:	binder buffer in target process
2459 * @sgc_head:	list_head of scatter-gather copy list
2460 * @pf_head:	list_head of pointer fixup list
2461 *
2462 * Processes all elements of @sgc_head, applying fixups from @pf_head
2463 * and copying the scatter-gather data from the source process' user
2464 * buffer to the target's buffer. It is expected that the list creation
2465 * and processing all occurs during binder_transaction() so these lists
2466 * are only accessed in local context.
2467 *
2468 * Return: 0=success, else -errno
2469 */
2470static int binder_do_deferred_txn_copies(struct binder_alloc *alloc,
2471					 struct binder_buffer *buffer,
2472					 struct list_head *sgc_head,
2473					 struct list_head *pf_head)
2474{
2475	int ret = 0;
2476	struct binder_sg_copy *sgc, *tmpsgc;
2477	struct binder_ptr_fixup *tmppf;
2478	struct binder_ptr_fixup *pf =
2479		list_first_entry_or_null(pf_head, struct binder_ptr_fixup,
2480					 node);
2481
2482	list_for_each_entry_safe(sgc, tmpsgc, sgc_head, node) {
2483		size_t bytes_copied = 0;
2484
2485		while (bytes_copied < sgc->length) {
2486			size_t copy_size;
2487			size_t bytes_left = sgc->length - bytes_copied;
2488			size_t offset = sgc->offset + bytes_copied;
2489
2490			/*
2491			 * We copy up to the fixup (pointed to by pf)
2492			 */
2493			copy_size = pf ? min(bytes_left, (size_t)pf->offset - offset)
2494				       : bytes_left;
2495			if (!ret && copy_size)
2496				ret = binder_alloc_copy_user_to_buffer(
2497						alloc, buffer,
2498						offset,
2499						sgc->sender_uaddr + bytes_copied,
2500						copy_size);
2501			bytes_copied += copy_size;
2502			if (copy_size != bytes_left) {
2503				BUG_ON(!pf);
2504				/* we stopped at a fixup offset */
2505				if (pf->skip_size) {
2506					/*
2507					 * we are just skipping. This is for
2508					 * BINDER_TYPE_FDA where the translated
2509					 * fds will be fixed up when we get
2510					 * to target context.
2511					 */
2512					bytes_copied += pf->skip_size;
2513				} else {
2514					/* apply the fixup indicated by pf */
2515					if (!ret)
2516						ret = binder_alloc_copy_to_buffer(
2517							alloc, buffer,
2518							pf->offset,
2519							&pf->fixup_data,
2520							sizeof(pf->fixup_data));
2521					bytes_copied += sizeof(pf->fixup_data);
2522				}
2523				list_del(&pf->node);
2524				kfree(pf);
2525				pf = list_first_entry_or_null(pf_head,
2526						struct binder_ptr_fixup, node);
2527			}
2528		}
2529		list_del(&sgc->node);
2530		kfree(sgc);
2531	}
2532	list_for_each_entry_safe(pf, tmppf, pf_head, node) {
2533		BUG_ON(pf->skip_size == 0);
2534		list_del(&pf->node);
2535		kfree(pf);
2536	}
2537	BUG_ON(!list_empty(sgc_head));
2538
2539	return ret > 0 ? -EINVAL : ret;
2540}
2541
2542/**
2543 * binder_cleanup_deferred_txn_lists() - free specified lists
2544 * @sgc_head:	list_head of scatter-gather copy list
2545 * @pf_head:	list_head of pointer fixup list
2546 *
2547 * Called to clean up @sgc_head and @pf_head if there is an
2548 * error.
2549 */
2550static void binder_cleanup_deferred_txn_lists(struct list_head *sgc_head,
2551					      struct list_head *pf_head)
2552{
2553	struct binder_sg_copy *sgc, *tmpsgc;
2554	struct binder_ptr_fixup *pf, *tmppf;
2555
2556	list_for_each_entry_safe(sgc, tmpsgc, sgc_head, node) {
2557		list_del(&sgc->node);
2558		kfree(sgc);
2559	}
2560	list_for_each_entry_safe(pf, tmppf, pf_head, node) {
2561		list_del(&pf->node);
2562		kfree(pf);
2563	}
2564}
2565
2566/**
2567 * binder_defer_copy() - queue a scatter-gather buffer for copy
2568 * @sgc_head:		list_head of scatter-gather copy list
2569 * @offset:		binder buffer offset in target process
2570 * @sender_uaddr:	user address in source process
2571 * @length:		bytes to copy
2572 *
2573 * Specify a scatter-gather block to be copied. The actual copy must
2574 * be deferred until all the needed fixups are identified and queued.
2575 * Then the copy and fixups are done together so un-translated values
2576 * from the source are never visible in the target buffer.
2577 *
2578 * We are guaranteed that repeated calls to this function will have
2579 * monotonically increasing @offset values so the list will naturally
2580 * be ordered.
2581 *
2582 * Return: 0=success, else -errno
2583 */
2584static int binder_defer_copy(struct list_head *sgc_head, binder_size_t offset,
2585			     const void __user *sender_uaddr, size_t length)
2586{
2587	struct binder_sg_copy *bc = kzalloc(sizeof(*bc), GFP_KERNEL);
2588
2589	if (!bc)
2590		return -ENOMEM;
2591
2592	bc->offset = offset;
2593	bc->sender_uaddr = sender_uaddr;
2594	bc->length = length;
2595	INIT_LIST_HEAD(&bc->node);
2596
2597	/*
2598	 * We are guaranteed that the deferred copies are in-order
2599	 * so just add to the tail.
2600	 */
2601	list_add_tail(&bc->node, sgc_head);
2602
2603	return 0;
2604}
2605
2606/**
2607 * binder_add_fixup() - queue a fixup to be applied to sg copy
2608 * @pf_head:	list_head of binder ptr fixup list
2609 * @offset:	binder buffer offset in target process
2610 * @fixup:	bytes to be copied for fixup
2611 * @skip_size:	bytes to skip when copying (fixup will be applied later)
2612 *
2613 * Add the specified fixup to a list ordered by @offset. When copying
2614 * the scatter-gather buffers, the fixup will be copied instead of
2615 * data from the source buffer. For BINDER_TYPE_FDA fixups, the fixup
2616 * will be applied later (in target process context), so we just skip
2617 * the bytes specified by @skip_size. If @skip_size is 0, we copy the
2618 * value in @fixup.
2619 *
2620 * This function is called *mostly* in @offset order, but there are
2621 * exceptions. Since out-of-order inserts are relatively uncommon,
2622 * we insert the new element by searching backward from the tail of
2623 * the list.
2624 *
2625 * Return: 0=success, else -errno
2626 */
2627static int binder_add_fixup(struct list_head *pf_head, binder_size_t offset,
2628			    binder_uintptr_t fixup, size_t skip_size)
2629{
2630	struct binder_ptr_fixup *pf = kzalloc(sizeof(*pf), GFP_KERNEL);
2631	struct binder_ptr_fixup *tmppf;
2632
2633	if (!pf)
2634		return -ENOMEM;
2635
2636	pf->offset = offset;
2637	pf->fixup_data = fixup;
2638	pf->skip_size = skip_size;
2639	INIT_LIST_HEAD(&pf->node);
2640
2641	/* Fixups are *mostly* added in-order, but there are some
2642	 * exceptions. Look backwards through list for insertion point.
2643	 */
2644	list_for_each_entry_reverse(tmppf, pf_head, node) {
2645		if (tmppf->offset < pf->offset) {
2646			list_add(&pf->node, &tmppf->node);
2647			return 0;
2648		}
2649	}
2650	/*
2651	 * if we get here, then the new offset is the lowest so
2652	 * insert at the head
2653	 */
2654	list_add(&pf->node, pf_head);
2655	return 0;
2656}
2657
2658static int binder_translate_fd_array(struct list_head *pf_head,
2659				     struct binder_fd_array_object *fda,
2660				     const void __user *sender_ubuffer,
2661				     struct binder_buffer_object *parent,
2662				     struct binder_buffer_object *sender_uparent,
2663				     struct binder_transaction *t,
2664				     struct binder_thread *thread,
2665				     struct binder_transaction *in_reply_to)
2666{
2667	binder_size_t fdi, fd_buf_size;
2668	binder_size_t fda_offset;
2669	const void __user *sender_ufda_base;
2670	struct binder_proc *proc = thread->proc;
2671	int ret;
2672
2673	if (fda->num_fds == 0)
2674		return 0;
2675
2676	fd_buf_size = sizeof(u32) * fda->num_fds;
2677	if (fda->num_fds >= SIZE_MAX / sizeof(u32)) {
2678		binder_user_error("%d:%d got transaction with invalid number of fds (%lld)\n",
2679				  proc->pid, thread->pid, (u64)fda->num_fds);
2680		return -EINVAL;
2681	}
2682	if (fd_buf_size > parent->length ||
2683	    fda->parent_offset > parent->length - fd_buf_size) {
2684		/* No space for all file descriptors here. */
2685		binder_user_error("%d:%d not enough space to store %lld fds in buffer\n",
2686				  proc->pid, thread->pid, (u64)fda->num_fds);
2687		return -EINVAL;
2688	}
2689	/*
2690	 * the source data for binder_buffer_object is visible
2691	 * to user-space and the @buffer element is the user
2692	 * pointer to the buffer_object containing the fd_array.
2693	 * Convert the address to an offset relative to
2694	 * the base of the transaction buffer.
2695	 */
2696	fda_offset = parent->buffer - t->buffer->user_data +
2697		fda->parent_offset;
2698	sender_ufda_base = (void __user *)(uintptr_t)sender_uparent->buffer +
2699				fda->parent_offset;
2700
2701	if (!IS_ALIGNED((unsigned long)fda_offset, sizeof(u32)) ||
2702	    !IS_ALIGNED((unsigned long)sender_ufda_base, sizeof(u32))) {
2703		binder_user_error("%d:%d parent offset not aligned correctly.\n",
2704				  proc->pid, thread->pid);
2705		return -EINVAL;
2706	}
2707	ret = binder_add_fixup(pf_head, fda_offset, 0, fda->num_fds * sizeof(u32));
2708	if (ret)
2709		return ret;
2710
2711	for (fdi = 0; fdi < fda->num_fds; fdi++) {
2712		u32 fd;
 
2713		binder_size_t offset = fda_offset + fdi * sizeof(fd);
2714		binder_size_t sender_uoffset = fdi * sizeof(fd);
2715
2716		ret = copy_from_user(&fd, sender_ufda_base + sender_uoffset, sizeof(fd));
 
 
2717		if (!ret)
2718			ret = binder_translate_fd(fd, offset, t, thread,
2719						  in_reply_to);
2720		if (ret)
2721			return ret > 0 ? -EINVAL : ret;
2722	}
2723	return 0;
2724}
2725
2726static int binder_fixup_parent(struct list_head *pf_head,
2727			       struct binder_transaction *t,
2728			       struct binder_thread *thread,
2729			       struct binder_buffer_object *bp,
2730			       binder_size_t off_start_offset,
2731			       binder_size_t num_valid,
2732			       binder_size_t last_fixup_obj_off,
2733			       binder_size_t last_fixup_min_off)
2734{
2735	struct binder_buffer_object *parent;
2736	struct binder_buffer *b = t->buffer;
2737	struct binder_proc *proc = thread->proc;
2738	struct binder_proc *target_proc = t->to_proc;
2739	struct binder_object object;
2740	binder_size_t buffer_offset;
2741	binder_size_t parent_offset;
2742
2743	if (!(bp->flags & BINDER_BUFFER_FLAG_HAS_PARENT))
2744		return 0;
2745
2746	parent = binder_validate_ptr(target_proc, b, &object, bp->parent,
2747				     off_start_offset, &parent_offset,
2748				     num_valid);
2749	if (!parent) {
2750		binder_user_error("%d:%d got transaction with invalid parent offset or type\n",
2751				  proc->pid, thread->pid);
2752		return -EINVAL;
2753	}
2754
2755	if (!binder_validate_fixup(target_proc, b, off_start_offset,
2756				   parent_offset, bp->parent_offset,
2757				   last_fixup_obj_off,
2758				   last_fixup_min_off)) {
2759		binder_user_error("%d:%d got transaction with out-of-order buffer fixup\n",
2760				  proc->pid, thread->pid);
2761		return -EINVAL;
2762	}
2763
2764	if (parent->length < sizeof(binder_uintptr_t) ||
2765	    bp->parent_offset > parent->length - sizeof(binder_uintptr_t)) {
2766		/* No space for a pointer here! */
2767		binder_user_error("%d:%d got transaction with invalid parent offset\n",
2768				  proc->pid, thread->pid);
2769		return -EINVAL;
2770	}
 
 
 
 
 
 
 
 
2771
2772	buffer_offset = bp->parent_offset + parent->buffer - b->user_data;
2773
2774	return binder_add_fixup(pf_head, buffer_offset, bp->buffer, 0);
2775}
2776
2777/**
2778 * binder_can_update_transaction() - Can a txn be superseded by an updated one?
2779 * @t1: the pending async txn in the frozen process
2780 * @t2: the new async txn to supersede the outdated pending one
2781 *
2782 * Return:  true if t2 can supersede t1
2783 *          false if t2 can not supersede t1
2784 */
2785static bool binder_can_update_transaction(struct binder_transaction *t1,
2786					  struct binder_transaction *t2)
2787{
2788	if ((t1->flags & t2->flags & (TF_ONE_WAY | TF_UPDATE_TXN)) !=
2789	    (TF_ONE_WAY | TF_UPDATE_TXN) || !t1->to_proc || !t2->to_proc)
2790		return false;
2791	if (t1->to_proc->tsk == t2->to_proc->tsk && t1->code == t2->code &&
2792	    t1->flags == t2->flags && t1->buffer->pid == t2->buffer->pid &&
2793	    t1->buffer->target_node->ptr == t2->buffer->target_node->ptr &&
2794	    t1->buffer->target_node->cookie == t2->buffer->target_node->cookie)
2795		return true;
2796	return false;
2797}
2798
2799/**
2800 * binder_find_outdated_transaction_ilocked() - Find the outdated transaction
2801 * @t:		 new async transaction
2802 * @target_list: list to find outdated transaction
2803 *
2804 * Return: the outdated transaction if found
2805 *         NULL if no outdated transacton can be found
2806 *
2807 * Requires the proc->inner_lock to be held.
2808 */
2809static struct binder_transaction *
2810binder_find_outdated_transaction_ilocked(struct binder_transaction *t,
2811					 struct list_head *target_list)
2812{
2813	struct binder_work *w;
2814
2815	list_for_each_entry(w, target_list, entry) {
2816		struct binder_transaction *t_queued;
2817
2818		if (w->type != BINDER_WORK_TRANSACTION)
2819			continue;
2820		t_queued = container_of(w, struct binder_transaction, work);
2821		if (binder_can_update_transaction(t_queued, t))
2822			return t_queued;
2823	}
2824	return NULL;
2825}
2826
2827/**
2828 * binder_proc_transaction() - sends a transaction to a process and wakes it up
2829 * @t:		transaction to send
2830 * @proc:	process to send the transaction to
2831 * @thread:	thread in @proc to send the transaction to (may be NULL)
2832 *
2833 * This function queues a transaction to the specified process. It will try
2834 * to find a thread in the target process to handle the transaction and
2835 * wake it up. If no thread is found, the work is queued to the proc
2836 * waitqueue.
2837 *
2838 * If the @thread parameter is not NULL, the transaction is always queued
2839 * to the waitlist of that specific thread.
2840 *
2841 * Return:	0 if the transaction was successfully queued
2842 *		BR_DEAD_REPLY if the target process or thread is dead
2843 *		BR_FROZEN_REPLY if the target process or thread is frozen and
2844 *			the sync transaction was rejected
2845 *		BR_TRANSACTION_PENDING_FROZEN if the target process is frozen
2846 *		and the async transaction was successfully queued
2847 */
2848static int binder_proc_transaction(struct binder_transaction *t,
2849				    struct binder_proc *proc,
2850				    struct binder_thread *thread)
2851{
2852	struct binder_node *node = t->buffer->target_node;
2853	bool oneway = !!(t->flags & TF_ONE_WAY);
2854	bool pending_async = false;
2855	struct binder_transaction *t_outdated = NULL;
2856	bool frozen = false;
2857
2858	BUG_ON(!node);
2859	binder_node_lock(node);
2860	if (oneway) {
2861		BUG_ON(thread);
2862		if (node->has_async_transaction)
2863			pending_async = true;
2864		else
2865			node->has_async_transaction = true;
2866	}
2867
2868	binder_inner_proc_lock(proc);
2869	if (proc->is_frozen) {
2870		frozen = true;
2871		proc->sync_recv |= !oneway;
2872		proc->async_recv |= oneway;
2873	}
2874
2875	if ((frozen && !oneway) || proc->is_dead ||
2876			(thread && thread->is_dead)) {
2877		binder_inner_proc_unlock(proc);
2878		binder_node_unlock(node);
2879		return frozen ? BR_FROZEN_REPLY : BR_DEAD_REPLY;
2880	}
2881
2882	if (!thread && !pending_async)
2883		thread = binder_select_thread_ilocked(proc);
2884
2885	if (thread) {
2886		binder_enqueue_thread_work_ilocked(thread, &t->work);
2887	} else if (!pending_async) {
2888		binder_enqueue_work_ilocked(&t->work, &proc->todo);
2889	} else {
2890		if ((t->flags & TF_UPDATE_TXN) && frozen) {
2891			t_outdated = binder_find_outdated_transaction_ilocked(t,
2892									      &node->async_todo);
2893			if (t_outdated) {
2894				binder_debug(BINDER_DEBUG_TRANSACTION,
2895					     "txn %d supersedes %d\n",
2896					     t->debug_id, t_outdated->debug_id);
2897				list_del_init(&t_outdated->work.entry);
2898				proc->outstanding_txns--;
2899			}
2900		}
2901		binder_enqueue_work_ilocked(&t->work, &node->async_todo);
2902	}
2903
2904	if (!pending_async)
2905		binder_wakeup_thread_ilocked(proc, thread, !oneway /* sync */);
2906
2907	proc->outstanding_txns++;
2908	binder_inner_proc_unlock(proc);
2909	binder_node_unlock(node);
2910
2911	/*
2912	 * To reduce potential contention, free the outdated transaction and
2913	 * buffer after releasing the locks.
2914	 */
2915	if (t_outdated) {
2916		struct binder_buffer *buffer = t_outdated->buffer;
2917
2918		t_outdated->buffer = NULL;
2919		buffer->transaction = NULL;
2920		trace_binder_transaction_update_buffer_release(buffer);
2921		binder_release_entire_buffer(proc, NULL, buffer, false);
2922		binder_alloc_free_buf(&proc->alloc, buffer);
2923		kfree(t_outdated);
2924		binder_stats_deleted(BINDER_STAT_TRANSACTION);
2925	}
2926
2927	if (oneway && frozen)
2928		return BR_TRANSACTION_PENDING_FROZEN;
2929
2930	return 0;
2931}
2932
2933/**
2934 * binder_get_node_refs_for_txn() - Get required refs on node for txn
2935 * @node:         struct binder_node for which to get refs
2936 * @procp:        returns @node->proc if valid
2937 * @error:        if no @procp then returns BR_DEAD_REPLY
2938 *
2939 * User-space normally keeps the node alive when creating a transaction
2940 * since it has a reference to the target. The local strong ref keeps it
2941 * alive if the sending process dies before the target process processes
2942 * the transaction. If the source process is malicious or has a reference
2943 * counting bug, relying on the local strong ref can fail.
2944 *
2945 * Since user-space can cause the local strong ref to go away, we also take
2946 * a tmpref on the node to ensure it survives while we are constructing
2947 * the transaction. We also need a tmpref on the proc while we are
2948 * constructing the transaction, so we take that here as well.
2949 *
2950 * Return: The target_node with refs taken or NULL if no @node->proc is NULL.
2951 * Also sets @procp if valid. If the @node->proc is NULL indicating that the
2952 * target proc has died, @error is set to BR_DEAD_REPLY.
2953 */
2954static struct binder_node *binder_get_node_refs_for_txn(
2955		struct binder_node *node,
2956		struct binder_proc **procp,
2957		uint32_t *error)
2958{
2959	struct binder_node *target_node = NULL;
2960
2961	binder_node_inner_lock(node);
2962	if (node->proc) {
2963		target_node = node;
2964		binder_inc_node_nilocked(node, 1, 0, NULL);
2965		binder_inc_node_tmpref_ilocked(node);
2966		node->proc->tmp_ref++;
2967		*procp = node->proc;
2968	} else
2969		*error = BR_DEAD_REPLY;
2970	binder_node_inner_unlock(node);
2971
2972	return target_node;
2973}
2974
2975static void binder_set_txn_from_error(struct binder_transaction *t, int id,
2976				      uint32_t command, int32_t param)
2977{
2978	struct binder_thread *from = binder_get_txn_from_and_acq_inner(t);
2979
2980	if (!from) {
2981		/* annotation for sparse */
2982		__release(&from->proc->inner_lock);
2983		return;
2984	}
2985
2986	/* don't override existing errors */
2987	if (from->ee.command == BR_OK)
2988		binder_set_extended_error(&from->ee, id, command, param);
2989	binder_inner_proc_unlock(from->proc);
2990	binder_thread_dec_tmpref(from);
2991}
2992
2993static void binder_transaction(struct binder_proc *proc,
2994			       struct binder_thread *thread,
2995			       struct binder_transaction_data *tr, int reply,
2996			       binder_size_t extra_buffers_size)
2997{
2998	int ret;
2999	struct binder_transaction *t;
3000	struct binder_work *w;
3001	struct binder_work *tcomplete;
3002	binder_size_t buffer_offset = 0;
3003	binder_size_t off_start_offset, off_end_offset;
3004	binder_size_t off_min;
3005	binder_size_t sg_buf_offset, sg_buf_end_offset;
3006	binder_size_t user_offset = 0;
3007	struct binder_proc *target_proc = NULL;
3008	struct binder_thread *target_thread = NULL;
3009	struct binder_node *target_node = NULL;
3010	struct binder_transaction *in_reply_to = NULL;
3011	struct binder_transaction_log_entry *e;
3012	uint32_t return_error = 0;
3013	uint32_t return_error_param = 0;
3014	uint32_t return_error_line = 0;
3015	binder_size_t last_fixup_obj_off = 0;
3016	binder_size_t last_fixup_min_off = 0;
3017	struct binder_context *context = proc->context;
3018	int t_debug_id = atomic_inc_return(&binder_last_id);
3019	ktime_t t_start_time = ktime_get();
3020	char *secctx = NULL;
3021	u32 secctx_sz = 0;
3022	struct list_head sgc_head;
3023	struct list_head pf_head;
3024	const void __user *user_buffer = (const void __user *)
3025				(uintptr_t)tr->data.ptr.buffer;
3026	INIT_LIST_HEAD(&sgc_head);
3027	INIT_LIST_HEAD(&pf_head);
3028
3029	e = binder_transaction_log_add(&binder_transaction_log);
3030	e->debug_id = t_debug_id;
3031	e->call_type = reply ? 2 : !!(tr->flags & TF_ONE_WAY);
3032	e->from_proc = proc->pid;
3033	e->from_thread = thread->pid;
3034	e->target_handle = tr->target.handle;
3035	e->data_size = tr->data_size;
3036	e->offsets_size = tr->offsets_size;
3037	strscpy(e->context_name, proc->context->name, BINDERFS_MAX_NAME);
3038
3039	binder_inner_proc_lock(proc);
3040	binder_set_extended_error(&thread->ee, t_debug_id, BR_OK, 0);
3041	binder_inner_proc_unlock(proc);
3042
3043	if (reply) {
3044		binder_inner_proc_lock(proc);
3045		in_reply_to = thread->transaction_stack;
3046		if (in_reply_to == NULL) {
3047			binder_inner_proc_unlock(proc);
3048			binder_user_error("%d:%d got reply transaction with no transaction stack\n",
3049					  proc->pid, thread->pid);
3050			return_error = BR_FAILED_REPLY;
3051			return_error_param = -EPROTO;
3052			return_error_line = __LINE__;
3053			goto err_empty_call_stack;
3054		}
3055		if (in_reply_to->to_thread != thread) {
3056			spin_lock(&in_reply_to->lock);
3057			binder_user_error("%d:%d got reply transaction with bad transaction stack, transaction %d has target %d:%d\n",
3058				proc->pid, thread->pid, in_reply_to->debug_id,
3059				in_reply_to->to_proc ?
3060				in_reply_to->to_proc->pid : 0,
3061				in_reply_to->to_thread ?
3062				in_reply_to->to_thread->pid : 0);
3063			spin_unlock(&in_reply_to->lock);
3064			binder_inner_proc_unlock(proc);
3065			return_error = BR_FAILED_REPLY;
3066			return_error_param = -EPROTO;
3067			return_error_line = __LINE__;
3068			in_reply_to = NULL;
3069			goto err_bad_call_stack;
3070		}
3071		thread->transaction_stack = in_reply_to->to_parent;
3072		binder_inner_proc_unlock(proc);
3073		binder_set_nice(in_reply_to->saved_priority);
3074		target_thread = binder_get_txn_from_and_acq_inner(in_reply_to);
3075		if (target_thread == NULL) {
3076			/* annotation for sparse */
3077			__release(&target_thread->proc->inner_lock);
3078			binder_txn_error("%d:%d reply target not found\n",
3079				thread->pid, proc->pid);
3080			return_error = BR_DEAD_REPLY;
3081			return_error_line = __LINE__;
3082			goto err_dead_binder;
3083		}
3084		if (target_thread->transaction_stack != in_reply_to) {
3085			binder_user_error("%d:%d got reply transaction with bad target transaction stack %d, expected %d\n",
3086				proc->pid, thread->pid,
3087				target_thread->transaction_stack ?
3088				target_thread->transaction_stack->debug_id : 0,
3089				in_reply_to->debug_id);
3090			binder_inner_proc_unlock(target_thread->proc);
3091			return_error = BR_FAILED_REPLY;
3092			return_error_param = -EPROTO;
3093			return_error_line = __LINE__;
3094			in_reply_to = NULL;
3095			target_thread = NULL;
3096			goto err_dead_binder;
3097		}
3098		target_proc = target_thread->proc;
3099		target_proc->tmp_ref++;
3100		binder_inner_proc_unlock(target_thread->proc);
3101	} else {
3102		if (tr->target.handle) {
3103			struct binder_ref *ref;
3104
3105			/*
3106			 * There must already be a strong ref
3107			 * on this node. If so, do a strong
3108			 * increment on the node to ensure it
3109			 * stays alive until the transaction is
3110			 * done.
3111			 */
3112			binder_proc_lock(proc);
3113			ref = binder_get_ref_olocked(proc, tr->target.handle,
3114						     true);
3115			if (ref) {
3116				target_node = binder_get_node_refs_for_txn(
3117						ref->node, &target_proc,
3118						&return_error);
3119			} else {
3120				binder_user_error("%d:%d got transaction to invalid handle, %u\n",
3121						  proc->pid, thread->pid, tr->target.handle);
3122				return_error = BR_FAILED_REPLY;
3123			}
3124			binder_proc_unlock(proc);
3125		} else {
3126			mutex_lock(&context->context_mgr_node_lock);
3127			target_node = context->binder_context_mgr_node;
3128			if (target_node)
3129				target_node = binder_get_node_refs_for_txn(
3130						target_node, &target_proc,
3131						&return_error);
3132			else
3133				return_error = BR_DEAD_REPLY;
3134			mutex_unlock(&context->context_mgr_node_lock);
3135			if (target_node && target_proc->pid == proc->pid) {
3136				binder_user_error("%d:%d got transaction to context manager from process owning it\n",
3137						  proc->pid, thread->pid);
3138				return_error = BR_FAILED_REPLY;
3139				return_error_param = -EINVAL;
3140				return_error_line = __LINE__;
3141				goto err_invalid_target_handle;
3142			}
3143		}
3144		if (!target_node) {
3145			binder_txn_error("%d:%d cannot find target node\n",
3146				thread->pid, proc->pid);
3147			/*
3148			 * return_error is set above
3149			 */
3150			return_error_param = -EINVAL;
3151			return_error_line = __LINE__;
3152			goto err_dead_binder;
3153		}
3154		e->to_node = target_node->debug_id;
3155		if (WARN_ON(proc == target_proc)) {
3156			binder_txn_error("%d:%d self transactions not allowed\n",
3157				thread->pid, proc->pid);
3158			return_error = BR_FAILED_REPLY;
3159			return_error_param = -EINVAL;
3160			return_error_line = __LINE__;
3161			goto err_invalid_target_handle;
3162		}
3163		if (security_binder_transaction(proc->cred,
3164						target_proc->cred) < 0) {
3165			binder_txn_error("%d:%d transaction credentials failed\n",
3166				thread->pid, proc->pid);
3167			return_error = BR_FAILED_REPLY;
3168			return_error_param = -EPERM;
3169			return_error_line = __LINE__;
3170			goto err_invalid_target_handle;
3171		}
3172		binder_inner_proc_lock(proc);
3173
3174		w = list_first_entry_or_null(&thread->todo,
3175					     struct binder_work, entry);
3176		if (!(tr->flags & TF_ONE_WAY) && w &&
3177		    w->type == BINDER_WORK_TRANSACTION) {
3178			/*
3179			 * Do not allow new outgoing transaction from a
3180			 * thread that has a transaction at the head of
3181			 * its todo list. Only need to check the head
3182			 * because binder_select_thread_ilocked picks a
3183			 * thread from proc->waiting_threads to enqueue
3184			 * the transaction, and nothing is queued to the
3185			 * todo list while the thread is on waiting_threads.
3186			 */
3187			binder_user_error("%d:%d new transaction not allowed when there is a transaction on thread todo\n",
3188					  proc->pid, thread->pid);
3189			binder_inner_proc_unlock(proc);
3190			return_error = BR_FAILED_REPLY;
3191			return_error_param = -EPROTO;
3192			return_error_line = __LINE__;
3193			goto err_bad_todo_list;
3194		}
3195
3196		if (!(tr->flags & TF_ONE_WAY) && thread->transaction_stack) {
3197			struct binder_transaction *tmp;
3198
3199			tmp = thread->transaction_stack;
3200			if (tmp->to_thread != thread) {
3201				spin_lock(&tmp->lock);
3202				binder_user_error("%d:%d got new transaction with bad transaction stack, transaction %d has target %d:%d\n",
3203					proc->pid, thread->pid, tmp->debug_id,
3204					tmp->to_proc ? tmp->to_proc->pid : 0,
3205					tmp->to_thread ?
3206					tmp->to_thread->pid : 0);
3207				spin_unlock(&tmp->lock);
3208				binder_inner_proc_unlock(proc);
3209				return_error = BR_FAILED_REPLY;
3210				return_error_param = -EPROTO;
3211				return_error_line = __LINE__;
3212				goto err_bad_call_stack;
3213			}
3214			while (tmp) {
3215				struct binder_thread *from;
3216
3217				spin_lock(&tmp->lock);
3218				from = tmp->from;
3219				if (from && from->proc == target_proc) {
3220					atomic_inc(&from->tmp_ref);
3221					target_thread = from;
3222					spin_unlock(&tmp->lock);
3223					break;
3224				}
3225				spin_unlock(&tmp->lock);
3226				tmp = tmp->from_parent;
3227			}
3228		}
3229		binder_inner_proc_unlock(proc);
3230	}
3231	if (target_thread)
3232		e->to_thread = target_thread->pid;
3233	e->to_proc = target_proc->pid;
3234
3235	/* TODO: reuse incoming transaction for reply */
3236	t = kzalloc(sizeof(*t), GFP_KERNEL);
3237	if (t == NULL) {
3238		binder_txn_error("%d:%d cannot allocate transaction\n",
3239			thread->pid, proc->pid);
3240		return_error = BR_FAILED_REPLY;
3241		return_error_param = -ENOMEM;
3242		return_error_line = __LINE__;
3243		goto err_alloc_t_failed;
3244	}
3245	INIT_LIST_HEAD(&t->fd_fixups);
3246	binder_stats_created(BINDER_STAT_TRANSACTION);
3247	spin_lock_init(&t->lock);
3248
3249	tcomplete = kzalloc(sizeof(*tcomplete), GFP_KERNEL);
3250	if (tcomplete == NULL) {
3251		binder_txn_error("%d:%d cannot allocate work for transaction\n",
3252			thread->pid, proc->pid);
3253		return_error = BR_FAILED_REPLY;
3254		return_error_param = -ENOMEM;
3255		return_error_line = __LINE__;
3256		goto err_alloc_tcomplete_failed;
3257	}
3258	binder_stats_created(BINDER_STAT_TRANSACTION_COMPLETE);
3259
3260	t->debug_id = t_debug_id;
3261	t->start_time = t_start_time;
3262
3263	if (reply)
3264		binder_debug(BINDER_DEBUG_TRANSACTION,
3265			     "%d:%d BC_REPLY %d -> %d:%d, data %016llx-%016llx size %lld-%lld-%lld\n",
3266			     proc->pid, thread->pid, t->debug_id,
3267			     target_proc->pid, target_thread->pid,
3268			     (u64)tr->data.ptr.buffer,
3269			     (u64)tr->data.ptr.offsets,
3270			     (u64)tr->data_size, (u64)tr->offsets_size,
3271			     (u64)extra_buffers_size);
3272	else
3273		binder_debug(BINDER_DEBUG_TRANSACTION,
3274			     "%d:%d BC_TRANSACTION %d -> %d - node %d, data %016llx-%016llx size %lld-%lld-%lld\n",
3275			     proc->pid, thread->pid, t->debug_id,
3276			     target_proc->pid, target_node->debug_id,
3277			     (u64)tr->data.ptr.buffer,
3278			     (u64)tr->data.ptr.offsets,
3279			     (u64)tr->data_size, (u64)tr->offsets_size,
3280			     (u64)extra_buffers_size);
3281
3282	if (!reply && !(tr->flags & TF_ONE_WAY))
3283		t->from = thread;
3284	else
3285		t->from = NULL;
3286	t->from_pid = proc->pid;
3287	t->from_tid = thread->pid;
3288	t->sender_euid = task_euid(proc->tsk);
3289	t->to_proc = target_proc;
3290	t->to_thread = target_thread;
3291	t->code = tr->code;
3292	t->flags = tr->flags;
3293	t->priority = task_nice(current);
3294
3295	if (target_node && target_node->txn_security_ctx) {
3296		u32 secid;
3297		size_t added_size;
3298
3299		security_cred_getsecid(proc->cred, &secid);
3300		ret = security_secid_to_secctx(secid, &secctx, &secctx_sz);
3301		if (ret) {
3302			binder_txn_error("%d:%d failed to get security context\n",
3303				thread->pid, proc->pid);
3304			return_error = BR_FAILED_REPLY;
3305			return_error_param = ret;
3306			return_error_line = __LINE__;
3307			goto err_get_secctx_failed;
3308		}
3309		added_size = ALIGN(secctx_sz, sizeof(u64));
3310		extra_buffers_size += added_size;
3311		if (extra_buffers_size < added_size) {
3312			binder_txn_error("%d:%d integer overflow of extra_buffers_size\n",
3313				thread->pid, proc->pid);
3314			return_error = BR_FAILED_REPLY;
3315			return_error_param = -EINVAL;
3316			return_error_line = __LINE__;
3317			goto err_bad_extra_size;
3318		}
3319	}
3320
3321	trace_binder_transaction(reply, t, target_node);
3322
3323	t->buffer = binder_alloc_new_buf(&target_proc->alloc, tr->data_size,
3324		tr->offsets_size, extra_buffers_size,
3325		!reply && (t->flags & TF_ONE_WAY));
3326	if (IS_ERR(t->buffer)) {
3327		char *s;
3328
3329		ret = PTR_ERR(t->buffer);
3330		s = (ret == -ESRCH) ? ": vma cleared, target dead or dying"
3331			: (ret == -ENOSPC) ? ": no space left"
3332			: (ret == -ENOMEM) ? ": memory allocation failed"
3333			: "";
3334		binder_txn_error("cannot allocate buffer%s", s);
3335
3336		return_error_param = PTR_ERR(t->buffer);
3337		return_error = return_error_param == -ESRCH ?
3338			BR_DEAD_REPLY : BR_FAILED_REPLY;
3339		return_error_line = __LINE__;
3340		t->buffer = NULL;
3341		goto err_binder_alloc_buf_failed;
3342	}
3343	if (secctx) {
3344		int err;
3345		size_t buf_offset = ALIGN(tr->data_size, sizeof(void *)) +
3346				    ALIGN(tr->offsets_size, sizeof(void *)) +
3347				    ALIGN(extra_buffers_size, sizeof(void *)) -
3348				    ALIGN(secctx_sz, sizeof(u64));
3349
3350		t->security_ctx = t->buffer->user_data + buf_offset;
3351		err = binder_alloc_copy_to_buffer(&target_proc->alloc,
3352						  t->buffer, buf_offset,
3353						  secctx, secctx_sz);
3354		if (err) {
3355			t->security_ctx = 0;
3356			WARN_ON(1);
3357		}
3358		security_release_secctx(secctx, secctx_sz);
3359		secctx = NULL;
3360	}
3361	t->buffer->debug_id = t->debug_id;
3362	t->buffer->transaction = t;
3363	t->buffer->target_node = target_node;
3364	t->buffer->clear_on_free = !!(t->flags & TF_CLEAR_BUF);
3365	trace_binder_transaction_alloc_buf(t->buffer);
3366
3367	if (binder_alloc_copy_user_to_buffer(
3368				&target_proc->alloc,
 
 
 
 
 
 
 
 
 
 
 
 
 
3369				t->buffer,
3370				ALIGN(tr->data_size, sizeof(void *)),
3371				(const void __user *)
3372					(uintptr_t)tr->data.ptr.offsets,
3373				tr->offsets_size)) {
3374		binder_user_error("%d:%d got transaction with invalid offsets ptr\n",
3375				proc->pid, thread->pid);
3376		return_error = BR_FAILED_REPLY;
3377		return_error_param = -EFAULT;
3378		return_error_line = __LINE__;
3379		goto err_copy_data_failed;
3380	}
3381	if (!IS_ALIGNED(tr->offsets_size, sizeof(binder_size_t))) {
3382		binder_user_error("%d:%d got transaction with invalid offsets size, %lld\n",
3383				proc->pid, thread->pid, (u64)tr->offsets_size);
3384		return_error = BR_FAILED_REPLY;
3385		return_error_param = -EINVAL;
3386		return_error_line = __LINE__;
3387		goto err_bad_offset;
3388	}
3389	if (!IS_ALIGNED(extra_buffers_size, sizeof(u64))) {
3390		binder_user_error("%d:%d got transaction with unaligned buffers size, %lld\n",
3391				  proc->pid, thread->pid,
3392				  (u64)extra_buffers_size);
3393		return_error = BR_FAILED_REPLY;
3394		return_error_param = -EINVAL;
3395		return_error_line = __LINE__;
3396		goto err_bad_offset;
3397	}
3398	off_start_offset = ALIGN(tr->data_size, sizeof(void *));
3399	buffer_offset = off_start_offset;
3400	off_end_offset = off_start_offset + tr->offsets_size;
3401	sg_buf_offset = ALIGN(off_end_offset, sizeof(void *));
3402	sg_buf_end_offset = sg_buf_offset + extra_buffers_size -
3403		ALIGN(secctx_sz, sizeof(u64));
3404	off_min = 0;
3405	for (buffer_offset = off_start_offset; buffer_offset < off_end_offset;
3406	     buffer_offset += sizeof(binder_size_t)) {
3407		struct binder_object_header *hdr;
3408		size_t object_size;
3409		struct binder_object object;
3410		binder_size_t object_offset;
3411		binder_size_t copy_size;
3412
3413		if (binder_alloc_copy_from_buffer(&target_proc->alloc,
3414						  &object_offset,
3415						  t->buffer,
3416						  buffer_offset,
3417						  sizeof(object_offset))) {
3418			binder_txn_error("%d:%d copy offset from buffer failed\n",
3419				thread->pid, proc->pid);
3420			return_error = BR_FAILED_REPLY;
3421			return_error_param = -EINVAL;
3422			return_error_line = __LINE__;
3423			goto err_bad_offset;
3424		}
3425
3426		/*
3427		 * Copy the source user buffer up to the next object
3428		 * that will be processed.
3429		 */
3430		copy_size = object_offset - user_offset;
3431		if (copy_size && (user_offset > object_offset ||
3432				object_offset > tr->data_size ||
3433				binder_alloc_copy_user_to_buffer(
3434					&target_proc->alloc,
3435					t->buffer, user_offset,
3436					user_buffer + user_offset,
3437					copy_size))) {
3438			binder_user_error("%d:%d got transaction with invalid data ptr\n",
3439					proc->pid, thread->pid);
3440			return_error = BR_FAILED_REPLY;
3441			return_error_param = -EFAULT;
3442			return_error_line = __LINE__;
3443			goto err_copy_data_failed;
3444		}
3445		object_size = binder_get_object(target_proc, user_buffer,
3446				t->buffer, object_offset, &object);
3447		if (object_size == 0 || object_offset < off_min) {
3448			binder_user_error("%d:%d got transaction with invalid offset (%lld, min %lld max %lld) or object.\n",
3449					  proc->pid, thread->pid,
3450					  (u64)object_offset,
3451					  (u64)off_min,
3452					  (u64)t->buffer->data_size);
3453			return_error = BR_FAILED_REPLY;
3454			return_error_param = -EINVAL;
3455			return_error_line = __LINE__;
3456			goto err_bad_offset;
3457		}
3458		/*
3459		 * Set offset to the next buffer fragment to be
3460		 * copied
3461		 */
3462		user_offset = object_offset + object_size;
3463
3464		hdr = &object.hdr;
3465		off_min = object_offset + object_size;
3466		switch (hdr->type) {
3467		case BINDER_TYPE_BINDER:
3468		case BINDER_TYPE_WEAK_BINDER: {
3469			struct flat_binder_object *fp;
3470
3471			fp = to_flat_binder_object(hdr);
3472			ret = binder_translate_binder(fp, t, thread);
3473
3474			if (ret < 0 ||
3475			    binder_alloc_copy_to_buffer(&target_proc->alloc,
3476							t->buffer,
3477							object_offset,
3478							fp, sizeof(*fp))) {
3479				binder_txn_error("%d:%d translate binder failed\n",
3480					thread->pid, proc->pid);
3481				return_error = BR_FAILED_REPLY;
3482				return_error_param = ret;
3483				return_error_line = __LINE__;
3484				goto err_translate_failed;
3485			}
3486		} break;
3487		case BINDER_TYPE_HANDLE:
3488		case BINDER_TYPE_WEAK_HANDLE: {
3489			struct flat_binder_object *fp;
3490
3491			fp = to_flat_binder_object(hdr);
3492			ret = binder_translate_handle(fp, t, thread);
3493			if (ret < 0 ||
3494			    binder_alloc_copy_to_buffer(&target_proc->alloc,
3495							t->buffer,
3496							object_offset,
3497							fp, sizeof(*fp))) {
3498				binder_txn_error("%d:%d translate handle failed\n",
3499					thread->pid, proc->pid);
3500				return_error = BR_FAILED_REPLY;
3501				return_error_param = ret;
3502				return_error_line = __LINE__;
3503				goto err_translate_failed;
3504			}
3505		} break;
3506
3507		case BINDER_TYPE_FD: {
3508			struct binder_fd_object *fp = to_binder_fd_object(hdr);
3509			binder_size_t fd_offset = object_offset +
3510				(uintptr_t)&fp->fd - (uintptr_t)fp;
3511			int ret = binder_translate_fd(fp->fd, fd_offset, t,
3512						      thread, in_reply_to);
3513
3514			fp->pad_binder = 0;
3515			if (ret < 0 ||
3516			    binder_alloc_copy_to_buffer(&target_proc->alloc,
3517							t->buffer,
3518							object_offset,
3519							fp, sizeof(*fp))) {
3520				binder_txn_error("%d:%d translate fd failed\n",
3521					thread->pid, proc->pid);
3522				return_error = BR_FAILED_REPLY;
3523				return_error_param = ret;
3524				return_error_line = __LINE__;
3525				goto err_translate_failed;
3526			}
3527		} break;
3528		case BINDER_TYPE_FDA: {
3529			struct binder_object ptr_object;
3530			binder_size_t parent_offset;
3531			struct binder_object user_object;
3532			size_t user_parent_size;
3533			struct binder_fd_array_object *fda =
3534				to_binder_fd_array_object(hdr);
3535			size_t num_valid = (buffer_offset - off_start_offset) /
3536						sizeof(binder_size_t);
3537			struct binder_buffer_object *parent =
3538				binder_validate_ptr(target_proc, t->buffer,
3539						    &ptr_object, fda->parent,
3540						    off_start_offset,
3541						    &parent_offset,
3542						    num_valid);
3543			if (!parent) {
3544				binder_user_error("%d:%d got transaction with invalid parent offset or type\n",
3545						  proc->pid, thread->pid);
3546				return_error = BR_FAILED_REPLY;
3547				return_error_param = -EINVAL;
3548				return_error_line = __LINE__;
3549				goto err_bad_parent;
3550			}
3551			if (!binder_validate_fixup(target_proc, t->buffer,
3552						   off_start_offset,
3553						   parent_offset,
3554						   fda->parent_offset,
3555						   last_fixup_obj_off,
3556						   last_fixup_min_off)) {
3557				binder_user_error("%d:%d got transaction with out-of-order buffer fixup\n",
3558						  proc->pid, thread->pid);
3559				return_error = BR_FAILED_REPLY;
3560				return_error_param = -EINVAL;
3561				return_error_line = __LINE__;
3562				goto err_bad_parent;
3563			}
3564			/*
3565			 * We need to read the user version of the parent
3566			 * object to get the original user offset
3567			 */
3568			user_parent_size =
3569				binder_get_object(proc, user_buffer, t->buffer,
3570						  parent_offset, &user_object);
3571			if (user_parent_size != sizeof(user_object.bbo)) {
3572				binder_user_error("%d:%d invalid ptr object size: %zd vs %zd\n",
3573						  proc->pid, thread->pid,
3574						  user_parent_size,
3575						  sizeof(user_object.bbo));
3576				return_error = BR_FAILED_REPLY;
3577				return_error_param = -EINVAL;
3578				return_error_line = __LINE__;
3579				goto err_bad_parent;
3580			}
3581			ret = binder_translate_fd_array(&pf_head, fda,
3582							user_buffer, parent,
3583							&user_object.bbo, t,
3584							thread, in_reply_to);
3585			if (!ret)
3586				ret = binder_alloc_copy_to_buffer(&target_proc->alloc,
3587								  t->buffer,
3588								  object_offset,
3589								  fda, sizeof(*fda));
3590			if (ret) {
3591				binder_txn_error("%d:%d translate fd array failed\n",
3592					thread->pid, proc->pid);
3593				return_error = BR_FAILED_REPLY;
3594				return_error_param = ret > 0 ? -EINVAL : ret;
3595				return_error_line = __LINE__;
3596				goto err_translate_failed;
3597			}
3598			last_fixup_obj_off = parent_offset;
3599			last_fixup_min_off =
3600				fda->parent_offset + sizeof(u32) * fda->num_fds;
3601		} break;
3602		case BINDER_TYPE_PTR: {
3603			struct binder_buffer_object *bp =
3604				to_binder_buffer_object(hdr);
3605			size_t buf_left = sg_buf_end_offset - sg_buf_offset;
3606			size_t num_valid;
3607
3608			if (bp->length > buf_left) {
3609				binder_user_error("%d:%d got transaction with too large buffer\n",
3610						  proc->pid, thread->pid);
3611				return_error = BR_FAILED_REPLY;
3612				return_error_param = -EINVAL;
3613				return_error_line = __LINE__;
3614				goto err_bad_offset;
3615			}
3616			ret = binder_defer_copy(&sgc_head, sg_buf_offset,
3617				(const void __user *)(uintptr_t)bp->buffer,
3618				bp->length);
3619			if (ret) {
3620				binder_txn_error("%d:%d deferred copy failed\n",
3621					thread->pid, proc->pid);
 
 
 
 
3622				return_error = BR_FAILED_REPLY;
3623				return_error_param = ret;
3624				return_error_line = __LINE__;
3625				goto err_translate_failed;
3626			}
3627			/* Fixup buffer pointer to target proc address space */
3628			bp->buffer = t->buffer->user_data + sg_buf_offset;
 
3629			sg_buf_offset += ALIGN(bp->length, sizeof(u64));
3630
3631			num_valid = (buffer_offset - off_start_offset) /
3632					sizeof(binder_size_t);
3633			ret = binder_fixup_parent(&pf_head, t,
3634						  thread, bp,
3635						  off_start_offset,
3636						  num_valid,
3637						  last_fixup_obj_off,
3638						  last_fixup_min_off);
3639			if (ret < 0 ||
3640			    binder_alloc_copy_to_buffer(&target_proc->alloc,
3641							t->buffer,
3642							object_offset,
3643							bp, sizeof(*bp))) {
3644				binder_txn_error("%d:%d failed to fixup parent\n",
3645					thread->pid, proc->pid);
3646				return_error = BR_FAILED_REPLY;
3647				return_error_param = ret;
3648				return_error_line = __LINE__;
3649				goto err_translate_failed;
3650			}
3651			last_fixup_obj_off = object_offset;
3652			last_fixup_min_off = 0;
3653		} break;
3654		default:
3655			binder_user_error("%d:%d got transaction with invalid object type, %x\n",
3656				proc->pid, thread->pid, hdr->type);
3657			return_error = BR_FAILED_REPLY;
3658			return_error_param = -EINVAL;
3659			return_error_line = __LINE__;
3660			goto err_bad_object_type;
3661		}
3662	}
3663	/* Done processing objects, copy the rest of the buffer */
3664	if (binder_alloc_copy_user_to_buffer(
3665				&target_proc->alloc,
3666				t->buffer, user_offset,
3667				user_buffer + user_offset,
3668				tr->data_size - user_offset)) {
3669		binder_user_error("%d:%d got transaction with invalid data ptr\n",
3670				proc->pid, thread->pid);
3671		return_error = BR_FAILED_REPLY;
3672		return_error_param = -EFAULT;
3673		return_error_line = __LINE__;
3674		goto err_copy_data_failed;
3675	}
3676
3677	ret = binder_do_deferred_txn_copies(&target_proc->alloc, t->buffer,
3678					    &sgc_head, &pf_head);
3679	if (ret) {
3680		binder_user_error("%d:%d got transaction with invalid offsets ptr\n",
3681				  proc->pid, thread->pid);
3682		return_error = BR_FAILED_REPLY;
3683		return_error_param = ret;
3684		return_error_line = __LINE__;
3685		goto err_copy_data_failed;
3686	}
3687	if (t->buffer->oneway_spam_suspect)
3688		tcomplete->type = BINDER_WORK_TRANSACTION_ONEWAY_SPAM_SUSPECT;
3689	else
3690		tcomplete->type = BINDER_WORK_TRANSACTION_COMPLETE;
3691	t->work.type = BINDER_WORK_TRANSACTION;
3692
3693	if (reply) {
3694		binder_enqueue_thread_work(thread, tcomplete);
3695		binder_inner_proc_lock(target_proc);
3696		if (target_thread->is_dead) {
3697			return_error = BR_DEAD_REPLY;
3698			binder_inner_proc_unlock(target_proc);
3699			goto err_dead_proc_or_thread;
3700		}
3701		BUG_ON(t->buffer->async_transaction != 0);
3702		binder_pop_transaction_ilocked(target_thread, in_reply_to);
3703		binder_enqueue_thread_work_ilocked(target_thread, &t->work);
3704		target_proc->outstanding_txns++;
3705		binder_inner_proc_unlock(target_proc);
3706		wake_up_interruptible_sync(&target_thread->wait);
3707		binder_free_transaction(in_reply_to);
3708	} else if (!(t->flags & TF_ONE_WAY)) {
3709		BUG_ON(t->buffer->async_transaction != 0);
3710		binder_inner_proc_lock(proc);
3711		/*
3712		 * Defer the TRANSACTION_COMPLETE, so we don't return to
3713		 * userspace immediately; this allows the target process to
3714		 * immediately start processing this transaction, reducing
3715		 * latency. We will then return the TRANSACTION_COMPLETE when
3716		 * the target replies (or there is an error).
3717		 */
3718		binder_enqueue_deferred_thread_work_ilocked(thread, tcomplete);
3719		t->need_reply = 1;
3720		t->from_parent = thread->transaction_stack;
3721		thread->transaction_stack = t;
3722		binder_inner_proc_unlock(proc);
3723		return_error = binder_proc_transaction(t,
3724				target_proc, target_thread);
3725		if (return_error) {
3726			binder_inner_proc_lock(proc);
3727			binder_pop_transaction_ilocked(thread, t);
3728			binder_inner_proc_unlock(proc);
3729			goto err_dead_proc_or_thread;
3730		}
3731	} else {
3732		BUG_ON(target_node == NULL);
3733		BUG_ON(t->buffer->async_transaction != 1);
3734		return_error = binder_proc_transaction(t, target_proc, NULL);
3735		/*
3736		 * Let the caller know when async transaction reaches a frozen
3737		 * process and is put in a pending queue, waiting for the target
3738		 * process to be unfrozen.
3739		 */
3740		if (return_error == BR_TRANSACTION_PENDING_FROZEN)
3741			tcomplete->type = BINDER_WORK_TRANSACTION_PENDING;
3742		binder_enqueue_thread_work(thread, tcomplete);
3743		if (return_error &&
3744		    return_error != BR_TRANSACTION_PENDING_FROZEN)
3745			goto err_dead_proc_or_thread;
3746	}
3747	if (target_thread)
3748		binder_thread_dec_tmpref(target_thread);
3749	binder_proc_dec_tmpref(target_proc);
3750	if (target_node)
3751		binder_dec_node_tmpref(target_node);
3752	/*
3753	 * write barrier to synchronize with initialization
3754	 * of log entry
3755	 */
3756	smp_wmb();
3757	WRITE_ONCE(e->debug_id_done, t_debug_id);
3758	return;
3759
3760err_dead_proc_or_thread:
3761	binder_txn_error("%d:%d dead process or thread\n",
3762		thread->pid, proc->pid);
3763	return_error_line = __LINE__;
3764	binder_dequeue_work(proc, tcomplete);
3765err_translate_failed:
3766err_bad_object_type:
3767err_bad_offset:
3768err_bad_parent:
3769err_copy_data_failed:
3770	binder_cleanup_deferred_txn_lists(&sgc_head, &pf_head);
3771	binder_free_txn_fixups(t);
3772	trace_binder_transaction_failed_buffer_release(t->buffer);
3773	binder_transaction_buffer_release(target_proc, NULL, t->buffer,
3774					  buffer_offset, true);
3775	if (target_node)
3776		binder_dec_node_tmpref(target_node);
3777	target_node = NULL;
3778	t->buffer->transaction = NULL;
3779	binder_alloc_free_buf(&target_proc->alloc, t->buffer);
3780err_binder_alloc_buf_failed:
3781err_bad_extra_size:
3782	if (secctx)
3783		security_release_secctx(secctx, secctx_sz);
3784err_get_secctx_failed:
3785	kfree(tcomplete);
3786	binder_stats_deleted(BINDER_STAT_TRANSACTION_COMPLETE);
3787err_alloc_tcomplete_failed:
3788	if (trace_binder_txn_latency_free_enabled())
3789		binder_txn_latency_free(t);
3790	kfree(t);
3791	binder_stats_deleted(BINDER_STAT_TRANSACTION);
3792err_alloc_t_failed:
3793err_bad_todo_list:
3794err_bad_call_stack:
3795err_empty_call_stack:
3796err_dead_binder:
3797err_invalid_target_handle:
 
 
 
 
3798	if (target_node) {
3799		binder_dec_node(target_node, 1, 0);
3800		binder_dec_node_tmpref(target_node);
3801	}
3802
3803	binder_debug(BINDER_DEBUG_FAILED_TRANSACTION,
3804		     "%d:%d transaction %s to %d:%d failed %d/%d/%d, size %lld-%lld line %d\n",
3805		     proc->pid, thread->pid, reply ? "reply" :
3806		     (tr->flags & TF_ONE_WAY ? "async" : "call"),
3807		     target_proc ? target_proc->pid : 0,
3808		     target_thread ? target_thread->pid : 0,
3809		     t_debug_id, return_error, return_error_param,
3810		     (u64)tr->data_size, (u64)tr->offsets_size,
3811		     return_error_line);
3812
3813	if (target_thread)
3814		binder_thread_dec_tmpref(target_thread);
3815	if (target_proc)
3816		binder_proc_dec_tmpref(target_proc);
3817
3818	{
3819		struct binder_transaction_log_entry *fe;
3820
3821		e->return_error = return_error;
3822		e->return_error_param = return_error_param;
3823		e->return_error_line = return_error_line;
3824		fe = binder_transaction_log_add(&binder_transaction_log_failed);
3825		*fe = *e;
3826		/*
3827		 * write barrier to synchronize with initialization
3828		 * of log entry
3829		 */
3830		smp_wmb();
3831		WRITE_ONCE(e->debug_id_done, t_debug_id);
3832		WRITE_ONCE(fe->debug_id_done, t_debug_id);
3833	}
3834
3835	BUG_ON(thread->return_error.cmd != BR_OK);
3836	if (in_reply_to) {
3837		binder_set_txn_from_error(in_reply_to, t_debug_id,
3838				return_error, return_error_param);
3839		thread->return_error.cmd = BR_TRANSACTION_COMPLETE;
3840		binder_enqueue_thread_work(thread, &thread->return_error.work);
3841		binder_send_failed_reply(in_reply_to, return_error);
3842	} else {
3843		binder_inner_proc_lock(proc);
3844		binder_set_extended_error(&thread->ee, t_debug_id,
3845				return_error, return_error_param);
3846		binder_inner_proc_unlock(proc);
3847		thread->return_error.cmd = return_error;
3848		binder_enqueue_thread_work(thread, &thread->return_error.work);
3849	}
3850}
3851
3852static int
3853binder_request_freeze_notification(struct binder_proc *proc,
3854				   struct binder_thread *thread,
3855				   struct binder_handle_cookie *handle_cookie)
3856{
3857	struct binder_ref_freeze *freeze;
3858	struct binder_ref *ref;
3859
3860	freeze = kzalloc(sizeof(*freeze), GFP_KERNEL);
3861	if (!freeze)
3862		return -ENOMEM;
3863	binder_proc_lock(proc);
3864	ref = binder_get_ref_olocked(proc, handle_cookie->handle, false);
3865	if (!ref) {
3866		binder_user_error("%d:%d BC_REQUEST_FREEZE_NOTIFICATION invalid ref %d\n",
3867				  proc->pid, thread->pid, handle_cookie->handle);
3868		binder_proc_unlock(proc);
3869		kfree(freeze);
3870		return -EINVAL;
3871	}
3872
3873	binder_node_lock(ref->node);
3874	if (ref->freeze) {
3875		binder_user_error("%d:%d BC_REQUEST_FREEZE_NOTIFICATION already set\n",
3876				  proc->pid, thread->pid);
3877		binder_node_unlock(ref->node);
3878		binder_proc_unlock(proc);
3879		kfree(freeze);
3880		return -EINVAL;
3881	}
3882
3883	binder_stats_created(BINDER_STAT_FREEZE);
3884	INIT_LIST_HEAD(&freeze->work.entry);
3885	freeze->cookie = handle_cookie->cookie;
3886	freeze->work.type = BINDER_WORK_FROZEN_BINDER;
3887	ref->freeze = freeze;
3888
3889	if (ref->node->proc) {
3890		binder_inner_proc_lock(ref->node->proc);
3891		freeze->is_frozen = ref->node->proc->is_frozen;
3892		binder_inner_proc_unlock(ref->node->proc);
3893
3894		binder_inner_proc_lock(proc);
3895		binder_enqueue_work_ilocked(&freeze->work, &proc->todo);
3896		binder_wakeup_proc_ilocked(proc);
3897		binder_inner_proc_unlock(proc);
3898	}
3899
3900	binder_node_unlock(ref->node);
3901	binder_proc_unlock(proc);
3902	return 0;
3903}
3904
3905static int
3906binder_clear_freeze_notification(struct binder_proc *proc,
3907				 struct binder_thread *thread,
3908				 struct binder_handle_cookie *handle_cookie)
3909{
3910	struct binder_ref_freeze *freeze;
3911	struct binder_ref *ref;
3912
3913	binder_proc_lock(proc);
3914	ref = binder_get_ref_olocked(proc, handle_cookie->handle, false);
3915	if (!ref) {
3916		binder_user_error("%d:%d BC_CLEAR_FREEZE_NOTIFICATION invalid ref %d\n",
3917				  proc->pid, thread->pid, handle_cookie->handle);
3918		binder_proc_unlock(proc);
3919		return -EINVAL;
3920	}
3921
3922	binder_node_lock(ref->node);
3923
3924	if (!ref->freeze) {
3925		binder_user_error("%d:%d BC_CLEAR_FREEZE_NOTIFICATION freeze notification not active\n",
3926				  proc->pid, thread->pid);
3927		binder_node_unlock(ref->node);
3928		binder_proc_unlock(proc);
3929		return -EINVAL;
3930	}
3931	freeze = ref->freeze;
3932	binder_inner_proc_lock(proc);
3933	if (freeze->cookie != handle_cookie->cookie) {
3934		binder_user_error("%d:%d BC_CLEAR_FREEZE_NOTIFICATION freeze notification cookie mismatch %016llx != %016llx\n",
3935				  proc->pid, thread->pid, (u64)freeze->cookie,
3936				  (u64)handle_cookie->cookie);
3937		binder_inner_proc_unlock(proc);
3938		binder_node_unlock(ref->node);
3939		binder_proc_unlock(proc);
3940		return -EINVAL;
3941	}
3942	ref->freeze = NULL;
3943	/*
3944	 * Take the existing freeze object and overwrite its work type. There are three cases here:
3945	 * 1. No pending notification. In this case just add the work to the queue.
3946	 * 2. A notification was sent and is pending an ack from userspace. Once an ack arrives, we
3947	 *    should resend with the new work type.
3948	 * 3. A notification is pending to be sent. Since the work is already in the queue, nothing
3949	 *    needs to be done here.
3950	 */
3951	freeze->work.type = BINDER_WORK_CLEAR_FREEZE_NOTIFICATION;
3952	if (list_empty(&freeze->work.entry)) {
3953		binder_enqueue_work_ilocked(&freeze->work, &proc->todo);
3954		binder_wakeup_proc_ilocked(proc);
3955	} else if (freeze->sent) {
3956		freeze->resend = true;
3957	}
3958	binder_inner_proc_unlock(proc);
3959	binder_node_unlock(ref->node);
3960	binder_proc_unlock(proc);
3961	return 0;
3962}
3963
3964static int
3965binder_freeze_notification_done(struct binder_proc *proc,
3966				struct binder_thread *thread,
3967				binder_uintptr_t cookie)
3968{
3969	struct binder_ref_freeze *freeze = NULL;
3970	struct binder_work *w;
3971
3972	binder_inner_proc_lock(proc);
3973	list_for_each_entry(w, &proc->delivered_freeze, entry) {
3974		struct binder_ref_freeze *tmp_freeze =
3975			container_of(w, struct binder_ref_freeze, work);
3976
3977		if (tmp_freeze->cookie == cookie) {
3978			freeze = tmp_freeze;
3979			break;
3980		}
3981	}
3982	if (!freeze) {
3983		binder_user_error("%d:%d BC_FREEZE_NOTIFICATION_DONE %016llx not found\n",
3984				  proc->pid, thread->pid, (u64)cookie);
3985		binder_inner_proc_unlock(proc);
3986		return -EINVAL;
3987	}
3988	binder_dequeue_work_ilocked(&freeze->work);
3989	freeze->sent = false;
3990	if (freeze->resend) {
3991		freeze->resend = false;
3992		binder_enqueue_work_ilocked(&freeze->work, &proc->todo);
3993		binder_wakeup_proc_ilocked(proc);
3994	}
3995	binder_inner_proc_unlock(proc);
3996	return 0;
3997}
3998
3999/**
4000 * binder_free_buf() - free the specified buffer
4001 * @proc:	binder proc that owns buffer
4002 * @buffer:	buffer to be freed
4003 * @is_failure:	failed to send transaction
4004 *
4005 * If buffer for an async transaction, enqueue the next async
4006 * transaction from the node.
4007 *
4008 * Cleanup buffer and free it.
4009 */
4010static void
4011binder_free_buf(struct binder_proc *proc,
4012		struct binder_thread *thread,
4013		struct binder_buffer *buffer, bool is_failure)
4014{
4015	binder_inner_proc_lock(proc);
4016	if (buffer->transaction) {
4017		buffer->transaction->buffer = NULL;
4018		buffer->transaction = NULL;
4019	}
4020	binder_inner_proc_unlock(proc);
4021	if (buffer->async_transaction && buffer->target_node) {
4022		struct binder_node *buf_node;
4023		struct binder_work *w;
4024
4025		buf_node = buffer->target_node;
4026		binder_node_inner_lock(buf_node);
4027		BUG_ON(!buf_node->has_async_transaction);
4028		BUG_ON(buf_node->proc != proc);
4029		w = binder_dequeue_work_head_ilocked(
4030				&buf_node->async_todo);
4031		if (!w) {
4032			buf_node->has_async_transaction = false;
4033		} else {
4034			binder_enqueue_work_ilocked(
4035					w, &proc->todo);
4036			binder_wakeup_proc_ilocked(proc);
4037		}
4038		binder_node_inner_unlock(buf_node);
4039	}
4040	trace_binder_transaction_buffer_release(buffer);
4041	binder_release_entire_buffer(proc, thread, buffer, is_failure);
4042	binder_alloc_free_buf(&proc->alloc, buffer);
4043}
4044
4045static int binder_thread_write(struct binder_proc *proc,
4046			struct binder_thread *thread,
4047			binder_uintptr_t binder_buffer, size_t size,
4048			binder_size_t *consumed)
4049{
4050	uint32_t cmd;
4051	struct binder_context *context = proc->context;
4052	void __user *buffer = (void __user *)(uintptr_t)binder_buffer;
4053	void __user *ptr = buffer + *consumed;
4054	void __user *end = buffer + size;
4055
4056	while (ptr < end && thread->return_error.cmd == BR_OK) {
4057		int ret;
4058
4059		if (get_user(cmd, (uint32_t __user *)ptr))
4060			return -EFAULT;
4061		ptr += sizeof(uint32_t);
4062		trace_binder_command(cmd);
4063		if (_IOC_NR(cmd) < ARRAY_SIZE(binder_stats.bc)) {
4064			atomic_inc(&binder_stats.bc[_IOC_NR(cmd)]);
4065			atomic_inc(&proc->stats.bc[_IOC_NR(cmd)]);
4066			atomic_inc(&thread->stats.bc[_IOC_NR(cmd)]);
4067		}
4068		switch (cmd) {
4069		case BC_INCREFS:
4070		case BC_ACQUIRE:
4071		case BC_RELEASE:
4072		case BC_DECREFS: {
4073			uint32_t target;
4074			const char *debug_string;
4075			bool strong = cmd == BC_ACQUIRE || cmd == BC_RELEASE;
4076			bool increment = cmd == BC_INCREFS || cmd == BC_ACQUIRE;
4077			struct binder_ref_data rdata;
4078
4079			if (get_user(target, (uint32_t __user *)ptr))
4080				return -EFAULT;
4081
4082			ptr += sizeof(uint32_t);
4083			ret = -1;
4084			if (increment && !target) {
4085				struct binder_node *ctx_mgr_node;
4086
4087				mutex_lock(&context->context_mgr_node_lock);
4088				ctx_mgr_node = context->binder_context_mgr_node;
4089				if (ctx_mgr_node) {
4090					if (ctx_mgr_node->proc == proc) {
4091						binder_user_error("%d:%d context manager tried to acquire desc 0\n",
4092								  proc->pid, thread->pid);
4093						mutex_unlock(&context->context_mgr_node_lock);
4094						return -EINVAL;
4095					}
4096					ret = binder_inc_ref_for_node(
4097							proc, ctx_mgr_node,
4098							strong, NULL, &rdata);
4099				}
4100				mutex_unlock(&context->context_mgr_node_lock);
4101			}
4102			if (ret)
4103				ret = binder_update_ref_for_handle(
4104						proc, target, increment, strong,
4105						&rdata);
4106			if (!ret && rdata.desc != target) {
4107				binder_user_error("%d:%d tried to acquire reference to desc %d, got %d instead\n",
4108					proc->pid, thread->pid,
4109					target, rdata.desc);
4110			}
4111			switch (cmd) {
4112			case BC_INCREFS:
4113				debug_string = "IncRefs";
4114				break;
4115			case BC_ACQUIRE:
4116				debug_string = "Acquire";
4117				break;
4118			case BC_RELEASE:
4119				debug_string = "Release";
4120				break;
4121			case BC_DECREFS:
4122			default:
4123				debug_string = "DecRefs";
4124				break;
4125			}
4126			if (ret) {
4127				binder_user_error("%d:%d %s %d refcount change on invalid ref %d ret %d\n",
4128					proc->pid, thread->pid, debug_string,
4129					strong, target, ret);
4130				break;
4131			}
4132			binder_debug(BINDER_DEBUG_USER_REFS,
4133				     "%d:%d %s ref %d desc %d s %d w %d\n",
4134				     proc->pid, thread->pid, debug_string,
4135				     rdata.debug_id, rdata.desc, rdata.strong,
4136				     rdata.weak);
4137			break;
4138		}
4139		case BC_INCREFS_DONE:
4140		case BC_ACQUIRE_DONE: {
4141			binder_uintptr_t node_ptr;
4142			binder_uintptr_t cookie;
4143			struct binder_node *node;
4144			bool free_node;
4145
4146			if (get_user(node_ptr, (binder_uintptr_t __user *)ptr))
4147				return -EFAULT;
4148			ptr += sizeof(binder_uintptr_t);
4149			if (get_user(cookie, (binder_uintptr_t __user *)ptr))
4150				return -EFAULT;
4151			ptr += sizeof(binder_uintptr_t);
4152			node = binder_get_node(proc, node_ptr);
4153			if (node == NULL) {
4154				binder_user_error("%d:%d %s u%016llx no match\n",
4155					proc->pid, thread->pid,
4156					cmd == BC_INCREFS_DONE ?
4157					"BC_INCREFS_DONE" :
4158					"BC_ACQUIRE_DONE",
4159					(u64)node_ptr);
4160				break;
4161			}
4162			if (cookie != node->cookie) {
4163				binder_user_error("%d:%d %s u%016llx node %d cookie mismatch %016llx != %016llx\n",
4164					proc->pid, thread->pid,
4165					cmd == BC_INCREFS_DONE ?
4166					"BC_INCREFS_DONE" : "BC_ACQUIRE_DONE",
4167					(u64)node_ptr, node->debug_id,
4168					(u64)cookie, (u64)node->cookie);
4169				binder_put_node(node);
4170				break;
4171			}
4172			binder_node_inner_lock(node);
4173			if (cmd == BC_ACQUIRE_DONE) {
4174				if (node->pending_strong_ref == 0) {
4175					binder_user_error("%d:%d BC_ACQUIRE_DONE node %d has no pending acquire request\n",
4176						proc->pid, thread->pid,
4177						node->debug_id);
4178					binder_node_inner_unlock(node);
4179					binder_put_node(node);
4180					break;
4181				}
4182				node->pending_strong_ref = 0;
4183			} else {
4184				if (node->pending_weak_ref == 0) {
4185					binder_user_error("%d:%d BC_INCREFS_DONE node %d has no pending increfs request\n",
4186						proc->pid, thread->pid,
4187						node->debug_id);
4188					binder_node_inner_unlock(node);
4189					binder_put_node(node);
4190					break;
4191				}
4192				node->pending_weak_ref = 0;
4193			}
4194			free_node = binder_dec_node_nilocked(node,
4195					cmd == BC_ACQUIRE_DONE, 0);
4196			WARN_ON(free_node);
4197			binder_debug(BINDER_DEBUG_USER_REFS,
4198				     "%d:%d %s node %d ls %d lw %d tr %d\n",
4199				     proc->pid, thread->pid,
4200				     cmd == BC_INCREFS_DONE ? "BC_INCREFS_DONE" : "BC_ACQUIRE_DONE",
4201				     node->debug_id, node->local_strong_refs,
4202				     node->local_weak_refs, node->tmp_refs);
4203			binder_node_inner_unlock(node);
4204			binder_put_node(node);
4205			break;
4206		}
4207		case BC_ATTEMPT_ACQUIRE:
4208			pr_err("BC_ATTEMPT_ACQUIRE not supported\n");
4209			return -EINVAL;
4210		case BC_ACQUIRE_RESULT:
4211			pr_err("BC_ACQUIRE_RESULT not supported\n");
4212			return -EINVAL;
4213
4214		case BC_FREE_BUFFER: {
4215			binder_uintptr_t data_ptr;
4216			struct binder_buffer *buffer;
4217
4218			if (get_user(data_ptr, (binder_uintptr_t __user *)ptr))
4219				return -EFAULT;
4220			ptr += sizeof(binder_uintptr_t);
4221
4222			buffer = binder_alloc_prepare_to_free(&proc->alloc,
4223							      data_ptr);
4224			if (IS_ERR_OR_NULL(buffer)) {
4225				if (PTR_ERR(buffer) == -EPERM) {
4226					binder_user_error(
4227						"%d:%d BC_FREE_BUFFER u%016llx matched unreturned or currently freeing buffer\n",
4228						proc->pid, thread->pid,
4229						(u64)data_ptr);
4230				} else {
4231					binder_user_error(
4232						"%d:%d BC_FREE_BUFFER u%016llx no match\n",
4233						proc->pid, thread->pid,
4234						(u64)data_ptr);
4235				}
4236				break;
4237			}
4238			binder_debug(BINDER_DEBUG_FREE_BUFFER,
4239				     "%d:%d BC_FREE_BUFFER u%016llx found buffer %d for %s transaction\n",
4240				     proc->pid, thread->pid, (u64)data_ptr,
4241				     buffer->debug_id,
4242				     buffer->transaction ? "active" : "finished");
4243			binder_free_buf(proc, thread, buffer, false);
4244			break;
4245		}
4246
4247		case BC_TRANSACTION_SG:
4248		case BC_REPLY_SG: {
4249			struct binder_transaction_data_sg tr;
4250
4251			if (copy_from_user(&tr, ptr, sizeof(tr)))
4252				return -EFAULT;
4253			ptr += sizeof(tr);
4254			binder_transaction(proc, thread, &tr.transaction_data,
4255					   cmd == BC_REPLY_SG, tr.buffers_size);
4256			break;
4257		}
4258		case BC_TRANSACTION:
4259		case BC_REPLY: {
4260			struct binder_transaction_data tr;
4261
4262			if (copy_from_user(&tr, ptr, sizeof(tr)))
4263				return -EFAULT;
4264			ptr += sizeof(tr);
4265			binder_transaction(proc, thread, &tr,
4266					   cmd == BC_REPLY, 0);
4267			break;
4268		}
4269
4270		case BC_REGISTER_LOOPER:
4271			binder_debug(BINDER_DEBUG_THREADS,
4272				     "%d:%d BC_REGISTER_LOOPER\n",
4273				     proc->pid, thread->pid);
4274			binder_inner_proc_lock(proc);
4275			if (thread->looper & BINDER_LOOPER_STATE_ENTERED) {
4276				thread->looper |= BINDER_LOOPER_STATE_INVALID;
4277				binder_user_error("%d:%d ERROR: BC_REGISTER_LOOPER called after BC_ENTER_LOOPER\n",
4278					proc->pid, thread->pid);
4279			} else if (proc->requested_threads == 0) {
4280				thread->looper |= BINDER_LOOPER_STATE_INVALID;
4281				binder_user_error("%d:%d ERROR: BC_REGISTER_LOOPER called without request\n",
4282					proc->pid, thread->pid);
4283			} else {
4284				proc->requested_threads--;
4285				proc->requested_threads_started++;
4286			}
4287			thread->looper |= BINDER_LOOPER_STATE_REGISTERED;
4288			binder_inner_proc_unlock(proc);
4289			break;
4290		case BC_ENTER_LOOPER:
4291			binder_debug(BINDER_DEBUG_THREADS,
4292				     "%d:%d BC_ENTER_LOOPER\n",
4293				     proc->pid, thread->pid);
4294			if (thread->looper & BINDER_LOOPER_STATE_REGISTERED) {
4295				thread->looper |= BINDER_LOOPER_STATE_INVALID;
4296				binder_user_error("%d:%d ERROR: BC_ENTER_LOOPER called after BC_REGISTER_LOOPER\n",
4297					proc->pid, thread->pid);
4298			}
4299			thread->looper |= BINDER_LOOPER_STATE_ENTERED;
4300			break;
4301		case BC_EXIT_LOOPER:
4302			binder_debug(BINDER_DEBUG_THREADS,
4303				     "%d:%d BC_EXIT_LOOPER\n",
4304				     proc->pid, thread->pid);
4305			thread->looper |= BINDER_LOOPER_STATE_EXITED;
4306			break;
4307
4308		case BC_REQUEST_DEATH_NOTIFICATION:
4309		case BC_CLEAR_DEATH_NOTIFICATION: {
4310			uint32_t target;
4311			binder_uintptr_t cookie;
4312			struct binder_ref *ref;
4313			struct binder_ref_death *death = NULL;
4314
4315			if (get_user(target, (uint32_t __user *)ptr))
4316				return -EFAULT;
4317			ptr += sizeof(uint32_t);
4318			if (get_user(cookie, (binder_uintptr_t __user *)ptr))
4319				return -EFAULT;
4320			ptr += sizeof(binder_uintptr_t);
4321			if (cmd == BC_REQUEST_DEATH_NOTIFICATION) {
4322				/*
4323				 * Allocate memory for death notification
4324				 * before taking lock
4325				 */
4326				death = kzalloc(sizeof(*death), GFP_KERNEL);
4327				if (death == NULL) {
4328					WARN_ON(thread->return_error.cmd !=
4329						BR_OK);
4330					thread->return_error.cmd = BR_ERROR;
4331					binder_enqueue_thread_work(
4332						thread,
4333						&thread->return_error.work);
4334					binder_debug(
4335						BINDER_DEBUG_FAILED_TRANSACTION,
4336						"%d:%d BC_REQUEST_DEATH_NOTIFICATION failed\n",
4337						proc->pid, thread->pid);
4338					break;
4339				}
4340			}
4341			binder_proc_lock(proc);
4342			ref = binder_get_ref_olocked(proc, target, false);
4343			if (ref == NULL) {
4344				binder_user_error("%d:%d %s invalid ref %d\n",
4345					proc->pid, thread->pid,
4346					cmd == BC_REQUEST_DEATH_NOTIFICATION ?
4347					"BC_REQUEST_DEATH_NOTIFICATION" :
4348					"BC_CLEAR_DEATH_NOTIFICATION",
4349					target);
4350				binder_proc_unlock(proc);
4351				kfree(death);
4352				break;
4353			}
4354
4355			binder_debug(BINDER_DEBUG_DEATH_NOTIFICATION,
4356				     "%d:%d %s %016llx ref %d desc %d s %d w %d for node %d\n",
4357				     proc->pid, thread->pid,
4358				     cmd == BC_REQUEST_DEATH_NOTIFICATION ?
4359				     "BC_REQUEST_DEATH_NOTIFICATION" :
4360				     "BC_CLEAR_DEATH_NOTIFICATION",
4361				     (u64)cookie, ref->data.debug_id,
4362				     ref->data.desc, ref->data.strong,
4363				     ref->data.weak, ref->node->debug_id);
4364
4365			binder_node_lock(ref->node);
4366			if (cmd == BC_REQUEST_DEATH_NOTIFICATION) {
4367				if (ref->death) {
4368					binder_user_error("%d:%d BC_REQUEST_DEATH_NOTIFICATION death notification already set\n",
4369						proc->pid, thread->pid);
4370					binder_node_unlock(ref->node);
4371					binder_proc_unlock(proc);
4372					kfree(death);
4373					break;
4374				}
4375				binder_stats_created(BINDER_STAT_DEATH);
4376				INIT_LIST_HEAD(&death->work.entry);
4377				death->cookie = cookie;
4378				ref->death = death;
4379				if (ref->node->proc == NULL) {
4380					ref->death->work.type = BINDER_WORK_DEAD_BINDER;
4381
4382					binder_inner_proc_lock(proc);
4383					binder_enqueue_work_ilocked(
4384						&ref->death->work, &proc->todo);
4385					binder_wakeup_proc_ilocked(proc);
4386					binder_inner_proc_unlock(proc);
4387				}
4388			} else {
4389				if (ref->death == NULL) {
4390					binder_user_error("%d:%d BC_CLEAR_DEATH_NOTIFICATION death notification not active\n",
4391						proc->pid, thread->pid);
4392					binder_node_unlock(ref->node);
4393					binder_proc_unlock(proc);
4394					break;
4395				}
4396				death = ref->death;
4397				if (death->cookie != cookie) {
4398					binder_user_error("%d:%d BC_CLEAR_DEATH_NOTIFICATION death notification cookie mismatch %016llx != %016llx\n",
4399						proc->pid, thread->pid,
4400						(u64)death->cookie,
4401						(u64)cookie);
4402					binder_node_unlock(ref->node);
4403					binder_proc_unlock(proc);
4404					break;
4405				}
4406				ref->death = NULL;
4407				binder_inner_proc_lock(proc);
4408				if (list_empty(&death->work.entry)) {
4409					death->work.type = BINDER_WORK_CLEAR_DEATH_NOTIFICATION;
4410					if (thread->looper &
4411					    (BINDER_LOOPER_STATE_REGISTERED |
4412					     BINDER_LOOPER_STATE_ENTERED))
4413						binder_enqueue_thread_work_ilocked(
4414								thread,
4415								&death->work);
4416					else {
4417						binder_enqueue_work_ilocked(
4418								&death->work,
4419								&proc->todo);
4420						binder_wakeup_proc_ilocked(
4421								proc);
4422					}
4423				} else {
4424					BUG_ON(death->work.type != BINDER_WORK_DEAD_BINDER);
4425					death->work.type = BINDER_WORK_DEAD_BINDER_AND_CLEAR;
4426				}
4427				binder_inner_proc_unlock(proc);
4428			}
4429			binder_node_unlock(ref->node);
4430			binder_proc_unlock(proc);
4431		} break;
4432		case BC_DEAD_BINDER_DONE: {
4433			struct binder_work *w;
4434			binder_uintptr_t cookie;
4435			struct binder_ref_death *death = NULL;
4436
4437			if (get_user(cookie, (binder_uintptr_t __user *)ptr))
4438				return -EFAULT;
4439
4440			ptr += sizeof(cookie);
4441			binder_inner_proc_lock(proc);
4442			list_for_each_entry(w, &proc->delivered_death,
4443					    entry) {
4444				struct binder_ref_death *tmp_death =
4445					container_of(w,
4446						     struct binder_ref_death,
4447						     work);
4448
4449				if (tmp_death->cookie == cookie) {
4450					death = tmp_death;
4451					break;
4452				}
4453			}
4454			binder_debug(BINDER_DEBUG_DEAD_BINDER,
4455				     "%d:%d BC_DEAD_BINDER_DONE %016llx found %pK\n",
4456				     proc->pid, thread->pid, (u64)cookie,
4457				     death);
4458			if (death == NULL) {
4459				binder_user_error("%d:%d BC_DEAD_BINDER_DONE %016llx not found\n",
4460					proc->pid, thread->pid, (u64)cookie);
4461				binder_inner_proc_unlock(proc);
4462				break;
4463			}
4464			binder_dequeue_work_ilocked(&death->work);
4465			if (death->work.type == BINDER_WORK_DEAD_BINDER_AND_CLEAR) {
4466				death->work.type = BINDER_WORK_CLEAR_DEATH_NOTIFICATION;
4467				if (thread->looper &
4468					(BINDER_LOOPER_STATE_REGISTERED |
4469					 BINDER_LOOPER_STATE_ENTERED))
4470					binder_enqueue_thread_work_ilocked(
4471						thread, &death->work);
4472				else {
4473					binder_enqueue_work_ilocked(
4474							&death->work,
4475							&proc->todo);
4476					binder_wakeup_proc_ilocked(proc);
4477				}
4478			}
4479			binder_inner_proc_unlock(proc);
4480		} break;
4481
4482		case BC_REQUEST_FREEZE_NOTIFICATION: {
4483			struct binder_handle_cookie handle_cookie;
4484			int error;
4485
4486			if (copy_from_user(&handle_cookie, ptr, sizeof(handle_cookie)))
4487				return -EFAULT;
4488			ptr += sizeof(handle_cookie);
4489			error = binder_request_freeze_notification(proc, thread,
4490								   &handle_cookie);
4491			if (error)
4492				return error;
4493		} break;
4494
4495		case BC_CLEAR_FREEZE_NOTIFICATION: {
4496			struct binder_handle_cookie handle_cookie;
4497			int error;
4498
4499			if (copy_from_user(&handle_cookie, ptr, sizeof(handle_cookie)))
4500				return -EFAULT;
4501			ptr += sizeof(handle_cookie);
4502			error = binder_clear_freeze_notification(proc, thread, &handle_cookie);
4503			if (error)
4504				return error;
4505		} break;
4506
4507		case BC_FREEZE_NOTIFICATION_DONE: {
4508			binder_uintptr_t cookie;
4509			int error;
4510
4511			if (get_user(cookie, (binder_uintptr_t __user *)ptr))
4512				return -EFAULT;
4513
4514			ptr += sizeof(cookie);
4515			error = binder_freeze_notification_done(proc, thread, cookie);
4516			if (error)
4517				return error;
4518		} break;
4519
4520		default:
4521			pr_err("%d:%d unknown command %u\n",
4522			       proc->pid, thread->pid, cmd);
4523			return -EINVAL;
4524		}
4525		*consumed = ptr - buffer;
4526	}
4527	return 0;
4528}
4529
4530static void binder_stat_br(struct binder_proc *proc,
4531			   struct binder_thread *thread, uint32_t cmd)
4532{
4533	trace_binder_return(cmd);
4534	if (_IOC_NR(cmd) < ARRAY_SIZE(binder_stats.br)) {
4535		atomic_inc(&binder_stats.br[_IOC_NR(cmd)]);
4536		atomic_inc(&proc->stats.br[_IOC_NR(cmd)]);
4537		atomic_inc(&thread->stats.br[_IOC_NR(cmd)]);
4538	}
4539}
4540
4541static int binder_put_node_cmd(struct binder_proc *proc,
4542			       struct binder_thread *thread,
4543			       void __user **ptrp,
4544			       binder_uintptr_t node_ptr,
4545			       binder_uintptr_t node_cookie,
4546			       int node_debug_id,
4547			       uint32_t cmd, const char *cmd_name)
4548{
4549	void __user *ptr = *ptrp;
4550
4551	if (put_user(cmd, (uint32_t __user *)ptr))
4552		return -EFAULT;
4553	ptr += sizeof(uint32_t);
4554
4555	if (put_user(node_ptr, (binder_uintptr_t __user *)ptr))
4556		return -EFAULT;
4557	ptr += sizeof(binder_uintptr_t);
4558
4559	if (put_user(node_cookie, (binder_uintptr_t __user *)ptr))
4560		return -EFAULT;
4561	ptr += sizeof(binder_uintptr_t);
4562
4563	binder_stat_br(proc, thread, cmd);
4564	binder_debug(BINDER_DEBUG_USER_REFS, "%d:%d %s %d u%016llx c%016llx\n",
4565		     proc->pid, thread->pid, cmd_name, node_debug_id,
4566		     (u64)node_ptr, (u64)node_cookie);
4567
4568	*ptrp = ptr;
4569	return 0;
4570}
4571
4572static int binder_wait_for_work(struct binder_thread *thread,
4573				bool do_proc_work)
4574{
4575	DEFINE_WAIT(wait);
4576	struct binder_proc *proc = thread->proc;
4577	int ret = 0;
4578
 
4579	binder_inner_proc_lock(proc);
4580	for (;;) {
4581		prepare_to_wait(&thread->wait, &wait, TASK_INTERRUPTIBLE|TASK_FREEZABLE);
4582		if (binder_has_work_ilocked(thread, do_proc_work))
4583			break;
4584		if (do_proc_work)
4585			list_add(&thread->waiting_thread_node,
4586				 &proc->waiting_threads);
4587		binder_inner_proc_unlock(proc);
4588		schedule();
4589		binder_inner_proc_lock(proc);
4590		list_del_init(&thread->waiting_thread_node);
4591		if (signal_pending(current)) {
4592			ret = -EINTR;
4593			break;
4594		}
4595	}
4596	finish_wait(&thread->wait, &wait);
4597	binder_inner_proc_unlock(proc);
 
4598
4599	return ret;
4600}
4601
4602/**
4603 * binder_apply_fd_fixups() - finish fd translation
4604 * @proc:         binder_proc associated @t->buffer
4605 * @t:	binder transaction with list of fd fixups
4606 *
4607 * Now that we are in the context of the transaction target
4608 * process, we can allocate and install fds. Process the
4609 * list of fds to translate and fixup the buffer with the
4610 * new fds first and only then install the files.
4611 *
4612 * If we fail to allocate an fd, skip the install and release
 
4613 * any fds that have already been allocated.
4614 */
4615static int binder_apply_fd_fixups(struct binder_proc *proc,
4616				  struct binder_transaction *t)
4617{
4618	struct binder_txn_fd_fixup *fixup, *tmp;
4619	int ret = 0;
4620
4621	list_for_each_entry(fixup, &t->fd_fixups, fixup_entry) {
4622		int fd = get_unused_fd_flags(O_CLOEXEC);
4623
4624		if (fd < 0) {
4625			binder_debug(BINDER_DEBUG_TRANSACTION,
4626				     "failed fd fixup txn %d fd %d\n",
4627				     t->debug_id, fd);
4628			ret = -ENOMEM;
4629			goto err;
4630		}
4631		binder_debug(BINDER_DEBUG_TRANSACTION,
4632			     "fd fixup txn %d fd %d\n",
4633			     t->debug_id, fd);
4634		trace_binder_transaction_fd_recv(t, fd, fixup->offset);
4635		fixup->target_fd = fd;
 
4636		if (binder_alloc_copy_to_buffer(&proc->alloc, t->buffer,
4637						fixup->offset, &fd,
4638						sizeof(u32))) {
4639			ret = -EINVAL;
4640			goto err;
4641		}
4642	}
4643	list_for_each_entry_safe(fixup, tmp, &t->fd_fixups, fixup_entry) {
4644		fd_install(fixup->target_fd, fixup->file);
 
 
 
 
 
 
 
 
 
 
 
 
 
4645		list_del(&fixup->fixup_entry);
4646		kfree(fixup);
4647	}
4648
4649	return ret;
4650
4651err:
4652	binder_free_txn_fixups(t);
4653	return ret;
4654}
4655
4656static int binder_thread_read(struct binder_proc *proc,
4657			      struct binder_thread *thread,
4658			      binder_uintptr_t binder_buffer, size_t size,
4659			      binder_size_t *consumed, int non_block)
4660{
4661	void __user *buffer = (void __user *)(uintptr_t)binder_buffer;
4662	void __user *ptr = buffer + *consumed;
4663	void __user *end = buffer + size;
4664
4665	int ret = 0;
4666	int wait_for_proc_work;
4667
4668	if (*consumed == 0) {
4669		if (put_user(BR_NOOP, (uint32_t __user *)ptr))
4670			return -EFAULT;
4671		ptr += sizeof(uint32_t);
4672	}
4673
4674retry:
4675	binder_inner_proc_lock(proc);
4676	wait_for_proc_work = binder_available_for_proc_work_ilocked(thread);
4677	binder_inner_proc_unlock(proc);
4678
4679	thread->looper |= BINDER_LOOPER_STATE_WAITING;
4680
4681	trace_binder_wait_for_work(wait_for_proc_work,
4682				   !!thread->transaction_stack,
4683				   !binder_worklist_empty(proc, &thread->todo));
4684	if (wait_for_proc_work) {
4685		if (!(thread->looper & (BINDER_LOOPER_STATE_REGISTERED |
4686					BINDER_LOOPER_STATE_ENTERED))) {
4687			binder_user_error("%d:%d ERROR: Thread waiting for process work before calling BC_REGISTER_LOOPER or BC_ENTER_LOOPER (state %x)\n",
4688				proc->pid, thread->pid, thread->looper);
4689			wait_event_interruptible(binder_user_error_wait,
4690						 binder_stop_on_user_error < 2);
4691		}
4692		binder_set_nice(proc->default_priority);
4693	}
4694
4695	if (non_block) {
4696		if (!binder_has_work(thread, wait_for_proc_work))
4697			ret = -EAGAIN;
4698	} else {
4699		ret = binder_wait_for_work(thread, wait_for_proc_work);
4700	}
4701
4702	thread->looper &= ~BINDER_LOOPER_STATE_WAITING;
4703
4704	if (ret)
4705		return ret;
4706
4707	while (1) {
4708		uint32_t cmd;
4709		struct binder_transaction_data_secctx tr;
4710		struct binder_transaction_data *trd = &tr.transaction_data;
4711		struct binder_work *w = NULL;
4712		struct list_head *list = NULL;
4713		struct binder_transaction *t = NULL;
4714		struct binder_thread *t_from;
4715		size_t trsize = sizeof(*trd);
4716
4717		binder_inner_proc_lock(proc);
4718		if (!binder_worklist_empty_ilocked(&thread->todo))
4719			list = &thread->todo;
4720		else if (!binder_worklist_empty_ilocked(&proc->todo) &&
4721			   wait_for_proc_work)
4722			list = &proc->todo;
4723		else {
4724			binder_inner_proc_unlock(proc);
4725
4726			/* no data added */
4727			if (ptr - buffer == 4 && !thread->looper_need_return)
4728				goto retry;
4729			break;
4730		}
4731
4732		if (end - ptr < sizeof(tr) + 4) {
4733			binder_inner_proc_unlock(proc);
4734			break;
4735		}
4736		w = binder_dequeue_work_head_ilocked(list);
4737		if (binder_worklist_empty_ilocked(&thread->todo))
4738			thread->process_todo = false;
4739
4740		switch (w->type) {
4741		case BINDER_WORK_TRANSACTION: {
4742			binder_inner_proc_unlock(proc);
4743			t = container_of(w, struct binder_transaction, work);
4744		} break;
4745		case BINDER_WORK_RETURN_ERROR: {
4746			struct binder_error *e = container_of(
4747					w, struct binder_error, work);
4748
4749			WARN_ON(e->cmd == BR_OK);
4750			binder_inner_proc_unlock(proc);
4751			if (put_user(e->cmd, (uint32_t __user *)ptr))
4752				return -EFAULT;
4753			cmd = e->cmd;
4754			e->cmd = BR_OK;
4755			ptr += sizeof(uint32_t);
4756
4757			binder_stat_br(proc, thread, cmd);
4758		} break;
4759		case BINDER_WORK_TRANSACTION_COMPLETE:
4760		case BINDER_WORK_TRANSACTION_PENDING:
4761		case BINDER_WORK_TRANSACTION_ONEWAY_SPAM_SUSPECT: {
4762			if (proc->oneway_spam_detection_enabled &&
4763				   w->type == BINDER_WORK_TRANSACTION_ONEWAY_SPAM_SUSPECT)
4764				cmd = BR_ONEWAY_SPAM_SUSPECT;
4765			else if (w->type == BINDER_WORK_TRANSACTION_PENDING)
4766				cmd = BR_TRANSACTION_PENDING_FROZEN;
4767			else
4768				cmd = BR_TRANSACTION_COMPLETE;
4769			binder_inner_proc_unlock(proc);
 
4770			kfree(w);
4771			binder_stats_deleted(BINDER_STAT_TRANSACTION_COMPLETE);
4772			if (put_user(cmd, (uint32_t __user *)ptr))
4773				return -EFAULT;
4774			ptr += sizeof(uint32_t);
4775
4776			binder_stat_br(proc, thread, cmd);
4777			binder_debug(BINDER_DEBUG_TRANSACTION_COMPLETE,
4778				     "%d:%d BR_TRANSACTION_COMPLETE\n",
4779				     proc->pid, thread->pid);
4780		} break;
4781		case BINDER_WORK_NODE: {
4782			struct binder_node *node = container_of(w, struct binder_node, work);
4783			int strong, weak;
4784			binder_uintptr_t node_ptr = node->ptr;
4785			binder_uintptr_t node_cookie = node->cookie;
4786			int node_debug_id = node->debug_id;
4787			int has_weak_ref;
4788			int has_strong_ref;
4789			void __user *orig_ptr = ptr;
4790
4791			BUG_ON(proc != node->proc);
4792			strong = node->internal_strong_refs ||
4793					node->local_strong_refs;
4794			weak = !hlist_empty(&node->refs) ||
4795					node->local_weak_refs ||
4796					node->tmp_refs || strong;
4797			has_strong_ref = node->has_strong_ref;
4798			has_weak_ref = node->has_weak_ref;
4799
4800			if (weak && !has_weak_ref) {
4801				node->has_weak_ref = 1;
4802				node->pending_weak_ref = 1;
4803				node->local_weak_refs++;
4804			}
4805			if (strong && !has_strong_ref) {
4806				node->has_strong_ref = 1;
4807				node->pending_strong_ref = 1;
4808				node->local_strong_refs++;
4809			}
4810			if (!strong && has_strong_ref)
4811				node->has_strong_ref = 0;
4812			if (!weak && has_weak_ref)
4813				node->has_weak_ref = 0;
4814			if (!weak && !strong) {
4815				binder_debug(BINDER_DEBUG_INTERNAL_REFS,
4816					     "%d:%d node %d u%016llx c%016llx deleted\n",
4817					     proc->pid, thread->pid,
4818					     node_debug_id,
4819					     (u64)node_ptr,
4820					     (u64)node_cookie);
4821				rb_erase(&node->rb_node, &proc->nodes);
4822				binder_inner_proc_unlock(proc);
4823				binder_node_lock(node);
4824				/*
4825				 * Acquire the node lock before freeing the
4826				 * node to serialize with other threads that
4827				 * may have been holding the node lock while
4828				 * decrementing this node (avoids race where
4829				 * this thread frees while the other thread
4830				 * is unlocking the node after the final
4831				 * decrement)
4832				 */
4833				binder_node_unlock(node);
4834				binder_free_node(node);
4835			} else
4836				binder_inner_proc_unlock(proc);
4837
4838			if (weak && !has_weak_ref)
4839				ret = binder_put_node_cmd(
4840						proc, thread, &ptr, node_ptr,
4841						node_cookie, node_debug_id,
4842						BR_INCREFS, "BR_INCREFS");
4843			if (!ret && strong && !has_strong_ref)
4844				ret = binder_put_node_cmd(
4845						proc, thread, &ptr, node_ptr,
4846						node_cookie, node_debug_id,
4847						BR_ACQUIRE, "BR_ACQUIRE");
4848			if (!ret && !strong && has_strong_ref)
4849				ret = binder_put_node_cmd(
4850						proc, thread, &ptr, node_ptr,
4851						node_cookie, node_debug_id,
4852						BR_RELEASE, "BR_RELEASE");
4853			if (!ret && !weak && has_weak_ref)
4854				ret = binder_put_node_cmd(
4855						proc, thread, &ptr, node_ptr,
4856						node_cookie, node_debug_id,
4857						BR_DECREFS, "BR_DECREFS");
4858			if (orig_ptr == ptr)
4859				binder_debug(BINDER_DEBUG_INTERNAL_REFS,
4860					     "%d:%d node %d u%016llx c%016llx state unchanged\n",
4861					     proc->pid, thread->pid,
4862					     node_debug_id,
4863					     (u64)node_ptr,
4864					     (u64)node_cookie);
4865			if (ret)
4866				return ret;
4867		} break;
4868		case BINDER_WORK_DEAD_BINDER:
4869		case BINDER_WORK_DEAD_BINDER_AND_CLEAR:
4870		case BINDER_WORK_CLEAR_DEATH_NOTIFICATION: {
4871			struct binder_ref_death *death;
4872			uint32_t cmd;
4873			binder_uintptr_t cookie;
4874
4875			death = container_of(w, struct binder_ref_death, work);
4876			if (w->type == BINDER_WORK_CLEAR_DEATH_NOTIFICATION)
4877				cmd = BR_CLEAR_DEATH_NOTIFICATION_DONE;
4878			else
4879				cmd = BR_DEAD_BINDER;
4880			cookie = death->cookie;
4881
4882			binder_debug(BINDER_DEBUG_DEATH_NOTIFICATION,
4883				     "%d:%d %s %016llx\n",
4884				      proc->pid, thread->pid,
4885				      cmd == BR_DEAD_BINDER ?
4886				      "BR_DEAD_BINDER" :
4887				      "BR_CLEAR_DEATH_NOTIFICATION_DONE",
4888				      (u64)cookie);
4889			if (w->type == BINDER_WORK_CLEAR_DEATH_NOTIFICATION) {
4890				binder_inner_proc_unlock(proc);
4891				kfree(death);
4892				binder_stats_deleted(BINDER_STAT_DEATH);
4893			} else {
4894				binder_enqueue_work_ilocked(
4895						w, &proc->delivered_death);
4896				binder_inner_proc_unlock(proc);
4897			}
4898			if (put_user(cmd, (uint32_t __user *)ptr))
4899				return -EFAULT;
4900			ptr += sizeof(uint32_t);
4901			if (put_user(cookie,
4902				     (binder_uintptr_t __user *)ptr))
4903				return -EFAULT;
4904			ptr += sizeof(binder_uintptr_t);
4905			binder_stat_br(proc, thread, cmd);
4906			if (cmd == BR_DEAD_BINDER)
4907				goto done; /* DEAD_BINDER notifications can cause transactions */
4908		} break;
4909
4910		case BINDER_WORK_FROZEN_BINDER: {
4911			struct binder_ref_freeze *freeze;
4912			struct binder_frozen_state_info info;
4913
4914			memset(&info, 0, sizeof(info));
4915			freeze = container_of(w, struct binder_ref_freeze, work);
4916			info.is_frozen = freeze->is_frozen;
4917			info.cookie = freeze->cookie;
4918			freeze->sent = true;
4919			binder_enqueue_work_ilocked(w, &proc->delivered_freeze);
4920			binder_inner_proc_unlock(proc);
4921
4922			if (put_user(BR_FROZEN_BINDER, (uint32_t __user *)ptr))
4923				return -EFAULT;
4924			ptr += sizeof(uint32_t);
4925			if (copy_to_user(ptr, &info, sizeof(info)))
4926				return -EFAULT;
4927			ptr += sizeof(info);
4928			binder_stat_br(proc, thread, BR_FROZEN_BINDER);
4929			goto done; /* BR_FROZEN_BINDER notifications can cause transactions */
4930		} break;
4931
4932		case BINDER_WORK_CLEAR_FREEZE_NOTIFICATION: {
4933			struct binder_ref_freeze *freeze =
4934			    container_of(w, struct binder_ref_freeze, work);
4935			binder_uintptr_t cookie = freeze->cookie;
4936
4937			binder_inner_proc_unlock(proc);
4938			kfree(freeze);
4939			binder_stats_deleted(BINDER_STAT_FREEZE);
4940			if (put_user(BR_CLEAR_FREEZE_NOTIFICATION_DONE, (uint32_t __user *)ptr))
4941				return -EFAULT;
4942			ptr += sizeof(uint32_t);
4943			if (put_user(cookie, (binder_uintptr_t __user *)ptr))
4944				return -EFAULT;
4945			ptr += sizeof(binder_uintptr_t);
4946			binder_stat_br(proc, thread, BR_CLEAR_FREEZE_NOTIFICATION_DONE);
4947		} break;
4948
4949		default:
4950			binder_inner_proc_unlock(proc);
4951			pr_err("%d:%d: bad work type %d\n",
4952			       proc->pid, thread->pid, w->type);
4953			break;
4954		}
4955
4956		if (!t)
4957			continue;
4958
4959		BUG_ON(t->buffer == NULL);
4960		if (t->buffer->target_node) {
4961			struct binder_node *target_node = t->buffer->target_node;
4962
4963			trd->target.ptr = target_node->ptr;
4964			trd->cookie =  target_node->cookie;
4965			t->saved_priority = task_nice(current);
4966			if (t->priority < target_node->min_priority &&
4967			    !(t->flags & TF_ONE_WAY))
4968				binder_set_nice(t->priority);
4969			else if (!(t->flags & TF_ONE_WAY) ||
4970				 t->saved_priority > target_node->min_priority)
4971				binder_set_nice(target_node->min_priority);
4972			cmd = BR_TRANSACTION;
4973		} else {
4974			trd->target.ptr = 0;
4975			trd->cookie = 0;
4976			cmd = BR_REPLY;
4977		}
4978		trd->code = t->code;
4979		trd->flags = t->flags;
4980		trd->sender_euid = from_kuid(current_user_ns(), t->sender_euid);
4981
4982		t_from = binder_get_txn_from(t);
4983		if (t_from) {
4984			struct task_struct *sender = t_from->proc->tsk;
4985
4986			trd->sender_pid =
4987				task_tgid_nr_ns(sender,
4988						task_active_pid_ns(current));
4989		} else {
4990			trd->sender_pid = 0;
4991		}
4992
4993		ret = binder_apply_fd_fixups(proc, t);
4994		if (ret) {
4995			struct binder_buffer *buffer = t->buffer;
4996			bool oneway = !!(t->flags & TF_ONE_WAY);
4997			int tid = t->debug_id;
4998
4999			if (t_from)
5000				binder_thread_dec_tmpref(t_from);
5001			buffer->transaction = NULL;
5002			binder_cleanup_transaction(t, "fd fixups failed",
5003						   BR_FAILED_REPLY);
5004			binder_free_buf(proc, thread, buffer, true);
5005			binder_debug(BINDER_DEBUG_FAILED_TRANSACTION,
5006				     "%d:%d %stransaction %d fd fixups failed %d/%d, line %d\n",
5007				     proc->pid, thread->pid,
5008				     oneway ? "async " :
5009					(cmd == BR_REPLY ? "reply " : ""),
5010				     tid, BR_FAILED_REPLY, ret, __LINE__);
5011			if (cmd == BR_REPLY) {
5012				cmd = BR_FAILED_REPLY;
5013				if (put_user(cmd, (uint32_t __user *)ptr))
5014					return -EFAULT;
5015				ptr += sizeof(uint32_t);
5016				binder_stat_br(proc, thread, cmd);
5017				break;
5018			}
5019			continue;
5020		}
5021		trd->data_size = t->buffer->data_size;
5022		trd->offsets_size = t->buffer->offsets_size;
5023		trd->data.ptr.buffer = t->buffer->user_data;
5024		trd->data.ptr.offsets = trd->data.ptr.buffer +
5025					ALIGN(t->buffer->data_size,
5026					    sizeof(void *));
5027
5028		tr.secctx = t->security_ctx;
5029		if (t->security_ctx) {
5030			cmd = BR_TRANSACTION_SEC_CTX;
5031			trsize = sizeof(tr);
5032		}
5033		if (put_user(cmd, (uint32_t __user *)ptr)) {
5034			if (t_from)
5035				binder_thread_dec_tmpref(t_from);
5036
5037			binder_cleanup_transaction(t, "put_user failed",
5038						   BR_FAILED_REPLY);
5039
5040			return -EFAULT;
5041		}
5042		ptr += sizeof(uint32_t);
5043		if (copy_to_user(ptr, &tr, trsize)) {
5044			if (t_from)
5045				binder_thread_dec_tmpref(t_from);
5046
5047			binder_cleanup_transaction(t, "copy_to_user failed",
5048						   BR_FAILED_REPLY);
5049
5050			return -EFAULT;
5051		}
5052		ptr += trsize;
5053
5054		trace_binder_transaction_received(t);
5055		binder_stat_br(proc, thread, cmd);
5056		binder_debug(BINDER_DEBUG_TRANSACTION,
5057			     "%d:%d %s %d %d:%d, cmd %u size %zd-%zd ptr %016llx-%016llx\n",
5058			     proc->pid, thread->pid,
5059			     (cmd == BR_TRANSACTION) ? "BR_TRANSACTION" :
5060				(cmd == BR_TRANSACTION_SEC_CTX) ?
5061				     "BR_TRANSACTION_SEC_CTX" : "BR_REPLY",
5062			     t->debug_id, t_from ? t_from->proc->pid : 0,
5063			     t_from ? t_from->pid : 0, cmd,
5064			     t->buffer->data_size, t->buffer->offsets_size,
5065			     (u64)trd->data.ptr.buffer,
5066			     (u64)trd->data.ptr.offsets);
5067
5068		if (t_from)
5069			binder_thread_dec_tmpref(t_from);
5070		t->buffer->allow_user_free = 1;
5071		if (cmd != BR_REPLY && !(t->flags & TF_ONE_WAY)) {
5072			binder_inner_proc_lock(thread->proc);
5073			t->to_parent = thread->transaction_stack;
5074			t->to_thread = thread;
5075			thread->transaction_stack = t;
5076			binder_inner_proc_unlock(thread->proc);
5077		} else {
5078			binder_free_transaction(t);
5079		}
5080		break;
5081	}
5082
5083done:
5084
5085	*consumed = ptr - buffer;
5086	binder_inner_proc_lock(proc);
5087	if (proc->requested_threads == 0 &&
5088	    list_empty(&thread->proc->waiting_threads) &&
5089	    proc->requested_threads_started < proc->max_threads &&
5090	    (thread->looper & (BINDER_LOOPER_STATE_REGISTERED |
5091	     BINDER_LOOPER_STATE_ENTERED)) /* the user-space code fails to */
5092	     /*spawn a new thread if we leave this out */) {
5093		proc->requested_threads++;
5094		binder_inner_proc_unlock(proc);
5095		binder_debug(BINDER_DEBUG_THREADS,
5096			     "%d:%d BR_SPAWN_LOOPER\n",
5097			     proc->pid, thread->pid);
5098		if (put_user(BR_SPAWN_LOOPER, (uint32_t __user *)buffer))
5099			return -EFAULT;
5100		binder_stat_br(proc, thread, BR_SPAWN_LOOPER);
5101	} else
5102		binder_inner_proc_unlock(proc);
5103	return 0;
5104}
5105
5106static void binder_release_work(struct binder_proc *proc,
5107				struct list_head *list)
5108{
5109	struct binder_work *w;
5110	enum binder_work_type wtype;
5111
5112	while (1) {
5113		binder_inner_proc_lock(proc);
5114		w = binder_dequeue_work_head_ilocked(list);
5115		wtype = w ? w->type : 0;
5116		binder_inner_proc_unlock(proc);
5117		if (!w)
5118			return;
5119
5120		switch (wtype) {
5121		case BINDER_WORK_TRANSACTION: {
5122			struct binder_transaction *t;
5123
5124			t = container_of(w, struct binder_transaction, work);
5125
5126			binder_cleanup_transaction(t, "process died.",
5127						   BR_DEAD_REPLY);
5128		} break;
5129		case BINDER_WORK_RETURN_ERROR: {
5130			struct binder_error *e = container_of(
5131					w, struct binder_error, work);
5132
5133			binder_debug(BINDER_DEBUG_DEAD_TRANSACTION,
5134				"undelivered TRANSACTION_ERROR: %u\n",
5135				e->cmd);
5136		} break;
5137		case BINDER_WORK_TRANSACTION_PENDING:
5138		case BINDER_WORK_TRANSACTION_ONEWAY_SPAM_SUSPECT:
5139		case BINDER_WORK_TRANSACTION_COMPLETE: {
5140			binder_debug(BINDER_DEBUG_DEAD_TRANSACTION,
5141				"undelivered TRANSACTION_COMPLETE\n");
5142			kfree(w);
5143			binder_stats_deleted(BINDER_STAT_TRANSACTION_COMPLETE);
5144		} break;
5145		case BINDER_WORK_DEAD_BINDER_AND_CLEAR:
5146		case BINDER_WORK_CLEAR_DEATH_NOTIFICATION: {
5147			struct binder_ref_death *death;
5148
5149			death = container_of(w, struct binder_ref_death, work);
5150			binder_debug(BINDER_DEBUG_DEAD_TRANSACTION,
5151				"undelivered death notification, %016llx\n",
5152				(u64)death->cookie);
5153			kfree(death);
5154			binder_stats_deleted(BINDER_STAT_DEATH);
5155		} break;
5156		case BINDER_WORK_NODE:
5157			break;
5158		case BINDER_WORK_CLEAR_FREEZE_NOTIFICATION: {
5159			struct binder_ref_freeze *freeze;
5160
5161			freeze = container_of(w, struct binder_ref_freeze, work);
5162			binder_debug(BINDER_DEBUG_DEAD_TRANSACTION,
5163				     "undelivered freeze notification, %016llx\n",
5164				     (u64)freeze->cookie);
5165			kfree(freeze);
5166			binder_stats_deleted(BINDER_STAT_FREEZE);
5167		} break;
5168		default:
5169			pr_err("unexpected work type, %d, not freed\n",
5170			       wtype);
5171			break;
5172		}
5173	}
5174
5175}
5176
5177static struct binder_thread *binder_get_thread_ilocked(
5178		struct binder_proc *proc, struct binder_thread *new_thread)
5179{
5180	struct binder_thread *thread = NULL;
5181	struct rb_node *parent = NULL;
5182	struct rb_node **p = &proc->threads.rb_node;
5183
5184	while (*p) {
5185		parent = *p;
5186		thread = rb_entry(parent, struct binder_thread, rb_node);
5187
5188		if (current->pid < thread->pid)
5189			p = &(*p)->rb_left;
5190		else if (current->pid > thread->pid)
5191			p = &(*p)->rb_right;
5192		else
5193			return thread;
5194	}
5195	if (!new_thread)
5196		return NULL;
5197	thread = new_thread;
5198	binder_stats_created(BINDER_STAT_THREAD);
5199	thread->proc = proc;
5200	thread->pid = current->pid;
5201	atomic_set(&thread->tmp_ref, 0);
5202	init_waitqueue_head(&thread->wait);
5203	INIT_LIST_HEAD(&thread->todo);
5204	rb_link_node(&thread->rb_node, parent, p);
5205	rb_insert_color(&thread->rb_node, &proc->threads);
5206	thread->looper_need_return = true;
5207	thread->return_error.work.type = BINDER_WORK_RETURN_ERROR;
5208	thread->return_error.cmd = BR_OK;
5209	thread->reply_error.work.type = BINDER_WORK_RETURN_ERROR;
5210	thread->reply_error.cmd = BR_OK;
5211	thread->ee.command = BR_OK;
5212	INIT_LIST_HEAD(&new_thread->waiting_thread_node);
5213	return thread;
5214}
5215
5216static struct binder_thread *binder_get_thread(struct binder_proc *proc)
5217{
5218	struct binder_thread *thread;
5219	struct binder_thread *new_thread;
5220
5221	binder_inner_proc_lock(proc);
5222	thread = binder_get_thread_ilocked(proc, NULL);
5223	binder_inner_proc_unlock(proc);
5224	if (!thread) {
5225		new_thread = kzalloc(sizeof(*thread), GFP_KERNEL);
5226		if (new_thread == NULL)
5227			return NULL;
5228		binder_inner_proc_lock(proc);
5229		thread = binder_get_thread_ilocked(proc, new_thread);
5230		binder_inner_proc_unlock(proc);
5231		if (thread != new_thread)
5232			kfree(new_thread);
5233	}
5234	return thread;
5235}
5236
5237static void binder_free_proc(struct binder_proc *proc)
5238{
5239	struct binder_device *device;
5240
5241	BUG_ON(!list_empty(&proc->todo));
5242	BUG_ON(!list_empty(&proc->delivered_death));
5243	if (proc->outstanding_txns)
5244		pr_warn("%s: Unexpected outstanding_txns %d\n",
5245			__func__, proc->outstanding_txns);
5246	device = container_of(proc->context, struct binder_device, context);
5247	if (refcount_dec_and_test(&device->ref)) {
5248		kfree(proc->context->name);
5249		kfree(device);
5250	}
5251	binder_alloc_deferred_release(&proc->alloc);
5252	put_task_struct(proc->tsk);
5253	put_cred(proc->cred);
5254	binder_stats_deleted(BINDER_STAT_PROC);
5255	dbitmap_free(&proc->dmap);
5256	kfree(proc);
5257}
5258
5259static void binder_free_thread(struct binder_thread *thread)
5260{
5261	BUG_ON(!list_empty(&thread->todo));
5262	binder_stats_deleted(BINDER_STAT_THREAD);
5263	binder_proc_dec_tmpref(thread->proc);
5264	kfree(thread);
5265}
5266
5267static int binder_thread_release(struct binder_proc *proc,
5268				 struct binder_thread *thread)
5269{
5270	struct binder_transaction *t;
5271	struct binder_transaction *send_reply = NULL;
5272	int active_transactions = 0;
5273	struct binder_transaction *last_t = NULL;
5274
5275	binder_inner_proc_lock(thread->proc);
5276	/*
5277	 * take a ref on the proc so it survives
5278	 * after we remove this thread from proc->threads.
5279	 * The corresponding dec is when we actually
5280	 * free the thread in binder_free_thread()
5281	 */
5282	proc->tmp_ref++;
5283	/*
5284	 * take a ref on this thread to ensure it
5285	 * survives while we are releasing it
5286	 */
5287	atomic_inc(&thread->tmp_ref);
5288	rb_erase(&thread->rb_node, &proc->threads);
5289	t = thread->transaction_stack;
5290	if (t) {
5291		spin_lock(&t->lock);
5292		if (t->to_thread == thread)
5293			send_reply = t;
5294	} else {
5295		__acquire(&t->lock);
5296	}
5297	thread->is_dead = true;
5298
5299	while (t) {
5300		last_t = t;
5301		active_transactions++;
5302		binder_debug(BINDER_DEBUG_DEAD_TRANSACTION,
5303			     "release %d:%d transaction %d %s, still active\n",
5304			      proc->pid, thread->pid,
5305			     t->debug_id,
5306			     (t->to_thread == thread) ? "in" : "out");
5307
5308		if (t->to_thread == thread) {
5309			thread->proc->outstanding_txns--;
5310			t->to_proc = NULL;
5311			t->to_thread = NULL;
5312			if (t->buffer) {
5313				t->buffer->transaction = NULL;
5314				t->buffer = NULL;
5315			}
5316			t = t->to_parent;
5317		} else if (t->from == thread) {
5318			t->from = NULL;
5319			t = t->from_parent;
5320		} else
5321			BUG();
5322		spin_unlock(&last_t->lock);
5323		if (t)
5324			spin_lock(&t->lock);
5325		else
5326			__acquire(&t->lock);
5327	}
5328	/* annotation for sparse, lock not acquired in last iteration above */
5329	__release(&t->lock);
5330
5331	/*
5332	 * If this thread used poll, make sure we remove the waitqueue from any
5333	 * poll data structures holding it.
 
 
5334	 */
5335	if (thread->looper & BINDER_LOOPER_STATE_POLL)
5336		wake_up_pollfree(&thread->wait);
 
 
5337
5338	binder_inner_proc_unlock(thread->proc);
5339
5340	/*
5341	 * This is needed to avoid races between wake_up_pollfree() above and
5342	 * someone else removing the last entry from the queue for other reasons
5343	 * (e.g. ep_remove_wait_queue() being called due to an epoll file
5344	 * descriptor being closed).  Such other users hold an RCU read lock, so
5345	 * we can be sure they're done after we call synchronize_rcu().
5346	 */
5347	if (thread->looper & BINDER_LOOPER_STATE_POLL)
5348		synchronize_rcu();
5349
5350	if (send_reply)
5351		binder_send_failed_reply(send_reply, BR_DEAD_REPLY);
5352	binder_release_work(proc, &thread->todo);
5353	binder_thread_dec_tmpref(thread);
5354	return active_transactions;
5355}
5356
5357static __poll_t binder_poll(struct file *filp,
5358				struct poll_table_struct *wait)
5359{
5360	struct binder_proc *proc = filp->private_data;
5361	struct binder_thread *thread = NULL;
5362	bool wait_for_proc_work;
5363
5364	thread = binder_get_thread(proc);
5365	if (!thread)
5366		return EPOLLERR;
5367
5368	binder_inner_proc_lock(thread->proc);
5369	thread->looper |= BINDER_LOOPER_STATE_POLL;
5370	wait_for_proc_work = binder_available_for_proc_work_ilocked(thread);
5371
5372	binder_inner_proc_unlock(thread->proc);
5373
5374	poll_wait(filp, &thread->wait, wait);
5375
5376	if (binder_has_work(thread, wait_for_proc_work))
5377		return EPOLLIN;
5378
5379	return 0;
5380}
5381
5382static int binder_ioctl_write_read(struct file *filp, unsigned long arg,
 
5383				struct binder_thread *thread)
5384{
5385	int ret = 0;
5386	struct binder_proc *proc = filp->private_data;
 
5387	void __user *ubuf = (void __user *)arg;
5388	struct binder_write_read bwr;
5389
 
 
 
 
5390	if (copy_from_user(&bwr, ubuf, sizeof(bwr))) {
5391		ret = -EFAULT;
5392		goto out;
5393	}
5394	binder_debug(BINDER_DEBUG_READ_WRITE,
5395		     "%d:%d write %lld at %016llx, read %lld at %016llx\n",
5396		     proc->pid, thread->pid,
5397		     (u64)bwr.write_size, (u64)bwr.write_buffer,
5398		     (u64)bwr.read_size, (u64)bwr.read_buffer);
5399
5400	if (bwr.write_size > 0) {
5401		ret = binder_thread_write(proc, thread,
5402					  bwr.write_buffer,
5403					  bwr.write_size,
5404					  &bwr.write_consumed);
5405		trace_binder_write_done(ret);
5406		if (ret < 0) {
5407			bwr.read_consumed = 0;
5408			if (copy_to_user(ubuf, &bwr, sizeof(bwr)))
5409				ret = -EFAULT;
5410			goto out;
5411		}
5412	}
5413	if (bwr.read_size > 0) {
5414		ret = binder_thread_read(proc, thread, bwr.read_buffer,
5415					 bwr.read_size,
5416					 &bwr.read_consumed,
5417					 filp->f_flags & O_NONBLOCK);
5418		trace_binder_read_done(ret);
5419		binder_inner_proc_lock(proc);
5420		if (!binder_worklist_empty_ilocked(&proc->todo))
5421			binder_wakeup_proc_ilocked(proc);
5422		binder_inner_proc_unlock(proc);
5423		if (ret < 0) {
5424			if (copy_to_user(ubuf, &bwr, sizeof(bwr)))
5425				ret = -EFAULT;
5426			goto out;
5427		}
5428	}
5429	binder_debug(BINDER_DEBUG_READ_WRITE,
5430		     "%d:%d wrote %lld of %lld, read return %lld of %lld\n",
5431		     proc->pid, thread->pid,
5432		     (u64)bwr.write_consumed, (u64)bwr.write_size,
5433		     (u64)bwr.read_consumed, (u64)bwr.read_size);
5434	if (copy_to_user(ubuf, &bwr, sizeof(bwr))) {
5435		ret = -EFAULT;
5436		goto out;
5437	}
5438out:
5439	return ret;
5440}
5441
5442static int binder_ioctl_set_ctx_mgr(struct file *filp,
5443				    struct flat_binder_object *fbo)
5444{
5445	int ret = 0;
5446	struct binder_proc *proc = filp->private_data;
5447	struct binder_context *context = proc->context;
5448	struct binder_node *new_node;
5449	kuid_t curr_euid = current_euid();
5450
5451	mutex_lock(&context->context_mgr_node_lock);
5452	if (context->binder_context_mgr_node) {
5453		pr_err("BINDER_SET_CONTEXT_MGR already set\n");
5454		ret = -EBUSY;
5455		goto out;
5456	}
5457	ret = security_binder_set_context_mgr(proc->cred);
5458	if (ret < 0)
5459		goto out;
5460	if (uid_valid(context->binder_context_mgr_uid)) {
5461		if (!uid_eq(context->binder_context_mgr_uid, curr_euid)) {
5462			pr_err("BINDER_SET_CONTEXT_MGR bad uid %d != %d\n",
5463			       from_kuid(&init_user_ns, curr_euid),
5464			       from_kuid(&init_user_ns,
5465					 context->binder_context_mgr_uid));
5466			ret = -EPERM;
5467			goto out;
5468		}
5469	} else {
5470		context->binder_context_mgr_uid = curr_euid;
5471	}
5472	new_node = binder_new_node(proc, fbo);
5473	if (!new_node) {
5474		ret = -ENOMEM;
5475		goto out;
5476	}
5477	binder_node_lock(new_node);
5478	new_node->local_weak_refs++;
5479	new_node->local_strong_refs++;
5480	new_node->has_strong_ref = 1;
5481	new_node->has_weak_ref = 1;
5482	context->binder_context_mgr_node = new_node;
5483	binder_node_unlock(new_node);
5484	binder_put_node(new_node);
5485out:
5486	mutex_unlock(&context->context_mgr_node_lock);
5487	return ret;
5488}
5489
5490static int binder_ioctl_get_node_info_for_ref(struct binder_proc *proc,
5491		struct binder_node_info_for_ref *info)
5492{
5493	struct binder_node *node;
5494	struct binder_context *context = proc->context;
5495	__u32 handle = info->handle;
5496
5497	if (info->strong_count || info->weak_count || info->reserved1 ||
5498	    info->reserved2 || info->reserved3) {
5499		binder_user_error("%d BINDER_GET_NODE_INFO_FOR_REF: only handle may be non-zero.",
5500				  proc->pid);
5501		return -EINVAL;
5502	}
5503
5504	/* This ioctl may only be used by the context manager */
5505	mutex_lock(&context->context_mgr_node_lock);
5506	if (!context->binder_context_mgr_node ||
5507		context->binder_context_mgr_node->proc != proc) {
5508		mutex_unlock(&context->context_mgr_node_lock);
5509		return -EPERM;
5510	}
5511	mutex_unlock(&context->context_mgr_node_lock);
5512
5513	node = binder_get_node_from_ref(proc, handle, true, NULL);
5514	if (!node)
5515		return -EINVAL;
5516
5517	info->strong_count = node->local_strong_refs +
5518		node->internal_strong_refs;
5519	info->weak_count = node->local_weak_refs;
5520
5521	binder_put_node(node);
5522
5523	return 0;
5524}
5525
5526static int binder_ioctl_get_node_debug_info(struct binder_proc *proc,
5527				struct binder_node_debug_info *info)
5528{
5529	struct rb_node *n;
5530	binder_uintptr_t ptr = info->ptr;
5531
5532	memset(info, 0, sizeof(*info));
5533
5534	binder_inner_proc_lock(proc);
5535	for (n = rb_first(&proc->nodes); n != NULL; n = rb_next(n)) {
5536		struct binder_node *node = rb_entry(n, struct binder_node,
5537						    rb_node);
5538		if (node->ptr > ptr) {
5539			info->ptr = node->ptr;
5540			info->cookie = node->cookie;
5541			info->has_strong_ref = node->has_strong_ref;
5542			info->has_weak_ref = node->has_weak_ref;
5543			break;
5544		}
5545	}
5546	binder_inner_proc_unlock(proc);
5547
5548	return 0;
5549}
5550
5551static bool binder_txns_pending_ilocked(struct binder_proc *proc)
5552{
5553	struct rb_node *n;
5554	struct binder_thread *thread;
5555
5556	if (proc->outstanding_txns > 0)
5557		return true;
5558
5559	for (n = rb_first(&proc->threads); n; n = rb_next(n)) {
5560		thread = rb_entry(n, struct binder_thread, rb_node);
5561		if (thread->transaction_stack)
5562			return true;
5563	}
5564	return false;
5565}
5566
5567static void binder_add_freeze_work(struct binder_proc *proc, bool is_frozen)
5568{
5569	struct binder_node *prev = NULL;
5570	struct rb_node *n;
5571	struct binder_ref *ref;
5572
5573	binder_inner_proc_lock(proc);
5574	for (n = rb_first(&proc->nodes); n; n = rb_next(n)) {
5575		struct binder_node *node;
5576
5577		node = rb_entry(n, struct binder_node, rb_node);
5578		binder_inc_node_tmpref_ilocked(node);
5579		binder_inner_proc_unlock(proc);
5580		if (prev)
5581			binder_put_node(prev);
5582		binder_node_lock(node);
5583		hlist_for_each_entry(ref, &node->refs, node_entry) {
5584			/*
5585			 * Need the node lock to synchronize
5586			 * with new notification requests and the
5587			 * inner lock to synchronize with queued
5588			 * freeze notifications.
5589			 */
5590			binder_inner_proc_lock(ref->proc);
5591			if (!ref->freeze) {
5592				binder_inner_proc_unlock(ref->proc);
5593				continue;
5594			}
5595			ref->freeze->work.type = BINDER_WORK_FROZEN_BINDER;
5596			if (list_empty(&ref->freeze->work.entry)) {
5597				ref->freeze->is_frozen = is_frozen;
5598				binder_enqueue_work_ilocked(&ref->freeze->work, &ref->proc->todo);
5599				binder_wakeup_proc_ilocked(ref->proc);
5600			} else {
5601				if (ref->freeze->sent && ref->freeze->is_frozen != is_frozen)
5602					ref->freeze->resend = true;
5603				ref->freeze->is_frozen = is_frozen;
5604			}
5605			binder_inner_proc_unlock(ref->proc);
5606		}
5607		prev = node;
5608		binder_node_unlock(node);
5609		binder_inner_proc_lock(proc);
5610		if (proc->is_dead)
5611			break;
5612	}
5613	binder_inner_proc_unlock(proc);
5614	if (prev)
5615		binder_put_node(prev);
5616}
5617
5618static int binder_ioctl_freeze(struct binder_freeze_info *info,
5619			       struct binder_proc *target_proc)
5620{
5621	int ret = 0;
5622
5623	if (!info->enable) {
5624		binder_inner_proc_lock(target_proc);
5625		target_proc->sync_recv = false;
5626		target_proc->async_recv = false;
5627		target_proc->is_frozen = false;
5628		binder_inner_proc_unlock(target_proc);
5629		binder_add_freeze_work(target_proc, false);
5630		return 0;
5631	}
5632
5633	/*
5634	 * Freezing the target. Prevent new transactions by
5635	 * setting frozen state. If timeout specified, wait
5636	 * for transactions to drain.
5637	 */
5638	binder_inner_proc_lock(target_proc);
5639	target_proc->sync_recv = false;
5640	target_proc->async_recv = false;
5641	target_proc->is_frozen = true;
5642	binder_inner_proc_unlock(target_proc);
5643
5644	if (info->timeout_ms > 0)
5645		ret = wait_event_interruptible_timeout(
5646			target_proc->freeze_wait,
5647			(!target_proc->outstanding_txns),
5648			msecs_to_jiffies(info->timeout_ms));
5649
5650	/* Check pending transactions that wait for reply */
5651	if (ret >= 0) {
5652		binder_inner_proc_lock(target_proc);
5653		if (binder_txns_pending_ilocked(target_proc))
5654			ret = -EAGAIN;
5655		binder_inner_proc_unlock(target_proc);
5656	}
5657
5658	if (ret < 0) {
5659		binder_inner_proc_lock(target_proc);
5660		target_proc->is_frozen = false;
5661		binder_inner_proc_unlock(target_proc);
5662	} else {
5663		binder_add_freeze_work(target_proc, true);
5664	}
5665
5666	return ret;
5667}
5668
5669static int binder_ioctl_get_freezer_info(
5670				struct binder_frozen_status_info *info)
5671{
5672	struct binder_proc *target_proc;
5673	bool found = false;
5674	__u32 txns_pending;
5675
5676	info->sync_recv = 0;
5677	info->async_recv = 0;
5678
5679	mutex_lock(&binder_procs_lock);
5680	hlist_for_each_entry(target_proc, &binder_procs, proc_node) {
5681		if (target_proc->pid == info->pid) {
5682			found = true;
5683			binder_inner_proc_lock(target_proc);
5684			txns_pending = binder_txns_pending_ilocked(target_proc);
5685			info->sync_recv |= target_proc->sync_recv |
5686					(txns_pending << 1);
5687			info->async_recv |= target_proc->async_recv;
5688			binder_inner_proc_unlock(target_proc);
5689		}
5690	}
5691	mutex_unlock(&binder_procs_lock);
5692
5693	if (!found)
5694		return -EINVAL;
5695
5696	return 0;
5697}
5698
5699static int binder_ioctl_get_extended_error(struct binder_thread *thread,
5700					   void __user *ubuf)
5701{
5702	struct binder_extended_error ee;
5703
5704	binder_inner_proc_lock(thread->proc);
5705	ee = thread->ee;
5706	binder_set_extended_error(&thread->ee, 0, BR_OK, 0);
5707	binder_inner_proc_unlock(thread->proc);
5708
5709	if (copy_to_user(ubuf, &ee, sizeof(ee)))
5710		return -EFAULT;
5711
5712	return 0;
5713}
5714
5715static long binder_ioctl(struct file *filp, unsigned int cmd, unsigned long arg)
5716{
5717	int ret;
5718	struct binder_proc *proc = filp->private_data;
5719	struct binder_thread *thread;
 
5720	void __user *ubuf = (void __user *)arg;
5721
5722	/*pr_info("binder_ioctl: %d:%d %x %lx\n",
5723			proc->pid, current->pid, cmd, arg);*/
5724
5725	binder_selftest_alloc(&proc->alloc);
5726
5727	trace_binder_ioctl(cmd, arg);
5728
5729	ret = wait_event_interruptible(binder_user_error_wait, binder_stop_on_user_error < 2);
5730	if (ret)
5731		goto err_unlocked;
5732
5733	thread = binder_get_thread(proc);
5734	if (thread == NULL) {
5735		ret = -ENOMEM;
5736		goto err;
5737	}
5738
5739	switch (cmd) {
5740	case BINDER_WRITE_READ:
5741		ret = binder_ioctl_write_read(filp, arg, thread);
5742		if (ret)
5743			goto err;
5744		break;
5745	case BINDER_SET_MAX_THREADS: {
5746		u32 max_threads;
5747
5748		if (copy_from_user(&max_threads, ubuf,
5749				   sizeof(max_threads))) {
5750			ret = -EINVAL;
5751			goto err;
5752		}
5753		binder_inner_proc_lock(proc);
5754		proc->max_threads = max_threads;
5755		binder_inner_proc_unlock(proc);
5756		break;
5757	}
5758	case BINDER_SET_CONTEXT_MGR_EXT: {
5759		struct flat_binder_object fbo;
5760
5761		if (copy_from_user(&fbo, ubuf, sizeof(fbo))) {
5762			ret = -EINVAL;
5763			goto err;
5764		}
5765		ret = binder_ioctl_set_ctx_mgr(filp, &fbo);
5766		if (ret)
5767			goto err;
5768		break;
5769	}
5770	case BINDER_SET_CONTEXT_MGR:
5771		ret = binder_ioctl_set_ctx_mgr(filp, NULL);
5772		if (ret)
5773			goto err;
5774		break;
5775	case BINDER_THREAD_EXIT:
5776		binder_debug(BINDER_DEBUG_THREADS, "%d:%d exit\n",
5777			     proc->pid, thread->pid);
5778		binder_thread_release(proc, thread);
5779		thread = NULL;
5780		break;
5781	case BINDER_VERSION: {
5782		struct binder_version __user *ver = ubuf;
5783
 
 
 
 
5784		if (put_user(BINDER_CURRENT_PROTOCOL_VERSION,
5785			     &ver->protocol_version)) {
5786			ret = -EINVAL;
5787			goto err;
5788		}
5789		break;
5790	}
5791	case BINDER_GET_NODE_INFO_FOR_REF: {
5792		struct binder_node_info_for_ref info;
5793
5794		if (copy_from_user(&info, ubuf, sizeof(info))) {
5795			ret = -EFAULT;
5796			goto err;
5797		}
5798
5799		ret = binder_ioctl_get_node_info_for_ref(proc, &info);
5800		if (ret < 0)
5801			goto err;
5802
5803		if (copy_to_user(ubuf, &info, sizeof(info))) {
5804			ret = -EFAULT;
5805			goto err;
5806		}
5807
5808		break;
5809	}
5810	case BINDER_GET_NODE_DEBUG_INFO: {
5811		struct binder_node_debug_info info;
5812
5813		if (copy_from_user(&info, ubuf, sizeof(info))) {
5814			ret = -EFAULT;
5815			goto err;
5816		}
5817
5818		ret = binder_ioctl_get_node_debug_info(proc, &info);
5819		if (ret < 0)
5820			goto err;
5821
5822		if (copy_to_user(ubuf, &info, sizeof(info))) {
5823			ret = -EFAULT;
5824			goto err;
5825		}
5826		break;
5827	}
5828	case BINDER_FREEZE: {
5829		struct binder_freeze_info info;
5830		struct binder_proc **target_procs = NULL, *target_proc;
5831		int target_procs_count = 0, i = 0;
5832
5833		ret = 0;
5834
5835		if (copy_from_user(&info, ubuf, sizeof(info))) {
5836			ret = -EFAULT;
5837			goto err;
5838		}
5839
5840		mutex_lock(&binder_procs_lock);
5841		hlist_for_each_entry(target_proc, &binder_procs, proc_node) {
5842			if (target_proc->pid == info.pid)
5843				target_procs_count++;
5844		}
5845
5846		if (target_procs_count == 0) {
5847			mutex_unlock(&binder_procs_lock);
5848			ret = -EINVAL;
5849			goto err;
5850		}
5851
5852		target_procs = kcalloc(target_procs_count,
5853				       sizeof(struct binder_proc *),
5854				       GFP_KERNEL);
5855
5856		if (!target_procs) {
5857			mutex_unlock(&binder_procs_lock);
5858			ret = -ENOMEM;
5859			goto err;
5860		}
5861
5862		hlist_for_each_entry(target_proc, &binder_procs, proc_node) {
5863			if (target_proc->pid != info.pid)
5864				continue;
5865
5866			binder_inner_proc_lock(target_proc);
5867			target_proc->tmp_ref++;
5868			binder_inner_proc_unlock(target_proc);
5869
5870			target_procs[i++] = target_proc;
5871		}
5872		mutex_unlock(&binder_procs_lock);
5873
5874		for (i = 0; i < target_procs_count; i++) {
5875			if (ret >= 0)
5876				ret = binder_ioctl_freeze(&info,
5877							  target_procs[i]);
5878
5879			binder_proc_dec_tmpref(target_procs[i]);
5880		}
5881
5882		kfree(target_procs);
5883
5884		if (ret < 0)
5885			goto err;
5886		break;
5887	}
5888	case BINDER_GET_FROZEN_INFO: {
5889		struct binder_frozen_status_info info;
5890
5891		if (copy_from_user(&info, ubuf, sizeof(info))) {
5892			ret = -EFAULT;
5893			goto err;
5894		}
5895
5896		ret = binder_ioctl_get_freezer_info(&info);
5897		if (ret < 0)
5898			goto err;
5899
5900		if (copy_to_user(ubuf, &info, sizeof(info))) {
5901			ret = -EFAULT;
5902			goto err;
5903		}
5904		break;
5905	}
5906	case BINDER_ENABLE_ONEWAY_SPAM_DETECTION: {
5907		uint32_t enable;
5908
5909		if (copy_from_user(&enable, ubuf, sizeof(enable))) {
5910			ret = -EFAULT;
5911			goto err;
5912		}
5913		binder_inner_proc_lock(proc);
5914		proc->oneway_spam_detection_enabled = (bool)enable;
5915		binder_inner_proc_unlock(proc);
5916		break;
5917	}
5918	case BINDER_GET_EXTENDED_ERROR:
5919		ret = binder_ioctl_get_extended_error(thread, ubuf);
5920		if (ret < 0)
5921			goto err;
5922		break;
5923	default:
5924		ret = -EINVAL;
5925		goto err;
5926	}
5927	ret = 0;
5928err:
5929	if (thread)
5930		thread->looper_need_return = false;
5931	wait_event_interruptible(binder_user_error_wait, binder_stop_on_user_error < 2);
5932	if (ret && ret != -EINTR)
5933		pr_info("%d:%d ioctl %x %lx returned %d\n", proc->pid, current->pid, cmd, arg, ret);
5934err_unlocked:
5935	trace_binder_ioctl_done(ret);
5936	return ret;
5937}
5938
5939static void binder_vma_open(struct vm_area_struct *vma)
5940{
5941	struct binder_proc *proc = vma->vm_private_data;
5942
5943	binder_debug(BINDER_DEBUG_OPEN_CLOSE,
5944		     "%d open vm area %lx-%lx (%ld K) vma %lx pagep %lx\n",
5945		     proc->pid, vma->vm_start, vma->vm_end,
5946		     (vma->vm_end - vma->vm_start) / SZ_1K, vma->vm_flags,
5947		     (unsigned long)pgprot_val(vma->vm_page_prot));
5948}
5949
5950static void binder_vma_close(struct vm_area_struct *vma)
5951{
5952	struct binder_proc *proc = vma->vm_private_data;
5953
5954	binder_debug(BINDER_DEBUG_OPEN_CLOSE,
5955		     "%d close vm area %lx-%lx (%ld K) vma %lx pagep %lx\n",
5956		     proc->pid, vma->vm_start, vma->vm_end,
5957		     (vma->vm_end - vma->vm_start) / SZ_1K, vma->vm_flags,
5958		     (unsigned long)pgprot_val(vma->vm_page_prot));
5959	binder_alloc_vma_close(&proc->alloc);
5960}
5961
5962static vm_fault_t binder_vm_fault(struct vm_fault *vmf)
5963{
5964	return VM_FAULT_SIGBUS;
5965}
5966
5967static const struct vm_operations_struct binder_vm_ops = {
5968	.open = binder_vma_open,
5969	.close = binder_vma_close,
5970	.fault = binder_vm_fault,
5971};
5972
5973static int binder_mmap(struct file *filp, struct vm_area_struct *vma)
5974{
 
5975	struct binder_proc *proc = filp->private_data;
 
5976
5977	if (proc->tsk != current->group_leader)
5978		return -EINVAL;
5979
5980	binder_debug(BINDER_DEBUG_OPEN_CLOSE,
5981		     "%s: %d %lx-%lx (%ld K) vma %lx pagep %lx\n",
5982		     __func__, proc->pid, vma->vm_start, vma->vm_end,
5983		     (vma->vm_end - vma->vm_start) / SZ_1K, vma->vm_flags,
5984		     (unsigned long)pgprot_val(vma->vm_page_prot));
5985
5986	if (vma->vm_flags & FORBIDDEN_MMAP_FLAGS) {
5987		pr_err("%s: %d %lx-%lx %s failed %d\n", __func__,
5988		       proc->pid, vma->vm_start, vma->vm_end, "bad vm_flags", -EPERM);
5989		return -EPERM;
5990	}
5991	vm_flags_mod(vma, VM_DONTCOPY | VM_MIXEDMAP, VM_MAYWRITE);
 
5992
5993	vma->vm_ops = &binder_vm_ops;
5994	vma->vm_private_data = proc;
5995
5996	return binder_alloc_mmap_handler(&proc->alloc, vma);
 
 
 
 
 
 
 
 
5997}
5998
5999static int binder_open(struct inode *nodp, struct file *filp)
6000{
6001	struct binder_proc *proc, *itr;
6002	struct binder_device *binder_dev;
6003	struct binderfs_info *info;
6004	struct dentry *binder_binderfs_dir_entry_proc = NULL;
6005	bool existing_pid = false;
6006
6007	binder_debug(BINDER_DEBUG_OPEN_CLOSE, "%s: %d:%d\n", __func__,
6008		     current->group_leader->pid, current->pid);
6009
6010	proc = kzalloc(sizeof(*proc), GFP_KERNEL);
6011	if (proc == NULL)
6012		return -ENOMEM;
6013
6014	dbitmap_init(&proc->dmap);
6015	spin_lock_init(&proc->inner_lock);
6016	spin_lock_init(&proc->outer_lock);
6017	get_task_struct(current->group_leader);
6018	proc->tsk = current->group_leader;
6019	proc->cred = get_cred(filp->f_cred);
6020	INIT_LIST_HEAD(&proc->todo);
6021	init_waitqueue_head(&proc->freeze_wait);
6022	proc->default_priority = task_nice(current);
6023	/* binderfs stashes devices in i_private */
6024	if (is_binderfs_device(nodp)) {
6025		binder_dev = nodp->i_private;
6026		info = nodp->i_sb->s_fs_info;
6027		binder_binderfs_dir_entry_proc = info->proc_log_dir;
6028	} else {
6029		binder_dev = container_of(filp->private_data,
6030					  struct binder_device, miscdev);
6031	}
6032	refcount_inc(&binder_dev->ref);
6033	proc->context = &binder_dev->context;
6034	binder_alloc_init(&proc->alloc);
6035
6036	binder_stats_created(BINDER_STAT_PROC);
6037	proc->pid = current->group_leader->pid;
6038	INIT_LIST_HEAD(&proc->delivered_death);
6039	INIT_LIST_HEAD(&proc->delivered_freeze);
6040	INIT_LIST_HEAD(&proc->waiting_threads);
6041	filp->private_data = proc;
6042
6043	mutex_lock(&binder_procs_lock);
6044	hlist_for_each_entry(itr, &binder_procs, proc_node) {
6045		if (itr->pid == proc->pid) {
6046			existing_pid = true;
6047			break;
6048		}
6049	}
6050	hlist_add_head(&proc->proc_node, &binder_procs);
6051	mutex_unlock(&binder_procs_lock);
6052
6053	if (binder_debugfs_dir_entry_proc && !existing_pid) {
6054		char strbuf[11];
6055
6056		snprintf(strbuf, sizeof(strbuf), "%u", proc->pid);
6057		/*
6058		 * proc debug entries are shared between contexts.
6059		 * Only create for the first PID to avoid debugfs log spamming
6060		 * The printing code will anyway print all contexts for a given
6061		 * PID so this is not a problem.
6062		 */
6063		proc->debugfs_entry = debugfs_create_file(strbuf, 0444,
6064			binder_debugfs_dir_entry_proc,
6065			(void *)(unsigned long)proc->pid,
6066			&proc_fops);
6067	}
6068
6069	if (binder_binderfs_dir_entry_proc && !existing_pid) {
6070		char strbuf[11];
6071		struct dentry *binderfs_entry;
6072
6073		snprintf(strbuf, sizeof(strbuf), "%u", proc->pid);
6074		/*
6075		 * Similar to debugfs, the process specific log file is shared
6076		 * between contexts. Only create for the first PID.
6077		 * This is ok since same as debugfs, the log file will contain
6078		 * information on all contexts of a given PID.
6079		 */
6080		binderfs_entry = binderfs_create_file(binder_binderfs_dir_entry_proc,
6081			strbuf, &proc_fops, (void *)(unsigned long)proc->pid);
6082		if (!IS_ERR(binderfs_entry)) {
6083			proc->binderfs_entry = binderfs_entry;
6084		} else {
6085			int error;
6086
6087			error = PTR_ERR(binderfs_entry);
6088			pr_warn("Unable to create file %s in binderfs (error %d)\n",
6089				strbuf, error);
6090		}
6091	}
6092
6093	return 0;
6094}
6095
6096static int binder_flush(struct file *filp, fl_owner_t id)
6097{
6098	struct binder_proc *proc = filp->private_data;
6099
6100	binder_defer_work(proc, BINDER_DEFERRED_FLUSH);
6101
6102	return 0;
6103}
6104
6105static void binder_deferred_flush(struct binder_proc *proc)
6106{
6107	struct rb_node *n;
6108	int wake_count = 0;
6109
6110	binder_inner_proc_lock(proc);
6111	for (n = rb_first(&proc->threads); n != NULL; n = rb_next(n)) {
6112		struct binder_thread *thread = rb_entry(n, struct binder_thread, rb_node);
6113
6114		thread->looper_need_return = true;
6115		if (thread->looper & BINDER_LOOPER_STATE_WAITING) {
6116			wake_up_interruptible(&thread->wait);
6117			wake_count++;
6118		}
6119	}
6120	binder_inner_proc_unlock(proc);
6121
6122	binder_debug(BINDER_DEBUG_OPEN_CLOSE,
6123		     "binder_flush: %d woke %d threads\n", proc->pid,
6124		     wake_count);
6125}
6126
6127static int binder_release(struct inode *nodp, struct file *filp)
6128{
6129	struct binder_proc *proc = filp->private_data;
6130
6131	debugfs_remove(proc->debugfs_entry);
6132
6133	if (proc->binderfs_entry) {
6134		binderfs_remove_file(proc->binderfs_entry);
6135		proc->binderfs_entry = NULL;
6136	}
6137
6138	binder_defer_work(proc, BINDER_DEFERRED_RELEASE);
6139
6140	return 0;
6141}
6142
6143static int binder_node_release(struct binder_node *node, int refs)
6144{
6145	struct binder_ref *ref;
6146	int death = 0;
6147	struct binder_proc *proc = node->proc;
6148
6149	binder_release_work(proc, &node->async_todo);
6150
6151	binder_node_lock(node);
6152	binder_inner_proc_lock(proc);
6153	binder_dequeue_work_ilocked(&node->work);
6154	/*
6155	 * The caller must have taken a temporary ref on the node,
6156	 */
6157	BUG_ON(!node->tmp_refs);
6158	if (hlist_empty(&node->refs) && node->tmp_refs == 1) {
6159		binder_inner_proc_unlock(proc);
6160		binder_node_unlock(node);
6161		binder_free_node(node);
6162
6163		return refs;
6164	}
6165
6166	node->proc = NULL;
6167	node->local_strong_refs = 0;
6168	node->local_weak_refs = 0;
6169	binder_inner_proc_unlock(proc);
6170
6171	spin_lock(&binder_dead_nodes_lock);
6172	hlist_add_head(&node->dead_node, &binder_dead_nodes);
6173	spin_unlock(&binder_dead_nodes_lock);
6174
6175	hlist_for_each_entry(ref, &node->refs, node_entry) {
6176		refs++;
6177		/*
6178		 * Need the node lock to synchronize
6179		 * with new notification requests and the
6180		 * inner lock to synchronize with queued
6181		 * death notifications.
6182		 */
6183		binder_inner_proc_lock(ref->proc);
6184		if (!ref->death) {
6185			binder_inner_proc_unlock(ref->proc);
6186			continue;
6187		}
6188
6189		death++;
6190
6191		BUG_ON(!list_empty(&ref->death->work.entry));
6192		ref->death->work.type = BINDER_WORK_DEAD_BINDER;
6193		binder_enqueue_work_ilocked(&ref->death->work,
6194					    &ref->proc->todo);
6195		binder_wakeup_proc_ilocked(ref->proc);
6196		binder_inner_proc_unlock(ref->proc);
6197	}
6198
6199	binder_debug(BINDER_DEBUG_DEAD_BINDER,
6200		     "node %d now dead, refs %d, death %d\n",
6201		     node->debug_id, refs, death);
6202	binder_node_unlock(node);
6203	binder_put_node(node);
6204
6205	return refs;
6206}
6207
6208static void binder_deferred_release(struct binder_proc *proc)
6209{
6210	struct binder_context *context = proc->context;
6211	struct rb_node *n;
6212	int threads, nodes, incoming_refs, outgoing_refs, active_transactions;
6213
6214	mutex_lock(&binder_procs_lock);
6215	hlist_del(&proc->proc_node);
6216	mutex_unlock(&binder_procs_lock);
6217
6218	mutex_lock(&context->context_mgr_node_lock);
6219	if (context->binder_context_mgr_node &&
6220	    context->binder_context_mgr_node->proc == proc) {
6221		binder_debug(BINDER_DEBUG_DEAD_BINDER,
6222			     "%s: %d context_mgr_node gone\n",
6223			     __func__, proc->pid);
6224		context->binder_context_mgr_node = NULL;
6225	}
6226	mutex_unlock(&context->context_mgr_node_lock);
6227	binder_inner_proc_lock(proc);
6228	/*
6229	 * Make sure proc stays alive after we
6230	 * remove all the threads
6231	 */
6232	proc->tmp_ref++;
6233
6234	proc->is_dead = true;
6235	proc->is_frozen = false;
6236	proc->sync_recv = false;
6237	proc->async_recv = false;
6238	threads = 0;
6239	active_transactions = 0;
6240	while ((n = rb_first(&proc->threads))) {
6241		struct binder_thread *thread;
6242
6243		thread = rb_entry(n, struct binder_thread, rb_node);
6244		binder_inner_proc_unlock(proc);
6245		threads++;
6246		active_transactions += binder_thread_release(proc, thread);
6247		binder_inner_proc_lock(proc);
6248	}
6249
6250	nodes = 0;
6251	incoming_refs = 0;
6252	while ((n = rb_first(&proc->nodes))) {
6253		struct binder_node *node;
6254
6255		node = rb_entry(n, struct binder_node, rb_node);
6256		nodes++;
6257		/*
6258		 * take a temporary ref on the node before
6259		 * calling binder_node_release() which will either
6260		 * kfree() the node or call binder_put_node()
6261		 */
6262		binder_inc_node_tmpref_ilocked(node);
6263		rb_erase(&node->rb_node, &proc->nodes);
6264		binder_inner_proc_unlock(proc);
6265		incoming_refs = binder_node_release(node, incoming_refs);
6266		binder_inner_proc_lock(proc);
6267	}
6268	binder_inner_proc_unlock(proc);
6269
6270	outgoing_refs = 0;
6271	binder_proc_lock(proc);
6272	while ((n = rb_first(&proc->refs_by_desc))) {
6273		struct binder_ref *ref;
6274
6275		ref = rb_entry(n, struct binder_ref, rb_node_desc);
6276		outgoing_refs++;
6277		binder_cleanup_ref_olocked(ref);
6278		binder_proc_unlock(proc);
6279		binder_free_ref(ref);
6280		binder_proc_lock(proc);
6281	}
6282	binder_proc_unlock(proc);
6283
6284	binder_release_work(proc, &proc->todo);
6285	binder_release_work(proc, &proc->delivered_death);
6286	binder_release_work(proc, &proc->delivered_freeze);
6287
6288	binder_debug(BINDER_DEBUG_OPEN_CLOSE,
6289		     "%s: %d threads %d, nodes %d (ref %d), refs %d, active transactions %d\n",
6290		     __func__, proc->pid, threads, nodes, incoming_refs,
6291		     outgoing_refs, active_transactions);
6292
6293	binder_proc_dec_tmpref(proc);
6294}
6295
6296static void binder_deferred_func(struct work_struct *work)
6297{
6298	struct binder_proc *proc;
6299
6300	int defer;
6301
6302	do {
6303		mutex_lock(&binder_deferred_lock);
6304		if (!hlist_empty(&binder_deferred_list)) {
6305			proc = hlist_entry(binder_deferred_list.first,
6306					struct binder_proc, deferred_work_node);
6307			hlist_del_init(&proc->deferred_work_node);
6308			defer = proc->deferred_work;
6309			proc->deferred_work = 0;
6310		} else {
6311			proc = NULL;
6312			defer = 0;
6313		}
6314		mutex_unlock(&binder_deferred_lock);
6315
6316		if (defer & BINDER_DEFERRED_FLUSH)
6317			binder_deferred_flush(proc);
6318
6319		if (defer & BINDER_DEFERRED_RELEASE)
6320			binder_deferred_release(proc); /* frees proc */
6321	} while (proc);
6322}
6323static DECLARE_WORK(binder_deferred_work, binder_deferred_func);
6324
6325static void
6326binder_defer_work(struct binder_proc *proc, enum binder_deferred_state defer)
6327{
6328	mutex_lock(&binder_deferred_lock);
6329	proc->deferred_work |= defer;
6330	if (hlist_unhashed(&proc->deferred_work_node)) {
6331		hlist_add_head(&proc->deferred_work_node,
6332				&binder_deferred_list);
6333		schedule_work(&binder_deferred_work);
6334	}
6335	mutex_unlock(&binder_deferred_lock);
6336}
6337
6338static void print_binder_transaction_ilocked(struct seq_file *m,
6339					     struct binder_proc *proc,
6340					     const char *prefix,
6341					     struct binder_transaction *t)
6342{
6343	struct binder_proc *to_proc;
6344	struct binder_buffer *buffer = t->buffer;
6345	ktime_t current_time = ktime_get();
6346
6347	spin_lock(&t->lock);
6348	to_proc = t->to_proc;
6349	seq_printf(m,
6350		   "%s %d: %pK from %d:%d to %d:%d code %x flags %x pri %ld r%d elapsed %lldms",
6351		   prefix, t->debug_id, t,
6352		   t->from_pid,
6353		   t->from_tid,
6354		   to_proc ? to_proc->pid : 0,
6355		   t->to_thread ? t->to_thread->pid : 0,
6356		   t->code, t->flags, t->priority, t->need_reply,
6357		   ktime_ms_delta(current_time, t->start_time));
6358	spin_unlock(&t->lock);
6359
6360	if (proc != to_proc) {
6361		/*
6362		 * Can only safely deref buffer if we are holding the
6363		 * correct proc inner lock for this node
6364		 */
6365		seq_puts(m, "\n");
6366		return;
6367	}
6368
6369	if (buffer == NULL) {
6370		seq_puts(m, " buffer free\n");
6371		return;
6372	}
6373	if (buffer->target_node)
6374		seq_printf(m, " node %d", buffer->target_node->debug_id);
6375	seq_printf(m, " size %zd:%zd offset %lx\n",
6376		   buffer->data_size, buffer->offsets_size,
6377		   proc->alloc.buffer - buffer->user_data);
6378}
6379
6380static void print_binder_work_ilocked(struct seq_file *m,
6381				     struct binder_proc *proc,
6382				     const char *prefix,
6383				     const char *transaction_prefix,
6384				     struct binder_work *w)
6385{
6386	struct binder_node *node;
6387	struct binder_transaction *t;
6388
6389	switch (w->type) {
6390	case BINDER_WORK_TRANSACTION:
6391		t = container_of(w, struct binder_transaction, work);
6392		print_binder_transaction_ilocked(
6393				m, proc, transaction_prefix, t);
6394		break;
6395	case BINDER_WORK_RETURN_ERROR: {
6396		struct binder_error *e = container_of(
6397				w, struct binder_error, work);
6398
6399		seq_printf(m, "%stransaction error: %u\n",
6400			   prefix, e->cmd);
6401	} break;
6402	case BINDER_WORK_TRANSACTION_COMPLETE:
6403		seq_printf(m, "%stransaction complete\n", prefix);
6404		break;
6405	case BINDER_WORK_NODE:
6406		node = container_of(w, struct binder_node, work);
6407		seq_printf(m, "%snode work %d: u%016llx c%016llx\n",
6408			   prefix, node->debug_id,
6409			   (u64)node->ptr, (u64)node->cookie);
6410		break;
6411	case BINDER_WORK_DEAD_BINDER:
6412		seq_printf(m, "%shas dead binder\n", prefix);
6413		break;
6414	case BINDER_WORK_DEAD_BINDER_AND_CLEAR:
6415		seq_printf(m, "%shas cleared dead binder\n", prefix);
6416		break;
6417	case BINDER_WORK_CLEAR_DEATH_NOTIFICATION:
6418		seq_printf(m, "%shas cleared death notification\n", prefix);
6419		break;
6420	case BINDER_WORK_FROZEN_BINDER:
6421		seq_printf(m, "%shas frozen binder\n", prefix);
6422		break;
6423	case BINDER_WORK_CLEAR_FREEZE_NOTIFICATION:
6424		seq_printf(m, "%shas cleared freeze notification\n", prefix);
6425		break;
6426	default:
6427		seq_printf(m, "%sunknown work: type %d\n", prefix, w->type);
6428		break;
6429	}
6430}
6431
6432static void print_binder_thread_ilocked(struct seq_file *m,
6433					struct binder_thread *thread,
6434					int print_always)
6435{
6436	struct binder_transaction *t;
6437	struct binder_work *w;
6438	size_t start_pos = m->count;
6439	size_t header_pos;
6440
6441	seq_printf(m, "  thread %d: l %02x need_return %d tr %d\n",
6442			thread->pid, thread->looper,
6443			thread->looper_need_return,
6444			atomic_read(&thread->tmp_ref));
6445	header_pos = m->count;
6446	t = thread->transaction_stack;
6447	while (t) {
6448		if (t->from == thread) {
6449			print_binder_transaction_ilocked(m, thread->proc,
6450					"    outgoing transaction", t);
6451			t = t->from_parent;
6452		} else if (t->to_thread == thread) {
6453			print_binder_transaction_ilocked(m, thread->proc,
6454						 "    incoming transaction", t);
6455			t = t->to_parent;
6456		} else {
6457			print_binder_transaction_ilocked(m, thread->proc,
6458					"    bad transaction", t);
6459			t = NULL;
6460		}
6461	}
6462	list_for_each_entry(w, &thread->todo, entry) {
6463		print_binder_work_ilocked(m, thread->proc, "    ",
6464					  "    pending transaction", w);
6465	}
6466	if (!print_always && m->count == header_pos)
6467		m->count = start_pos;
6468}
6469
6470static void print_binder_node_nilocked(struct seq_file *m,
6471				       struct binder_node *node)
6472{
6473	struct binder_ref *ref;
6474	struct binder_work *w;
6475	int count;
6476
6477	count = hlist_count_nodes(&node->refs);
 
 
6478
6479	seq_printf(m, "  node %d: u%016llx c%016llx hs %d hw %d ls %d lw %d is %d iw %d tr %d",
6480		   node->debug_id, (u64)node->ptr, (u64)node->cookie,
6481		   node->has_strong_ref, node->has_weak_ref,
6482		   node->local_strong_refs, node->local_weak_refs,
6483		   node->internal_strong_refs, count, node->tmp_refs);
6484	if (count) {
6485		seq_puts(m, " proc");
6486		hlist_for_each_entry(ref, &node->refs, node_entry)
6487			seq_printf(m, " %d", ref->proc->pid);
6488	}
6489	seq_puts(m, "\n");
6490	if (node->proc) {
6491		list_for_each_entry(w, &node->async_todo, entry)
6492			print_binder_work_ilocked(m, node->proc, "    ",
6493					  "    pending async transaction", w);
6494	}
6495}
6496
6497static void print_binder_ref_olocked(struct seq_file *m,
6498				     struct binder_ref *ref)
6499{
6500	binder_node_lock(ref->node);
6501	seq_printf(m, "  ref %d: desc %d %snode %d s %d w %d d %pK\n",
6502		   ref->data.debug_id, ref->data.desc,
6503		   ref->node->proc ? "" : "dead ",
6504		   ref->node->debug_id, ref->data.strong,
6505		   ref->data.weak, ref->death);
6506	binder_node_unlock(ref->node);
6507}
6508
6509static void print_binder_proc(struct seq_file *m,
6510			      struct binder_proc *proc, int print_all)
6511{
6512	struct binder_work *w;
6513	struct rb_node *n;
6514	size_t start_pos = m->count;
6515	size_t header_pos;
6516	struct binder_node *last_node = NULL;
6517
6518	seq_printf(m, "proc %d\n", proc->pid);
6519	seq_printf(m, "context %s\n", proc->context->name);
6520	header_pos = m->count;
6521
6522	binder_inner_proc_lock(proc);
6523	for (n = rb_first(&proc->threads); n != NULL; n = rb_next(n))
6524		print_binder_thread_ilocked(m, rb_entry(n, struct binder_thread,
6525						rb_node), print_all);
6526
6527	for (n = rb_first(&proc->nodes); n != NULL; n = rb_next(n)) {
6528		struct binder_node *node = rb_entry(n, struct binder_node,
6529						    rb_node);
6530		if (!print_all && !node->has_async_transaction)
6531			continue;
6532
6533		/*
6534		 * take a temporary reference on the node so it
6535		 * survives and isn't removed from the tree
6536		 * while we print it.
6537		 */
6538		binder_inc_node_tmpref_ilocked(node);
6539		/* Need to drop inner lock to take node lock */
6540		binder_inner_proc_unlock(proc);
6541		if (last_node)
6542			binder_put_node(last_node);
6543		binder_node_inner_lock(node);
6544		print_binder_node_nilocked(m, node);
6545		binder_node_inner_unlock(node);
6546		last_node = node;
6547		binder_inner_proc_lock(proc);
6548	}
6549	binder_inner_proc_unlock(proc);
6550	if (last_node)
6551		binder_put_node(last_node);
6552
6553	if (print_all) {
6554		binder_proc_lock(proc);
6555		for (n = rb_first(&proc->refs_by_desc);
6556		     n != NULL;
6557		     n = rb_next(n))
6558			print_binder_ref_olocked(m, rb_entry(n,
6559							    struct binder_ref,
6560							    rb_node_desc));
6561		binder_proc_unlock(proc);
6562	}
6563	binder_alloc_print_allocated(m, &proc->alloc);
6564	binder_inner_proc_lock(proc);
6565	list_for_each_entry(w, &proc->todo, entry)
6566		print_binder_work_ilocked(m, proc, "  ",
6567					  "  pending transaction", w);
6568	list_for_each_entry(w, &proc->delivered_death, entry) {
6569		seq_puts(m, "  has delivered dead binder\n");
6570		break;
6571	}
6572	list_for_each_entry(w, &proc->delivered_freeze, entry) {
6573		seq_puts(m, "  has delivered freeze binder\n");
6574		break;
6575	}
6576	binder_inner_proc_unlock(proc);
6577	if (!print_all && m->count == header_pos)
6578		m->count = start_pos;
6579}
6580
6581static const char * const binder_return_strings[] = {
6582	"BR_ERROR",
6583	"BR_OK",
6584	"BR_TRANSACTION",
6585	"BR_REPLY",
6586	"BR_ACQUIRE_RESULT",
6587	"BR_DEAD_REPLY",
6588	"BR_TRANSACTION_COMPLETE",
6589	"BR_INCREFS",
6590	"BR_ACQUIRE",
6591	"BR_RELEASE",
6592	"BR_DECREFS",
6593	"BR_ATTEMPT_ACQUIRE",
6594	"BR_NOOP",
6595	"BR_SPAWN_LOOPER",
6596	"BR_FINISHED",
6597	"BR_DEAD_BINDER",
6598	"BR_CLEAR_DEATH_NOTIFICATION_DONE",
6599	"BR_FAILED_REPLY",
6600	"BR_FROZEN_REPLY",
6601	"BR_ONEWAY_SPAM_SUSPECT",
6602	"BR_TRANSACTION_PENDING_FROZEN",
6603	"BR_FROZEN_BINDER",
6604	"BR_CLEAR_FREEZE_NOTIFICATION_DONE",
6605};
6606
6607static const char * const binder_command_strings[] = {
6608	"BC_TRANSACTION",
6609	"BC_REPLY",
6610	"BC_ACQUIRE_RESULT",
6611	"BC_FREE_BUFFER",
6612	"BC_INCREFS",
6613	"BC_ACQUIRE",
6614	"BC_RELEASE",
6615	"BC_DECREFS",
6616	"BC_INCREFS_DONE",
6617	"BC_ACQUIRE_DONE",
6618	"BC_ATTEMPT_ACQUIRE",
6619	"BC_REGISTER_LOOPER",
6620	"BC_ENTER_LOOPER",
6621	"BC_EXIT_LOOPER",
6622	"BC_REQUEST_DEATH_NOTIFICATION",
6623	"BC_CLEAR_DEATH_NOTIFICATION",
6624	"BC_DEAD_BINDER_DONE",
6625	"BC_TRANSACTION_SG",
6626	"BC_REPLY_SG",
6627	"BC_REQUEST_FREEZE_NOTIFICATION",
6628	"BC_CLEAR_FREEZE_NOTIFICATION",
6629	"BC_FREEZE_NOTIFICATION_DONE",
6630};
6631
6632static const char * const binder_objstat_strings[] = {
6633	"proc",
6634	"thread",
6635	"node",
6636	"ref",
6637	"death",
6638	"transaction",
6639	"transaction_complete",
6640	"freeze",
6641};
6642
6643static void print_binder_stats(struct seq_file *m, const char *prefix,
6644			       struct binder_stats *stats)
6645{
6646	int i;
6647
6648	BUILD_BUG_ON(ARRAY_SIZE(stats->bc) !=
6649		     ARRAY_SIZE(binder_command_strings));
6650	for (i = 0; i < ARRAY_SIZE(stats->bc); i++) {
6651		int temp = atomic_read(&stats->bc[i]);
6652
6653		if (temp)
6654			seq_printf(m, "%s%s: %d\n", prefix,
6655				   binder_command_strings[i], temp);
6656	}
6657
6658	BUILD_BUG_ON(ARRAY_SIZE(stats->br) !=
6659		     ARRAY_SIZE(binder_return_strings));
6660	for (i = 0; i < ARRAY_SIZE(stats->br); i++) {
6661		int temp = atomic_read(&stats->br[i]);
6662
6663		if (temp)
6664			seq_printf(m, "%s%s: %d\n", prefix,
6665				   binder_return_strings[i], temp);
6666	}
6667
6668	BUILD_BUG_ON(ARRAY_SIZE(stats->obj_created) !=
6669		     ARRAY_SIZE(binder_objstat_strings));
6670	BUILD_BUG_ON(ARRAY_SIZE(stats->obj_created) !=
6671		     ARRAY_SIZE(stats->obj_deleted));
6672	for (i = 0; i < ARRAY_SIZE(stats->obj_created); i++) {
6673		int created = atomic_read(&stats->obj_created[i]);
6674		int deleted = atomic_read(&stats->obj_deleted[i]);
6675
6676		if (created || deleted)
6677			seq_printf(m, "%s%s: active %d total %d\n",
6678				prefix,
6679				binder_objstat_strings[i],
6680				created - deleted,
6681				created);
6682	}
6683}
6684
6685static void print_binder_proc_stats(struct seq_file *m,
6686				    struct binder_proc *proc)
6687{
6688	struct binder_work *w;
6689	struct binder_thread *thread;
6690	struct rb_node *n;
6691	int count, strong, weak, ready_threads;
6692	size_t free_async_space =
6693		binder_alloc_get_free_async_space(&proc->alloc);
6694
6695	seq_printf(m, "proc %d\n", proc->pid);
6696	seq_printf(m, "context %s\n", proc->context->name);
6697	count = 0;
6698	ready_threads = 0;
6699	binder_inner_proc_lock(proc);
6700	for (n = rb_first(&proc->threads); n != NULL; n = rb_next(n))
6701		count++;
6702
6703	list_for_each_entry(thread, &proc->waiting_threads, waiting_thread_node)
6704		ready_threads++;
6705
6706	seq_printf(m, "  threads: %d\n", count);
6707	seq_printf(m, "  requested threads: %d+%d/%d\n"
6708			"  ready threads %d\n"
6709			"  free async space %zd\n", proc->requested_threads,
6710			proc->requested_threads_started, proc->max_threads,
6711			ready_threads,
6712			free_async_space);
6713	count = 0;
6714	for (n = rb_first(&proc->nodes); n != NULL; n = rb_next(n))
6715		count++;
6716	binder_inner_proc_unlock(proc);
6717	seq_printf(m, "  nodes: %d\n", count);
6718	count = 0;
6719	strong = 0;
6720	weak = 0;
6721	binder_proc_lock(proc);
6722	for (n = rb_first(&proc->refs_by_desc); n != NULL; n = rb_next(n)) {
6723		struct binder_ref *ref = rb_entry(n, struct binder_ref,
6724						  rb_node_desc);
6725		count++;
6726		strong += ref->data.strong;
6727		weak += ref->data.weak;
6728	}
6729	binder_proc_unlock(proc);
6730	seq_printf(m, "  refs: %d s %d w %d\n", count, strong, weak);
6731
6732	count = binder_alloc_get_allocated_count(&proc->alloc);
6733	seq_printf(m, "  buffers: %d\n", count);
6734
6735	binder_alloc_print_pages(m, &proc->alloc);
6736
6737	count = 0;
6738	binder_inner_proc_lock(proc);
6739	list_for_each_entry(w, &proc->todo, entry) {
6740		if (w->type == BINDER_WORK_TRANSACTION)
6741			count++;
6742	}
6743	binder_inner_proc_unlock(proc);
6744	seq_printf(m, "  pending transactions: %d\n", count);
6745
6746	print_binder_stats(m, "  ", &proc->stats);
6747}
6748
6749static int state_show(struct seq_file *m, void *unused)
 
6750{
6751	struct binder_proc *proc;
6752	struct binder_node *node;
6753	struct binder_node *last_node = NULL;
6754
6755	seq_puts(m, "binder state:\n");
6756
6757	spin_lock(&binder_dead_nodes_lock);
6758	if (!hlist_empty(&binder_dead_nodes))
6759		seq_puts(m, "dead nodes:\n");
6760	hlist_for_each_entry(node, &binder_dead_nodes, dead_node) {
6761		/*
6762		 * take a temporary reference on the node so it
6763		 * survives and isn't removed from the list
6764		 * while we print it.
6765		 */
6766		node->tmp_refs++;
6767		spin_unlock(&binder_dead_nodes_lock);
6768		if (last_node)
6769			binder_put_node(last_node);
6770		binder_node_lock(node);
6771		print_binder_node_nilocked(m, node);
6772		binder_node_unlock(node);
6773		last_node = node;
6774		spin_lock(&binder_dead_nodes_lock);
6775	}
6776	spin_unlock(&binder_dead_nodes_lock);
6777	if (last_node)
6778		binder_put_node(last_node);
6779
6780	mutex_lock(&binder_procs_lock);
6781	hlist_for_each_entry(proc, &binder_procs, proc_node)
6782		print_binder_proc(m, proc, 1);
6783	mutex_unlock(&binder_procs_lock);
6784
6785	return 0;
6786}
6787
6788static int stats_show(struct seq_file *m, void *unused)
6789{
6790	struct binder_proc *proc;
6791
6792	seq_puts(m, "binder stats:\n");
6793
6794	print_binder_stats(m, "", &binder_stats);
6795
6796	mutex_lock(&binder_procs_lock);
6797	hlist_for_each_entry(proc, &binder_procs, proc_node)
6798		print_binder_proc_stats(m, proc);
6799	mutex_unlock(&binder_procs_lock);
6800
6801	return 0;
6802}
6803
6804static int transactions_show(struct seq_file *m, void *unused)
6805{
6806	struct binder_proc *proc;
6807
6808	seq_puts(m, "binder transactions:\n");
6809	mutex_lock(&binder_procs_lock);
6810	hlist_for_each_entry(proc, &binder_procs, proc_node)
6811		print_binder_proc(m, proc, 0);
6812	mutex_unlock(&binder_procs_lock);
6813
6814	return 0;
6815}
6816
6817static int proc_show(struct seq_file *m, void *unused)
6818{
6819	struct binder_proc *itr;
6820	int pid = (unsigned long)m->private;
6821
6822	mutex_lock(&binder_procs_lock);
6823	hlist_for_each_entry(itr, &binder_procs, proc_node) {
6824		if (itr->pid == pid) {
6825			seq_puts(m, "binder proc state:\n");
6826			print_binder_proc(m, itr, 1);
6827		}
6828	}
6829	mutex_unlock(&binder_procs_lock);
6830
6831	return 0;
6832}
6833
6834static void print_binder_transaction_log_entry(struct seq_file *m,
6835					struct binder_transaction_log_entry *e)
6836{
6837	int debug_id = READ_ONCE(e->debug_id_done);
6838	/*
6839	 * read barrier to guarantee debug_id_done read before
6840	 * we print the log values
6841	 */
6842	smp_rmb();
6843	seq_printf(m,
6844		   "%d: %s from %d:%d to %d:%d context %s node %d handle %d size %d:%d ret %d/%d l=%d",
6845		   e->debug_id, (e->call_type == 2) ? "reply" :
6846		   ((e->call_type == 1) ? "async" : "call "), e->from_proc,
6847		   e->from_thread, e->to_proc, e->to_thread, e->context_name,
6848		   e->to_node, e->target_handle, e->data_size, e->offsets_size,
6849		   e->return_error, e->return_error_param,
6850		   e->return_error_line);
6851	/*
6852	 * read-barrier to guarantee read of debug_id_done after
6853	 * done printing the fields of the entry
6854	 */
6855	smp_rmb();
6856	seq_printf(m, debug_id && debug_id == READ_ONCE(e->debug_id_done) ?
6857			"\n" : " (incomplete)\n");
6858}
6859
6860static int transaction_log_show(struct seq_file *m, void *unused)
6861{
6862	struct binder_transaction_log *log = m->private;
6863	unsigned int log_cur = atomic_read(&log->cur);
6864	unsigned int count;
6865	unsigned int cur;
6866	int i;
6867
6868	count = log_cur + 1;
6869	cur = count < ARRAY_SIZE(log->entry) && !log->full ?
6870		0 : count % ARRAY_SIZE(log->entry);
6871	if (count > ARRAY_SIZE(log->entry) || log->full)
6872		count = ARRAY_SIZE(log->entry);
6873	for (i = 0; i < count; i++) {
6874		unsigned int index = cur++ % ARRAY_SIZE(log->entry);
6875
6876		print_binder_transaction_log_entry(m, &log->entry[index]);
6877	}
6878	return 0;
6879}
6880
6881const struct file_operations binder_fops = {
6882	.owner = THIS_MODULE,
6883	.poll = binder_poll,
6884	.unlocked_ioctl = binder_ioctl,
6885	.compat_ioctl = compat_ptr_ioctl,
6886	.mmap = binder_mmap,
6887	.open = binder_open,
6888	.flush = binder_flush,
6889	.release = binder_release,
6890};
6891
6892DEFINE_SHOW_ATTRIBUTE(state);
6893DEFINE_SHOW_ATTRIBUTE(stats);
6894DEFINE_SHOW_ATTRIBUTE(transactions);
6895DEFINE_SHOW_ATTRIBUTE(transaction_log);
6896
6897const struct binder_debugfs_entry binder_debugfs_entries[] = {
6898	{
6899		.name = "state",
6900		.mode = 0444,
6901		.fops = &state_fops,
6902		.data = NULL,
6903	},
6904	{
6905		.name = "stats",
6906		.mode = 0444,
6907		.fops = &stats_fops,
6908		.data = NULL,
6909	},
6910	{
6911		.name = "transactions",
6912		.mode = 0444,
6913		.fops = &transactions_fops,
6914		.data = NULL,
6915	},
6916	{
6917		.name = "transaction_log",
6918		.mode = 0444,
6919		.fops = &transaction_log_fops,
6920		.data = &binder_transaction_log,
6921	},
6922	{
6923		.name = "failed_transaction_log",
6924		.mode = 0444,
6925		.fops = &transaction_log_fops,
6926		.data = &binder_transaction_log_failed,
6927	},
6928	{} /* terminator */
6929};
6930
6931static int __init init_binder_device(const char *name)
6932{
6933	int ret;
6934	struct binder_device *binder_device;
6935
6936	binder_device = kzalloc(sizeof(*binder_device), GFP_KERNEL);
6937	if (!binder_device)
6938		return -ENOMEM;
6939
6940	binder_device->miscdev.fops = &binder_fops;
6941	binder_device->miscdev.minor = MISC_DYNAMIC_MINOR;
6942	binder_device->miscdev.name = name;
6943
6944	refcount_set(&binder_device->ref, 1);
6945	binder_device->context.binder_context_mgr_uid = INVALID_UID;
6946	binder_device->context.name = name;
6947	mutex_init(&binder_device->context.context_mgr_node_lock);
6948
6949	ret = misc_register(&binder_device->miscdev);
6950	if (ret < 0) {
6951		kfree(binder_device);
6952		return ret;
6953	}
6954
6955	hlist_add_head(&binder_device->hlist, &binder_devices);
6956
6957	return ret;
6958}
6959
6960static int __init binder_init(void)
6961{
6962	int ret;
6963	char *device_name, *device_tmp;
6964	struct binder_device *device;
6965	struct hlist_node *tmp;
6966	char *device_names = NULL;
6967	const struct binder_debugfs_entry *db_entry;
6968
6969	ret = binder_alloc_shrinker_init();
6970	if (ret)
6971		return ret;
6972
6973	atomic_set(&binder_transaction_log.cur, ~0U);
6974	atomic_set(&binder_transaction_log_failed.cur, ~0U);
6975
6976	binder_debugfs_dir_entry_root = debugfs_create_dir("binder", NULL);
6977
6978	binder_for_each_debugfs_entry(db_entry)
6979		debugfs_create_file(db_entry->name,
6980					db_entry->mode,
6981					binder_debugfs_dir_entry_root,
6982					db_entry->data,
6983					db_entry->fops);
6984
6985	binder_debugfs_dir_entry_proc = debugfs_create_dir("proc",
6986						binder_debugfs_dir_entry_root);
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
6987
6988	if (!IS_ENABLED(CONFIG_ANDROID_BINDERFS) &&
6989	    strcmp(binder_devices_param, "") != 0) {
6990		/*
6991		* Copy the module_parameter string, because we don't want to
6992		* tokenize it in-place.
6993		 */
6994		device_names = kstrdup(binder_devices_param, GFP_KERNEL);
6995		if (!device_names) {
6996			ret = -ENOMEM;
6997			goto err_alloc_device_names_failed;
6998		}
6999
7000		device_tmp = device_names;
7001		while ((device_name = strsep(&device_tmp, ","))) {
7002			ret = init_binder_device(device_name);
7003			if (ret)
7004				goto err_init_binder_device_failed;
7005		}
7006	}
7007
7008	ret = init_binderfs();
7009	if (ret)
7010		goto err_init_binder_device_failed;
7011
7012	return ret;
7013
7014err_init_binder_device_failed:
7015	hlist_for_each_entry_safe(device, tmp, &binder_devices, hlist) {
7016		misc_deregister(&device->miscdev);
7017		hlist_del(&device->hlist);
7018		kfree(device);
7019	}
7020
7021	kfree(device_names);
7022
7023err_alloc_device_names_failed:
7024	debugfs_remove_recursive(binder_debugfs_dir_entry_root);
7025	binder_alloc_shrinker_exit();
7026
7027	return ret;
7028}
7029
7030device_initcall(binder_init);
7031
7032#define CREATE_TRACE_POINTS
7033#include "binder_trace.h"
7034
7035MODULE_LICENSE("GPL v2");