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v6.2
   1// SPDX-License-Identifier: GPL-2.0-only
   2/*
   3 * Implementation of the security services.
   4 *
   5 * Authors : Stephen Smalley, <sds@tycho.nsa.gov>
   6 *	     James Morris <jmorris@redhat.com>
   7 *
   8 * Updated: Trusted Computer Solutions, Inc. <dgoeddel@trustedcs.com>
   9 *
  10 *	Support for enhanced MLS infrastructure.
  11 *	Support for context based audit filters.
  12 *
  13 * Updated: Frank Mayer <mayerf@tresys.com> and Karl MacMillan <kmacmillan@tresys.com>
  14 *
  15 *	Added conditional policy language extensions
  16 *
  17 * Updated: Hewlett-Packard <paul@paul-moore.com>
  18 *
  19 *      Added support for NetLabel
  20 *      Added support for the policy capability bitmap
  21 *
  22 * Updated: Chad Sellers <csellers@tresys.com>
  23 *
  24 *  Added validation of kernel classes and permissions
  25 *
  26 * Updated: KaiGai Kohei <kaigai@ak.jp.nec.com>
  27 *
  28 *  Added support for bounds domain and audit messaged on masked permissions
  29 *
  30 * Updated: Guido Trentalancia <guido@trentalancia.com>
  31 *
  32 *  Added support for runtime switching of the policy type
  33 *
  34 * Copyright (C) 2008, 2009 NEC Corporation
  35 * Copyright (C) 2006, 2007 Hewlett-Packard Development Company, L.P.
  36 * Copyright (C) 2004-2006 Trusted Computer Solutions, Inc.
  37 * Copyright (C) 2003 - 2004, 2006 Tresys Technology, LLC
  38 * Copyright (C) 2003 Red Hat, Inc., James Morris <jmorris@redhat.com>
  39 */
  40#include <linux/kernel.h>
  41#include <linux/slab.h>
  42#include <linux/string.h>
  43#include <linux/spinlock.h>
  44#include <linux/rcupdate.h>
  45#include <linux/errno.h>
  46#include <linux/in.h>
  47#include <linux/sched.h>
  48#include <linux/audit.h>
  49#include <linux/vmalloc.h>
  50#include <linux/lsm_hooks.h>
  51#include <net/netlabel.h>
  52
  53#include "flask.h"
  54#include "avc.h"
  55#include "avc_ss.h"
  56#include "security.h"
  57#include "context.h"
  58#include "policydb.h"
  59#include "sidtab.h"
  60#include "services.h"
  61#include "conditional.h"
  62#include "mls.h"
  63#include "objsec.h"
  64#include "netlabel.h"
  65#include "xfrm.h"
  66#include "ebitmap.h"
  67#include "audit.h"
  68#include "policycap_names.h"
  69#include "ima.h"
  70
  71struct selinux_policy_convert_data {
  72	struct convert_context_args args;
  73	struct sidtab_convert_params sidtab_params;
 
 
 
 
 
 
  74};
  75
 
 
 
 
 
 
 
 
  76/* Forward declaration. */
  77static int context_struct_to_string(struct policydb *policydb,
  78				    struct context *context,
  79				    char **scontext,
  80				    u32 *scontext_len);
  81
  82static int sidtab_entry_to_string(struct policydb *policydb,
  83				  struct sidtab *sidtab,
  84				  struct sidtab_entry *entry,
  85				  char **scontext,
  86				  u32 *scontext_len);
  87
  88static void context_struct_compute_av(struct policydb *policydb,
  89				      struct context *scontext,
  90				      struct context *tcontext,
  91				      u16 tclass,
  92				      struct av_decision *avd,
  93				      struct extended_perms *xperms);
  94
  95static int selinux_set_mapping(struct policydb *pol,
  96			       const struct security_class_mapping *map,
  97			       struct selinux_map *out_map)
  98{
  99	u16 i, j;
 100	unsigned k;
 101	bool print_unknown_handle = false;
 102
 103	/* Find number of classes in the input mapping */
 104	if (!map)
 105		return -EINVAL;
 106	i = 0;
 107	while (map[i].name)
 108		i++;
 109
 110	/* Allocate space for the class records, plus one for class zero */
 111	out_map->mapping = kcalloc(++i, sizeof(*out_map->mapping), GFP_ATOMIC);
 112	if (!out_map->mapping)
 113		return -ENOMEM;
 114
 115	/* Store the raw class and permission values */
 116	j = 0;
 117	while (map[j].name) {
 118		const struct security_class_mapping *p_in = map + (j++);
 119		struct selinux_mapping *p_out = out_map->mapping + j;
 120
 121		/* An empty class string skips ahead */
 122		if (!strcmp(p_in->name, "")) {
 123			p_out->num_perms = 0;
 124			continue;
 125		}
 126
 127		p_out->value = string_to_security_class(pol, p_in->name);
 128		if (!p_out->value) {
 129			pr_info("SELinux:  Class %s not defined in policy.\n",
 130			       p_in->name);
 131			if (pol->reject_unknown)
 132				goto err;
 133			p_out->num_perms = 0;
 134			print_unknown_handle = true;
 135			continue;
 136		}
 137
 138		k = 0;
 139		while (p_in->perms[k]) {
 140			/* An empty permission string skips ahead */
 141			if (!*p_in->perms[k]) {
 142				k++;
 143				continue;
 144			}
 145			p_out->perms[k] = string_to_av_perm(pol, p_out->value,
 146							    p_in->perms[k]);
 147			if (!p_out->perms[k]) {
 148				pr_info("SELinux:  Permission %s in class %s not defined in policy.\n",
 149				       p_in->perms[k], p_in->name);
 150				if (pol->reject_unknown)
 151					goto err;
 152				print_unknown_handle = true;
 153			}
 154
 155			k++;
 156		}
 157		p_out->num_perms = k;
 158	}
 159
 160	if (print_unknown_handle)
 161		pr_info("SELinux: the above unknown classes and permissions will be %s\n",
 162		       pol->allow_unknown ? "allowed" : "denied");
 163
 164	out_map->size = i;
 165	return 0;
 166err:
 167	kfree(out_map->mapping);
 168	out_map->mapping = NULL;
 169	return -EINVAL;
 170}
 171
 172/*
 173 * Get real, policy values from mapped values
 174 */
 175
 176static u16 unmap_class(struct selinux_map *map, u16 tclass)
 177{
 178	if (tclass < map->size)
 179		return map->mapping[tclass].value;
 180
 181	return tclass;
 182}
 183
 184/*
 185 * Get kernel value for class from its policy value
 186 */
 187static u16 map_class(struct selinux_map *map, u16 pol_value)
 188{
 189	u16 i;
 190
 191	for (i = 1; i < map->size; i++) {
 192		if (map->mapping[i].value == pol_value)
 193			return i;
 194	}
 195
 196	return SECCLASS_NULL;
 197}
 198
 199static void map_decision(struct selinux_map *map,
 200			 u16 tclass, struct av_decision *avd,
 201			 int allow_unknown)
 202{
 203	if (tclass < map->size) {
 204		struct selinux_mapping *mapping = &map->mapping[tclass];
 205		unsigned int i, n = mapping->num_perms;
 206		u32 result;
 207
 208		for (i = 0, result = 0; i < n; i++) {
 209			if (avd->allowed & mapping->perms[i])
 210				result |= 1<<i;
 211			if (allow_unknown && !mapping->perms[i])
 212				result |= 1<<i;
 213		}
 214		avd->allowed = result;
 215
 216		for (i = 0, result = 0; i < n; i++)
 217			if (avd->auditallow & mapping->perms[i])
 218				result |= 1<<i;
 219		avd->auditallow = result;
 220
 221		for (i = 0, result = 0; i < n; i++) {
 222			if (avd->auditdeny & mapping->perms[i])
 223				result |= 1<<i;
 224			if (!allow_unknown && !mapping->perms[i])
 225				result |= 1<<i;
 226		}
 227		/*
 228		 * In case the kernel has a bug and requests a permission
 229		 * between num_perms and the maximum permission number, we
 230		 * should audit that denial
 231		 */
 232		for (; i < (sizeof(u32)*8); i++)
 233			result |= 1<<i;
 234		avd->auditdeny = result;
 235	}
 236}
 237
 238int security_mls_enabled(struct selinux_state *state)
 239{
 240	int mls_enabled;
 241	struct selinux_policy *policy;
 242
 243	if (!selinux_initialized(state))
 244		return 0;
 245
 246	rcu_read_lock();
 247	policy = rcu_dereference(state->policy);
 248	mls_enabled = policy->policydb.mls_enabled;
 249	rcu_read_unlock();
 250	return mls_enabled;
 251}
 252
 253/*
 254 * Return the boolean value of a constraint expression
 255 * when it is applied to the specified source and target
 256 * security contexts.
 257 *
 258 * xcontext is a special beast...  It is used by the validatetrans rules
 259 * only.  For these rules, scontext is the context before the transition,
 260 * tcontext is the context after the transition, and xcontext is the context
 261 * of the process performing the transition.  All other callers of
 262 * constraint_expr_eval should pass in NULL for xcontext.
 263 */
 264static int constraint_expr_eval(struct policydb *policydb,
 265				struct context *scontext,
 266				struct context *tcontext,
 267				struct context *xcontext,
 268				struct constraint_expr *cexpr)
 269{
 270	u32 val1, val2;
 271	struct context *c;
 272	struct role_datum *r1, *r2;
 273	struct mls_level *l1, *l2;
 274	struct constraint_expr *e;
 275	int s[CEXPR_MAXDEPTH];
 276	int sp = -1;
 277
 278	for (e = cexpr; e; e = e->next) {
 279		switch (e->expr_type) {
 280		case CEXPR_NOT:
 281			BUG_ON(sp < 0);
 282			s[sp] = !s[sp];
 283			break;
 284		case CEXPR_AND:
 285			BUG_ON(sp < 1);
 286			sp--;
 287			s[sp] &= s[sp + 1];
 288			break;
 289		case CEXPR_OR:
 290			BUG_ON(sp < 1);
 291			sp--;
 292			s[sp] |= s[sp + 1];
 293			break;
 294		case CEXPR_ATTR:
 295			if (sp == (CEXPR_MAXDEPTH - 1))
 296				return 0;
 297			switch (e->attr) {
 298			case CEXPR_USER:
 299				val1 = scontext->user;
 300				val2 = tcontext->user;
 301				break;
 302			case CEXPR_TYPE:
 303				val1 = scontext->type;
 304				val2 = tcontext->type;
 305				break;
 306			case CEXPR_ROLE:
 307				val1 = scontext->role;
 308				val2 = tcontext->role;
 309				r1 = policydb->role_val_to_struct[val1 - 1];
 310				r2 = policydb->role_val_to_struct[val2 - 1];
 311				switch (e->op) {
 312				case CEXPR_DOM:
 313					s[++sp] = ebitmap_get_bit(&r1->dominates,
 314								  val2 - 1);
 315					continue;
 316				case CEXPR_DOMBY:
 317					s[++sp] = ebitmap_get_bit(&r2->dominates,
 318								  val1 - 1);
 319					continue;
 320				case CEXPR_INCOMP:
 321					s[++sp] = (!ebitmap_get_bit(&r1->dominates,
 322								    val2 - 1) &&
 323						   !ebitmap_get_bit(&r2->dominates,
 324								    val1 - 1));
 325					continue;
 326				default:
 327					break;
 328				}
 329				break;
 330			case CEXPR_L1L2:
 331				l1 = &(scontext->range.level[0]);
 332				l2 = &(tcontext->range.level[0]);
 333				goto mls_ops;
 334			case CEXPR_L1H2:
 335				l1 = &(scontext->range.level[0]);
 336				l2 = &(tcontext->range.level[1]);
 337				goto mls_ops;
 338			case CEXPR_H1L2:
 339				l1 = &(scontext->range.level[1]);
 340				l2 = &(tcontext->range.level[0]);
 341				goto mls_ops;
 342			case CEXPR_H1H2:
 343				l1 = &(scontext->range.level[1]);
 344				l2 = &(tcontext->range.level[1]);
 345				goto mls_ops;
 346			case CEXPR_L1H1:
 347				l1 = &(scontext->range.level[0]);
 348				l2 = &(scontext->range.level[1]);
 349				goto mls_ops;
 350			case CEXPR_L2H2:
 351				l1 = &(tcontext->range.level[0]);
 352				l2 = &(tcontext->range.level[1]);
 353				goto mls_ops;
 354mls_ops:
 355				switch (e->op) {
 356				case CEXPR_EQ:
 357					s[++sp] = mls_level_eq(l1, l2);
 358					continue;
 359				case CEXPR_NEQ:
 360					s[++sp] = !mls_level_eq(l1, l2);
 361					continue;
 362				case CEXPR_DOM:
 363					s[++sp] = mls_level_dom(l1, l2);
 364					continue;
 365				case CEXPR_DOMBY:
 366					s[++sp] = mls_level_dom(l2, l1);
 367					continue;
 368				case CEXPR_INCOMP:
 369					s[++sp] = mls_level_incomp(l2, l1);
 370					continue;
 371				default:
 372					BUG();
 373					return 0;
 374				}
 375				break;
 376			default:
 377				BUG();
 378				return 0;
 379			}
 380
 381			switch (e->op) {
 382			case CEXPR_EQ:
 383				s[++sp] = (val1 == val2);
 384				break;
 385			case CEXPR_NEQ:
 386				s[++sp] = (val1 != val2);
 387				break;
 388			default:
 389				BUG();
 390				return 0;
 391			}
 392			break;
 393		case CEXPR_NAMES:
 394			if (sp == (CEXPR_MAXDEPTH-1))
 395				return 0;
 396			c = scontext;
 397			if (e->attr & CEXPR_TARGET)
 398				c = tcontext;
 399			else if (e->attr & CEXPR_XTARGET) {
 400				c = xcontext;
 401				if (!c) {
 402					BUG();
 403					return 0;
 404				}
 405			}
 406			if (e->attr & CEXPR_USER)
 407				val1 = c->user;
 408			else if (e->attr & CEXPR_ROLE)
 409				val1 = c->role;
 410			else if (e->attr & CEXPR_TYPE)
 411				val1 = c->type;
 412			else {
 413				BUG();
 414				return 0;
 415			}
 416
 417			switch (e->op) {
 418			case CEXPR_EQ:
 419				s[++sp] = ebitmap_get_bit(&e->names, val1 - 1);
 420				break;
 421			case CEXPR_NEQ:
 422				s[++sp] = !ebitmap_get_bit(&e->names, val1 - 1);
 423				break;
 424			default:
 425				BUG();
 426				return 0;
 427			}
 428			break;
 429		default:
 430			BUG();
 431			return 0;
 432		}
 433	}
 434
 435	BUG_ON(sp != 0);
 436	return s[0];
 437}
 438
 439/*
 440 * security_dump_masked_av - dumps masked permissions during
 441 * security_compute_av due to RBAC, MLS/Constraint and Type bounds.
 442 */
 443static int dump_masked_av_helper(void *k, void *d, void *args)
 444{
 445	struct perm_datum *pdatum = d;
 446	char **permission_names = args;
 447
 448	BUG_ON(pdatum->value < 1 || pdatum->value > 32);
 449
 450	permission_names[pdatum->value - 1] = (char *)k;
 451
 452	return 0;
 453}
 454
 455static void security_dump_masked_av(struct policydb *policydb,
 456				    struct context *scontext,
 457				    struct context *tcontext,
 458				    u16 tclass,
 459				    u32 permissions,
 460				    const char *reason)
 461{
 462	struct common_datum *common_dat;
 463	struct class_datum *tclass_dat;
 464	struct audit_buffer *ab;
 465	char *tclass_name;
 466	char *scontext_name = NULL;
 467	char *tcontext_name = NULL;
 468	char *permission_names[32];
 469	int index;
 470	u32 length;
 471	bool need_comma = false;
 472
 473	if (!permissions)
 474		return;
 475
 476	tclass_name = sym_name(policydb, SYM_CLASSES, tclass - 1);
 477	tclass_dat = policydb->class_val_to_struct[tclass - 1];
 478	common_dat = tclass_dat->comdatum;
 479
 480	/* init permission_names */
 481	if (common_dat &&
 482	    hashtab_map(&common_dat->permissions.table,
 483			dump_masked_av_helper, permission_names) < 0)
 484		goto out;
 485
 486	if (hashtab_map(&tclass_dat->permissions.table,
 487			dump_masked_av_helper, permission_names) < 0)
 488		goto out;
 489
 490	/* get scontext/tcontext in text form */
 491	if (context_struct_to_string(policydb, scontext,
 492				     &scontext_name, &length) < 0)
 493		goto out;
 494
 495	if (context_struct_to_string(policydb, tcontext,
 496				     &tcontext_name, &length) < 0)
 497		goto out;
 498
 499	/* audit a message */
 500	ab = audit_log_start(audit_context(),
 501			     GFP_ATOMIC, AUDIT_SELINUX_ERR);
 502	if (!ab)
 503		goto out;
 504
 505	audit_log_format(ab, "op=security_compute_av reason=%s "
 506			 "scontext=%s tcontext=%s tclass=%s perms=",
 507			 reason, scontext_name, tcontext_name, tclass_name);
 508
 509	for (index = 0; index < 32; index++) {
 510		u32 mask = (1 << index);
 511
 512		if ((mask & permissions) == 0)
 513			continue;
 514
 515		audit_log_format(ab, "%s%s",
 516				 need_comma ? "," : "",
 517				 permission_names[index]
 518				 ? permission_names[index] : "????");
 519		need_comma = true;
 520	}
 521	audit_log_end(ab);
 522out:
 523	/* release scontext/tcontext */
 524	kfree(tcontext_name);
 525	kfree(scontext_name);
 
 
 526}
 527
 528/*
 529 * security_boundary_permission - drops violated permissions
 530 * on boundary constraint.
 531 */
 532static void type_attribute_bounds_av(struct policydb *policydb,
 533				     struct context *scontext,
 534				     struct context *tcontext,
 535				     u16 tclass,
 536				     struct av_decision *avd)
 537{
 538	struct context lo_scontext;
 539	struct context lo_tcontext, *tcontextp = tcontext;
 540	struct av_decision lo_avd;
 541	struct type_datum *source;
 542	struct type_datum *target;
 543	u32 masked = 0;
 544
 545	source = policydb->type_val_to_struct[scontext->type - 1];
 546	BUG_ON(!source);
 547
 548	if (!source->bounds)
 549		return;
 550
 551	target = policydb->type_val_to_struct[tcontext->type - 1];
 552	BUG_ON(!target);
 553
 554	memset(&lo_avd, 0, sizeof(lo_avd));
 555
 556	memcpy(&lo_scontext, scontext, sizeof(lo_scontext));
 557	lo_scontext.type = source->bounds;
 558
 559	if (target->bounds) {
 560		memcpy(&lo_tcontext, tcontext, sizeof(lo_tcontext));
 561		lo_tcontext.type = target->bounds;
 562		tcontextp = &lo_tcontext;
 563	}
 564
 565	context_struct_compute_av(policydb, &lo_scontext,
 566				  tcontextp,
 567				  tclass,
 568				  &lo_avd,
 569				  NULL);
 570
 571	masked = ~lo_avd.allowed & avd->allowed;
 572
 573	if (likely(!masked))
 574		return;		/* no masked permission */
 575
 576	/* mask violated permissions */
 577	avd->allowed &= ~masked;
 578
 579	/* audit masked permissions */
 580	security_dump_masked_av(policydb, scontext, tcontext,
 581				tclass, masked, "bounds");
 582}
 583
 584/*
 585 * flag which drivers have permissions
 586 * only looking for ioctl based extended permssions
 587 */
 588void services_compute_xperms_drivers(
 589		struct extended_perms *xperms,
 590		struct avtab_node *node)
 591{
 592	unsigned int i;
 593
 594	if (node->datum.u.xperms->specified == AVTAB_XPERMS_IOCTLDRIVER) {
 595		/* if one or more driver has all permissions allowed */
 596		for (i = 0; i < ARRAY_SIZE(xperms->drivers.p); i++)
 597			xperms->drivers.p[i] |= node->datum.u.xperms->perms.p[i];
 598	} else if (node->datum.u.xperms->specified == AVTAB_XPERMS_IOCTLFUNCTION) {
 599		/* if allowing permissions within a driver */
 600		security_xperm_set(xperms->drivers.p,
 601					node->datum.u.xperms->driver);
 602	}
 603
 604	xperms->len = 1;
 
 
 605}
 606
 607/*
 608 * Compute access vectors and extended permissions based on a context
 609 * structure pair for the permissions in a particular class.
 610 */
 611static void context_struct_compute_av(struct policydb *policydb,
 612				      struct context *scontext,
 613				      struct context *tcontext,
 614				      u16 tclass,
 615				      struct av_decision *avd,
 616				      struct extended_perms *xperms)
 617{
 618	struct constraint_node *constraint;
 619	struct role_allow *ra;
 620	struct avtab_key avkey;
 621	struct avtab_node *node;
 622	struct class_datum *tclass_datum;
 623	struct ebitmap *sattr, *tattr;
 624	struct ebitmap_node *snode, *tnode;
 625	unsigned int i, j;
 626
 627	avd->allowed = 0;
 628	avd->auditallow = 0;
 629	avd->auditdeny = 0xffffffff;
 630	if (xperms) {
 631		memset(&xperms->drivers, 0, sizeof(xperms->drivers));
 632		xperms->len = 0;
 633	}
 634
 635	if (unlikely(!tclass || tclass > policydb->p_classes.nprim)) {
 636		if (printk_ratelimit())
 637			pr_warn("SELinux:  Invalid class %hu\n", tclass);
 638		return;
 639	}
 640
 641	tclass_datum = policydb->class_val_to_struct[tclass - 1];
 642
 643	/*
 644	 * If a specific type enforcement rule was defined for
 645	 * this permission check, then use it.
 646	 */
 647	avkey.target_class = tclass;
 648	avkey.specified = AVTAB_AV | AVTAB_XPERMS;
 649	sattr = &policydb->type_attr_map_array[scontext->type - 1];
 650	tattr = &policydb->type_attr_map_array[tcontext->type - 1];
 651	ebitmap_for_each_positive_bit(sattr, snode, i) {
 652		ebitmap_for_each_positive_bit(tattr, tnode, j) {
 653			avkey.source_type = i + 1;
 654			avkey.target_type = j + 1;
 655			for (node = avtab_search_node(&policydb->te_avtab,
 656						      &avkey);
 657			     node;
 658			     node = avtab_search_node_next(node, avkey.specified)) {
 659				if (node->key.specified == AVTAB_ALLOWED)
 660					avd->allowed |= node->datum.u.data;
 661				else if (node->key.specified == AVTAB_AUDITALLOW)
 662					avd->auditallow |= node->datum.u.data;
 663				else if (node->key.specified == AVTAB_AUDITDENY)
 664					avd->auditdeny &= node->datum.u.data;
 665				else if (xperms && (node->key.specified & AVTAB_XPERMS))
 666					services_compute_xperms_drivers(xperms, node);
 667			}
 668
 669			/* Check conditional av table for additional permissions */
 670			cond_compute_av(&policydb->te_cond_avtab, &avkey,
 671					avd, xperms);
 672
 673		}
 674	}
 675
 676	/*
 677	 * Remove any permissions prohibited by a constraint (this includes
 678	 * the MLS policy).
 679	 */
 680	constraint = tclass_datum->constraints;
 681	while (constraint) {
 682		if ((constraint->permissions & (avd->allowed)) &&
 683		    !constraint_expr_eval(policydb, scontext, tcontext, NULL,
 684					  constraint->expr)) {
 685			avd->allowed &= ~(constraint->permissions);
 686		}
 687		constraint = constraint->next;
 688	}
 689
 690	/*
 691	 * If checking process transition permission and the
 692	 * role is changing, then check the (current_role, new_role)
 693	 * pair.
 694	 */
 695	if (tclass == policydb->process_class &&
 696	    (avd->allowed & policydb->process_trans_perms) &&
 697	    scontext->role != tcontext->role) {
 698		for (ra = policydb->role_allow; ra; ra = ra->next) {
 699			if (scontext->role == ra->role &&
 700			    tcontext->role == ra->new_role)
 701				break;
 702		}
 703		if (!ra)
 704			avd->allowed &= ~policydb->process_trans_perms;
 705	}
 706
 707	/*
 708	 * If the given source and target types have boundary
 709	 * constraint, lazy checks have to mask any violated
 710	 * permission and notice it to userspace via audit.
 711	 */
 712	type_attribute_bounds_av(policydb, scontext, tcontext,
 713				 tclass, avd);
 714}
 715
 716static int security_validtrans_handle_fail(struct selinux_state *state,
 717					struct selinux_policy *policy,
 718					struct sidtab_entry *oentry,
 719					struct sidtab_entry *nentry,
 720					struct sidtab_entry *tentry,
 721					u16 tclass)
 722{
 723	struct policydb *p = &policy->policydb;
 724	struct sidtab *sidtab = policy->sidtab;
 725	char *o = NULL, *n = NULL, *t = NULL;
 726	u32 olen, nlen, tlen;
 727
 728	if (sidtab_entry_to_string(p, sidtab, oentry, &o, &olen))
 729		goto out;
 730	if (sidtab_entry_to_string(p, sidtab, nentry, &n, &nlen))
 731		goto out;
 732	if (sidtab_entry_to_string(p, sidtab, tentry, &t, &tlen))
 733		goto out;
 734	audit_log(audit_context(), GFP_ATOMIC, AUDIT_SELINUX_ERR,
 735		  "op=security_validate_transition seresult=denied"
 736		  " oldcontext=%s newcontext=%s taskcontext=%s tclass=%s",
 737		  o, n, t, sym_name(p, SYM_CLASSES, tclass-1));
 738out:
 739	kfree(o);
 740	kfree(n);
 741	kfree(t);
 742
 743	if (!enforcing_enabled(state))
 744		return 0;
 745	return -EPERM;
 746}
 747
 748static int security_compute_validatetrans(struct selinux_state *state,
 749					  u32 oldsid, u32 newsid, u32 tasksid,
 750					  u16 orig_tclass, bool user)
 751{
 752	struct selinux_policy *policy;
 753	struct policydb *policydb;
 754	struct sidtab *sidtab;
 755	struct sidtab_entry *oentry;
 756	struct sidtab_entry *nentry;
 757	struct sidtab_entry *tentry;
 758	struct class_datum *tclass_datum;
 759	struct constraint_node *constraint;
 760	u16 tclass;
 761	int rc = 0;
 762
 763
 764	if (!selinux_initialized(state))
 765		return 0;
 766
 767	rcu_read_lock();
 768
 769	policy = rcu_dereference(state->policy);
 770	policydb = &policy->policydb;
 771	sidtab = policy->sidtab;
 772
 773	if (!user)
 774		tclass = unmap_class(&policy->map, orig_tclass);
 775	else
 776		tclass = orig_tclass;
 777
 778	if (!tclass || tclass > policydb->p_classes.nprim) {
 779		rc = -EINVAL;
 780		goto out;
 781	}
 782	tclass_datum = policydb->class_val_to_struct[tclass - 1];
 783
 784	oentry = sidtab_search_entry(sidtab, oldsid);
 785	if (!oentry) {
 786		pr_err("SELinux: %s:  unrecognized SID %d\n",
 787			__func__, oldsid);
 788		rc = -EINVAL;
 789		goto out;
 790	}
 791
 792	nentry = sidtab_search_entry(sidtab, newsid);
 793	if (!nentry) {
 794		pr_err("SELinux: %s:  unrecognized SID %d\n",
 795			__func__, newsid);
 796		rc = -EINVAL;
 797		goto out;
 798	}
 799
 800	tentry = sidtab_search_entry(sidtab, tasksid);
 801	if (!tentry) {
 802		pr_err("SELinux: %s:  unrecognized SID %d\n",
 803			__func__, tasksid);
 804		rc = -EINVAL;
 805		goto out;
 806	}
 807
 808	constraint = tclass_datum->validatetrans;
 809	while (constraint) {
 810		if (!constraint_expr_eval(policydb, &oentry->context,
 811					  &nentry->context, &tentry->context,
 812					  constraint->expr)) {
 813			if (user)
 814				rc = -EPERM;
 815			else
 816				rc = security_validtrans_handle_fail(state,
 817								policy,
 818								oentry,
 819								nentry,
 820								tentry,
 821								tclass);
 822			goto out;
 823		}
 824		constraint = constraint->next;
 825	}
 826
 827out:
 828	rcu_read_unlock();
 829	return rc;
 830}
 831
 832int security_validate_transition_user(struct selinux_state *state,
 833				      u32 oldsid, u32 newsid, u32 tasksid,
 834				      u16 tclass)
 835{
 836	return security_compute_validatetrans(state, oldsid, newsid, tasksid,
 837					      tclass, true);
 838}
 839
 840int security_validate_transition(struct selinux_state *state,
 841				 u32 oldsid, u32 newsid, u32 tasksid,
 842				 u16 orig_tclass)
 843{
 844	return security_compute_validatetrans(state, oldsid, newsid, tasksid,
 845					      orig_tclass, false);
 846}
 847
 848/*
 849 * security_bounded_transition - check whether the given
 850 * transition is directed to bounded, or not.
 851 * It returns 0, if @newsid is bounded by @oldsid.
 852 * Otherwise, it returns error code.
 853 *
 854 * @state: SELinux state
 855 * @oldsid : current security identifier
 856 * @newsid : destinated security identifier
 857 */
 858int security_bounded_transition(struct selinux_state *state,
 859				u32 old_sid, u32 new_sid)
 860{
 861	struct selinux_policy *policy;
 862	struct policydb *policydb;
 863	struct sidtab *sidtab;
 864	struct sidtab_entry *old_entry, *new_entry;
 865	struct type_datum *type;
 866	int index;
 867	int rc;
 868
 869	if (!selinux_initialized(state))
 870		return 0;
 871
 872	rcu_read_lock();
 873	policy = rcu_dereference(state->policy);
 874	policydb = &policy->policydb;
 875	sidtab = policy->sidtab;
 876
 877	rc = -EINVAL;
 878	old_entry = sidtab_search_entry(sidtab, old_sid);
 879	if (!old_entry) {
 880		pr_err("SELinux: %s: unrecognized SID %u\n",
 881		       __func__, old_sid);
 882		goto out;
 883	}
 884
 885	rc = -EINVAL;
 886	new_entry = sidtab_search_entry(sidtab, new_sid);
 887	if (!new_entry) {
 888		pr_err("SELinux: %s: unrecognized SID %u\n",
 889		       __func__, new_sid);
 890		goto out;
 891	}
 892
 893	rc = 0;
 894	/* type/domain unchanged */
 895	if (old_entry->context.type == new_entry->context.type)
 896		goto out;
 897
 898	index = new_entry->context.type;
 899	while (true) {
 900		type = policydb->type_val_to_struct[index - 1];
 901		BUG_ON(!type);
 902
 903		/* not bounded anymore */
 904		rc = -EPERM;
 905		if (!type->bounds)
 906			break;
 907
 908		/* @newsid is bounded by @oldsid */
 909		rc = 0;
 910		if (type->bounds == old_entry->context.type)
 911			break;
 912
 913		index = type->bounds;
 914	}
 915
 916	if (rc) {
 917		char *old_name = NULL;
 918		char *new_name = NULL;
 919		u32 length;
 920
 921		if (!sidtab_entry_to_string(policydb, sidtab, old_entry,
 922					    &old_name, &length) &&
 923		    !sidtab_entry_to_string(policydb, sidtab, new_entry,
 924					    &new_name, &length)) {
 925			audit_log(audit_context(),
 926				  GFP_ATOMIC, AUDIT_SELINUX_ERR,
 927				  "op=security_bounded_transition "
 928				  "seresult=denied "
 929				  "oldcontext=%s newcontext=%s",
 930				  old_name, new_name);
 931		}
 932		kfree(new_name);
 933		kfree(old_name);
 934	}
 935out:
 936	rcu_read_unlock();
 937
 938	return rc;
 939}
 940
 941static void avd_init(struct selinux_policy *policy, struct av_decision *avd)
 942{
 943	avd->allowed = 0;
 944	avd->auditallow = 0;
 945	avd->auditdeny = 0xffffffff;
 946	if (policy)
 947		avd->seqno = policy->latest_granting;
 948	else
 949		avd->seqno = 0;
 950	avd->flags = 0;
 951}
 952
 953void services_compute_xperms_decision(struct extended_perms_decision *xpermd,
 954					struct avtab_node *node)
 955{
 956	unsigned int i;
 957
 958	if (node->datum.u.xperms->specified == AVTAB_XPERMS_IOCTLFUNCTION) {
 959		if (xpermd->driver != node->datum.u.xperms->driver)
 960			return;
 961	} else if (node->datum.u.xperms->specified == AVTAB_XPERMS_IOCTLDRIVER) {
 962		if (!security_xperm_test(node->datum.u.xperms->perms.p,
 963					xpermd->driver))
 964			return;
 965	} else {
 966		BUG();
 967	}
 968
 969	if (node->key.specified == AVTAB_XPERMS_ALLOWED) {
 970		xpermd->used |= XPERMS_ALLOWED;
 971		if (node->datum.u.xperms->specified == AVTAB_XPERMS_IOCTLDRIVER) {
 972			memset(xpermd->allowed->p, 0xff,
 973					sizeof(xpermd->allowed->p));
 974		}
 975		if (node->datum.u.xperms->specified == AVTAB_XPERMS_IOCTLFUNCTION) {
 976			for (i = 0; i < ARRAY_SIZE(xpermd->allowed->p); i++)
 977				xpermd->allowed->p[i] |=
 978					node->datum.u.xperms->perms.p[i];
 979		}
 980	} else if (node->key.specified == AVTAB_XPERMS_AUDITALLOW) {
 981		xpermd->used |= XPERMS_AUDITALLOW;
 982		if (node->datum.u.xperms->specified == AVTAB_XPERMS_IOCTLDRIVER) {
 983			memset(xpermd->auditallow->p, 0xff,
 984					sizeof(xpermd->auditallow->p));
 985		}
 986		if (node->datum.u.xperms->specified == AVTAB_XPERMS_IOCTLFUNCTION) {
 987			for (i = 0; i < ARRAY_SIZE(xpermd->auditallow->p); i++)
 988				xpermd->auditallow->p[i] |=
 989					node->datum.u.xperms->perms.p[i];
 990		}
 991	} else if (node->key.specified == AVTAB_XPERMS_DONTAUDIT) {
 992		xpermd->used |= XPERMS_DONTAUDIT;
 993		if (node->datum.u.xperms->specified == AVTAB_XPERMS_IOCTLDRIVER) {
 994			memset(xpermd->dontaudit->p, 0xff,
 995					sizeof(xpermd->dontaudit->p));
 996		}
 997		if (node->datum.u.xperms->specified == AVTAB_XPERMS_IOCTLFUNCTION) {
 998			for (i = 0; i < ARRAY_SIZE(xpermd->dontaudit->p); i++)
 999				xpermd->dontaudit->p[i] |=
1000					node->datum.u.xperms->perms.p[i];
1001		}
1002	} else {
1003		BUG();
1004	}
1005}
1006
1007void security_compute_xperms_decision(struct selinux_state *state,
1008				      u32 ssid,
1009				      u32 tsid,
1010				      u16 orig_tclass,
1011				      u8 driver,
1012				      struct extended_perms_decision *xpermd)
1013{
1014	struct selinux_policy *policy;
1015	struct policydb *policydb;
1016	struct sidtab *sidtab;
1017	u16 tclass;
1018	struct context *scontext, *tcontext;
1019	struct avtab_key avkey;
1020	struct avtab_node *node;
1021	struct ebitmap *sattr, *tattr;
1022	struct ebitmap_node *snode, *tnode;
1023	unsigned int i, j;
1024
1025	xpermd->driver = driver;
1026	xpermd->used = 0;
1027	memset(xpermd->allowed->p, 0, sizeof(xpermd->allowed->p));
1028	memset(xpermd->auditallow->p, 0, sizeof(xpermd->auditallow->p));
1029	memset(xpermd->dontaudit->p, 0, sizeof(xpermd->dontaudit->p));
1030
1031	rcu_read_lock();
1032	if (!selinux_initialized(state))
1033		goto allow;
1034
1035	policy = rcu_dereference(state->policy);
1036	policydb = &policy->policydb;
1037	sidtab = policy->sidtab;
1038
1039	scontext = sidtab_search(sidtab, ssid);
1040	if (!scontext) {
1041		pr_err("SELinux: %s:  unrecognized SID %d\n",
1042		       __func__, ssid);
1043		goto out;
1044	}
1045
1046	tcontext = sidtab_search(sidtab, tsid);
1047	if (!tcontext) {
1048		pr_err("SELinux: %s:  unrecognized SID %d\n",
1049		       __func__, tsid);
1050		goto out;
1051	}
1052
1053	tclass = unmap_class(&policy->map, orig_tclass);
1054	if (unlikely(orig_tclass && !tclass)) {
1055		if (policydb->allow_unknown)
1056			goto allow;
1057		goto out;
1058	}
1059
1060
1061	if (unlikely(!tclass || tclass > policydb->p_classes.nprim)) {
1062		pr_warn_ratelimited("SELinux:  Invalid class %hu\n", tclass);
1063		goto out;
1064	}
1065
1066	avkey.target_class = tclass;
1067	avkey.specified = AVTAB_XPERMS;
1068	sattr = &policydb->type_attr_map_array[scontext->type - 1];
1069	tattr = &policydb->type_attr_map_array[tcontext->type - 1];
1070	ebitmap_for_each_positive_bit(sattr, snode, i) {
1071		ebitmap_for_each_positive_bit(tattr, tnode, j) {
1072			avkey.source_type = i + 1;
1073			avkey.target_type = j + 1;
1074			for (node = avtab_search_node(&policydb->te_avtab,
1075						      &avkey);
1076			     node;
1077			     node = avtab_search_node_next(node, avkey.specified))
1078				services_compute_xperms_decision(xpermd, node);
1079
1080			cond_compute_xperms(&policydb->te_cond_avtab,
1081						&avkey, xpermd);
1082		}
1083	}
1084out:
1085	rcu_read_unlock();
1086	return;
1087allow:
1088	memset(xpermd->allowed->p, 0xff, sizeof(xpermd->allowed->p));
1089	goto out;
1090}
1091
1092/**
1093 * security_compute_av - Compute access vector decisions.
1094 * @state: SELinux state
1095 * @ssid: source security identifier
1096 * @tsid: target security identifier
1097 * @orig_tclass: target security class
1098 * @avd: access vector decisions
1099 * @xperms: extended permissions
1100 *
1101 * Compute a set of access vector decisions based on the
1102 * SID pair (@ssid, @tsid) for the permissions in @tclass.
1103 */
1104void security_compute_av(struct selinux_state *state,
1105			 u32 ssid,
1106			 u32 tsid,
1107			 u16 orig_tclass,
1108			 struct av_decision *avd,
1109			 struct extended_perms *xperms)
1110{
1111	struct selinux_policy *policy;
1112	struct policydb *policydb;
1113	struct sidtab *sidtab;
1114	u16 tclass;
1115	struct context *scontext = NULL, *tcontext = NULL;
1116
1117	rcu_read_lock();
1118	policy = rcu_dereference(state->policy);
1119	avd_init(policy, avd);
1120	xperms->len = 0;
1121	if (!selinux_initialized(state))
1122		goto allow;
1123
1124	policydb = &policy->policydb;
1125	sidtab = policy->sidtab;
1126
1127	scontext = sidtab_search(sidtab, ssid);
1128	if (!scontext) {
1129		pr_err("SELinux: %s:  unrecognized SID %d\n",
1130		       __func__, ssid);
1131		goto out;
1132	}
1133
1134	/* permissive domain? */
1135	if (ebitmap_get_bit(&policydb->permissive_map, scontext->type))
1136		avd->flags |= AVD_FLAGS_PERMISSIVE;
1137
1138	tcontext = sidtab_search(sidtab, tsid);
1139	if (!tcontext) {
1140		pr_err("SELinux: %s:  unrecognized SID %d\n",
1141		       __func__, tsid);
1142		goto out;
1143	}
1144
1145	tclass = unmap_class(&policy->map, orig_tclass);
1146	if (unlikely(orig_tclass && !tclass)) {
1147		if (policydb->allow_unknown)
1148			goto allow;
1149		goto out;
1150	}
1151	context_struct_compute_av(policydb, scontext, tcontext, tclass, avd,
1152				  xperms);
1153	map_decision(&policy->map, orig_tclass, avd,
1154		     policydb->allow_unknown);
1155out:
1156	rcu_read_unlock();
1157	return;
1158allow:
1159	avd->allowed = 0xffffffff;
1160	goto out;
1161}
1162
1163void security_compute_av_user(struct selinux_state *state,
1164			      u32 ssid,
1165			      u32 tsid,
1166			      u16 tclass,
1167			      struct av_decision *avd)
1168{
1169	struct selinux_policy *policy;
1170	struct policydb *policydb;
1171	struct sidtab *sidtab;
1172	struct context *scontext = NULL, *tcontext = NULL;
1173
1174	rcu_read_lock();
1175	policy = rcu_dereference(state->policy);
1176	avd_init(policy, avd);
1177	if (!selinux_initialized(state))
1178		goto allow;
1179
1180	policydb = &policy->policydb;
1181	sidtab = policy->sidtab;
1182
1183	scontext = sidtab_search(sidtab, ssid);
1184	if (!scontext) {
1185		pr_err("SELinux: %s:  unrecognized SID %d\n",
1186		       __func__, ssid);
1187		goto out;
1188	}
1189
1190	/* permissive domain? */
1191	if (ebitmap_get_bit(&policydb->permissive_map, scontext->type))
1192		avd->flags |= AVD_FLAGS_PERMISSIVE;
1193
1194	tcontext = sidtab_search(sidtab, tsid);
1195	if (!tcontext) {
1196		pr_err("SELinux: %s:  unrecognized SID %d\n",
1197		       __func__, tsid);
1198		goto out;
1199	}
1200
1201	if (unlikely(!tclass)) {
1202		if (policydb->allow_unknown)
1203			goto allow;
1204		goto out;
1205	}
1206
1207	context_struct_compute_av(policydb, scontext, tcontext, tclass, avd,
1208				  NULL);
1209 out:
1210	rcu_read_unlock();
1211	return;
1212allow:
1213	avd->allowed = 0xffffffff;
1214	goto out;
1215}
1216
1217/*
1218 * Write the security context string representation of
1219 * the context structure `context' into a dynamically
1220 * allocated string of the correct size.  Set `*scontext'
1221 * to point to this string and set `*scontext_len' to
1222 * the length of the string.
1223 */
1224static int context_struct_to_string(struct policydb *p,
1225				    struct context *context,
1226				    char **scontext, u32 *scontext_len)
1227{
1228	char *scontextp;
1229
1230	if (scontext)
1231		*scontext = NULL;
1232	*scontext_len = 0;
1233
1234	if (context->len) {
1235		*scontext_len = context->len;
1236		if (scontext) {
1237			*scontext = kstrdup(context->str, GFP_ATOMIC);
1238			if (!(*scontext))
1239				return -ENOMEM;
1240		}
1241		return 0;
1242	}
1243
1244	/* Compute the size of the context. */
1245	*scontext_len += strlen(sym_name(p, SYM_USERS, context->user - 1)) + 1;
1246	*scontext_len += strlen(sym_name(p, SYM_ROLES, context->role - 1)) + 1;
1247	*scontext_len += strlen(sym_name(p, SYM_TYPES, context->type - 1)) + 1;
1248	*scontext_len += mls_compute_context_len(p, context);
1249
1250	if (!scontext)
1251		return 0;
1252
1253	/* Allocate space for the context; caller must free this space. */
1254	scontextp = kmalloc(*scontext_len, GFP_ATOMIC);
1255	if (!scontextp)
1256		return -ENOMEM;
1257	*scontext = scontextp;
1258
1259	/*
1260	 * Copy the user name, role name and type name into the context.
1261	 */
1262	scontextp += sprintf(scontextp, "%s:%s:%s",
1263		sym_name(p, SYM_USERS, context->user - 1),
1264		sym_name(p, SYM_ROLES, context->role - 1),
1265		sym_name(p, SYM_TYPES, context->type - 1));
1266
1267	mls_sid_to_context(p, context, &scontextp);
1268
1269	*scontextp = 0;
1270
1271	return 0;
1272}
1273
1274static int sidtab_entry_to_string(struct policydb *p,
1275				  struct sidtab *sidtab,
1276				  struct sidtab_entry *entry,
1277				  char **scontext, u32 *scontext_len)
1278{
1279	int rc = sidtab_sid2str_get(sidtab, entry, scontext, scontext_len);
1280
1281	if (rc != -ENOENT)
1282		return rc;
1283
1284	rc = context_struct_to_string(p, &entry->context, scontext,
1285				      scontext_len);
1286	if (!rc && scontext)
1287		sidtab_sid2str_put(sidtab, entry, *scontext, *scontext_len);
1288	return rc;
1289}
1290
1291#include "initial_sid_to_string.h"
1292
1293int security_sidtab_hash_stats(struct selinux_state *state, char *page)
1294{
1295	struct selinux_policy *policy;
1296	int rc;
1297
1298	if (!selinux_initialized(state)) {
1299		pr_err("SELinux: %s:  called before initial load_policy\n",
1300		       __func__);
1301		return -EINVAL;
1302	}
1303
1304	rcu_read_lock();
1305	policy = rcu_dereference(state->policy);
1306	rc = sidtab_hash_stats(policy->sidtab, page);
1307	rcu_read_unlock();
1308
1309	return rc;
1310}
1311
1312const char *security_get_initial_sid_context(u32 sid)
1313{
1314	if (unlikely(sid > SECINITSID_NUM))
1315		return NULL;
1316	return initial_sid_to_string[sid];
1317}
1318
1319static int security_sid_to_context_core(struct selinux_state *state,
1320					u32 sid, char **scontext,
1321					u32 *scontext_len, int force,
1322					int only_invalid)
1323{
1324	struct selinux_policy *policy;
1325	struct policydb *policydb;
1326	struct sidtab *sidtab;
1327	struct sidtab_entry *entry;
1328	int rc = 0;
1329
1330	if (scontext)
1331		*scontext = NULL;
1332	*scontext_len  = 0;
1333
1334	if (!selinux_initialized(state)) {
1335		if (sid <= SECINITSID_NUM) {
1336			char *scontextp;
1337			const char *s = initial_sid_to_string[sid];
1338
1339			if (!s)
1340				return -EINVAL;
1341			*scontext_len = strlen(s) + 1;
1342			if (!scontext)
1343				return 0;
1344			scontextp = kmemdup(s, *scontext_len, GFP_ATOMIC);
1345			if (!scontextp)
1346				return -ENOMEM;
1347			*scontext = scontextp;
1348			return 0;
1349		}
1350		pr_err("SELinux: %s:  called before initial "
1351		       "load_policy on unknown SID %d\n", __func__, sid);
1352		return -EINVAL;
1353	}
1354	rcu_read_lock();
1355	policy = rcu_dereference(state->policy);
1356	policydb = &policy->policydb;
1357	sidtab = policy->sidtab;
1358
1359	if (force)
1360		entry = sidtab_search_entry_force(sidtab, sid);
1361	else
1362		entry = sidtab_search_entry(sidtab, sid);
1363	if (!entry) {
1364		pr_err("SELinux: %s:  unrecognized SID %d\n",
1365			__func__, sid);
1366		rc = -EINVAL;
1367		goto out_unlock;
1368	}
1369	if (only_invalid && !entry->context.len)
1370		goto out_unlock;
1371
1372	rc = sidtab_entry_to_string(policydb, sidtab, entry, scontext,
1373				    scontext_len);
1374
1375out_unlock:
1376	rcu_read_unlock();
1377	return rc;
1378
1379}
1380
1381/**
1382 * security_sid_to_context - Obtain a context for a given SID.
1383 * @state: SELinux state
1384 * @sid: security identifier, SID
1385 * @scontext: security context
1386 * @scontext_len: length in bytes
1387 *
1388 * Write the string representation of the context associated with @sid
1389 * into a dynamically allocated string of the correct size.  Set @scontext
1390 * to point to this string and set @scontext_len to the length of the string.
1391 */
1392int security_sid_to_context(struct selinux_state *state,
1393			    u32 sid, char **scontext, u32 *scontext_len)
1394{
1395	return security_sid_to_context_core(state, sid, scontext,
1396					    scontext_len, 0, 0);
1397}
1398
1399int security_sid_to_context_force(struct selinux_state *state, u32 sid,
1400				  char **scontext, u32 *scontext_len)
1401{
1402	return security_sid_to_context_core(state, sid, scontext,
1403					    scontext_len, 1, 0);
1404}
1405
1406/**
1407 * security_sid_to_context_inval - Obtain a context for a given SID if it
1408 *                                 is invalid.
1409 * @state: SELinux state
1410 * @sid: security identifier, SID
1411 * @scontext: security context
1412 * @scontext_len: length in bytes
1413 *
1414 * Write the string representation of the context associated with @sid
1415 * into a dynamically allocated string of the correct size, but only if the
1416 * context is invalid in the current policy.  Set @scontext to point to
1417 * this string (or NULL if the context is valid) and set @scontext_len to
1418 * the length of the string (or 0 if the context is valid).
1419 */
1420int security_sid_to_context_inval(struct selinux_state *state, u32 sid,
1421				  char **scontext, u32 *scontext_len)
1422{
1423	return security_sid_to_context_core(state, sid, scontext,
1424					    scontext_len, 1, 1);
1425}
1426
1427/*
1428 * Caveat:  Mutates scontext.
1429 */
1430static int string_to_context_struct(struct policydb *pol,
1431				    struct sidtab *sidtabp,
1432				    char *scontext,
1433				    struct context *ctx,
1434				    u32 def_sid)
1435{
1436	struct role_datum *role;
1437	struct type_datum *typdatum;
1438	struct user_datum *usrdatum;
1439	char *scontextp, *p, oldc;
1440	int rc = 0;
1441
1442	context_init(ctx);
1443
1444	/* Parse the security context. */
1445
1446	rc = -EINVAL;
1447	scontextp = scontext;
1448
1449	/* Extract the user. */
1450	p = scontextp;
1451	while (*p && *p != ':')
1452		p++;
1453
1454	if (*p == 0)
1455		goto out;
1456
1457	*p++ = 0;
1458
1459	usrdatum = symtab_search(&pol->p_users, scontextp);
1460	if (!usrdatum)
1461		goto out;
1462
1463	ctx->user = usrdatum->value;
1464
1465	/* Extract role. */
1466	scontextp = p;
1467	while (*p && *p != ':')
1468		p++;
1469
1470	if (*p == 0)
1471		goto out;
1472
1473	*p++ = 0;
1474
1475	role = symtab_search(&pol->p_roles, scontextp);
1476	if (!role)
1477		goto out;
1478	ctx->role = role->value;
1479
1480	/* Extract type. */
1481	scontextp = p;
1482	while (*p && *p != ':')
1483		p++;
1484	oldc = *p;
1485	*p++ = 0;
1486
1487	typdatum = symtab_search(&pol->p_types, scontextp);
1488	if (!typdatum || typdatum->attribute)
1489		goto out;
1490
1491	ctx->type = typdatum->value;
1492
1493	rc = mls_context_to_sid(pol, oldc, p, ctx, sidtabp, def_sid);
1494	if (rc)
1495		goto out;
1496
1497	/* Check the validity of the new context. */
1498	rc = -EINVAL;
1499	if (!policydb_context_isvalid(pol, ctx))
1500		goto out;
1501	rc = 0;
1502out:
1503	if (rc)
1504		context_destroy(ctx);
1505	return rc;
1506}
1507
1508static int security_context_to_sid_core(struct selinux_state *state,
1509					const char *scontext, u32 scontext_len,
1510					u32 *sid, u32 def_sid, gfp_t gfp_flags,
1511					int force)
1512{
1513	struct selinux_policy *policy;
1514	struct policydb *policydb;
1515	struct sidtab *sidtab;
1516	char *scontext2, *str = NULL;
1517	struct context context;
1518	int rc = 0;
1519
1520	/* An empty security context is never valid. */
1521	if (!scontext_len)
1522		return -EINVAL;
1523
1524	/* Copy the string to allow changes and ensure a NUL terminator */
1525	scontext2 = kmemdup_nul(scontext, scontext_len, gfp_flags);
1526	if (!scontext2)
1527		return -ENOMEM;
1528
1529	if (!selinux_initialized(state)) {
1530		int i;
1531
1532		for (i = 1; i < SECINITSID_NUM; i++) {
1533			const char *s = initial_sid_to_string[i];
1534
1535			if (s && !strcmp(s, scontext2)) {
1536				*sid = i;
1537				goto out;
1538			}
1539		}
1540		*sid = SECINITSID_KERNEL;
1541		goto out;
1542	}
1543	*sid = SECSID_NULL;
1544
1545	if (force) {
1546		/* Save another copy for storing in uninterpreted form */
1547		rc = -ENOMEM;
1548		str = kstrdup(scontext2, gfp_flags);
1549		if (!str)
1550			goto out;
1551	}
1552retry:
1553	rcu_read_lock();
1554	policy = rcu_dereference(state->policy);
1555	policydb = &policy->policydb;
1556	sidtab = policy->sidtab;
1557	rc = string_to_context_struct(policydb, sidtab, scontext2,
1558				      &context, def_sid);
1559	if (rc == -EINVAL && force) {
1560		context.str = str;
1561		context.len = strlen(str) + 1;
1562		str = NULL;
1563	} else if (rc)
1564		goto out_unlock;
1565	rc = sidtab_context_to_sid(sidtab, &context, sid);
1566	if (rc == -ESTALE) {
1567		rcu_read_unlock();
1568		if (context.str) {
1569			str = context.str;
1570			context.str = NULL;
1571		}
1572		context_destroy(&context);
1573		goto retry;
1574	}
1575	context_destroy(&context);
1576out_unlock:
1577	rcu_read_unlock();
1578out:
1579	kfree(scontext2);
1580	kfree(str);
1581	return rc;
1582}
1583
1584/**
1585 * security_context_to_sid - Obtain a SID for a given security context.
1586 * @state: SELinux state
1587 * @scontext: security context
1588 * @scontext_len: length in bytes
1589 * @sid: security identifier, SID
1590 * @gfp: context for the allocation
1591 *
1592 * Obtains a SID associated with the security context that
1593 * has the string representation specified by @scontext.
1594 * Returns -%EINVAL if the context is invalid, -%ENOMEM if insufficient
1595 * memory is available, or 0 on success.
1596 */
1597int security_context_to_sid(struct selinux_state *state,
1598			    const char *scontext, u32 scontext_len, u32 *sid,
1599			    gfp_t gfp)
1600{
1601	return security_context_to_sid_core(state, scontext, scontext_len,
1602					    sid, SECSID_NULL, gfp, 0);
1603}
1604
1605int security_context_str_to_sid(struct selinux_state *state,
1606				const char *scontext, u32 *sid, gfp_t gfp)
1607{
1608	return security_context_to_sid(state, scontext, strlen(scontext),
1609				       sid, gfp);
1610}
1611
1612/**
1613 * security_context_to_sid_default - Obtain a SID for a given security context,
1614 * falling back to specified default if needed.
1615 *
1616 * @state: SELinux state
1617 * @scontext: security context
1618 * @scontext_len: length in bytes
1619 * @sid: security identifier, SID
1620 * @def_sid: default SID to assign on error
1621 * @gfp_flags: the allocator get-free-page (GFP) flags
1622 *
1623 * Obtains a SID associated with the security context that
1624 * has the string representation specified by @scontext.
1625 * The default SID is passed to the MLS layer to be used to allow
1626 * kernel labeling of the MLS field if the MLS field is not present
1627 * (for upgrading to MLS without full relabel).
1628 * Implicitly forces adding of the context even if it cannot be mapped yet.
1629 * Returns -%EINVAL if the context is invalid, -%ENOMEM if insufficient
1630 * memory is available, or 0 on success.
1631 */
1632int security_context_to_sid_default(struct selinux_state *state,
1633				    const char *scontext, u32 scontext_len,
1634				    u32 *sid, u32 def_sid, gfp_t gfp_flags)
1635{
1636	return security_context_to_sid_core(state, scontext, scontext_len,
1637					    sid, def_sid, gfp_flags, 1);
1638}
1639
1640int security_context_to_sid_force(struct selinux_state *state,
1641				  const char *scontext, u32 scontext_len,
1642				  u32 *sid)
1643{
1644	return security_context_to_sid_core(state, scontext, scontext_len,
1645					    sid, SECSID_NULL, GFP_KERNEL, 1);
1646}
1647
1648static int compute_sid_handle_invalid_context(
1649	struct selinux_state *state,
1650	struct selinux_policy *policy,
1651	struct sidtab_entry *sentry,
1652	struct sidtab_entry *tentry,
1653	u16 tclass,
1654	struct context *newcontext)
1655{
1656	struct policydb *policydb = &policy->policydb;
1657	struct sidtab *sidtab = policy->sidtab;
1658	char *s = NULL, *t = NULL, *n = NULL;
1659	u32 slen, tlen, nlen;
1660	struct audit_buffer *ab;
1661
1662	if (sidtab_entry_to_string(policydb, sidtab, sentry, &s, &slen))
1663		goto out;
1664	if (sidtab_entry_to_string(policydb, sidtab, tentry, &t, &tlen))
1665		goto out;
1666	if (context_struct_to_string(policydb, newcontext, &n, &nlen))
1667		goto out;
1668	ab = audit_log_start(audit_context(), GFP_ATOMIC, AUDIT_SELINUX_ERR);
1669	if (!ab)
1670		goto out;
1671	audit_log_format(ab,
1672			 "op=security_compute_sid invalid_context=");
1673	/* no need to record the NUL with untrusted strings */
1674	audit_log_n_untrustedstring(ab, n, nlen - 1);
1675	audit_log_format(ab, " scontext=%s tcontext=%s tclass=%s",
1676			 s, t, sym_name(policydb, SYM_CLASSES, tclass-1));
1677	audit_log_end(ab);
1678out:
1679	kfree(s);
1680	kfree(t);
1681	kfree(n);
1682	if (!enforcing_enabled(state))
1683		return 0;
1684	return -EACCES;
1685}
1686
1687static void filename_compute_type(struct policydb *policydb,
1688				  struct context *newcontext,
1689				  u32 stype, u32 ttype, u16 tclass,
1690				  const char *objname)
1691{
1692	struct filename_trans_key ft;
1693	struct filename_trans_datum *datum;
1694
1695	/*
1696	 * Most filename trans rules are going to live in specific directories
1697	 * like /dev or /var/run.  This bitmap will quickly skip rule searches
1698	 * if the ttype does not contain any rules.
1699	 */
1700	if (!ebitmap_get_bit(&policydb->filename_trans_ttypes, ttype))
1701		return;
1702
1703	ft.ttype = ttype;
1704	ft.tclass = tclass;
1705	ft.name = objname;
1706
1707	datum = policydb_filenametr_search(policydb, &ft);
1708	while (datum) {
1709		if (ebitmap_get_bit(&datum->stypes, stype - 1)) {
1710			newcontext->type = datum->otype;
1711			return;
1712		}
1713		datum = datum->next;
1714	}
1715}
1716
1717static int security_compute_sid(struct selinux_state *state,
1718				u32 ssid,
1719				u32 tsid,
1720				u16 orig_tclass,
1721				u32 specified,
1722				const char *objname,
1723				u32 *out_sid,
1724				bool kern)
1725{
1726	struct selinux_policy *policy;
1727	struct policydb *policydb;
1728	struct sidtab *sidtab;
1729	struct class_datum *cladatum;
1730	struct context *scontext, *tcontext, newcontext;
1731	struct sidtab_entry *sentry, *tentry;
1732	struct avtab_key avkey;
1733	struct avtab_datum *avdatum;
1734	struct avtab_node *node;
1735	u16 tclass;
1736	int rc = 0;
1737	bool sock;
1738
1739	if (!selinux_initialized(state)) {
1740		switch (orig_tclass) {
1741		case SECCLASS_PROCESS: /* kernel value */
1742			*out_sid = ssid;
1743			break;
1744		default:
1745			*out_sid = tsid;
1746			break;
1747		}
1748		goto out;
1749	}
1750
1751retry:
1752	cladatum = NULL;
1753	context_init(&newcontext);
1754
1755	rcu_read_lock();
1756
1757	policy = rcu_dereference(state->policy);
1758
1759	if (kern) {
1760		tclass = unmap_class(&policy->map, orig_tclass);
1761		sock = security_is_socket_class(orig_tclass);
1762	} else {
1763		tclass = orig_tclass;
1764		sock = security_is_socket_class(map_class(&policy->map,
1765							  tclass));
1766	}
1767
1768	policydb = &policy->policydb;
1769	sidtab = policy->sidtab;
1770
1771	sentry = sidtab_search_entry(sidtab, ssid);
1772	if (!sentry) {
1773		pr_err("SELinux: %s:  unrecognized SID %d\n",
1774		       __func__, ssid);
1775		rc = -EINVAL;
1776		goto out_unlock;
1777	}
1778	tentry = sidtab_search_entry(sidtab, tsid);
1779	if (!tentry) {
1780		pr_err("SELinux: %s:  unrecognized SID %d\n",
1781		       __func__, tsid);
1782		rc = -EINVAL;
1783		goto out_unlock;
1784	}
1785
1786	scontext = &sentry->context;
1787	tcontext = &tentry->context;
1788
1789	if (tclass && tclass <= policydb->p_classes.nprim)
1790		cladatum = policydb->class_val_to_struct[tclass - 1];
1791
1792	/* Set the user identity. */
1793	switch (specified) {
1794	case AVTAB_TRANSITION:
1795	case AVTAB_CHANGE:
1796		if (cladatum && cladatum->default_user == DEFAULT_TARGET) {
1797			newcontext.user = tcontext->user;
1798		} else {
1799			/* notice this gets both DEFAULT_SOURCE and unset */
1800			/* Use the process user identity. */
1801			newcontext.user = scontext->user;
1802		}
1803		break;
1804	case AVTAB_MEMBER:
1805		/* Use the related object owner. */
1806		newcontext.user = tcontext->user;
1807		break;
1808	}
1809
1810	/* Set the role to default values. */
1811	if (cladatum && cladatum->default_role == DEFAULT_SOURCE) {
1812		newcontext.role = scontext->role;
1813	} else if (cladatum && cladatum->default_role == DEFAULT_TARGET) {
1814		newcontext.role = tcontext->role;
1815	} else {
1816		if ((tclass == policydb->process_class) || sock)
1817			newcontext.role = scontext->role;
1818		else
1819			newcontext.role = OBJECT_R_VAL;
1820	}
1821
1822	/* Set the type to default values. */
1823	if (cladatum && cladatum->default_type == DEFAULT_SOURCE) {
1824		newcontext.type = scontext->type;
1825	} else if (cladatum && cladatum->default_type == DEFAULT_TARGET) {
1826		newcontext.type = tcontext->type;
1827	} else {
1828		if ((tclass == policydb->process_class) || sock) {
1829			/* Use the type of process. */
1830			newcontext.type = scontext->type;
1831		} else {
1832			/* Use the type of the related object. */
1833			newcontext.type = tcontext->type;
1834		}
1835	}
1836
1837	/* Look for a type transition/member/change rule. */
1838	avkey.source_type = scontext->type;
1839	avkey.target_type = tcontext->type;
1840	avkey.target_class = tclass;
1841	avkey.specified = specified;
1842	avdatum = avtab_search(&policydb->te_avtab, &avkey);
1843
1844	/* If no permanent rule, also check for enabled conditional rules */
1845	if (!avdatum) {
1846		node = avtab_search_node(&policydb->te_cond_avtab, &avkey);
1847		for (; node; node = avtab_search_node_next(node, specified)) {
1848			if (node->key.specified & AVTAB_ENABLED) {
1849				avdatum = &node->datum;
1850				break;
1851			}
1852		}
1853	}
1854
1855	if (avdatum) {
1856		/* Use the type from the type transition/member/change rule. */
1857		newcontext.type = avdatum->u.data;
1858	}
1859
1860	/* if we have a objname this is a file trans check so check those rules */
1861	if (objname)
1862		filename_compute_type(policydb, &newcontext, scontext->type,
1863				      tcontext->type, tclass, objname);
1864
1865	/* Check for class-specific changes. */
1866	if (specified & AVTAB_TRANSITION) {
1867		/* Look for a role transition rule. */
1868		struct role_trans_datum *rtd;
1869		struct role_trans_key rtk = {
1870			.role = scontext->role,
1871			.type = tcontext->type,
1872			.tclass = tclass,
1873		};
1874
1875		rtd = policydb_roletr_search(policydb, &rtk);
1876		if (rtd)
1877			newcontext.role = rtd->new_role;
1878	}
1879
1880	/* Set the MLS attributes.
1881	   This is done last because it may allocate memory. */
1882	rc = mls_compute_sid(policydb, scontext, tcontext, tclass, specified,
1883			     &newcontext, sock);
1884	if (rc)
1885		goto out_unlock;
1886
1887	/* Check the validity of the context. */
1888	if (!policydb_context_isvalid(policydb, &newcontext)) {
1889		rc = compute_sid_handle_invalid_context(state, policy, sentry,
1890							tentry, tclass,
1891							&newcontext);
1892		if (rc)
1893			goto out_unlock;
1894	}
1895	/* Obtain the sid for the context. */
1896	rc = sidtab_context_to_sid(sidtab, &newcontext, out_sid);
1897	if (rc == -ESTALE) {
1898		rcu_read_unlock();
1899		context_destroy(&newcontext);
1900		goto retry;
1901	}
1902out_unlock:
1903	rcu_read_unlock();
1904	context_destroy(&newcontext);
1905out:
1906	return rc;
1907}
1908
1909/**
1910 * security_transition_sid - Compute the SID for a new subject/object.
1911 * @state: SELinux state
1912 * @ssid: source security identifier
1913 * @tsid: target security identifier
1914 * @tclass: target security class
1915 * @qstr: object name
1916 * @out_sid: security identifier for new subject/object
1917 *
1918 * Compute a SID to use for labeling a new subject or object in the
1919 * class @tclass based on a SID pair (@ssid, @tsid).
1920 * Return -%EINVAL if any of the parameters are invalid, -%ENOMEM
1921 * if insufficient memory is available, or %0 if the new SID was
1922 * computed successfully.
1923 */
1924int security_transition_sid(struct selinux_state *state,
1925			    u32 ssid, u32 tsid, u16 tclass,
1926			    const struct qstr *qstr, u32 *out_sid)
1927{
1928	return security_compute_sid(state, ssid, tsid, tclass,
1929				    AVTAB_TRANSITION,
1930				    qstr ? qstr->name : NULL, out_sid, true);
1931}
1932
1933int security_transition_sid_user(struct selinux_state *state,
1934				 u32 ssid, u32 tsid, u16 tclass,
1935				 const char *objname, u32 *out_sid)
1936{
1937	return security_compute_sid(state, ssid, tsid, tclass,
1938				    AVTAB_TRANSITION,
1939				    objname, out_sid, false);
1940}
1941
1942/**
1943 * security_member_sid - Compute the SID for member selection.
1944 * @state: SELinux state
1945 * @ssid: source security identifier
1946 * @tsid: target security identifier
1947 * @tclass: target security class
1948 * @out_sid: security identifier for selected member
1949 *
1950 * Compute a SID to use when selecting a member of a polyinstantiated
1951 * object of class @tclass based on a SID pair (@ssid, @tsid).
1952 * Return -%EINVAL if any of the parameters are invalid, -%ENOMEM
1953 * if insufficient memory is available, or %0 if the SID was
1954 * computed successfully.
1955 */
1956int security_member_sid(struct selinux_state *state,
1957			u32 ssid,
1958			u32 tsid,
1959			u16 tclass,
1960			u32 *out_sid)
1961{
1962	return security_compute_sid(state, ssid, tsid, tclass,
1963				    AVTAB_MEMBER, NULL,
1964				    out_sid, false);
1965}
1966
1967/**
1968 * security_change_sid - Compute the SID for object relabeling.
1969 * @state: SELinux state
1970 * @ssid: source security identifier
1971 * @tsid: target security identifier
1972 * @tclass: target security class
1973 * @out_sid: security identifier for selected member
1974 *
1975 * Compute a SID to use for relabeling an object of class @tclass
1976 * based on a SID pair (@ssid, @tsid).
1977 * Return -%EINVAL if any of the parameters are invalid, -%ENOMEM
1978 * if insufficient memory is available, or %0 if the SID was
1979 * computed successfully.
1980 */
1981int security_change_sid(struct selinux_state *state,
1982			u32 ssid,
1983			u32 tsid,
1984			u16 tclass,
1985			u32 *out_sid)
1986{
1987	return security_compute_sid(state,
1988				    ssid, tsid, tclass, AVTAB_CHANGE, NULL,
1989				    out_sid, false);
1990}
1991
1992static inline int convert_context_handle_invalid_context(
1993	struct selinux_state *state,
1994	struct policydb *policydb,
1995	struct context *context)
1996{
 
1997	char *s;
1998	u32 len;
1999
2000	if (enforcing_enabled(state))
2001		return -EINVAL;
2002
2003	if (!context_struct_to_string(policydb, context, &s, &len)) {
2004		pr_warn("SELinux:  Context %s would be invalid if enforcing\n",
2005			s);
2006		kfree(s);
2007	}
2008	return 0;
2009}
2010
2011/**
2012 * services_convert_context - Convert a security context across policies.
2013 * @args: populated convert_context_args struct
2014 * @oldc: original context
2015 * @newc: converted context
2016 * @gfp_flags: allocation flags
2017 *
2018 * Convert the values in the security context structure @oldc from the values
2019 * specified in the policy @args->oldp to the values specified in the policy
2020 * @args->newp, storing the new context in @newc, and verifying that the
2021 * context is valid under the new policy.
2022 */
2023int services_convert_context(struct convert_context_args *args,
2024			     struct context *oldc, struct context *newc,
2025			     gfp_t gfp_flags)
2026{
 
2027	struct ocontext *oc;
2028	struct role_datum *role;
2029	struct type_datum *typdatum;
2030	struct user_datum *usrdatum;
2031	char *s;
2032	u32 len;
2033	int rc;
2034
 
 
2035	if (oldc->str) {
2036		s = kstrdup(oldc->str, gfp_flags);
2037		if (!s)
2038			return -ENOMEM;
2039
2040		rc = string_to_context_struct(args->newp, NULL, s, newc, SECSID_NULL);
 
2041		if (rc == -EINVAL) {
2042			/*
2043			 * Retain string representation for later mapping.
2044			 *
2045			 * IMPORTANT: We need to copy the contents of oldc->str
2046			 * back into s again because string_to_context_struct()
2047			 * may have garbled it.
2048			 */
2049			memcpy(s, oldc->str, oldc->len);
2050			context_init(newc);
2051			newc->str = s;
2052			newc->len = oldc->len;
2053			return 0;
2054		}
2055		kfree(s);
2056		if (rc) {
2057			/* Other error condition, e.g. ENOMEM. */
2058			pr_err("SELinux:   Unable to map context %s, rc = %d.\n",
2059			       oldc->str, -rc);
2060			return rc;
2061		}
2062		pr_info("SELinux:  Context %s became valid (mapped).\n",
2063			oldc->str);
2064		return 0;
2065	}
2066
2067	context_init(newc);
2068
2069	/* Convert the user. */
 
2070	usrdatum = symtab_search(&args->newp->p_users,
2071				 sym_name(args->oldp, SYM_USERS, oldc->user - 1));
 
2072	if (!usrdatum)
2073		goto bad;
2074	newc->user = usrdatum->value;
2075
2076	/* Convert the role. */
 
2077	role = symtab_search(&args->newp->p_roles,
2078			     sym_name(args->oldp, SYM_ROLES, oldc->role - 1));
2079	if (!role)
2080		goto bad;
2081	newc->role = role->value;
2082
2083	/* Convert the type. */
 
2084	typdatum = symtab_search(&args->newp->p_types,
2085				 sym_name(args->oldp, SYM_TYPES, oldc->type - 1));
 
2086	if (!typdatum)
2087		goto bad;
2088	newc->type = typdatum->value;
2089
2090	/* Convert the MLS fields if dealing with MLS policies */
2091	if (args->oldp->mls_enabled && args->newp->mls_enabled) {
2092		rc = mls_convert_context(args->oldp, args->newp, oldc, newc);
2093		if (rc)
2094			goto bad;
2095	} else if (!args->oldp->mls_enabled && args->newp->mls_enabled) {
2096		/*
2097		 * Switching between non-MLS and MLS policy:
2098		 * ensure that the MLS fields of the context for all
2099		 * existing entries in the sidtab are filled in with a
2100		 * suitable default value, likely taken from one of the
2101		 * initial SIDs.
2102		 */
2103		oc = args->newp->ocontexts[OCON_ISID];
2104		while (oc && oc->sid[0] != SECINITSID_UNLABELED)
2105			oc = oc->next;
 
2106		if (!oc) {
2107			pr_err("SELinux:  unable to look up"
2108				" the initial SIDs list\n");
2109			goto bad;
2110		}
2111		rc = mls_range_set(newc, &oc->context[0].range);
2112		if (rc)
2113			goto bad;
2114	}
2115
2116	/* Check the validity of the new context. */
2117	if (!policydb_context_isvalid(args->newp, newc)) {
2118		rc = convert_context_handle_invalid_context(args->state,
2119							    args->oldp, oldc);
2120		if (rc)
2121			goto bad;
2122	}
2123
2124	return 0;
2125bad:
2126	/* Map old representation to string and save it. */
2127	rc = context_struct_to_string(args->oldp, oldc, &s, &len);
2128	if (rc)
2129		return rc;
2130	context_destroy(newc);
2131	newc->str = s;
2132	newc->len = len;
2133	pr_info("SELinux:  Context %s became invalid (unmapped).\n",
2134		newc->str);
2135	return 0;
2136}
2137
2138static void security_load_policycaps(struct selinux_state *state,
2139				struct selinux_policy *policy)
2140{
2141	struct policydb *p;
2142	unsigned int i;
2143	struct ebitmap_node *node;
2144
2145	p = &policy->policydb;
2146
2147	for (i = 0; i < ARRAY_SIZE(state->policycap); i++)
2148		WRITE_ONCE(state->policycap[i],
2149			ebitmap_get_bit(&p->policycaps, i));
2150
2151	for (i = 0; i < ARRAY_SIZE(selinux_policycap_names); i++)
2152		pr_info("SELinux:  policy capability %s=%d\n",
2153			selinux_policycap_names[i],
2154			ebitmap_get_bit(&p->policycaps, i));
2155
2156	ebitmap_for_each_positive_bit(&p->policycaps, node, i) {
2157		if (i >= ARRAY_SIZE(selinux_policycap_names))
2158			pr_info("SELinux:  unknown policy capability %u\n",
2159				i);
2160	}
2161}
2162
2163static int security_preserve_bools(struct selinux_policy *oldpolicy,
2164				struct selinux_policy *newpolicy);
2165
2166static void selinux_policy_free(struct selinux_policy *policy)
2167{
2168	if (!policy)
2169		return;
2170
2171	sidtab_destroy(policy->sidtab);
2172	kfree(policy->map.mapping);
2173	policydb_destroy(&policy->policydb);
2174	kfree(policy->sidtab);
2175	kfree(policy);
2176}
2177
2178static void selinux_policy_cond_free(struct selinux_policy *policy)
2179{
2180	cond_policydb_destroy_dup(&policy->policydb);
2181	kfree(policy);
2182}
2183
2184void selinux_policy_cancel(struct selinux_state *state,
2185			   struct selinux_load_state *load_state)
2186{
2187	struct selinux_policy *oldpolicy;
2188
2189	oldpolicy = rcu_dereference_protected(state->policy,
2190					lockdep_is_held(&state->policy_mutex));
2191
2192	sidtab_cancel_convert(oldpolicy->sidtab);
2193	selinux_policy_free(load_state->policy);
2194	kfree(load_state->convert_data);
2195}
2196
2197static void selinux_notify_policy_change(struct selinux_state *state,
2198					u32 seqno)
2199{
2200	/* Flush external caches and notify userspace of policy load */
2201	avc_ss_reset(state->avc, seqno);
2202	selnl_notify_policyload(seqno);
2203	selinux_status_update_policyload(state, seqno);
2204	selinux_netlbl_cache_invalidate();
2205	selinux_xfrm_notify_policyload();
2206	selinux_ima_measure_state_locked(state);
2207}
2208
2209void selinux_policy_commit(struct selinux_state *state,
2210			   struct selinux_load_state *load_state)
2211{
2212	struct selinux_policy *oldpolicy, *newpolicy = load_state->policy;
2213	unsigned long flags;
2214	u32 seqno;
2215
2216	oldpolicy = rcu_dereference_protected(state->policy,
2217					lockdep_is_held(&state->policy_mutex));
2218
2219	/* If switching between different policy types, log MLS status */
2220	if (oldpolicy) {
2221		if (oldpolicy->policydb.mls_enabled && !newpolicy->policydb.mls_enabled)
2222			pr_info("SELinux: Disabling MLS support...\n");
2223		else if (!oldpolicy->policydb.mls_enabled && newpolicy->policydb.mls_enabled)
2224			pr_info("SELinux: Enabling MLS support...\n");
2225	}
2226
2227	/* Set latest granting seqno for new policy. */
2228	if (oldpolicy)
2229		newpolicy->latest_granting = oldpolicy->latest_granting + 1;
2230	else
2231		newpolicy->latest_granting = 1;
2232	seqno = newpolicy->latest_granting;
2233
2234	/* Install the new policy. */
2235	if (oldpolicy) {
2236		sidtab_freeze_begin(oldpolicy->sidtab, &flags);
2237		rcu_assign_pointer(state->policy, newpolicy);
2238		sidtab_freeze_end(oldpolicy->sidtab, &flags);
2239	} else {
2240		rcu_assign_pointer(state->policy, newpolicy);
2241	}
2242
2243	/* Load the policycaps from the new policy */
2244	security_load_policycaps(state, newpolicy);
2245
2246	if (!selinux_initialized(state)) {
2247		/*
2248		 * After first policy load, the security server is
2249		 * marked as initialized and ready to handle requests and
2250		 * any objects created prior to policy load are then labeled.
2251		 */
2252		selinux_mark_initialized(state);
2253		selinux_complete_init();
2254	}
2255
2256	/* Free the old policy */
2257	synchronize_rcu();
2258	selinux_policy_free(oldpolicy);
2259	kfree(load_state->convert_data);
2260
2261	/* Notify others of the policy change */
2262	selinux_notify_policy_change(state, seqno);
2263}
2264
2265/**
2266 * security_load_policy - Load a security policy configuration.
2267 * @state: SELinux state
2268 * @data: binary policy data
2269 * @len: length of data in bytes
2270 * @load_state: policy load state
2271 *
2272 * Load a new set of security policy configuration data,
2273 * validate it and convert the SID table as necessary.
2274 * This function will flush the access vector cache after
2275 * loading the new policy.
2276 */
2277int security_load_policy(struct selinux_state *state, void *data, size_t len,
2278			 struct selinux_load_state *load_state)
2279{
2280	struct selinux_policy *newpolicy, *oldpolicy;
2281	struct selinux_policy_convert_data *convert_data;
 
 
 
 
 
 
2282	int rc = 0;
2283	struct policy_file file = { data, len }, *fp = &file;
2284
2285	newpolicy = kzalloc(sizeof(*newpolicy), GFP_KERNEL);
2286	if (!newpolicy)
 
 
2287		return -ENOMEM;
2288
2289	newpolicy->sidtab = kzalloc(sizeof(*newpolicy->sidtab), GFP_KERNEL);
2290	if (!newpolicy->sidtab) {
2291		rc = -ENOMEM;
2292		goto err_policy;
2293	}
 
2294
2295	rc = policydb_read(&newpolicy->policydb, fp);
2296	if (rc)
2297		goto err_sidtab;
 
 
 
 
 
2298
2299	newpolicy->policydb.len = len;
2300	rc = selinux_set_mapping(&newpolicy->policydb, secclass_map,
2301				&newpolicy->map);
2302	if (rc)
2303		goto err_policydb;
 
2304
2305	rc = policydb_load_isids(&newpolicy->policydb, newpolicy->sidtab);
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
2306	if (rc) {
2307		pr_err("SELinux:  unable to load the initial SIDs\n");
2308		goto err_mapping;
2309	}
2310
2311	if (!selinux_initialized(state)) {
2312		/* First policy load, so no need to preserve state from old policy */
2313		load_state->policy = newpolicy;
2314		load_state->convert_data = NULL;
2315		return 0;
 
 
 
 
 
 
 
 
2316	}
2317
2318	oldpolicy = rcu_dereference_protected(state->policy,
2319					lockdep_is_held(&state->policy_mutex));
 
2320
2321	/* Preserve active boolean values from the old policy */
2322	rc = security_preserve_bools(oldpolicy, newpolicy);
2323	if (rc) {
2324		pr_err("SELinux:  unable to preserve booleans\n");
2325		goto err_free_isids;
2326	}
2327
 
 
2328	/*
2329	 * Convert the internal representations of contexts
2330	 * in the new SID table.
2331	 */
 
 
 
 
 
 
 
2332
2333	convert_data = kmalloc(sizeof(*convert_data), GFP_KERNEL);
2334	if (!convert_data) {
2335		rc = -ENOMEM;
2336		goto err_free_isids;
2337	}
2338
2339	convert_data->args.state = state;
2340	convert_data->args.oldp = &oldpolicy->policydb;
2341	convert_data->args.newp = &newpolicy->policydb;
2342
2343	convert_data->sidtab_params.args = &convert_data->args;
2344	convert_data->sidtab_params.target = newpolicy->sidtab;
2345
2346	rc = sidtab_convert(oldpolicy->sidtab, &convert_data->sidtab_params);
2347	if (rc) {
2348		pr_err("SELinux:  unable to convert the internal"
2349			" representation of contexts in the new SID"
2350			" table\n");
2351		goto err_free_convert_data;
2352	}
2353
2354	load_state->policy = newpolicy;
2355	load_state->convert_data = convert_data;
2356	return 0;
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
2357
2358err_free_convert_data:
2359	kfree(convert_data);
2360err_free_isids:
2361	sidtab_destroy(newpolicy->sidtab);
2362err_mapping:
2363	kfree(newpolicy->map.mapping);
2364err_policydb:
2365	policydb_destroy(&newpolicy->policydb);
2366err_sidtab:
2367	kfree(newpolicy->sidtab);
2368err_policy:
2369	kfree(newpolicy);
2370
 
 
 
 
 
 
 
 
2371	return rc;
2372}
2373
2374/**
2375 * ocontext_to_sid - Helper to safely get sid for an ocontext
2376 * @sidtab: SID table
2377 * @c: ocontext structure
2378 * @index: index of the context entry (0 or 1)
2379 * @out_sid: pointer to the resulting SID value
2380 *
2381 * For all ocontexts except OCON_ISID the SID fields are populated
2382 * on-demand when needed. Since updating the SID value is an SMP-sensitive
2383 * operation, this helper must be used to do that safely.
2384 *
2385 * WARNING: This function may return -ESTALE, indicating that the caller
2386 * must retry the operation after re-acquiring the policy pointer!
2387 */
2388static int ocontext_to_sid(struct sidtab *sidtab, struct ocontext *c,
2389			   size_t index, u32 *out_sid)
2390{
2391	int rc;
2392	u32 sid;
2393
2394	/* Ensure the associated sidtab entry is visible to this thread. */
2395	sid = smp_load_acquire(&c->sid[index]);
2396	if (!sid) {
2397		rc = sidtab_context_to_sid(sidtab, &c->context[index], &sid);
2398		if (rc)
2399			return rc;
2400
2401		/*
2402		 * Ensure the new sidtab entry is visible to other threads
2403		 * when they see the SID.
2404		 */
2405		smp_store_release(&c->sid[index], sid);
2406	}
2407	*out_sid = sid;
2408	return 0;
2409}
2410
2411/**
2412 * security_port_sid - Obtain the SID for a port.
2413 * @state: SELinux state
2414 * @protocol: protocol number
2415 * @port: port number
2416 * @out_sid: security identifier
2417 */
2418int security_port_sid(struct selinux_state *state,
2419		      u8 protocol, u16 port, u32 *out_sid)
2420{
2421	struct selinux_policy *policy;
2422	struct policydb *policydb;
2423	struct sidtab *sidtab;
2424	struct ocontext *c;
2425	int rc;
2426
2427	if (!selinux_initialized(state)) {
2428		*out_sid = SECINITSID_PORT;
2429		return 0;
2430	}
2431
2432retry:
2433	rc = 0;
2434	rcu_read_lock();
2435	policy = rcu_dereference(state->policy);
2436	policydb = &policy->policydb;
2437	sidtab = policy->sidtab;
2438
2439	c = policydb->ocontexts[OCON_PORT];
2440	while (c) {
2441		if (c->u.port.protocol == protocol &&
2442		    c->u.port.low_port <= port &&
2443		    c->u.port.high_port >= port)
2444			break;
2445		c = c->next;
2446	}
2447
2448	if (c) {
2449		rc = ocontext_to_sid(sidtab, c, 0, out_sid);
2450		if (rc == -ESTALE) {
2451			rcu_read_unlock();
2452			goto retry;
 
2453		}
2454		if (rc)
2455			goto out;
2456	} else {
2457		*out_sid = SECINITSID_PORT;
2458	}
2459
2460out:
2461	rcu_read_unlock();
2462	return rc;
2463}
2464
2465/**
2466 * security_ib_pkey_sid - Obtain the SID for a pkey.
2467 * @state: SELinux state
2468 * @subnet_prefix: Subnet Prefix
2469 * @pkey_num: pkey number
2470 * @out_sid: security identifier
2471 */
2472int security_ib_pkey_sid(struct selinux_state *state,
2473			 u64 subnet_prefix, u16 pkey_num, u32 *out_sid)
2474{
2475	struct selinux_policy *policy;
2476	struct policydb *policydb;
2477	struct sidtab *sidtab;
2478	struct ocontext *c;
2479	int rc;
2480
2481	if (!selinux_initialized(state)) {
2482		*out_sid = SECINITSID_UNLABELED;
2483		return 0;
2484	}
2485
2486retry:
2487	rc = 0;
2488	rcu_read_lock();
2489	policy = rcu_dereference(state->policy);
2490	policydb = &policy->policydb;
2491	sidtab = policy->sidtab;
2492
2493	c = policydb->ocontexts[OCON_IBPKEY];
2494	while (c) {
2495		if (c->u.ibpkey.low_pkey <= pkey_num &&
2496		    c->u.ibpkey.high_pkey >= pkey_num &&
2497		    c->u.ibpkey.subnet_prefix == subnet_prefix)
2498			break;
2499
2500		c = c->next;
2501	}
2502
2503	if (c) {
2504		rc = ocontext_to_sid(sidtab, c, 0, out_sid);
2505		if (rc == -ESTALE) {
2506			rcu_read_unlock();
2507			goto retry;
 
 
2508		}
2509		if (rc)
2510			goto out;
2511	} else
2512		*out_sid = SECINITSID_UNLABELED;
2513
2514out:
2515	rcu_read_unlock();
2516	return rc;
2517}
2518
2519/**
2520 * security_ib_endport_sid - Obtain the SID for a subnet management interface.
2521 * @state: SELinux state
2522 * @dev_name: device name
2523 * @port_num: port number
2524 * @out_sid: security identifier
2525 */
2526int security_ib_endport_sid(struct selinux_state *state,
2527			    const char *dev_name, u8 port_num, u32 *out_sid)
2528{
2529	struct selinux_policy *policy;
2530	struct policydb *policydb;
2531	struct sidtab *sidtab;
2532	struct ocontext *c;
2533	int rc;
2534
2535	if (!selinux_initialized(state)) {
2536		*out_sid = SECINITSID_UNLABELED;
2537		return 0;
2538	}
2539
2540retry:
2541	rc = 0;
2542	rcu_read_lock();
2543	policy = rcu_dereference(state->policy);
2544	policydb = &policy->policydb;
2545	sidtab = policy->sidtab;
2546
2547	c = policydb->ocontexts[OCON_IBENDPORT];
2548	while (c) {
2549		if (c->u.ibendport.port == port_num &&
2550		    !strncmp(c->u.ibendport.dev_name,
2551			     dev_name,
2552			     IB_DEVICE_NAME_MAX))
2553			break;
2554
2555		c = c->next;
2556	}
2557
2558	if (c) {
2559		rc = ocontext_to_sid(sidtab, c, 0, out_sid);
2560		if (rc == -ESTALE) {
2561			rcu_read_unlock();
2562			goto retry;
 
2563		}
2564		if (rc)
2565			goto out;
2566	} else
2567		*out_sid = SECINITSID_UNLABELED;
2568
2569out:
2570	rcu_read_unlock();
2571	return rc;
2572}
2573
2574/**
2575 * security_netif_sid - Obtain the SID for a network interface.
2576 * @state: SELinux state
2577 * @name: interface name
2578 * @if_sid: interface SID
2579 */
2580int security_netif_sid(struct selinux_state *state,
2581		       char *name, u32 *if_sid)
2582{
2583	struct selinux_policy *policy;
2584	struct policydb *policydb;
2585	struct sidtab *sidtab;
2586	int rc;
2587	struct ocontext *c;
2588
2589	if (!selinux_initialized(state)) {
2590		*if_sid = SECINITSID_NETIF;
2591		return 0;
2592	}
2593
2594retry:
2595	rc = 0;
2596	rcu_read_lock();
2597	policy = rcu_dereference(state->policy);
2598	policydb = &policy->policydb;
2599	sidtab = policy->sidtab;
2600
2601	c = policydb->ocontexts[OCON_NETIF];
2602	while (c) {
2603		if (strcmp(name, c->u.name) == 0)
2604			break;
2605		c = c->next;
2606	}
2607
2608	if (c) {
2609		rc = ocontext_to_sid(sidtab, c, 0, if_sid);
2610		if (rc == -ESTALE) {
2611			rcu_read_unlock();
2612			goto retry;
 
 
 
 
 
2613		}
2614		if (rc)
2615			goto out;
2616	} else
2617		*if_sid = SECINITSID_NETIF;
2618
2619out:
2620	rcu_read_unlock();
2621	return rc;
2622}
2623
2624static int match_ipv6_addrmask(u32 *input, u32 *addr, u32 *mask)
2625{
2626	int i, fail = 0;
2627
2628	for (i = 0; i < 4; i++)
2629		if (addr[i] != (input[i] & mask[i])) {
2630			fail = 1;
2631			break;
2632		}
2633
2634	return !fail;
2635}
2636
2637/**
2638 * security_node_sid - Obtain the SID for a node (host).
2639 * @state: SELinux state
2640 * @domain: communication domain aka address family
2641 * @addrp: address
2642 * @addrlen: address length in bytes
2643 * @out_sid: security identifier
2644 */
2645int security_node_sid(struct selinux_state *state,
2646		      u16 domain,
2647		      void *addrp,
2648		      u32 addrlen,
2649		      u32 *out_sid)
2650{
2651	struct selinux_policy *policy;
2652	struct policydb *policydb;
2653	struct sidtab *sidtab;
2654	int rc;
2655	struct ocontext *c;
2656
2657	if (!selinux_initialized(state)) {
2658		*out_sid = SECINITSID_NODE;
2659		return 0;
2660	}
2661
2662retry:
2663	rcu_read_lock();
2664	policy = rcu_dereference(state->policy);
2665	policydb = &policy->policydb;
2666	sidtab = policy->sidtab;
2667
2668	switch (domain) {
2669	case AF_INET: {
2670		u32 addr;
2671
2672		rc = -EINVAL;
2673		if (addrlen != sizeof(u32))
2674			goto out;
2675
2676		addr = *((u32 *)addrp);
2677
2678		c = policydb->ocontexts[OCON_NODE];
2679		while (c) {
2680			if (c->u.node.addr == (addr & c->u.node.mask))
2681				break;
2682			c = c->next;
2683		}
2684		break;
2685	}
2686
2687	case AF_INET6:
2688		rc = -EINVAL;
2689		if (addrlen != sizeof(u64) * 2)
2690			goto out;
2691		c = policydb->ocontexts[OCON_NODE6];
2692		while (c) {
2693			if (match_ipv6_addrmask(addrp, c->u.node6.addr,
2694						c->u.node6.mask))
2695				break;
2696			c = c->next;
2697		}
2698		break;
2699
2700	default:
2701		rc = 0;
2702		*out_sid = SECINITSID_NODE;
2703		goto out;
2704	}
2705
2706	if (c) {
2707		rc = ocontext_to_sid(sidtab, c, 0, out_sid);
2708		if (rc == -ESTALE) {
2709			rcu_read_unlock();
2710			goto retry;
 
 
2711		}
2712		if (rc)
2713			goto out;
2714	} else {
2715		*out_sid = SECINITSID_NODE;
2716	}
2717
2718	rc = 0;
2719out:
2720	rcu_read_unlock();
2721	return rc;
2722}
2723
2724#define SIDS_NEL 25
2725
2726/**
2727 * security_get_user_sids - Obtain reachable SIDs for a user.
2728 * @state: SELinux state
2729 * @fromsid: starting SID
2730 * @username: username
2731 * @sids: array of reachable SIDs for user
2732 * @nel: number of elements in @sids
2733 *
2734 * Generate the set of SIDs for legal security contexts
2735 * for a given user that can be reached by @fromsid.
2736 * Set *@sids to point to a dynamically allocated
2737 * array containing the set of SIDs.  Set *@nel to the
2738 * number of elements in the array.
2739 */
2740
2741int security_get_user_sids(struct selinux_state *state,
2742			   u32 fromsid,
2743			   char *username,
2744			   u32 **sids,
2745			   u32 *nel)
2746{
2747	struct selinux_policy *policy;
2748	struct policydb *policydb;
2749	struct sidtab *sidtab;
2750	struct context *fromcon, usercon;
2751	u32 *mysids = NULL, *mysids2, sid;
2752	u32 i, j, mynel, maxnel = SIDS_NEL;
2753	struct user_datum *user;
2754	struct role_datum *role;
2755	struct ebitmap_node *rnode, *tnode;
2756	int rc;
2757
2758	*sids = NULL;
2759	*nel = 0;
2760
2761	if (!selinux_initialized(state))
2762		return 0;
2763
2764	mysids = kcalloc(maxnel, sizeof(*mysids), GFP_KERNEL);
2765	if (!mysids)
2766		return -ENOMEM;
2767
2768retry:
2769	mynel = 0;
2770	rcu_read_lock();
2771	policy = rcu_dereference(state->policy);
2772	policydb = &policy->policydb;
2773	sidtab = policy->sidtab;
2774
2775	context_init(&usercon);
2776
2777	rc = -EINVAL;
2778	fromcon = sidtab_search(sidtab, fromsid);
2779	if (!fromcon)
2780		goto out_unlock;
2781
2782	rc = -EINVAL;
2783	user = symtab_search(&policydb->p_users, username);
2784	if (!user)
2785		goto out_unlock;
2786
2787	usercon.user = user->value;
2788
 
 
 
 
 
2789	ebitmap_for_each_positive_bit(&user->roles, rnode, i) {
2790		role = policydb->role_val_to_struct[i];
2791		usercon.role = i + 1;
2792		ebitmap_for_each_positive_bit(&role->types, tnode, j) {
2793			usercon.type = j + 1;
2794
2795			if (mls_setup_user_range(policydb, fromcon, user,
2796						 &usercon))
2797				continue;
2798
2799			rc = sidtab_context_to_sid(sidtab, &usercon, &sid);
2800			if (rc == -ESTALE) {
2801				rcu_read_unlock();
2802				goto retry;
2803			}
2804			if (rc)
2805				goto out_unlock;
2806			if (mynel < maxnel) {
2807				mysids[mynel++] = sid;
2808			} else {
2809				rc = -ENOMEM;
2810				maxnel += SIDS_NEL;
2811				mysids2 = kcalloc(maxnel, sizeof(*mysids2), GFP_ATOMIC);
2812				if (!mysids2)
2813					goto out_unlock;
2814				memcpy(mysids2, mysids, mynel * sizeof(*mysids2));
2815				kfree(mysids);
2816				mysids = mysids2;
2817				mysids[mynel++] = sid;
2818			}
2819		}
2820	}
2821	rc = 0;
2822out_unlock:
2823	rcu_read_unlock();
2824	if (rc || !mynel) {
2825		kfree(mysids);
2826		return rc;
2827	}
2828
2829	rc = -ENOMEM;
2830	mysids2 = kcalloc(mynel, sizeof(*mysids2), GFP_KERNEL);
2831	if (!mysids2) {
2832		kfree(mysids);
2833		return rc;
2834	}
2835	for (i = 0, j = 0; i < mynel; i++) {
2836		struct av_decision dummy_avd;
2837		rc = avc_has_perm_noaudit(state,
2838					  fromsid, mysids[i],
2839					  SECCLASS_PROCESS, /* kernel value */
2840					  PROCESS__TRANSITION, AVC_STRICT,
2841					  &dummy_avd);
2842		if (!rc)
2843			mysids2[j++] = mysids[i];
2844		cond_resched();
2845	}
 
2846	kfree(mysids);
2847	*sids = mysids2;
2848	*nel = j;
2849	return 0;
 
2850}
2851
2852/**
2853 * __security_genfs_sid - Helper to obtain a SID for a file in a filesystem
2854 * @policy: policy
2855 * @fstype: filesystem type
2856 * @path: path from root of mount
2857 * @orig_sclass: file security class
2858 * @sid: SID for path
2859 *
2860 * Obtain a SID to use for a file in a filesystem that
2861 * cannot support xattr or use a fixed labeling behavior like
2862 * transition SIDs or task SIDs.
2863 *
2864 * WARNING: This function may return -ESTALE, indicating that the caller
2865 * must retry the operation after re-acquiring the policy pointer!
2866 */
2867static inline int __security_genfs_sid(struct selinux_policy *policy,
2868				       const char *fstype,
2869				       const char *path,
2870				       u16 orig_sclass,
2871				       u32 *sid)
2872{
2873	struct policydb *policydb = &policy->policydb;
2874	struct sidtab *sidtab = policy->sidtab;
2875	int len;
2876	u16 sclass;
2877	struct genfs *genfs;
2878	struct ocontext *c;
2879	int cmp = 0;
2880
2881	while (path[0] == '/' && path[1] == '/')
2882		path++;
2883
2884	sclass = unmap_class(&policy->map, orig_sclass);
2885	*sid = SECINITSID_UNLABELED;
2886
2887	for (genfs = policydb->genfs; genfs; genfs = genfs->next) {
2888		cmp = strcmp(fstype, genfs->fstype);
2889		if (cmp <= 0)
2890			break;
2891	}
2892
 
2893	if (!genfs || cmp)
2894		return -ENOENT;
2895
2896	for (c = genfs->head; c; c = c->next) {
2897		len = strlen(c->u.name);
2898		if ((!c->v.sclass || sclass == c->v.sclass) &&
2899		    (strncmp(c->u.name, path, len) == 0))
2900			break;
2901	}
2902
 
2903	if (!c)
2904		return -ENOENT;
 
 
 
 
 
 
2905
2906	return ocontext_to_sid(sidtab, c, 0, sid);
 
 
 
2907}
2908
2909/**
2910 * security_genfs_sid - Obtain a SID for a file in a filesystem
2911 * @state: SELinux state
2912 * @fstype: filesystem type
2913 * @path: path from root of mount
2914 * @orig_sclass: file security class
2915 * @sid: SID for path
2916 *
2917 * Acquire policy_rwlock before calling __security_genfs_sid() and release
2918 * it afterward.
2919 */
2920int security_genfs_sid(struct selinux_state *state,
2921		       const char *fstype,
2922		       const char *path,
2923		       u16 orig_sclass,
2924		       u32 *sid)
2925{
2926	struct selinux_policy *policy;
2927	int retval;
2928
2929	if (!selinux_initialized(state)) {
2930		*sid = SECINITSID_UNLABELED;
2931		return 0;
2932	}
2933
2934	do {
2935		rcu_read_lock();
2936		policy = rcu_dereference(state->policy);
2937		retval = __security_genfs_sid(policy, fstype, path,
2938					      orig_sclass, sid);
2939		rcu_read_unlock();
2940	} while (retval == -ESTALE);
2941	return retval;
2942}
2943
2944int selinux_policy_genfs_sid(struct selinux_policy *policy,
2945			const char *fstype,
2946			const char *path,
2947			u16 orig_sclass,
2948			u32 *sid)
2949{
2950	/* no lock required, policy is not yet accessible by other threads */
2951	return __security_genfs_sid(policy, fstype, path, orig_sclass, sid);
2952}
2953
2954/**
2955 * security_fs_use - Determine how to handle labeling for a filesystem.
2956 * @state: SELinux state
2957 * @sb: superblock in question
2958 */
2959int security_fs_use(struct selinux_state *state, struct super_block *sb)
2960{
2961	struct selinux_policy *policy;
2962	struct policydb *policydb;
2963	struct sidtab *sidtab;
2964	int rc;
2965	struct ocontext *c;
2966	struct superblock_security_struct *sbsec = selinux_superblock(sb);
2967	const char *fstype = sb->s_type->name;
2968
2969	if (!selinux_initialized(state)) {
2970		sbsec->behavior = SECURITY_FS_USE_NONE;
2971		sbsec->sid = SECINITSID_UNLABELED;
2972		return 0;
2973	}
2974
2975retry:
2976	rcu_read_lock();
2977	policy = rcu_dereference(state->policy);
2978	policydb = &policy->policydb;
2979	sidtab = policy->sidtab;
2980
2981	c = policydb->ocontexts[OCON_FSUSE];
2982	while (c) {
2983		if (strcmp(fstype, c->u.name) == 0)
2984			break;
2985		c = c->next;
2986	}
2987
2988	if (c) {
2989		sbsec->behavior = c->v.behavior;
2990		rc = ocontext_to_sid(sidtab, c, 0, &sbsec->sid);
2991		if (rc == -ESTALE) {
2992			rcu_read_unlock();
2993			goto retry;
 
2994		}
2995		if (rc)
2996			goto out;
2997	} else {
2998		rc = __security_genfs_sid(policy, fstype, "/",
2999					SECCLASS_DIR, &sbsec->sid);
3000		if (rc == -ESTALE) {
3001			rcu_read_unlock();
3002			goto retry;
3003		}
3004		if (rc) {
3005			sbsec->behavior = SECURITY_FS_USE_NONE;
3006			rc = 0;
3007		} else {
3008			sbsec->behavior = SECURITY_FS_USE_GENFS;
3009		}
3010	}
3011
3012out:
3013	rcu_read_unlock();
3014	return rc;
3015}
3016
3017int security_get_bools(struct selinux_policy *policy,
3018		       u32 *len, char ***names, int **values)
3019{
3020	struct policydb *policydb;
3021	u32 i;
3022	int rc;
3023
3024	policydb = &policy->policydb;
 
 
 
 
 
 
 
 
 
3025
3026	*names = NULL;
3027	*values = NULL;
3028
3029	rc = 0;
3030	*len = policydb->p_bools.nprim;
3031	if (!*len)
3032		goto out;
3033
3034	rc = -ENOMEM;
3035	*names = kcalloc(*len, sizeof(char *), GFP_ATOMIC);
3036	if (!*names)
3037		goto err;
3038
3039	rc = -ENOMEM;
3040	*values = kcalloc(*len, sizeof(int), GFP_ATOMIC);
3041	if (!*values)
3042		goto err;
3043
3044	for (i = 0; i < *len; i++) {
3045		(*values)[i] = policydb->bool_val_to_struct[i]->state;
3046
3047		rc = -ENOMEM;
3048		(*names)[i] = kstrdup(sym_name(policydb, SYM_BOOLS, i),
3049				      GFP_ATOMIC);
3050		if (!(*names)[i])
3051			goto err;
3052	}
3053	rc = 0;
3054out:
 
3055	return rc;
3056err:
3057	if (*names) {
3058		for (i = 0; i < *len; i++)
3059			kfree((*names)[i]);
3060		kfree(*names);
3061	}
3062	kfree(*values);
3063	*len = 0;
3064	*names = NULL;
3065	*values = NULL;
3066	goto out;
3067}
3068
3069
3070int security_set_bools(struct selinux_state *state, u32 len, int *values)
3071{
3072	struct selinux_policy *newpolicy, *oldpolicy;
3073	int rc;
3074	u32 i, seqno = 0;
3075
3076	if (!selinux_initialized(state))
3077		return -EINVAL;
3078
3079	oldpolicy = rcu_dereference_protected(state->policy,
3080					lockdep_is_held(&state->policy_mutex));
3081
3082	/* Consistency check on number of booleans, should never fail */
3083	if (WARN_ON(len != oldpolicy->policydb.p_bools.nprim))
3084		return -EINVAL;
3085
3086	newpolicy = kmemdup(oldpolicy, sizeof(*newpolicy), GFP_KERNEL);
3087	if (!newpolicy)
3088		return -ENOMEM;
3089
3090	/*
3091	 * Deep copy only the parts of the policydb that might be
3092	 * modified as a result of changing booleans.
3093	 */
3094	rc = cond_policydb_dup(&newpolicy->policydb, &oldpolicy->policydb);
3095	if (rc) {
3096		kfree(newpolicy);
3097		return -ENOMEM;
3098	}
3099
3100	/* Update the boolean states in the copy */
3101	for (i = 0; i < len; i++) {
3102		int new_state = !!values[i];
3103		int old_state = newpolicy->policydb.bool_val_to_struct[i]->state;
3104
3105		if (new_state != old_state) {
3106			audit_log(audit_context(), GFP_ATOMIC,
3107				AUDIT_MAC_CONFIG_CHANGE,
3108				"bool=%s val=%d old_val=%d auid=%u ses=%u",
3109				sym_name(&newpolicy->policydb, SYM_BOOLS, i),
3110				new_state,
3111				old_state,
3112				from_kuid(&init_user_ns, audit_get_loginuid(current)),
3113				audit_get_sessionid(current));
3114			newpolicy->policydb.bool_val_to_struct[i]->state = new_state;
3115		}
 
 
 
 
3116	}
3117
3118	/* Re-evaluate the conditional rules in the copy */
3119	evaluate_cond_nodes(&newpolicy->policydb);
3120
3121	/* Set latest granting seqno for new policy */
3122	newpolicy->latest_granting = oldpolicy->latest_granting + 1;
3123	seqno = newpolicy->latest_granting;
3124
3125	/* Install the new policy */
3126	rcu_assign_pointer(state->policy, newpolicy);
3127
3128	/*
3129	 * Free the conditional portions of the old policydb
3130	 * that were copied for the new policy, and the oldpolicy
3131	 * structure itself but not what it references.
3132	 */
3133	synchronize_rcu();
3134	selinux_policy_cond_free(oldpolicy);
3135
3136	/* Notify others of the policy change */
3137	selinux_notify_policy_change(state, seqno);
3138	return 0;
3139}
3140
3141int security_get_bool_value(struct selinux_state *state,
3142			    u32 index)
3143{
3144	struct selinux_policy *policy;
3145	struct policydb *policydb;
3146	int rc;
3147	u32 len;
3148
3149	if (!selinux_initialized(state))
3150		return 0;
3151
3152	rcu_read_lock();
3153	policy = rcu_dereference(state->policy);
3154	policydb = &policy->policydb;
3155
3156	rc = -EFAULT;
3157	len = policydb->p_bools.nprim;
3158	if (index >= len)
3159		goto out;
3160
3161	rc = policydb->bool_val_to_struct[index]->state;
3162out:
3163	rcu_read_unlock();
3164	return rc;
3165}
3166
3167static int security_preserve_bools(struct selinux_policy *oldpolicy,
3168				struct selinux_policy *newpolicy)
3169{
3170	int rc, *bvalues = NULL;
3171	char **bnames = NULL;
3172	struct cond_bool_datum *booldatum;
3173	u32 i, nbools = 0;
3174
3175	rc = security_get_bools(oldpolicy, &nbools, &bnames, &bvalues);
3176	if (rc)
3177		goto out;
3178	for (i = 0; i < nbools; i++) {
3179		booldatum = symtab_search(&newpolicy->policydb.p_bools,
3180					bnames[i]);
3181		if (booldatum)
3182			booldatum->state = bvalues[i];
3183	}
3184	evaluate_cond_nodes(&newpolicy->policydb);
3185
3186out:
3187	if (bnames) {
3188		for (i = 0; i < nbools; i++)
3189			kfree(bnames[i]);
3190	}
3191	kfree(bnames);
3192	kfree(bvalues);
3193	return rc;
3194}
3195
3196/*
3197 * security_sid_mls_copy() - computes a new sid based on the given
3198 * sid and the mls portion of mls_sid.
3199 */
3200int security_sid_mls_copy(struct selinux_state *state,
3201			  u32 sid, u32 mls_sid, u32 *new_sid)
3202{
3203	struct selinux_policy *policy;
3204	struct policydb *policydb;
3205	struct sidtab *sidtab;
3206	struct context *context1;
3207	struct context *context2;
3208	struct context newcon;
3209	char *s;
3210	u32 len;
3211	int rc;
3212
3213	if (!selinux_initialized(state)) {
 
3214		*new_sid = sid;
3215		return 0;
3216	}
3217
3218retry:
3219	rc = 0;
3220	context_init(&newcon);
3221
3222	rcu_read_lock();
3223	policy = rcu_dereference(state->policy);
3224	policydb = &policy->policydb;
3225	sidtab = policy->sidtab;
3226
3227	if (!policydb->mls_enabled) {
3228		*new_sid = sid;
3229		goto out_unlock;
3230	}
3231
3232	rc = -EINVAL;
3233	context1 = sidtab_search(sidtab, sid);
3234	if (!context1) {
3235		pr_err("SELinux: %s:  unrecognized SID %d\n",
3236			__func__, sid);
3237		goto out_unlock;
3238	}
3239
3240	rc = -EINVAL;
3241	context2 = sidtab_search(sidtab, mls_sid);
3242	if (!context2) {
3243		pr_err("SELinux: %s:  unrecognized SID %d\n",
3244			__func__, mls_sid);
3245		goto out_unlock;
3246	}
3247
3248	newcon.user = context1->user;
3249	newcon.role = context1->role;
3250	newcon.type = context1->type;
3251	rc = mls_context_cpy(&newcon, context2);
3252	if (rc)
3253		goto out_unlock;
3254
3255	/* Check the validity of the new context. */
3256	if (!policydb_context_isvalid(policydb, &newcon)) {
3257		rc = convert_context_handle_invalid_context(state, policydb,
3258							&newcon);
3259		if (rc) {
3260			if (!context_struct_to_string(policydb, &newcon, &s,
3261						      &len)) {
3262				struct audit_buffer *ab;
3263
3264				ab = audit_log_start(audit_context(),
3265						     GFP_ATOMIC,
3266						     AUDIT_SELINUX_ERR);
3267				audit_log_format(ab,
3268						 "op=security_sid_mls_copy invalid_context=");
3269				/* don't record NUL with untrusted strings */
3270				audit_log_n_untrustedstring(ab, s, len - 1);
3271				audit_log_end(ab);
3272				kfree(s);
3273			}
3274			goto out_unlock;
3275		}
3276	}
3277	rc = sidtab_context_to_sid(sidtab, &newcon, new_sid);
3278	if (rc == -ESTALE) {
3279		rcu_read_unlock();
3280		context_destroy(&newcon);
3281		goto retry;
3282	}
3283out_unlock:
3284	rcu_read_unlock();
3285	context_destroy(&newcon);
 
3286	return rc;
3287}
3288
3289/**
3290 * security_net_peersid_resolve - Compare and resolve two network peer SIDs
3291 * @state: SELinux state
3292 * @nlbl_sid: NetLabel SID
3293 * @nlbl_type: NetLabel labeling protocol type
3294 * @xfrm_sid: XFRM SID
3295 * @peer_sid: network peer sid
3296 *
3297 * Description:
3298 * Compare the @nlbl_sid and @xfrm_sid values and if the two SIDs can be
3299 * resolved into a single SID it is returned via @peer_sid and the function
3300 * returns zero.  Otherwise @peer_sid is set to SECSID_NULL and the function
3301 * returns a negative value.  A table summarizing the behavior is below:
3302 *
3303 *                                 | function return |      @sid
3304 *   ------------------------------+-----------------+-----------------
3305 *   no peer labels                |        0        |    SECSID_NULL
3306 *   single peer label             |        0        |    <peer_label>
3307 *   multiple, consistent labels   |        0        |    <peer_label>
3308 *   multiple, inconsistent labels |    -<errno>     |    SECSID_NULL
3309 *
3310 */
3311int security_net_peersid_resolve(struct selinux_state *state,
3312				 u32 nlbl_sid, u32 nlbl_type,
3313				 u32 xfrm_sid,
3314				 u32 *peer_sid)
3315{
3316	struct selinux_policy *policy;
3317	struct policydb *policydb;
3318	struct sidtab *sidtab;
3319	int rc;
3320	struct context *nlbl_ctx;
3321	struct context *xfrm_ctx;
3322
3323	*peer_sid = SECSID_NULL;
3324
3325	/* handle the common (which also happens to be the set of easy) cases
3326	 * right away, these two if statements catch everything involving a
3327	 * single or absent peer SID/label */
3328	if (xfrm_sid == SECSID_NULL) {
3329		*peer_sid = nlbl_sid;
3330		return 0;
3331	}
3332	/* NOTE: an nlbl_type == NETLBL_NLTYPE_UNLABELED is a "fallback" label
3333	 * and is treated as if nlbl_sid == SECSID_NULL when a XFRM SID/label
3334	 * is present */
3335	if (nlbl_sid == SECSID_NULL || nlbl_type == NETLBL_NLTYPE_UNLABELED) {
3336		*peer_sid = xfrm_sid;
3337		return 0;
3338	}
3339
3340	if (!selinux_initialized(state))
3341		return 0;
3342
3343	rcu_read_lock();
3344	policy = rcu_dereference(state->policy);
3345	policydb = &policy->policydb;
3346	sidtab = policy->sidtab;
3347
3348	/*
3349	 * We don't need to check initialized here since the only way both
3350	 * nlbl_sid and xfrm_sid are not equal to SECSID_NULL would be if the
3351	 * security server was initialized and state->initialized was true.
3352	 */
3353	if (!policydb->mls_enabled) {
3354		rc = 0;
3355		goto out;
3356	}
3357
3358	rc = -EINVAL;
3359	nlbl_ctx = sidtab_search(sidtab, nlbl_sid);
3360	if (!nlbl_ctx) {
3361		pr_err("SELinux: %s:  unrecognized SID %d\n",
3362		       __func__, nlbl_sid);
3363		goto out;
3364	}
3365	rc = -EINVAL;
3366	xfrm_ctx = sidtab_search(sidtab, xfrm_sid);
3367	if (!xfrm_ctx) {
3368		pr_err("SELinux: %s:  unrecognized SID %d\n",
3369		       __func__, xfrm_sid);
3370		goto out;
3371	}
3372	rc = (mls_context_cmp(nlbl_ctx, xfrm_ctx) ? 0 : -EACCES);
3373	if (rc)
3374		goto out;
3375
3376	/* at present NetLabel SIDs/labels really only carry MLS
3377	 * information so if the MLS portion of the NetLabel SID
3378	 * matches the MLS portion of the labeled XFRM SID/label
3379	 * then pass along the XFRM SID as it is the most
3380	 * expressive */
3381	*peer_sid = xfrm_sid;
3382out:
3383	rcu_read_unlock();
3384	return rc;
3385}
3386
3387static int get_classes_callback(void *k, void *d, void *args)
3388{
3389	struct class_datum *datum = d;
3390	char *name = k, **classes = args;
3391	int value = datum->value - 1;
3392
3393	classes[value] = kstrdup(name, GFP_ATOMIC);
3394	if (!classes[value])
3395		return -ENOMEM;
3396
3397	return 0;
3398}
3399
3400int security_get_classes(struct selinux_policy *policy,
3401			 char ***classes, int *nclasses)
3402{
3403	struct policydb *policydb;
3404	int rc;
3405
3406	policydb = &policy->policydb;
 
 
 
 
 
 
3407
3408	rc = -ENOMEM;
3409	*nclasses = policydb->p_classes.nprim;
3410	*classes = kcalloc(*nclasses, sizeof(**classes), GFP_ATOMIC);
3411	if (!*classes)
3412		goto out;
3413
3414	rc = hashtab_map(&policydb->p_classes.table, get_classes_callback,
3415			 *classes);
3416	if (rc) {
3417		int i;
3418		for (i = 0; i < *nclasses; i++)
3419			kfree((*classes)[i]);
3420		kfree(*classes);
3421	}
3422
3423out:
 
3424	return rc;
3425}
3426
3427static int get_permissions_callback(void *k, void *d, void *args)
3428{
3429	struct perm_datum *datum = d;
3430	char *name = k, **perms = args;
3431	int value = datum->value - 1;
3432
3433	perms[value] = kstrdup(name, GFP_ATOMIC);
3434	if (!perms[value])
3435		return -ENOMEM;
3436
3437	return 0;
3438}
3439
3440int security_get_permissions(struct selinux_policy *policy,
3441			     char *class, char ***perms, int *nperms)
3442{
3443	struct policydb *policydb;
3444	int rc, i;
3445	struct class_datum *match;
3446
3447	policydb = &policy->policydb;
3448
3449	rc = -EINVAL;
3450	match = symtab_search(&policydb->p_classes, class);
3451	if (!match) {
3452		pr_err("SELinux: %s:  unrecognized class %s\n",
3453			__func__, class);
3454		goto out;
3455	}
3456
3457	rc = -ENOMEM;
3458	*nperms = match->permissions.nprim;
3459	*perms = kcalloc(*nperms, sizeof(**perms), GFP_ATOMIC);
3460	if (!*perms)
3461		goto out;
3462
3463	if (match->comdatum) {
3464		rc = hashtab_map(&match->comdatum->permissions.table,
3465				 get_permissions_callback, *perms);
3466		if (rc)
3467			goto err;
3468	}
3469
3470	rc = hashtab_map(&match->permissions.table, get_permissions_callback,
3471			 *perms);
3472	if (rc)
3473		goto err;
3474
3475out:
 
3476	return rc;
3477
3478err:
 
3479	for (i = 0; i < *nperms; i++)
3480		kfree((*perms)[i]);
3481	kfree(*perms);
3482	return rc;
3483}
3484
3485int security_get_reject_unknown(struct selinux_state *state)
3486{
3487	struct selinux_policy *policy;
3488	int value;
3489
3490	if (!selinux_initialized(state))
3491		return 0;
3492
3493	rcu_read_lock();
3494	policy = rcu_dereference(state->policy);
3495	value = policy->policydb.reject_unknown;
3496	rcu_read_unlock();
3497	return value;
3498}
3499
3500int security_get_allow_unknown(struct selinux_state *state)
3501{
3502	struct selinux_policy *policy;
3503	int value;
3504
3505	if (!selinux_initialized(state))
3506		return 0;
3507
3508	rcu_read_lock();
3509	policy = rcu_dereference(state->policy);
3510	value = policy->policydb.allow_unknown;
3511	rcu_read_unlock();
3512	return value;
3513}
3514
3515/**
3516 * security_policycap_supported - Check for a specific policy capability
3517 * @state: SELinux state
3518 * @req_cap: capability
3519 *
3520 * Description:
3521 * This function queries the currently loaded policy to see if it supports the
3522 * capability specified by @req_cap.  Returns true (1) if the capability is
3523 * supported, false (0) if it isn't supported.
3524 *
3525 */
3526int security_policycap_supported(struct selinux_state *state,
3527				 unsigned int req_cap)
3528{
3529	struct selinux_policy *policy;
3530	int rc;
3531
3532	if (!selinux_initialized(state))
3533		return 0;
3534
3535	rcu_read_lock();
3536	policy = rcu_dereference(state->policy);
3537	rc = ebitmap_get_bit(&policy->policydb.policycaps, req_cap);
3538	rcu_read_unlock();
3539
3540	return rc;
3541}
3542
3543struct selinux_audit_rule {
3544	u32 au_seqno;
3545	struct context au_ctxt;
3546};
3547
3548void selinux_audit_rule_free(void *vrule)
3549{
3550	struct selinux_audit_rule *rule = vrule;
3551
3552	if (rule) {
3553		context_destroy(&rule->au_ctxt);
3554		kfree(rule);
3555	}
3556}
3557
3558int selinux_audit_rule_init(u32 field, u32 op, char *rulestr, void **vrule)
3559{
3560	struct selinux_state *state = &selinux_state;
3561	struct selinux_policy *policy;
3562	struct policydb *policydb;
3563	struct selinux_audit_rule *tmprule;
3564	struct role_datum *roledatum;
3565	struct type_datum *typedatum;
3566	struct user_datum *userdatum;
3567	struct selinux_audit_rule **rule = (struct selinux_audit_rule **)vrule;
3568	int rc = 0;
3569
3570	*rule = NULL;
3571
3572	if (!selinux_initialized(state))
3573		return -EOPNOTSUPP;
3574
3575	switch (field) {
3576	case AUDIT_SUBJ_USER:
3577	case AUDIT_SUBJ_ROLE:
3578	case AUDIT_SUBJ_TYPE:
3579	case AUDIT_OBJ_USER:
3580	case AUDIT_OBJ_ROLE:
3581	case AUDIT_OBJ_TYPE:
3582		/* only 'equals' and 'not equals' fit user, role, and type */
3583		if (op != Audit_equal && op != Audit_not_equal)
3584			return -EINVAL;
3585		break;
3586	case AUDIT_SUBJ_SEN:
3587	case AUDIT_SUBJ_CLR:
3588	case AUDIT_OBJ_LEV_LOW:
3589	case AUDIT_OBJ_LEV_HIGH:
3590		/* we do not allow a range, indicated by the presence of '-' */
3591		if (strchr(rulestr, '-'))
3592			return -EINVAL;
3593		break;
3594	default:
3595		/* only the above fields are valid */
3596		return -EINVAL;
3597	}
3598
3599	tmprule = kzalloc(sizeof(struct selinux_audit_rule), GFP_KERNEL);
3600	if (!tmprule)
3601		return -ENOMEM;
3602
3603	context_init(&tmprule->au_ctxt);
3604
3605	rcu_read_lock();
3606	policy = rcu_dereference(state->policy);
3607	policydb = &policy->policydb;
3608
3609	tmprule->au_seqno = policy->latest_granting;
3610
3611	switch (field) {
3612	case AUDIT_SUBJ_USER:
3613	case AUDIT_OBJ_USER:
3614		rc = -EINVAL;
3615		userdatum = symtab_search(&policydb->p_users, rulestr);
3616		if (!userdatum)
3617			goto out;
3618		tmprule->au_ctxt.user = userdatum->value;
3619		break;
3620	case AUDIT_SUBJ_ROLE:
3621	case AUDIT_OBJ_ROLE:
3622		rc = -EINVAL;
3623		roledatum = symtab_search(&policydb->p_roles, rulestr);
3624		if (!roledatum)
3625			goto out;
3626		tmprule->au_ctxt.role = roledatum->value;
3627		break;
3628	case AUDIT_SUBJ_TYPE:
3629	case AUDIT_OBJ_TYPE:
3630		rc = -EINVAL;
3631		typedatum = symtab_search(&policydb->p_types, rulestr);
3632		if (!typedatum)
3633			goto out;
3634		tmprule->au_ctxt.type = typedatum->value;
3635		break;
3636	case AUDIT_SUBJ_SEN:
3637	case AUDIT_SUBJ_CLR:
3638	case AUDIT_OBJ_LEV_LOW:
3639	case AUDIT_OBJ_LEV_HIGH:
3640		rc = mls_from_string(policydb, rulestr, &tmprule->au_ctxt,
3641				     GFP_ATOMIC);
3642		if (rc)
3643			goto out;
3644		break;
3645	}
3646	rc = 0;
3647out:
3648	rcu_read_unlock();
3649
3650	if (rc) {
3651		selinux_audit_rule_free(tmprule);
3652		tmprule = NULL;
3653	}
3654
3655	*rule = tmprule;
3656
3657	return rc;
3658}
3659
3660/* Check to see if the rule contains any selinux fields */
3661int selinux_audit_rule_known(struct audit_krule *rule)
3662{
3663	int i;
3664
3665	for (i = 0; i < rule->field_count; i++) {
3666		struct audit_field *f = &rule->fields[i];
3667		switch (f->type) {
3668		case AUDIT_SUBJ_USER:
3669		case AUDIT_SUBJ_ROLE:
3670		case AUDIT_SUBJ_TYPE:
3671		case AUDIT_SUBJ_SEN:
3672		case AUDIT_SUBJ_CLR:
3673		case AUDIT_OBJ_USER:
3674		case AUDIT_OBJ_ROLE:
3675		case AUDIT_OBJ_TYPE:
3676		case AUDIT_OBJ_LEV_LOW:
3677		case AUDIT_OBJ_LEV_HIGH:
3678			return 1;
3679		}
3680	}
3681
3682	return 0;
3683}
3684
3685int selinux_audit_rule_match(u32 sid, u32 field, u32 op, void *vrule)
3686{
3687	struct selinux_state *state = &selinux_state;
3688	struct selinux_policy *policy;
3689	struct context *ctxt;
3690	struct mls_level *level;
3691	struct selinux_audit_rule *rule = vrule;
3692	int match = 0;
3693
3694	if (unlikely(!rule)) {
3695		WARN_ONCE(1, "selinux_audit_rule_match: missing rule\n");
3696		return -ENOENT;
3697	}
3698
3699	if (!selinux_initialized(state))
3700		return 0;
3701
3702	rcu_read_lock();
3703
3704	policy = rcu_dereference(state->policy);
3705
3706	if (rule->au_seqno < policy->latest_granting) {
3707		match = -ESTALE;
3708		goto out;
3709	}
3710
3711	ctxt = sidtab_search(policy->sidtab, sid);
3712	if (unlikely(!ctxt)) {
3713		WARN_ONCE(1, "selinux_audit_rule_match: unrecognized SID %d\n",
3714			  sid);
3715		match = -ENOENT;
3716		goto out;
3717	}
3718
3719	/* a field/op pair that is not caught here will simply fall through
3720	   without a match */
3721	switch (field) {
3722	case AUDIT_SUBJ_USER:
3723	case AUDIT_OBJ_USER:
3724		switch (op) {
3725		case Audit_equal:
3726			match = (ctxt->user == rule->au_ctxt.user);
3727			break;
3728		case Audit_not_equal:
3729			match = (ctxt->user != rule->au_ctxt.user);
3730			break;
3731		}
3732		break;
3733	case AUDIT_SUBJ_ROLE:
3734	case AUDIT_OBJ_ROLE:
3735		switch (op) {
3736		case Audit_equal:
3737			match = (ctxt->role == rule->au_ctxt.role);
3738			break;
3739		case Audit_not_equal:
3740			match = (ctxt->role != rule->au_ctxt.role);
3741			break;
3742		}
3743		break;
3744	case AUDIT_SUBJ_TYPE:
3745	case AUDIT_OBJ_TYPE:
3746		switch (op) {
3747		case Audit_equal:
3748			match = (ctxt->type == rule->au_ctxt.type);
3749			break;
3750		case Audit_not_equal:
3751			match = (ctxt->type != rule->au_ctxt.type);
3752			break;
3753		}
3754		break;
3755	case AUDIT_SUBJ_SEN:
3756	case AUDIT_SUBJ_CLR:
3757	case AUDIT_OBJ_LEV_LOW:
3758	case AUDIT_OBJ_LEV_HIGH:
3759		level = ((field == AUDIT_SUBJ_SEN ||
3760			  field == AUDIT_OBJ_LEV_LOW) ?
3761			 &ctxt->range.level[0] : &ctxt->range.level[1]);
3762		switch (op) {
3763		case Audit_equal:
3764			match = mls_level_eq(&rule->au_ctxt.range.level[0],
3765					     level);
3766			break;
3767		case Audit_not_equal:
3768			match = !mls_level_eq(&rule->au_ctxt.range.level[0],
3769					      level);
3770			break;
3771		case Audit_lt:
3772			match = (mls_level_dom(&rule->au_ctxt.range.level[0],
3773					       level) &&
3774				 !mls_level_eq(&rule->au_ctxt.range.level[0],
3775					       level));
3776			break;
3777		case Audit_le:
3778			match = mls_level_dom(&rule->au_ctxt.range.level[0],
3779					      level);
3780			break;
3781		case Audit_gt:
3782			match = (mls_level_dom(level,
3783					      &rule->au_ctxt.range.level[0]) &&
3784				 !mls_level_eq(level,
3785					       &rule->au_ctxt.range.level[0]));
3786			break;
3787		case Audit_ge:
3788			match = mls_level_dom(level,
3789					      &rule->au_ctxt.range.level[0]);
3790			break;
3791		}
3792	}
3793
3794out:
3795	rcu_read_unlock();
3796	return match;
3797}
3798
 
 
3799static int aurule_avc_callback(u32 event)
3800{
3801	if (event == AVC_CALLBACK_RESET)
3802		return audit_update_lsm_rules();
3803	return 0;
 
 
3804}
3805
3806static int __init aurule_init(void)
3807{
3808	int err;
3809
3810	err = avc_add_callback(aurule_avc_callback, AVC_CALLBACK_RESET);
3811	if (err)
3812		panic("avc_add_callback() failed, error %d\n", err);
3813
3814	return err;
3815}
3816__initcall(aurule_init);
3817
3818#ifdef CONFIG_NETLABEL
3819/**
3820 * security_netlbl_cache_add - Add an entry to the NetLabel cache
3821 * @secattr: the NetLabel packet security attributes
3822 * @sid: the SELinux SID
3823 *
3824 * Description:
3825 * Attempt to cache the context in @ctx, which was derived from the packet in
3826 * @skb, in the NetLabel subsystem cache.  This function assumes @secattr has
3827 * already been initialized.
3828 *
3829 */
3830static void security_netlbl_cache_add(struct netlbl_lsm_secattr *secattr,
3831				      u32 sid)
3832{
3833	u32 *sid_cache;
3834
3835	sid_cache = kmalloc(sizeof(*sid_cache), GFP_ATOMIC);
3836	if (sid_cache == NULL)
3837		return;
3838	secattr->cache = netlbl_secattr_cache_alloc(GFP_ATOMIC);
3839	if (secattr->cache == NULL) {
3840		kfree(sid_cache);
3841		return;
3842	}
3843
3844	*sid_cache = sid;
3845	secattr->cache->free = kfree;
3846	secattr->cache->data = sid_cache;
3847	secattr->flags |= NETLBL_SECATTR_CACHE;
3848}
3849
3850/**
3851 * security_netlbl_secattr_to_sid - Convert a NetLabel secattr to a SELinux SID
3852 * @state: SELinux state
3853 * @secattr: the NetLabel packet security attributes
3854 * @sid: the SELinux SID
3855 *
3856 * Description:
3857 * Convert the given NetLabel security attributes in @secattr into a
3858 * SELinux SID.  If the @secattr field does not contain a full SELinux
3859 * SID/context then use SECINITSID_NETMSG as the foundation.  If possible the
3860 * 'cache' field of @secattr is set and the CACHE flag is set; this is to
3861 * allow the @secattr to be used by NetLabel to cache the secattr to SID
3862 * conversion for future lookups.  Returns zero on success, negative values on
3863 * failure.
3864 *
3865 */
3866int security_netlbl_secattr_to_sid(struct selinux_state *state,
3867				   struct netlbl_lsm_secattr *secattr,
3868				   u32 *sid)
3869{
3870	struct selinux_policy *policy;
3871	struct policydb *policydb;
3872	struct sidtab *sidtab;
3873	int rc;
3874	struct context *ctx;
3875	struct context ctx_new;
3876
3877	if (!selinux_initialized(state)) {
3878		*sid = SECSID_NULL;
3879		return 0;
3880	}
3881
3882retry:
3883	rc = 0;
3884	rcu_read_lock();
3885	policy = rcu_dereference(state->policy);
3886	policydb = &policy->policydb;
3887	sidtab = policy->sidtab;
3888
3889	if (secattr->flags & NETLBL_SECATTR_CACHE)
3890		*sid = *(u32 *)secattr->cache->data;
3891	else if (secattr->flags & NETLBL_SECATTR_SECID)
3892		*sid = secattr->attr.secid;
3893	else if (secattr->flags & NETLBL_SECATTR_MLS_LVL) {
3894		rc = -EIDRM;
3895		ctx = sidtab_search(sidtab, SECINITSID_NETMSG);
3896		if (ctx == NULL)
3897			goto out;
3898
3899		context_init(&ctx_new);
3900		ctx_new.user = ctx->user;
3901		ctx_new.role = ctx->role;
3902		ctx_new.type = ctx->type;
3903		mls_import_netlbl_lvl(policydb, &ctx_new, secattr);
3904		if (secattr->flags & NETLBL_SECATTR_MLS_CAT) {
3905			rc = mls_import_netlbl_cat(policydb, &ctx_new, secattr);
3906			if (rc)
3907				goto out;
3908		}
3909		rc = -EIDRM;
3910		if (!mls_context_isvalid(policydb, &ctx_new)) {
3911			ebitmap_destroy(&ctx_new.range.level[0].cat);
3912			goto out;
3913		}
3914
3915		rc = sidtab_context_to_sid(sidtab, &ctx_new, sid);
3916		ebitmap_destroy(&ctx_new.range.level[0].cat);
3917		if (rc == -ESTALE) {
3918			rcu_read_unlock();
3919			goto retry;
3920		}
3921		if (rc)
3922			goto out;
3923
3924		security_netlbl_cache_add(secattr, *sid);
 
 
3925	} else
3926		*sid = SECSID_NULL;
3927
 
 
 
 
3928out:
3929	rcu_read_unlock();
3930	return rc;
3931}
3932
3933/**
3934 * security_netlbl_sid_to_secattr - Convert a SELinux SID to a NetLabel secattr
3935 * @state: SELinux state
3936 * @sid: the SELinux SID
3937 * @secattr: the NetLabel packet security attributes
3938 *
3939 * Description:
3940 * Convert the given SELinux SID in @sid into a NetLabel security attribute.
3941 * Returns zero on success, negative values on failure.
3942 *
3943 */
3944int security_netlbl_sid_to_secattr(struct selinux_state *state,
3945				   u32 sid, struct netlbl_lsm_secattr *secattr)
3946{
3947	struct selinux_policy *policy;
3948	struct policydb *policydb;
3949	int rc;
3950	struct context *ctx;
3951
3952	if (!selinux_initialized(state))
3953		return 0;
3954
3955	rcu_read_lock();
3956	policy = rcu_dereference(state->policy);
3957	policydb = &policy->policydb;
3958
3959	rc = -ENOENT;
3960	ctx = sidtab_search(policy->sidtab, sid);
3961	if (ctx == NULL)
3962		goto out;
3963
3964	rc = -ENOMEM;
3965	secattr->domain = kstrdup(sym_name(policydb, SYM_TYPES, ctx->type - 1),
3966				  GFP_ATOMIC);
3967	if (secattr->domain == NULL)
3968		goto out;
3969
3970	secattr->attr.secid = sid;
3971	secattr->flags |= NETLBL_SECATTR_DOMAIN_CPY | NETLBL_SECATTR_SECID;
3972	mls_export_netlbl_lvl(policydb, ctx, secattr);
3973	rc = mls_export_netlbl_cat(policydb, ctx, secattr);
3974out:
3975	rcu_read_unlock();
3976	return rc;
3977}
3978#endif /* CONFIG_NETLABEL */
3979
3980/**
3981 * __security_read_policy - read the policy.
3982 * @policy: SELinux policy
3983 * @data: binary policy data
3984 * @len: length of data in bytes
3985 *
3986 */
3987static int __security_read_policy(struct selinux_policy *policy,
3988				  void *data, size_t *len)
3989{
3990	int rc;
3991	struct policy_file fp;
3992
3993	fp.data = data;
3994	fp.len = *len;
3995
3996	rc = policydb_write(&policy->policydb, &fp);
3997	if (rc)
3998		return rc;
3999
4000	*len = (unsigned long)fp.data - (unsigned long)data;
4001	return 0;
4002}
4003
4004/**
4005 * security_read_policy - read the policy.
4006 * @state: selinux_state
4007 * @data: binary policy data
4008 * @len: length of data in bytes
4009 *
4010 */
4011int security_read_policy(struct selinux_state *state,
4012			 void **data, size_t *len)
4013{
4014	struct selinux_policy *policy;
 
 
4015
4016	policy = rcu_dereference_protected(
4017			state->policy, lockdep_is_held(&state->policy_mutex));
4018	if (!policy)
4019		return -EINVAL;
4020
4021	*len = policy->policydb.len;
 
4022	*data = vmalloc_user(*len);
4023	if (!*data)
4024		return -ENOMEM;
4025
4026	return __security_read_policy(policy, *data, len);
4027}
4028
4029/**
4030 * security_read_state_kernel - read the policy.
4031 * @state: selinux_state
4032 * @data: binary policy data
4033 * @len: length of data in bytes
4034 *
4035 * Allocates kernel memory for reading SELinux policy.
4036 * This function is for internal use only and should not
4037 * be used for returning data to user space.
4038 *
4039 * This function must be called with policy_mutex held.
4040 */
4041int security_read_state_kernel(struct selinux_state *state,
4042			       void **data, size_t *len)
4043{
4044	int err;
4045	struct selinux_policy *policy;
4046
4047	policy = rcu_dereference_protected(
4048			state->policy, lockdep_is_held(&state->policy_mutex));
4049	if (!policy)
4050		return -EINVAL;
4051
4052	*len = policy->policydb.len;
4053	*data = vmalloc(*len);
4054	if (!*data)
4055		return -ENOMEM;
4056
4057	err = __security_read_policy(policy, *data, len);
4058	if (err) {
4059		vfree(*data);
4060		*data = NULL;
4061		*len = 0;
4062	}
4063	return err;
4064}
v5.9
   1// SPDX-License-Identifier: GPL-2.0-only
   2/*
   3 * Implementation of the security services.
   4 *
   5 * Authors : Stephen Smalley, <sds@tycho.nsa.gov>
   6 *	     James Morris <jmorris@redhat.com>
   7 *
   8 * Updated: Trusted Computer Solutions, Inc. <dgoeddel@trustedcs.com>
   9 *
  10 *	Support for enhanced MLS infrastructure.
  11 *	Support for context based audit filters.
  12 *
  13 * Updated: Frank Mayer <mayerf@tresys.com> and Karl MacMillan <kmacmillan@tresys.com>
  14 *
  15 *	Added conditional policy language extensions
  16 *
  17 * Updated: Hewlett-Packard <paul@paul-moore.com>
  18 *
  19 *      Added support for NetLabel
  20 *      Added support for the policy capability bitmap
  21 *
  22 * Updated: Chad Sellers <csellers@tresys.com>
  23 *
  24 *  Added validation of kernel classes and permissions
  25 *
  26 * Updated: KaiGai Kohei <kaigai@ak.jp.nec.com>
  27 *
  28 *  Added support for bounds domain and audit messaged on masked permissions
  29 *
  30 * Updated: Guido Trentalancia <guido@trentalancia.com>
  31 *
  32 *  Added support for runtime switching of the policy type
  33 *
  34 * Copyright (C) 2008, 2009 NEC Corporation
  35 * Copyright (C) 2006, 2007 Hewlett-Packard Development Company, L.P.
  36 * Copyright (C) 2004-2006 Trusted Computer Solutions, Inc.
  37 * Copyright (C) 2003 - 2004, 2006 Tresys Technology, LLC
  38 * Copyright (C) 2003 Red Hat, Inc., James Morris <jmorris@redhat.com>
  39 */
  40#include <linux/kernel.h>
  41#include <linux/slab.h>
  42#include <linux/string.h>
  43#include <linux/spinlock.h>
  44#include <linux/rcupdate.h>
  45#include <linux/errno.h>
  46#include <linux/in.h>
  47#include <linux/sched.h>
  48#include <linux/audit.h>
  49#include <linux/vmalloc.h>
 
  50#include <net/netlabel.h>
  51
  52#include "flask.h"
  53#include "avc.h"
  54#include "avc_ss.h"
  55#include "security.h"
  56#include "context.h"
  57#include "policydb.h"
  58#include "sidtab.h"
  59#include "services.h"
  60#include "conditional.h"
  61#include "mls.h"
  62#include "objsec.h"
  63#include "netlabel.h"
  64#include "xfrm.h"
  65#include "ebitmap.h"
  66#include "audit.h"
 
 
  67
  68/* Policy capability names */
  69const char *selinux_policycap_names[__POLICYDB_CAPABILITY_MAX] = {
  70	"network_peer_controls",
  71	"open_perms",
  72	"extended_socket_class",
  73	"always_check_network",
  74	"cgroup_seclabel",
  75	"nnp_nosuid_transition",
  76	"genfs_seclabel_symlinks"
  77};
  78
  79static struct selinux_ss selinux_ss;
  80
  81void selinux_ss_init(struct selinux_ss **ss)
  82{
  83	rwlock_init(&selinux_ss.policy_rwlock);
  84	*ss = &selinux_ss;
  85}
  86
  87/* Forward declaration. */
  88static int context_struct_to_string(struct policydb *policydb,
  89				    struct context *context,
  90				    char **scontext,
  91				    u32 *scontext_len);
  92
  93static int sidtab_entry_to_string(struct policydb *policydb,
  94				  struct sidtab *sidtab,
  95				  struct sidtab_entry *entry,
  96				  char **scontext,
  97				  u32 *scontext_len);
  98
  99static void context_struct_compute_av(struct policydb *policydb,
 100				      struct context *scontext,
 101				      struct context *tcontext,
 102				      u16 tclass,
 103				      struct av_decision *avd,
 104				      struct extended_perms *xperms);
 105
 106static int selinux_set_mapping(struct policydb *pol,
 107			       struct security_class_mapping *map,
 108			       struct selinux_map *out_map)
 109{
 110	u16 i, j;
 111	unsigned k;
 112	bool print_unknown_handle = false;
 113
 114	/* Find number of classes in the input mapping */
 115	if (!map)
 116		return -EINVAL;
 117	i = 0;
 118	while (map[i].name)
 119		i++;
 120
 121	/* Allocate space for the class records, plus one for class zero */
 122	out_map->mapping = kcalloc(++i, sizeof(*out_map->mapping), GFP_ATOMIC);
 123	if (!out_map->mapping)
 124		return -ENOMEM;
 125
 126	/* Store the raw class and permission values */
 127	j = 0;
 128	while (map[j].name) {
 129		struct security_class_mapping *p_in = map + (j++);
 130		struct selinux_mapping *p_out = out_map->mapping + j;
 131
 132		/* An empty class string skips ahead */
 133		if (!strcmp(p_in->name, "")) {
 134			p_out->num_perms = 0;
 135			continue;
 136		}
 137
 138		p_out->value = string_to_security_class(pol, p_in->name);
 139		if (!p_out->value) {
 140			pr_info("SELinux:  Class %s not defined in policy.\n",
 141			       p_in->name);
 142			if (pol->reject_unknown)
 143				goto err;
 144			p_out->num_perms = 0;
 145			print_unknown_handle = true;
 146			continue;
 147		}
 148
 149		k = 0;
 150		while (p_in->perms[k]) {
 151			/* An empty permission string skips ahead */
 152			if (!*p_in->perms[k]) {
 153				k++;
 154				continue;
 155			}
 156			p_out->perms[k] = string_to_av_perm(pol, p_out->value,
 157							    p_in->perms[k]);
 158			if (!p_out->perms[k]) {
 159				pr_info("SELinux:  Permission %s in class %s not defined in policy.\n",
 160				       p_in->perms[k], p_in->name);
 161				if (pol->reject_unknown)
 162					goto err;
 163				print_unknown_handle = true;
 164			}
 165
 166			k++;
 167		}
 168		p_out->num_perms = k;
 169	}
 170
 171	if (print_unknown_handle)
 172		pr_info("SELinux: the above unknown classes and permissions will be %s\n",
 173		       pol->allow_unknown ? "allowed" : "denied");
 174
 175	out_map->size = i;
 176	return 0;
 177err:
 178	kfree(out_map->mapping);
 179	out_map->mapping = NULL;
 180	return -EINVAL;
 181}
 182
 183/*
 184 * Get real, policy values from mapped values
 185 */
 186
 187static u16 unmap_class(struct selinux_map *map, u16 tclass)
 188{
 189	if (tclass < map->size)
 190		return map->mapping[tclass].value;
 191
 192	return tclass;
 193}
 194
 195/*
 196 * Get kernel value for class from its policy value
 197 */
 198static u16 map_class(struct selinux_map *map, u16 pol_value)
 199{
 200	u16 i;
 201
 202	for (i = 1; i < map->size; i++) {
 203		if (map->mapping[i].value == pol_value)
 204			return i;
 205	}
 206
 207	return SECCLASS_NULL;
 208}
 209
 210static void map_decision(struct selinux_map *map,
 211			 u16 tclass, struct av_decision *avd,
 212			 int allow_unknown)
 213{
 214	if (tclass < map->size) {
 215		struct selinux_mapping *mapping = &map->mapping[tclass];
 216		unsigned int i, n = mapping->num_perms;
 217		u32 result;
 218
 219		for (i = 0, result = 0; i < n; i++) {
 220			if (avd->allowed & mapping->perms[i])
 221				result |= 1<<i;
 222			if (allow_unknown && !mapping->perms[i])
 223				result |= 1<<i;
 224		}
 225		avd->allowed = result;
 226
 227		for (i = 0, result = 0; i < n; i++)
 228			if (avd->auditallow & mapping->perms[i])
 229				result |= 1<<i;
 230		avd->auditallow = result;
 231
 232		for (i = 0, result = 0; i < n; i++) {
 233			if (avd->auditdeny & mapping->perms[i])
 234				result |= 1<<i;
 235			if (!allow_unknown && !mapping->perms[i])
 236				result |= 1<<i;
 237		}
 238		/*
 239		 * In case the kernel has a bug and requests a permission
 240		 * between num_perms and the maximum permission number, we
 241		 * should audit that denial
 242		 */
 243		for (; i < (sizeof(u32)*8); i++)
 244			result |= 1<<i;
 245		avd->auditdeny = result;
 246	}
 247}
 248
 249int security_mls_enabled(struct selinux_state *state)
 250{
 251	struct policydb *p = &state->ss->policydb;
 
 252
 253	return p->mls_enabled;
 
 
 
 
 
 
 
 254}
 255
 256/*
 257 * Return the boolean value of a constraint expression
 258 * when it is applied to the specified source and target
 259 * security contexts.
 260 *
 261 * xcontext is a special beast...  It is used by the validatetrans rules
 262 * only.  For these rules, scontext is the context before the transition,
 263 * tcontext is the context after the transition, and xcontext is the context
 264 * of the process performing the transition.  All other callers of
 265 * constraint_expr_eval should pass in NULL for xcontext.
 266 */
 267static int constraint_expr_eval(struct policydb *policydb,
 268				struct context *scontext,
 269				struct context *tcontext,
 270				struct context *xcontext,
 271				struct constraint_expr *cexpr)
 272{
 273	u32 val1, val2;
 274	struct context *c;
 275	struct role_datum *r1, *r2;
 276	struct mls_level *l1, *l2;
 277	struct constraint_expr *e;
 278	int s[CEXPR_MAXDEPTH];
 279	int sp = -1;
 280
 281	for (e = cexpr; e; e = e->next) {
 282		switch (e->expr_type) {
 283		case CEXPR_NOT:
 284			BUG_ON(sp < 0);
 285			s[sp] = !s[sp];
 286			break;
 287		case CEXPR_AND:
 288			BUG_ON(sp < 1);
 289			sp--;
 290			s[sp] &= s[sp + 1];
 291			break;
 292		case CEXPR_OR:
 293			BUG_ON(sp < 1);
 294			sp--;
 295			s[sp] |= s[sp + 1];
 296			break;
 297		case CEXPR_ATTR:
 298			if (sp == (CEXPR_MAXDEPTH - 1))
 299				return 0;
 300			switch (e->attr) {
 301			case CEXPR_USER:
 302				val1 = scontext->user;
 303				val2 = tcontext->user;
 304				break;
 305			case CEXPR_TYPE:
 306				val1 = scontext->type;
 307				val2 = tcontext->type;
 308				break;
 309			case CEXPR_ROLE:
 310				val1 = scontext->role;
 311				val2 = tcontext->role;
 312				r1 = policydb->role_val_to_struct[val1 - 1];
 313				r2 = policydb->role_val_to_struct[val2 - 1];
 314				switch (e->op) {
 315				case CEXPR_DOM:
 316					s[++sp] = ebitmap_get_bit(&r1->dominates,
 317								  val2 - 1);
 318					continue;
 319				case CEXPR_DOMBY:
 320					s[++sp] = ebitmap_get_bit(&r2->dominates,
 321								  val1 - 1);
 322					continue;
 323				case CEXPR_INCOMP:
 324					s[++sp] = (!ebitmap_get_bit(&r1->dominates,
 325								    val2 - 1) &&
 326						   !ebitmap_get_bit(&r2->dominates,
 327								    val1 - 1));
 328					continue;
 329				default:
 330					break;
 331				}
 332				break;
 333			case CEXPR_L1L2:
 334				l1 = &(scontext->range.level[0]);
 335				l2 = &(tcontext->range.level[0]);
 336				goto mls_ops;
 337			case CEXPR_L1H2:
 338				l1 = &(scontext->range.level[0]);
 339				l2 = &(tcontext->range.level[1]);
 340				goto mls_ops;
 341			case CEXPR_H1L2:
 342				l1 = &(scontext->range.level[1]);
 343				l2 = &(tcontext->range.level[0]);
 344				goto mls_ops;
 345			case CEXPR_H1H2:
 346				l1 = &(scontext->range.level[1]);
 347				l2 = &(tcontext->range.level[1]);
 348				goto mls_ops;
 349			case CEXPR_L1H1:
 350				l1 = &(scontext->range.level[0]);
 351				l2 = &(scontext->range.level[1]);
 352				goto mls_ops;
 353			case CEXPR_L2H2:
 354				l1 = &(tcontext->range.level[0]);
 355				l2 = &(tcontext->range.level[1]);
 356				goto mls_ops;
 357mls_ops:
 358			switch (e->op) {
 359			case CEXPR_EQ:
 360				s[++sp] = mls_level_eq(l1, l2);
 361				continue;
 362			case CEXPR_NEQ:
 363				s[++sp] = !mls_level_eq(l1, l2);
 364				continue;
 365			case CEXPR_DOM:
 366				s[++sp] = mls_level_dom(l1, l2);
 367				continue;
 368			case CEXPR_DOMBY:
 369				s[++sp] = mls_level_dom(l2, l1);
 370				continue;
 371			case CEXPR_INCOMP:
 372				s[++sp] = mls_level_incomp(l2, l1);
 373				continue;
 374			default:
 375				BUG();
 376				return 0;
 377			}
 378			break;
 379			default:
 380				BUG();
 381				return 0;
 382			}
 383
 384			switch (e->op) {
 385			case CEXPR_EQ:
 386				s[++sp] = (val1 == val2);
 387				break;
 388			case CEXPR_NEQ:
 389				s[++sp] = (val1 != val2);
 390				break;
 391			default:
 392				BUG();
 393				return 0;
 394			}
 395			break;
 396		case CEXPR_NAMES:
 397			if (sp == (CEXPR_MAXDEPTH-1))
 398				return 0;
 399			c = scontext;
 400			if (e->attr & CEXPR_TARGET)
 401				c = tcontext;
 402			else if (e->attr & CEXPR_XTARGET) {
 403				c = xcontext;
 404				if (!c) {
 405					BUG();
 406					return 0;
 407				}
 408			}
 409			if (e->attr & CEXPR_USER)
 410				val1 = c->user;
 411			else if (e->attr & CEXPR_ROLE)
 412				val1 = c->role;
 413			else if (e->attr & CEXPR_TYPE)
 414				val1 = c->type;
 415			else {
 416				BUG();
 417				return 0;
 418			}
 419
 420			switch (e->op) {
 421			case CEXPR_EQ:
 422				s[++sp] = ebitmap_get_bit(&e->names, val1 - 1);
 423				break;
 424			case CEXPR_NEQ:
 425				s[++sp] = !ebitmap_get_bit(&e->names, val1 - 1);
 426				break;
 427			default:
 428				BUG();
 429				return 0;
 430			}
 431			break;
 432		default:
 433			BUG();
 434			return 0;
 435		}
 436	}
 437
 438	BUG_ON(sp != 0);
 439	return s[0];
 440}
 441
 442/*
 443 * security_dump_masked_av - dumps masked permissions during
 444 * security_compute_av due to RBAC, MLS/Constraint and Type bounds.
 445 */
 446static int dump_masked_av_helper(void *k, void *d, void *args)
 447{
 448	struct perm_datum *pdatum = d;
 449	char **permission_names = args;
 450
 451	BUG_ON(pdatum->value < 1 || pdatum->value > 32);
 452
 453	permission_names[pdatum->value - 1] = (char *)k;
 454
 455	return 0;
 456}
 457
 458static void security_dump_masked_av(struct policydb *policydb,
 459				    struct context *scontext,
 460				    struct context *tcontext,
 461				    u16 tclass,
 462				    u32 permissions,
 463				    const char *reason)
 464{
 465	struct common_datum *common_dat;
 466	struct class_datum *tclass_dat;
 467	struct audit_buffer *ab;
 468	char *tclass_name;
 469	char *scontext_name = NULL;
 470	char *tcontext_name = NULL;
 471	char *permission_names[32];
 472	int index;
 473	u32 length;
 474	bool need_comma = false;
 475
 476	if (!permissions)
 477		return;
 478
 479	tclass_name = sym_name(policydb, SYM_CLASSES, tclass - 1);
 480	tclass_dat = policydb->class_val_to_struct[tclass - 1];
 481	common_dat = tclass_dat->comdatum;
 482
 483	/* init permission_names */
 484	if (common_dat &&
 485	    hashtab_map(&common_dat->permissions.table,
 486			dump_masked_av_helper, permission_names) < 0)
 487		goto out;
 488
 489	if (hashtab_map(&tclass_dat->permissions.table,
 490			dump_masked_av_helper, permission_names) < 0)
 491		goto out;
 492
 493	/* get scontext/tcontext in text form */
 494	if (context_struct_to_string(policydb, scontext,
 495				     &scontext_name, &length) < 0)
 496		goto out;
 497
 498	if (context_struct_to_string(policydb, tcontext,
 499				     &tcontext_name, &length) < 0)
 500		goto out;
 501
 502	/* audit a message */
 503	ab = audit_log_start(audit_context(),
 504			     GFP_ATOMIC, AUDIT_SELINUX_ERR);
 505	if (!ab)
 506		goto out;
 507
 508	audit_log_format(ab, "op=security_compute_av reason=%s "
 509			 "scontext=%s tcontext=%s tclass=%s perms=",
 510			 reason, scontext_name, tcontext_name, tclass_name);
 511
 512	for (index = 0; index < 32; index++) {
 513		u32 mask = (1 << index);
 514
 515		if ((mask & permissions) == 0)
 516			continue;
 517
 518		audit_log_format(ab, "%s%s",
 519				 need_comma ? "," : "",
 520				 permission_names[index]
 521				 ? permission_names[index] : "????");
 522		need_comma = true;
 523	}
 524	audit_log_end(ab);
 525out:
 526	/* release scontext/tcontext */
 527	kfree(tcontext_name);
 528	kfree(scontext_name);
 529
 530	return;
 531}
 532
 533/*
 534 * security_boundary_permission - drops violated permissions
 535 * on boundary constraint.
 536 */
 537static void type_attribute_bounds_av(struct policydb *policydb,
 538				     struct context *scontext,
 539				     struct context *tcontext,
 540				     u16 tclass,
 541				     struct av_decision *avd)
 542{
 543	struct context lo_scontext;
 544	struct context lo_tcontext, *tcontextp = tcontext;
 545	struct av_decision lo_avd;
 546	struct type_datum *source;
 547	struct type_datum *target;
 548	u32 masked = 0;
 549
 550	source = policydb->type_val_to_struct[scontext->type - 1];
 551	BUG_ON(!source);
 552
 553	if (!source->bounds)
 554		return;
 555
 556	target = policydb->type_val_to_struct[tcontext->type - 1];
 557	BUG_ON(!target);
 558
 559	memset(&lo_avd, 0, sizeof(lo_avd));
 560
 561	memcpy(&lo_scontext, scontext, sizeof(lo_scontext));
 562	lo_scontext.type = source->bounds;
 563
 564	if (target->bounds) {
 565		memcpy(&lo_tcontext, tcontext, sizeof(lo_tcontext));
 566		lo_tcontext.type = target->bounds;
 567		tcontextp = &lo_tcontext;
 568	}
 569
 570	context_struct_compute_av(policydb, &lo_scontext,
 571				  tcontextp,
 572				  tclass,
 573				  &lo_avd,
 574				  NULL);
 575
 576	masked = ~lo_avd.allowed & avd->allowed;
 577
 578	if (likely(!masked))
 579		return;		/* no masked permission */
 580
 581	/* mask violated permissions */
 582	avd->allowed &= ~masked;
 583
 584	/* audit masked permissions */
 585	security_dump_masked_av(policydb, scontext, tcontext,
 586				tclass, masked, "bounds");
 587}
 588
 589/*
 590 * flag which drivers have permissions
 591 * only looking for ioctl based extended permssions
 592 */
 593void services_compute_xperms_drivers(
 594		struct extended_perms *xperms,
 595		struct avtab_node *node)
 596{
 597	unsigned int i;
 598
 599	if (node->datum.u.xperms->specified == AVTAB_XPERMS_IOCTLDRIVER) {
 600		/* if one or more driver has all permissions allowed */
 601		for (i = 0; i < ARRAY_SIZE(xperms->drivers.p); i++)
 602			xperms->drivers.p[i] |= node->datum.u.xperms->perms.p[i];
 603	} else if (node->datum.u.xperms->specified == AVTAB_XPERMS_IOCTLFUNCTION) {
 604		/* if allowing permissions within a driver */
 605		security_xperm_set(xperms->drivers.p,
 606					node->datum.u.xperms->driver);
 607	}
 608
 609	/* If no ioctl commands are allowed, ignore auditallow and auditdeny */
 610	if (node->key.specified & AVTAB_XPERMS_ALLOWED)
 611		xperms->len = 1;
 612}
 613
 614/*
 615 * Compute access vectors and extended permissions based on a context
 616 * structure pair for the permissions in a particular class.
 617 */
 618static void context_struct_compute_av(struct policydb *policydb,
 619				      struct context *scontext,
 620				      struct context *tcontext,
 621				      u16 tclass,
 622				      struct av_decision *avd,
 623				      struct extended_perms *xperms)
 624{
 625	struct constraint_node *constraint;
 626	struct role_allow *ra;
 627	struct avtab_key avkey;
 628	struct avtab_node *node;
 629	struct class_datum *tclass_datum;
 630	struct ebitmap *sattr, *tattr;
 631	struct ebitmap_node *snode, *tnode;
 632	unsigned int i, j;
 633
 634	avd->allowed = 0;
 635	avd->auditallow = 0;
 636	avd->auditdeny = 0xffffffff;
 637	if (xperms) {
 638		memset(&xperms->drivers, 0, sizeof(xperms->drivers));
 639		xperms->len = 0;
 640	}
 641
 642	if (unlikely(!tclass || tclass > policydb->p_classes.nprim)) {
 643		if (printk_ratelimit())
 644			pr_warn("SELinux:  Invalid class %hu\n", tclass);
 645		return;
 646	}
 647
 648	tclass_datum = policydb->class_val_to_struct[tclass - 1];
 649
 650	/*
 651	 * If a specific type enforcement rule was defined for
 652	 * this permission check, then use it.
 653	 */
 654	avkey.target_class = tclass;
 655	avkey.specified = AVTAB_AV | AVTAB_XPERMS;
 656	sattr = &policydb->type_attr_map_array[scontext->type - 1];
 657	tattr = &policydb->type_attr_map_array[tcontext->type - 1];
 658	ebitmap_for_each_positive_bit(sattr, snode, i) {
 659		ebitmap_for_each_positive_bit(tattr, tnode, j) {
 660			avkey.source_type = i + 1;
 661			avkey.target_type = j + 1;
 662			for (node = avtab_search_node(&policydb->te_avtab,
 663						      &avkey);
 664			     node;
 665			     node = avtab_search_node_next(node, avkey.specified)) {
 666				if (node->key.specified == AVTAB_ALLOWED)
 667					avd->allowed |= node->datum.u.data;
 668				else if (node->key.specified == AVTAB_AUDITALLOW)
 669					avd->auditallow |= node->datum.u.data;
 670				else if (node->key.specified == AVTAB_AUDITDENY)
 671					avd->auditdeny &= node->datum.u.data;
 672				else if (xperms && (node->key.specified & AVTAB_XPERMS))
 673					services_compute_xperms_drivers(xperms, node);
 674			}
 675
 676			/* Check conditional av table for additional permissions */
 677			cond_compute_av(&policydb->te_cond_avtab, &avkey,
 678					avd, xperms);
 679
 680		}
 681	}
 682
 683	/*
 684	 * Remove any permissions prohibited by a constraint (this includes
 685	 * the MLS policy).
 686	 */
 687	constraint = tclass_datum->constraints;
 688	while (constraint) {
 689		if ((constraint->permissions & (avd->allowed)) &&
 690		    !constraint_expr_eval(policydb, scontext, tcontext, NULL,
 691					  constraint->expr)) {
 692			avd->allowed &= ~(constraint->permissions);
 693		}
 694		constraint = constraint->next;
 695	}
 696
 697	/*
 698	 * If checking process transition permission and the
 699	 * role is changing, then check the (current_role, new_role)
 700	 * pair.
 701	 */
 702	if (tclass == policydb->process_class &&
 703	    (avd->allowed & policydb->process_trans_perms) &&
 704	    scontext->role != tcontext->role) {
 705		for (ra = policydb->role_allow; ra; ra = ra->next) {
 706			if (scontext->role == ra->role &&
 707			    tcontext->role == ra->new_role)
 708				break;
 709		}
 710		if (!ra)
 711			avd->allowed &= ~policydb->process_trans_perms;
 712	}
 713
 714	/*
 715	 * If the given source and target types have boundary
 716	 * constraint, lazy checks have to mask any violated
 717	 * permission and notice it to userspace via audit.
 718	 */
 719	type_attribute_bounds_av(policydb, scontext, tcontext,
 720				 tclass, avd);
 721}
 722
 723static int security_validtrans_handle_fail(struct selinux_state *state,
 724					   struct sidtab_entry *oentry,
 725					   struct sidtab_entry *nentry,
 726					   struct sidtab_entry *tentry,
 727					   u16 tclass)
 
 728{
 729	struct policydb *p = &state->ss->policydb;
 730	struct sidtab *sidtab = state->ss->sidtab;
 731	char *o = NULL, *n = NULL, *t = NULL;
 732	u32 olen, nlen, tlen;
 733
 734	if (sidtab_entry_to_string(p, sidtab, oentry, &o, &olen))
 735		goto out;
 736	if (sidtab_entry_to_string(p, sidtab, nentry, &n, &nlen))
 737		goto out;
 738	if (sidtab_entry_to_string(p, sidtab, tentry, &t, &tlen))
 739		goto out;
 740	audit_log(audit_context(), GFP_ATOMIC, AUDIT_SELINUX_ERR,
 741		  "op=security_validate_transition seresult=denied"
 742		  " oldcontext=%s newcontext=%s taskcontext=%s tclass=%s",
 743		  o, n, t, sym_name(p, SYM_CLASSES, tclass-1));
 744out:
 745	kfree(o);
 746	kfree(n);
 747	kfree(t);
 748
 749	if (!enforcing_enabled(state))
 750		return 0;
 751	return -EPERM;
 752}
 753
 754static int security_compute_validatetrans(struct selinux_state *state,
 755					  u32 oldsid, u32 newsid, u32 tasksid,
 756					  u16 orig_tclass, bool user)
 757{
 
 758	struct policydb *policydb;
 759	struct sidtab *sidtab;
 760	struct sidtab_entry *oentry;
 761	struct sidtab_entry *nentry;
 762	struct sidtab_entry *tentry;
 763	struct class_datum *tclass_datum;
 764	struct constraint_node *constraint;
 765	u16 tclass;
 766	int rc = 0;
 767
 768
 769	if (!selinux_initialized(state))
 770		return 0;
 771
 772	read_lock(&state->ss->policy_rwlock);
 773
 774	policydb = &state->ss->policydb;
 775	sidtab = state->ss->sidtab;
 
 776
 777	if (!user)
 778		tclass = unmap_class(&state->ss->map, orig_tclass);
 779	else
 780		tclass = orig_tclass;
 781
 782	if (!tclass || tclass > policydb->p_classes.nprim) {
 783		rc = -EINVAL;
 784		goto out;
 785	}
 786	tclass_datum = policydb->class_val_to_struct[tclass - 1];
 787
 788	oentry = sidtab_search_entry(sidtab, oldsid);
 789	if (!oentry) {
 790		pr_err("SELinux: %s:  unrecognized SID %d\n",
 791			__func__, oldsid);
 792		rc = -EINVAL;
 793		goto out;
 794	}
 795
 796	nentry = sidtab_search_entry(sidtab, newsid);
 797	if (!nentry) {
 798		pr_err("SELinux: %s:  unrecognized SID %d\n",
 799			__func__, newsid);
 800		rc = -EINVAL;
 801		goto out;
 802	}
 803
 804	tentry = sidtab_search_entry(sidtab, tasksid);
 805	if (!tentry) {
 806		pr_err("SELinux: %s:  unrecognized SID %d\n",
 807			__func__, tasksid);
 808		rc = -EINVAL;
 809		goto out;
 810	}
 811
 812	constraint = tclass_datum->validatetrans;
 813	while (constraint) {
 814		if (!constraint_expr_eval(policydb, &oentry->context,
 815					  &nentry->context, &tentry->context,
 816					  constraint->expr)) {
 817			if (user)
 818				rc = -EPERM;
 819			else
 820				rc = security_validtrans_handle_fail(state,
 821								     oentry,
 822								     nentry,
 823								     tentry,
 824								     tclass);
 
 825			goto out;
 826		}
 827		constraint = constraint->next;
 828	}
 829
 830out:
 831	read_unlock(&state->ss->policy_rwlock);
 832	return rc;
 833}
 834
 835int security_validate_transition_user(struct selinux_state *state,
 836				      u32 oldsid, u32 newsid, u32 tasksid,
 837				      u16 tclass)
 838{
 839	return security_compute_validatetrans(state, oldsid, newsid, tasksid,
 840					      tclass, true);
 841}
 842
 843int security_validate_transition(struct selinux_state *state,
 844				 u32 oldsid, u32 newsid, u32 tasksid,
 845				 u16 orig_tclass)
 846{
 847	return security_compute_validatetrans(state, oldsid, newsid, tasksid,
 848					      orig_tclass, false);
 849}
 850
 851/*
 852 * security_bounded_transition - check whether the given
 853 * transition is directed to bounded, or not.
 854 * It returns 0, if @newsid is bounded by @oldsid.
 855 * Otherwise, it returns error code.
 856 *
 
 857 * @oldsid : current security identifier
 858 * @newsid : destinated security identifier
 859 */
 860int security_bounded_transition(struct selinux_state *state,
 861				u32 old_sid, u32 new_sid)
 862{
 
 863	struct policydb *policydb;
 864	struct sidtab *sidtab;
 865	struct sidtab_entry *old_entry, *new_entry;
 866	struct type_datum *type;
 867	int index;
 868	int rc;
 869
 870	if (!selinux_initialized(state))
 871		return 0;
 872
 873	read_lock(&state->ss->policy_rwlock);
 874
 875	policydb = &state->ss->policydb;
 876	sidtab = state->ss->sidtab;
 877
 878	rc = -EINVAL;
 879	old_entry = sidtab_search_entry(sidtab, old_sid);
 880	if (!old_entry) {
 881		pr_err("SELinux: %s: unrecognized SID %u\n",
 882		       __func__, old_sid);
 883		goto out;
 884	}
 885
 886	rc = -EINVAL;
 887	new_entry = sidtab_search_entry(sidtab, new_sid);
 888	if (!new_entry) {
 889		pr_err("SELinux: %s: unrecognized SID %u\n",
 890		       __func__, new_sid);
 891		goto out;
 892	}
 893
 894	rc = 0;
 895	/* type/domain unchanged */
 896	if (old_entry->context.type == new_entry->context.type)
 897		goto out;
 898
 899	index = new_entry->context.type;
 900	while (true) {
 901		type = policydb->type_val_to_struct[index - 1];
 902		BUG_ON(!type);
 903
 904		/* not bounded anymore */
 905		rc = -EPERM;
 906		if (!type->bounds)
 907			break;
 908
 909		/* @newsid is bounded by @oldsid */
 910		rc = 0;
 911		if (type->bounds == old_entry->context.type)
 912			break;
 913
 914		index = type->bounds;
 915	}
 916
 917	if (rc) {
 918		char *old_name = NULL;
 919		char *new_name = NULL;
 920		u32 length;
 921
 922		if (!sidtab_entry_to_string(policydb, sidtab, old_entry,
 923					    &old_name, &length) &&
 924		    !sidtab_entry_to_string(policydb, sidtab, new_entry,
 925					    &new_name, &length)) {
 926			audit_log(audit_context(),
 927				  GFP_ATOMIC, AUDIT_SELINUX_ERR,
 928				  "op=security_bounded_transition "
 929				  "seresult=denied "
 930				  "oldcontext=%s newcontext=%s",
 931				  old_name, new_name);
 932		}
 933		kfree(new_name);
 934		kfree(old_name);
 935	}
 936out:
 937	read_unlock(&state->ss->policy_rwlock);
 938
 939	return rc;
 940}
 941
 942static void avd_init(struct selinux_state *state, struct av_decision *avd)
 943{
 944	avd->allowed = 0;
 945	avd->auditallow = 0;
 946	avd->auditdeny = 0xffffffff;
 947	avd->seqno = state->ss->latest_granting;
 
 
 
 948	avd->flags = 0;
 949}
 950
 951void services_compute_xperms_decision(struct extended_perms_decision *xpermd,
 952					struct avtab_node *node)
 953{
 954	unsigned int i;
 955
 956	if (node->datum.u.xperms->specified == AVTAB_XPERMS_IOCTLFUNCTION) {
 957		if (xpermd->driver != node->datum.u.xperms->driver)
 958			return;
 959	} else if (node->datum.u.xperms->specified == AVTAB_XPERMS_IOCTLDRIVER) {
 960		if (!security_xperm_test(node->datum.u.xperms->perms.p,
 961					xpermd->driver))
 962			return;
 963	} else {
 964		BUG();
 965	}
 966
 967	if (node->key.specified == AVTAB_XPERMS_ALLOWED) {
 968		xpermd->used |= XPERMS_ALLOWED;
 969		if (node->datum.u.xperms->specified == AVTAB_XPERMS_IOCTLDRIVER) {
 970			memset(xpermd->allowed->p, 0xff,
 971					sizeof(xpermd->allowed->p));
 972		}
 973		if (node->datum.u.xperms->specified == AVTAB_XPERMS_IOCTLFUNCTION) {
 974			for (i = 0; i < ARRAY_SIZE(xpermd->allowed->p); i++)
 975				xpermd->allowed->p[i] |=
 976					node->datum.u.xperms->perms.p[i];
 977		}
 978	} else if (node->key.specified == AVTAB_XPERMS_AUDITALLOW) {
 979		xpermd->used |= XPERMS_AUDITALLOW;
 980		if (node->datum.u.xperms->specified == AVTAB_XPERMS_IOCTLDRIVER) {
 981			memset(xpermd->auditallow->p, 0xff,
 982					sizeof(xpermd->auditallow->p));
 983		}
 984		if (node->datum.u.xperms->specified == AVTAB_XPERMS_IOCTLFUNCTION) {
 985			for (i = 0; i < ARRAY_SIZE(xpermd->auditallow->p); i++)
 986				xpermd->auditallow->p[i] |=
 987					node->datum.u.xperms->perms.p[i];
 988		}
 989	} else if (node->key.specified == AVTAB_XPERMS_DONTAUDIT) {
 990		xpermd->used |= XPERMS_DONTAUDIT;
 991		if (node->datum.u.xperms->specified == AVTAB_XPERMS_IOCTLDRIVER) {
 992			memset(xpermd->dontaudit->p, 0xff,
 993					sizeof(xpermd->dontaudit->p));
 994		}
 995		if (node->datum.u.xperms->specified == AVTAB_XPERMS_IOCTLFUNCTION) {
 996			for (i = 0; i < ARRAY_SIZE(xpermd->dontaudit->p); i++)
 997				xpermd->dontaudit->p[i] |=
 998					node->datum.u.xperms->perms.p[i];
 999		}
1000	} else {
1001		BUG();
1002	}
1003}
1004
1005void security_compute_xperms_decision(struct selinux_state *state,
1006				      u32 ssid,
1007				      u32 tsid,
1008				      u16 orig_tclass,
1009				      u8 driver,
1010				      struct extended_perms_decision *xpermd)
1011{
 
1012	struct policydb *policydb;
1013	struct sidtab *sidtab;
1014	u16 tclass;
1015	struct context *scontext, *tcontext;
1016	struct avtab_key avkey;
1017	struct avtab_node *node;
1018	struct ebitmap *sattr, *tattr;
1019	struct ebitmap_node *snode, *tnode;
1020	unsigned int i, j;
1021
1022	xpermd->driver = driver;
1023	xpermd->used = 0;
1024	memset(xpermd->allowed->p, 0, sizeof(xpermd->allowed->p));
1025	memset(xpermd->auditallow->p, 0, sizeof(xpermd->auditallow->p));
1026	memset(xpermd->dontaudit->p, 0, sizeof(xpermd->dontaudit->p));
1027
1028	read_lock(&state->ss->policy_rwlock);
1029	if (!selinux_initialized(state))
1030		goto allow;
1031
1032	policydb = &state->ss->policydb;
1033	sidtab = state->ss->sidtab;
 
1034
1035	scontext = sidtab_search(sidtab, ssid);
1036	if (!scontext) {
1037		pr_err("SELinux: %s:  unrecognized SID %d\n",
1038		       __func__, ssid);
1039		goto out;
1040	}
1041
1042	tcontext = sidtab_search(sidtab, tsid);
1043	if (!tcontext) {
1044		pr_err("SELinux: %s:  unrecognized SID %d\n",
1045		       __func__, tsid);
1046		goto out;
1047	}
1048
1049	tclass = unmap_class(&state->ss->map, orig_tclass);
1050	if (unlikely(orig_tclass && !tclass)) {
1051		if (policydb->allow_unknown)
1052			goto allow;
1053		goto out;
1054	}
1055
1056
1057	if (unlikely(!tclass || tclass > policydb->p_classes.nprim)) {
1058		pr_warn_ratelimited("SELinux:  Invalid class %hu\n", tclass);
1059		goto out;
1060	}
1061
1062	avkey.target_class = tclass;
1063	avkey.specified = AVTAB_XPERMS;
1064	sattr = &policydb->type_attr_map_array[scontext->type - 1];
1065	tattr = &policydb->type_attr_map_array[tcontext->type - 1];
1066	ebitmap_for_each_positive_bit(sattr, snode, i) {
1067		ebitmap_for_each_positive_bit(tattr, tnode, j) {
1068			avkey.source_type = i + 1;
1069			avkey.target_type = j + 1;
1070			for (node = avtab_search_node(&policydb->te_avtab,
1071						      &avkey);
1072			     node;
1073			     node = avtab_search_node_next(node, avkey.specified))
1074				services_compute_xperms_decision(xpermd, node);
1075
1076			cond_compute_xperms(&policydb->te_cond_avtab,
1077						&avkey, xpermd);
1078		}
1079	}
1080out:
1081	read_unlock(&state->ss->policy_rwlock);
1082	return;
1083allow:
1084	memset(xpermd->allowed->p, 0xff, sizeof(xpermd->allowed->p));
1085	goto out;
1086}
1087
1088/**
1089 * security_compute_av - Compute access vector decisions.
 
1090 * @ssid: source security identifier
1091 * @tsid: target security identifier
1092 * @tclass: target security class
1093 * @avd: access vector decisions
1094 * @xperms: extended permissions
1095 *
1096 * Compute a set of access vector decisions based on the
1097 * SID pair (@ssid, @tsid) for the permissions in @tclass.
1098 */
1099void security_compute_av(struct selinux_state *state,
1100			 u32 ssid,
1101			 u32 tsid,
1102			 u16 orig_tclass,
1103			 struct av_decision *avd,
1104			 struct extended_perms *xperms)
1105{
 
1106	struct policydb *policydb;
1107	struct sidtab *sidtab;
1108	u16 tclass;
1109	struct context *scontext = NULL, *tcontext = NULL;
1110
1111	read_lock(&state->ss->policy_rwlock);
1112	avd_init(state, avd);
 
1113	xperms->len = 0;
1114	if (!selinux_initialized(state))
1115		goto allow;
1116
1117	policydb = &state->ss->policydb;
1118	sidtab = state->ss->sidtab;
1119
1120	scontext = sidtab_search(sidtab, ssid);
1121	if (!scontext) {
1122		pr_err("SELinux: %s:  unrecognized SID %d\n",
1123		       __func__, ssid);
1124		goto out;
1125	}
1126
1127	/* permissive domain? */
1128	if (ebitmap_get_bit(&policydb->permissive_map, scontext->type))
1129		avd->flags |= AVD_FLAGS_PERMISSIVE;
1130
1131	tcontext = sidtab_search(sidtab, tsid);
1132	if (!tcontext) {
1133		pr_err("SELinux: %s:  unrecognized SID %d\n",
1134		       __func__, tsid);
1135		goto out;
1136	}
1137
1138	tclass = unmap_class(&state->ss->map, orig_tclass);
1139	if (unlikely(orig_tclass && !tclass)) {
1140		if (policydb->allow_unknown)
1141			goto allow;
1142		goto out;
1143	}
1144	context_struct_compute_av(policydb, scontext, tcontext, tclass, avd,
1145				  xperms);
1146	map_decision(&state->ss->map, orig_tclass, avd,
1147		     policydb->allow_unknown);
1148out:
1149	read_unlock(&state->ss->policy_rwlock);
1150	return;
1151allow:
1152	avd->allowed = 0xffffffff;
1153	goto out;
1154}
1155
1156void security_compute_av_user(struct selinux_state *state,
1157			      u32 ssid,
1158			      u32 tsid,
1159			      u16 tclass,
1160			      struct av_decision *avd)
1161{
 
1162	struct policydb *policydb;
1163	struct sidtab *sidtab;
1164	struct context *scontext = NULL, *tcontext = NULL;
1165
1166	read_lock(&state->ss->policy_rwlock);
1167	avd_init(state, avd);
 
1168	if (!selinux_initialized(state))
1169		goto allow;
1170
1171	policydb = &state->ss->policydb;
1172	sidtab = state->ss->sidtab;
1173
1174	scontext = sidtab_search(sidtab, ssid);
1175	if (!scontext) {
1176		pr_err("SELinux: %s:  unrecognized SID %d\n",
1177		       __func__, ssid);
1178		goto out;
1179	}
1180
1181	/* permissive domain? */
1182	if (ebitmap_get_bit(&policydb->permissive_map, scontext->type))
1183		avd->flags |= AVD_FLAGS_PERMISSIVE;
1184
1185	tcontext = sidtab_search(sidtab, tsid);
1186	if (!tcontext) {
1187		pr_err("SELinux: %s:  unrecognized SID %d\n",
1188		       __func__, tsid);
1189		goto out;
1190	}
1191
1192	if (unlikely(!tclass)) {
1193		if (policydb->allow_unknown)
1194			goto allow;
1195		goto out;
1196	}
1197
1198	context_struct_compute_av(policydb, scontext, tcontext, tclass, avd,
1199				  NULL);
1200 out:
1201	read_unlock(&state->ss->policy_rwlock);
1202	return;
1203allow:
1204	avd->allowed = 0xffffffff;
1205	goto out;
1206}
1207
1208/*
1209 * Write the security context string representation of
1210 * the context structure `context' into a dynamically
1211 * allocated string of the correct size.  Set `*scontext'
1212 * to point to this string and set `*scontext_len' to
1213 * the length of the string.
1214 */
1215static int context_struct_to_string(struct policydb *p,
1216				    struct context *context,
1217				    char **scontext, u32 *scontext_len)
1218{
1219	char *scontextp;
1220
1221	if (scontext)
1222		*scontext = NULL;
1223	*scontext_len = 0;
1224
1225	if (context->len) {
1226		*scontext_len = context->len;
1227		if (scontext) {
1228			*scontext = kstrdup(context->str, GFP_ATOMIC);
1229			if (!(*scontext))
1230				return -ENOMEM;
1231		}
1232		return 0;
1233	}
1234
1235	/* Compute the size of the context. */
1236	*scontext_len += strlen(sym_name(p, SYM_USERS, context->user - 1)) + 1;
1237	*scontext_len += strlen(sym_name(p, SYM_ROLES, context->role - 1)) + 1;
1238	*scontext_len += strlen(sym_name(p, SYM_TYPES, context->type - 1)) + 1;
1239	*scontext_len += mls_compute_context_len(p, context);
1240
1241	if (!scontext)
1242		return 0;
1243
1244	/* Allocate space for the context; caller must free this space. */
1245	scontextp = kmalloc(*scontext_len, GFP_ATOMIC);
1246	if (!scontextp)
1247		return -ENOMEM;
1248	*scontext = scontextp;
1249
1250	/*
1251	 * Copy the user name, role name and type name into the context.
1252	 */
1253	scontextp += sprintf(scontextp, "%s:%s:%s",
1254		sym_name(p, SYM_USERS, context->user - 1),
1255		sym_name(p, SYM_ROLES, context->role - 1),
1256		sym_name(p, SYM_TYPES, context->type - 1));
1257
1258	mls_sid_to_context(p, context, &scontextp);
1259
1260	*scontextp = 0;
1261
1262	return 0;
1263}
1264
1265static int sidtab_entry_to_string(struct policydb *p,
1266				  struct sidtab *sidtab,
1267				  struct sidtab_entry *entry,
1268				  char **scontext, u32 *scontext_len)
1269{
1270	int rc = sidtab_sid2str_get(sidtab, entry, scontext, scontext_len);
1271
1272	if (rc != -ENOENT)
1273		return rc;
1274
1275	rc = context_struct_to_string(p, &entry->context, scontext,
1276				      scontext_len);
1277	if (!rc && scontext)
1278		sidtab_sid2str_put(sidtab, entry, *scontext, *scontext_len);
1279	return rc;
1280}
1281
1282#include "initial_sid_to_string.h"
1283
1284int security_sidtab_hash_stats(struct selinux_state *state, char *page)
1285{
 
1286	int rc;
1287
1288	if (!selinux_initialized(state)) {
1289		pr_err("SELinux: %s:  called before initial load_policy\n",
1290		       __func__);
1291		return -EINVAL;
1292	}
1293
1294	read_lock(&state->ss->policy_rwlock);
1295	rc = sidtab_hash_stats(state->ss->sidtab, page);
1296	read_unlock(&state->ss->policy_rwlock);
 
1297
1298	return rc;
1299}
1300
1301const char *security_get_initial_sid_context(u32 sid)
1302{
1303	if (unlikely(sid > SECINITSID_NUM))
1304		return NULL;
1305	return initial_sid_to_string[sid];
1306}
1307
1308static int security_sid_to_context_core(struct selinux_state *state,
1309					u32 sid, char **scontext,
1310					u32 *scontext_len, int force,
1311					int only_invalid)
1312{
 
1313	struct policydb *policydb;
1314	struct sidtab *sidtab;
1315	struct sidtab_entry *entry;
1316	int rc = 0;
1317
1318	if (scontext)
1319		*scontext = NULL;
1320	*scontext_len  = 0;
1321
1322	if (!selinux_initialized(state)) {
1323		if (sid <= SECINITSID_NUM) {
1324			char *scontextp;
1325			const char *s = initial_sid_to_string[sid];
1326
1327			if (!s)
1328				return -EINVAL;
1329			*scontext_len = strlen(s) + 1;
1330			if (!scontext)
1331				return 0;
1332			scontextp = kmemdup(s, *scontext_len, GFP_ATOMIC);
1333			if (!scontextp)
1334				return -ENOMEM;
1335			*scontext = scontextp;
1336			return 0;
1337		}
1338		pr_err("SELinux: %s:  called before initial "
1339		       "load_policy on unknown SID %d\n", __func__, sid);
1340		return -EINVAL;
1341	}
1342	read_lock(&state->ss->policy_rwlock);
1343	policydb = &state->ss->policydb;
1344	sidtab = state->ss->sidtab;
 
1345
1346	if (force)
1347		entry = sidtab_search_entry_force(sidtab, sid);
1348	else
1349		entry = sidtab_search_entry(sidtab, sid);
1350	if (!entry) {
1351		pr_err("SELinux: %s:  unrecognized SID %d\n",
1352			__func__, sid);
1353		rc = -EINVAL;
1354		goto out_unlock;
1355	}
1356	if (only_invalid && !entry->context.len)
1357		goto out_unlock;
1358
1359	rc = sidtab_entry_to_string(policydb, sidtab, entry, scontext,
1360				    scontext_len);
1361
1362out_unlock:
1363	read_unlock(&state->ss->policy_rwlock);
1364	return rc;
1365
1366}
1367
1368/**
1369 * security_sid_to_context - Obtain a context for a given SID.
 
1370 * @sid: security identifier, SID
1371 * @scontext: security context
1372 * @scontext_len: length in bytes
1373 *
1374 * Write the string representation of the context associated with @sid
1375 * into a dynamically allocated string of the correct size.  Set @scontext
1376 * to point to this string and set @scontext_len to the length of the string.
1377 */
1378int security_sid_to_context(struct selinux_state *state,
1379			    u32 sid, char **scontext, u32 *scontext_len)
1380{
1381	return security_sid_to_context_core(state, sid, scontext,
1382					    scontext_len, 0, 0);
1383}
1384
1385int security_sid_to_context_force(struct selinux_state *state, u32 sid,
1386				  char **scontext, u32 *scontext_len)
1387{
1388	return security_sid_to_context_core(state, sid, scontext,
1389					    scontext_len, 1, 0);
1390}
1391
1392/**
1393 * security_sid_to_context_inval - Obtain a context for a given SID if it
1394 *                                 is invalid.
 
1395 * @sid: security identifier, SID
1396 * @scontext: security context
1397 * @scontext_len: length in bytes
1398 *
1399 * Write the string representation of the context associated with @sid
1400 * into a dynamically allocated string of the correct size, but only if the
1401 * context is invalid in the current policy.  Set @scontext to point to
1402 * this string (or NULL if the context is valid) and set @scontext_len to
1403 * the length of the string (or 0 if the context is valid).
1404 */
1405int security_sid_to_context_inval(struct selinux_state *state, u32 sid,
1406				  char **scontext, u32 *scontext_len)
1407{
1408	return security_sid_to_context_core(state, sid, scontext,
1409					    scontext_len, 1, 1);
1410}
1411
1412/*
1413 * Caveat:  Mutates scontext.
1414 */
1415static int string_to_context_struct(struct policydb *pol,
1416				    struct sidtab *sidtabp,
1417				    char *scontext,
1418				    struct context *ctx,
1419				    u32 def_sid)
1420{
1421	struct role_datum *role;
1422	struct type_datum *typdatum;
1423	struct user_datum *usrdatum;
1424	char *scontextp, *p, oldc;
1425	int rc = 0;
1426
1427	context_init(ctx);
1428
1429	/* Parse the security context. */
1430
1431	rc = -EINVAL;
1432	scontextp = (char *) scontext;
1433
1434	/* Extract the user. */
1435	p = scontextp;
1436	while (*p && *p != ':')
1437		p++;
1438
1439	if (*p == 0)
1440		goto out;
1441
1442	*p++ = 0;
1443
1444	usrdatum = symtab_search(&pol->p_users, scontextp);
1445	if (!usrdatum)
1446		goto out;
1447
1448	ctx->user = usrdatum->value;
1449
1450	/* Extract role. */
1451	scontextp = p;
1452	while (*p && *p != ':')
1453		p++;
1454
1455	if (*p == 0)
1456		goto out;
1457
1458	*p++ = 0;
1459
1460	role = symtab_search(&pol->p_roles, scontextp);
1461	if (!role)
1462		goto out;
1463	ctx->role = role->value;
1464
1465	/* Extract type. */
1466	scontextp = p;
1467	while (*p && *p != ':')
1468		p++;
1469	oldc = *p;
1470	*p++ = 0;
1471
1472	typdatum = symtab_search(&pol->p_types, scontextp);
1473	if (!typdatum || typdatum->attribute)
1474		goto out;
1475
1476	ctx->type = typdatum->value;
1477
1478	rc = mls_context_to_sid(pol, oldc, p, ctx, sidtabp, def_sid);
1479	if (rc)
1480		goto out;
1481
1482	/* Check the validity of the new context. */
1483	rc = -EINVAL;
1484	if (!policydb_context_isvalid(pol, ctx))
1485		goto out;
1486	rc = 0;
1487out:
1488	if (rc)
1489		context_destroy(ctx);
1490	return rc;
1491}
1492
1493static int security_context_to_sid_core(struct selinux_state *state,
1494					const char *scontext, u32 scontext_len,
1495					u32 *sid, u32 def_sid, gfp_t gfp_flags,
1496					int force)
1497{
 
1498	struct policydb *policydb;
1499	struct sidtab *sidtab;
1500	char *scontext2, *str = NULL;
1501	struct context context;
1502	int rc = 0;
1503
1504	/* An empty security context is never valid. */
1505	if (!scontext_len)
1506		return -EINVAL;
1507
1508	/* Copy the string to allow changes and ensure a NUL terminator */
1509	scontext2 = kmemdup_nul(scontext, scontext_len, gfp_flags);
1510	if (!scontext2)
1511		return -ENOMEM;
1512
1513	if (!selinux_initialized(state)) {
1514		int i;
1515
1516		for (i = 1; i < SECINITSID_NUM; i++) {
1517			const char *s = initial_sid_to_string[i];
1518
1519			if (s && !strcmp(s, scontext2)) {
1520				*sid = i;
1521				goto out;
1522			}
1523		}
1524		*sid = SECINITSID_KERNEL;
1525		goto out;
1526	}
1527	*sid = SECSID_NULL;
1528
1529	if (force) {
1530		/* Save another copy for storing in uninterpreted form */
1531		rc = -ENOMEM;
1532		str = kstrdup(scontext2, gfp_flags);
1533		if (!str)
1534			goto out;
1535	}
1536	read_lock(&state->ss->policy_rwlock);
1537	policydb = &state->ss->policydb;
1538	sidtab = state->ss->sidtab;
 
 
1539	rc = string_to_context_struct(policydb, sidtab, scontext2,
1540				      &context, def_sid);
1541	if (rc == -EINVAL && force) {
1542		context.str = str;
1543		context.len = strlen(str) + 1;
1544		str = NULL;
1545	} else if (rc)
1546		goto out_unlock;
1547	rc = sidtab_context_to_sid(sidtab, &context, sid);
 
 
 
 
 
 
 
 
 
1548	context_destroy(&context);
1549out_unlock:
1550	read_unlock(&state->ss->policy_rwlock);
1551out:
1552	kfree(scontext2);
1553	kfree(str);
1554	return rc;
1555}
1556
1557/**
1558 * security_context_to_sid - Obtain a SID for a given security context.
 
1559 * @scontext: security context
1560 * @scontext_len: length in bytes
1561 * @sid: security identifier, SID
1562 * @gfp: context for the allocation
1563 *
1564 * Obtains a SID associated with the security context that
1565 * has the string representation specified by @scontext.
1566 * Returns -%EINVAL if the context is invalid, -%ENOMEM if insufficient
1567 * memory is available, or 0 on success.
1568 */
1569int security_context_to_sid(struct selinux_state *state,
1570			    const char *scontext, u32 scontext_len, u32 *sid,
1571			    gfp_t gfp)
1572{
1573	return security_context_to_sid_core(state, scontext, scontext_len,
1574					    sid, SECSID_NULL, gfp, 0);
1575}
1576
1577int security_context_str_to_sid(struct selinux_state *state,
1578				const char *scontext, u32 *sid, gfp_t gfp)
1579{
1580	return security_context_to_sid(state, scontext, strlen(scontext),
1581				       sid, gfp);
1582}
1583
1584/**
1585 * security_context_to_sid_default - Obtain a SID for a given security context,
1586 * falling back to specified default if needed.
1587 *
 
1588 * @scontext: security context
1589 * @scontext_len: length in bytes
1590 * @sid: security identifier, SID
1591 * @def_sid: default SID to assign on error
 
1592 *
1593 * Obtains a SID associated with the security context that
1594 * has the string representation specified by @scontext.
1595 * The default SID is passed to the MLS layer to be used to allow
1596 * kernel labeling of the MLS field if the MLS field is not present
1597 * (for upgrading to MLS without full relabel).
1598 * Implicitly forces adding of the context even if it cannot be mapped yet.
1599 * Returns -%EINVAL if the context is invalid, -%ENOMEM if insufficient
1600 * memory is available, or 0 on success.
1601 */
1602int security_context_to_sid_default(struct selinux_state *state,
1603				    const char *scontext, u32 scontext_len,
1604				    u32 *sid, u32 def_sid, gfp_t gfp_flags)
1605{
1606	return security_context_to_sid_core(state, scontext, scontext_len,
1607					    sid, def_sid, gfp_flags, 1);
1608}
1609
1610int security_context_to_sid_force(struct selinux_state *state,
1611				  const char *scontext, u32 scontext_len,
1612				  u32 *sid)
1613{
1614	return security_context_to_sid_core(state, scontext, scontext_len,
1615					    sid, SECSID_NULL, GFP_KERNEL, 1);
1616}
1617
1618static int compute_sid_handle_invalid_context(
1619	struct selinux_state *state,
 
1620	struct sidtab_entry *sentry,
1621	struct sidtab_entry *tentry,
1622	u16 tclass,
1623	struct context *newcontext)
1624{
1625	struct policydb *policydb = &state->ss->policydb;
1626	struct sidtab *sidtab = state->ss->sidtab;
1627	char *s = NULL, *t = NULL, *n = NULL;
1628	u32 slen, tlen, nlen;
1629	struct audit_buffer *ab;
1630
1631	if (sidtab_entry_to_string(policydb, sidtab, sentry, &s, &slen))
1632		goto out;
1633	if (sidtab_entry_to_string(policydb, sidtab, tentry, &t, &tlen))
1634		goto out;
1635	if (context_struct_to_string(policydb, newcontext, &n, &nlen))
1636		goto out;
1637	ab = audit_log_start(audit_context(), GFP_ATOMIC, AUDIT_SELINUX_ERR);
 
 
1638	audit_log_format(ab,
1639			 "op=security_compute_sid invalid_context=");
1640	/* no need to record the NUL with untrusted strings */
1641	audit_log_n_untrustedstring(ab, n, nlen - 1);
1642	audit_log_format(ab, " scontext=%s tcontext=%s tclass=%s",
1643			 s, t, sym_name(policydb, SYM_CLASSES, tclass-1));
1644	audit_log_end(ab);
1645out:
1646	kfree(s);
1647	kfree(t);
1648	kfree(n);
1649	if (!enforcing_enabled(state))
1650		return 0;
1651	return -EACCES;
1652}
1653
1654static void filename_compute_type(struct policydb *policydb,
1655				  struct context *newcontext,
1656				  u32 stype, u32 ttype, u16 tclass,
1657				  const char *objname)
1658{
1659	struct filename_trans_key ft;
1660	struct filename_trans_datum *datum;
1661
1662	/*
1663	 * Most filename trans rules are going to live in specific directories
1664	 * like /dev or /var/run.  This bitmap will quickly skip rule searches
1665	 * if the ttype does not contain any rules.
1666	 */
1667	if (!ebitmap_get_bit(&policydb->filename_trans_ttypes, ttype))
1668		return;
1669
1670	ft.ttype = ttype;
1671	ft.tclass = tclass;
1672	ft.name = objname;
1673
1674	datum = policydb_filenametr_search(policydb, &ft);
1675	while (datum) {
1676		if (ebitmap_get_bit(&datum->stypes, stype - 1)) {
1677			newcontext->type = datum->otype;
1678			return;
1679		}
1680		datum = datum->next;
1681	}
1682}
1683
1684static int security_compute_sid(struct selinux_state *state,
1685				u32 ssid,
1686				u32 tsid,
1687				u16 orig_tclass,
1688				u32 specified,
1689				const char *objname,
1690				u32 *out_sid,
1691				bool kern)
1692{
 
1693	struct policydb *policydb;
1694	struct sidtab *sidtab;
1695	struct class_datum *cladatum = NULL;
1696	struct context *scontext, *tcontext, newcontext;
1697	struct sidtab_entry *sentry, *tentry;
1698	struct avtab_key avkey;
1699	struct avtab_datum *avdatum;
1700	struct avtab_node *node;
1701	u16 tclass;
1702	int rc = 0;
1703	bool sock;
1704
1705	if (!selinux_initialized(state)) {
1706		switch (orig_tclass) {
1707		case SECCLASS_PROCESS: /* kernel value */
1708			*out_sid = ssid;
1709			break;
1710		default:
1711			*out_sid = tsid;
1712			break;
1713		}
1714		goto out;
1715	}
1716
 
 
1717	context_init(&newcontext);
1718
1719	read_lock(&state->ss->policy_rwlock);
 
 
1720
1721	if (kern) {
1722		tclass = unmap_class(&state->ss->map, orig_tclass);
1723		sock = security_is_socket_class(orig_tclass);
1724	} else {
1725		tclass = orig_tclass;
1726		sock = security_is_socket_class(map_class(&state->ss->map,
1727							  tclass));
1728	}
1729
1730	policydb = &state->ss->policydb;
1731	sidtab = state->ss->sidtab;
1732
1733	sentry = sidtab_search_entry(sidtab, ssid);
1734	if (!sentry) {
1735		pr_err("SELinux: %s:  unrecognized SID %d\n",
1736		       __func__, ssid);
1737		rc = -EINVAL;
1738		goto out_unlock;
1739	}
1740	tentry = sidtab_search_entry(sidtab, tsid);
1741	if (!tentry) {
1742		pr_err("SELinux: %s:  unrecognized SID %d\n",
1743		       __func__, tsid);
1744		rc = -EINVAL;
1745		goto out_unlock;
1746	}
1747
1748	scontext = &sentry->context;
1749	tcontext = &tentry->context;
1750
1751	if (tclass && tclass <= policydb->p_classes.nprim)
1752		cladatum = policydb->class_val_to_struct[tclass - 1];
1753
1754	/* Set the user identity. */
1755	switch (specified) {
1756	case AVTAB_TRANSITION:
1757	case AVTAB_CHANGE:
1758		if (cladatum && cladatum->default_user == DEFAULT_TARGET) {
1759			newcontext.user = tcontext->user;
1760		} else {
1761			/* notice this gets both DEFAULT_SOURCE and unset */
1762			/* Use the process user identity. */
1763			newcontext.user = scontext->user;
1764		}
1765		break;
1766	case AVTAB_MEMBER:
1767		/* Use the related object owner. */
1768		newcontext.user = tcontext->user;
1769		break;
1770	}
1771
1772	/* Set the role to default values. */
1773	if (cladatum && cladatum->default_role == DEFAULT_SOURCE) {
1774		newcontext.role = scontext->role;
1775	} else if (cladatum && cladatum->default_role == DEFAULT_TARGET) {
1776		newcontext.role = tcontext->role;
1777	} else {
1778		if ((tclass == policydb->process_class) || sock)
1779			newcontext.role = scontext->role;
1780		else
1781			newcontext.role = OBJECT_R_VAL;
1782	}
1783
1784	/* Set the type to default values. */
1785	if (cladatum && cladatum->default_type == DEFAULT_SOURCE) {
1786		newcontext.type = scontext->type;
1787	} else if (cladatum && cladatum->default_type == DEFAULT_TARGET) {
1788		newcontext.type = tcontext->type;
1789	} else {
1790		if ((tclass == policydb->process_class) || sock) {
1791			/* Use the type of process. */
1792			newcontext.type = scontext->type;
1793		} else {
1794			/* Use the type of the related object. */
1795			newcontext.type = tcontext->type;
1796		}
1797	}
1798
1799	/* Look for a type transition/member/change rule. */
1800	avkey.source_type = scontext->type;
1801	avkey.target_type = tcontext->type;
1802	avkey.target_class = tclass;
1803	avkey.specified = specified;
1804	avdatum = avtab_search(&policydb->te_avtab, &avkey);
1805
1806	/* If no permanent rule, also check for enabled conditional rules */
1807	if (!avdatum) {
1808		node = avtab_search_node(&policydb->te_cond_avtab, &avkey);
1809		for (; node; node = avtab_search_node_next(node, specified)) {
1810			if (node->key.specified & AVTAB_ENABLED) {
1811				avdatum = &node->datum;
1812				break;
1813			}
1814		}
1815	}
1816
1817	if (avdatum) {
1818		/* Use the type from the type transition/member/change rule. */
1819		newcontext.type = avdatum->u.data;
1820	}
1821
1822	/* if we have a objname this is a file trans check so check those rules */
1823	if (objname)
1824		filename_compute_type(policydb, &newcontext, scontext->type,
1825				      tcontext->type, tclass, objname);
1826
1827	/* Check for class-specific changes. */
1828	if (specified & AVTAB_TRANSITION) {
1829		/* Look for a role transition rule. */
1830		struct role_trans_datum *rtd;
1831		struct role_trans_key rtk = {
1832			.role = scontext->role,
1833			.type = tcontext->type,
1834			.tclass = tclass,
1835		};
1836
1837		rtd = policydb_roletr_search(policydb, &rtk);
1838		if (rtd)
1839			newcontext.role = rtd->new_role;
1840	}
1841
1842	/* Set the MLS attributes.
1843	   This is done last because it may allocate memory. */
1844	rc = mls_compute_sid(policydb, scontext, tcontext, tclass, specified,
1845			     &newcontext, sock);
1846	if (rc)
1847		goto out_unlock;
1848
1849	/* Check the validity of the context. */
1850	if (!policydb_context_isvalid(policydb, &newcontext)) {
1851		rc = compute_sid_handle_invalid_context(state, sentry, tentry,
1852							tclass, &newcontext);
 
1853		if (rc)
1854			goto out_unlock;
1855	}
1856	/* Obtain the sid for the context. */
1857	rc = sidtab_context_to_sid(sidtab, &newcontext, out_sid);
 
 
 
 
 
1858out_unlock:
1859	read_unlock(&state->ss->policy_rwlock);
1860	context_destroy(&newcontext);
1861out:
1862	return rc;
1863}
1864
1865/**
1866 * security_transition_sid - Compute the SID for a new subject/object.
 
1867 * @ssid: source security identifier
1868 * @tsid: target security identifier
1869 * @tclass: target security class
 
1870 * @out_sid: security identifier for new subject/object
1871 *
1872 * Compute a SID to use for labeling a new subject or object in the
1873 * class @tclass based on a SID pair (@ssid, @tsid).
1874 * Return -%EINVAL if any of the parameters are invalid, -%ENOMEM
1875 * if insufficient memory is available, or %0 if the new SID was
1876 * computed successfully.
1877 */
1878int security_transition_sid(struct selinux_state *state,
1879			    u32 ssid, u32 tsid, u16 tclass,
1880			    const struct qstr *qstr, u32 *out_sid)
1881{
1882	return security_compute_sid(state, ssid, tsid, tclass,
1883				    AVTAB_TRANSITION,
1884				    qstr ? qstr->name : NULL, out_sid, true);
1885}
1886
1887int security_transition_sid_user(struct selinux_state *state,
1888				 u32 ssid, u32 tsid, u16 tclass,
1889				 const char *objname, u32 *out_sid)
1890{
1891	return security_compute_sid(state, ssid, tsid, tclass,
1892				    AVTAB_TRANSITION,
1893				    objname, out_sid, false);
1894}
1895
1896/**
1897 * security_member_sid - Compute the SID for member selection.
 
1898 * @ssid: source security identifier
1899 * @tsid: target security identifier
1900 * @tclass: target security class
1901 * @out_sid: security identifier for selected member
1902 *
1903 * Compute a SID to use when selecting a member of a polyinstantiated
1904 * object of class @tclass based on a SID pair (@ssid, @tsid).
1905 * Return -%EINVAL if any of the parameters are invalid, -%ENOMEM
1906 * if insufficient memory is available, or %0 if the SID was
1907 * computed successfully.
1908 */
1909int security_member_sid(struct selinux_state *state,
1910			u32 ssid,
1911			u32 tsid,
1912			u16 tclass,
1913			u32 *out_sid)
1914{
1915	return security_compute_sid(state, ssid, tsid, tclass,
1916				    AVTAB_MEMBER, NULL,
1917				    out_sid, false);
1918}
1919
1920/**
1921 * security_change_sid - Compute the SID for object relabeling.
 
1922 * @ssid: source security identifier
1923 * @tsid: target security identifier
1924 * @tclass: target security class
1925 * @out_sid: security identifier for selected member
1926 *
1927 * Compute a SID to use for relabeling an object of class @tclass
1928 * based on a SID pair (@ssid, @tsid).
1929 * Return -%EINVAL if any of the parameters are invalid, -%ENOMEM
1930 * if insufficient memory is available, or %0 if the SID was
1931 * computed successfully.
1932 */
1933int security_change_sid(struct selinux_state *state,
1934			u32 ssid,
1935			u32 tsid,
1936			u16 tclass,
1937			u32 *out_sid)
1938{
1939	return security_compute_sid(state,
1940				    ssid, tsid, tclass, AVTAB_CHANGE, NULL,
1941				    out_sid, false);
1942}
1943
1944static inline int convert_context_handle_invalid_context(
1945	struct selinux_state *state,
 
1946	struct context *context)
1947{
1948	struct policydb *policydb = &state->ss->policydb;
1949	char *s;
1950	u32 len;
1951
1952	if (enforcing_enabled(state))
1953		return -EINVAL;
1954
1955	if (!context_struct_to_string(policydb, context, &s, &len)) {
1956		pr_warn("SELinux:  Context %s would be invalid if enforcing\n",
1957			s);
1958		kfree(s);
1959	}
1960	return 0;
1961}
1962
1963struct convert_context_args {
1964	struct selinux_state *state;
1965	struct policydb *oldp;
1966	struct policydb *newp;
1967};
1968
1969/*
1970 * Convert the values in the security context
1971 * structure `oldc' from the values specified
1972 * in the policy `p->oldp' to the values specified
1973 * in the policy `p->newp', storing the new context
1974 * in `newc'.  Verify that the context is valid
1975 * under the new policy.
1976 */
1977static int convert_context(struct context *oldc, struct context *newc, void *p)
1978{
1979	struct convert_context_args *args;
1980	struct ocontext *oc;
1981	struct role_datum *role;
1982	struct type_datum *typdatum;
1983	struct user_datum *usrdatum;
1984	char *s;
1985	u32 len;
1986	int rc;
1987
1988	args = p;
1989
1990	if (oldc->str) {
1991		s = kstrdup(oldc->str, GFP_KERNEL);
1992		if (!s)
1993			return -ENOMEM;
1994
1995		rc = string_to_context_struct(args->newp, NULL, s,
1996					      newc, SECSID_NULL);
1997		if (rc == -EINVAL) {
1998			/*
1999			 * Retain string representation for later mapping.
2000			 *
2001			 * IMPORTANT: We need to copy the contents of oldc->str
2002			 * back into s again because string_to_context_struct()
2003			 * may have garbled it.
2004			 */
2005			memcpy(s, oldc->str, oldc->len);
2006			context_init(newc);
2007			newc->str = s;
2008			newc->len = oldc->len;
2009			return 0;
2010		}
2011		kfree(s);
2012		if (rc) {
2013			/* Other error condition, e.g. ENOMEM. */
2014			pr_err("SELinux:   Unable to map context %s, rc = %d.\n",
2015			       oldc->str, -rc);
2016			return rc;
2017		}
2018		pr_info("SELinux:  Context %s became valid (mapped).\n",
2019			oldc->str);
2020		return 0;
2021	}
2022
2023	context_init(newc);
2024
2025	/* Convert the user. */
2026	rc = -EINVAL;
2027	usrdatum = symtab_search(&args->newp->p_users,
2028				 sym_name(args->oldp,
2029					  SYM_USERS, oldc->user - 1));
2030	if (!usrdatum)
2031		goto bad;
2032	newc->user = usrdatum->value;
2033
2034	/* Convert the role. */
2035	rc = -EINVAL;
2036	role = symtab_search(&args->newp->p_roles,
2037			     sym_name(args->oldp, SYM_ROLES, oldc->role - 1));
2038	if (!role)
2039		goto bad;
2040	newc->role = role->value;
2041
2042	/* Convert the type. */
2043	rc = -EINVAL;
2044	typdatum = symtab_search(&args->newp->p_types,
2045				 sym_name(args->oldp,
2046					  SYM_TYPES, oldc->type - 1));
2047	if (!typdatum)
2048		goto bad;
2049	newc->type = typdatum->value;
2050
2051	/* Convert the MLS fields if dealing with MLS policies */
2052	if (args->oldp->mls_enabled && args->newp->mls_enabled) {
2053		rc = mls_convert_context(args->oldp, args->newp, oldc, newc);
2054		if (rc)
2055			goto bad;
2056	} else if (!args->oldp->mls_enabled && args->newp->mls_enabled) {
2057		/*
2058		 * Switching between non-MLS and MLS policy:
2059		 * ensure that the MLS fields of the context for all
2060		 * existing entries in the sidtab are filled in with a
2061		 * suitable default value, likely taken from one of the
2062		 * initial SIDs.
2063		 */
2064		oc = args->newp->ocontexts[OCON_ISID];
2065		while (oc && oc->sid[0] != SECINITSID_UNLABELED)
2066			oc = oc->next;
2067		rc = -EINVAL;
2068		if (!oc) {
2069			pr_err("SELinux:  unable to look up"
2070				" the initial SIDs list\n");
2071			goto bad;
2072		}
2073		rc = mls_range_set(newc, &oc->context[0].range);
2074		if (rc)
2075			goto bad;
2076	}
2077
2078	/* Check the validity of the new context. */
2079	if (!policydb_context_isvalid(args->newp, newc)) {
2080		rc = convert_context_handle_invalid_context(args->state, oldc);
 
2081		if (rc)
2082			goto bad;
2083	}
2084
2085	return 0;
2086bad:
2087	/* Map old representation to string and save it. */
2088	rc = context_struct_to_string(args->oldp, oldc, &s, &len);
2089	if (rc)
2090		return rc;
2091	context_destroy(newc);
2092	newc->str = s;
2093	newc->len = len;
2094	pr_info("SELinux:  Context %s became invalid (unmapped).\n",
2095		newc->str);
2096	return 0;
2097}
2098
2099static void security_load_policycaps(struct selinux_state *state)
 
2100{
2101	struct policydb *p = &state->ss->policydb;
2102	unsigned int i;
2103	struct ebitmap_node *node;
2104
 
 
2105	for (i = 0; i < ARRAY_SIZE(state->policycap); i++)
2106		state->policycap[i] = ebitmap_get_bit(&p->policycaps, i);
 
2107
2108	for (i = 0; i < ARRAY_SIZE(selinux_policycap_names); i++)
2109		pr_info("SELinux:  policy capability %s=%d\n",
2110			selinux_policycap_names[i],
2111			ebitmap_get_bit(&p->policycaps, i));
2112
2113	ebitmap_for_each_positive_bit(&p->policycaps, node, i) {
2114		if (i >= ARRAY_SIZE(selinux_policycap_names))
2115			pr_info("SELinux:  unknown policy capability %u\n",
2116				i);
2117	}
2118}
2119
2120static int security_preserve_bools(struct selinux_state *state,
2121				   struct policydb *newpolicydb);
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
2122
2123/**
2124 * security_load_policy - Load a security policy configuration.
 
2125 * @data: binary policy data
2126 * @len: length of data in bytes
 
2127 *
2128 * Load a new set of security policy configuration data,
2129 * validate it and convert the SID table as necessary.
2130 * This function will flush the access vector cache after
2131 * loading the new policy.
2132 */
2133int security_load_policy(struct selinux_state *state, void *data, size_t len)
 
2134{
2135	struct policydb *policydb;
2136	struct sidtab *oldsidtab, *newsidtab;
2137	struct policydb *oldpolicydb, *newpolicydb;
2138	struct selinux_mapping *oldmapping;
2139	struct selinux_map newmap;
2140	struct sidtab_convert_params convert_params;
2141	struct convert_context_args args;
2142	u32 seqno;
2143	int rc = 0;
2144	struct policy_file file = { data, len }, *fp = &file;
2145
2146	policydb = &state->ss->policydb;
2147
2148	newsidtab = kmalloc(sizeof(*newsidtab), GFP_KERNEL);
2149	if (!newsidtab)
2150		return -ENOMEM;
2151
2152	if (!selinux_initialized(state)) {
2153		rc = policydb_read(policydb, fp);
2154		if (rc) {
2155			kfree(newsidtab);
2156			return rc;
2157		}
2158
2159		policydb->len = len;
2160		rc = selinux_set_mapping(policydb, secclass_map,
2161					 &state->ss->map);
2162		if (rc) {
2163			kfree(newsidtab);
2164			policydb_destroy(policydb);
2165			return rc;
2166		}
2167
2168		rc = policydb_load_isids(policydb, newsidtab);
2169		if (rc) {
2170			kfree(newsidtab);
2171			policydb_destroy(policydb);
2172			return rc;
2173		}
2174
2175		state->ss->sidtab = newsidtab;
2176		security_load_policycaps(state);
2177		selinux_mark_initialized(state);
2178		seqno = ++state->ss->latest_granting;
2179		selinux_complete_init();
2180		avc_ss_reset(state->avc, seqno);
2181		selnl_notify_policyload(seqno);
2182		selinux_status_update_policyload(state, seqno);
2183		selinux_netlbl_cache_invalidate();
2184		selinux_xfrm_notify_policyload();
2185		return 0;
2186	}
2187
2188	oldpolicydb = kcalloc(2, sizeof(*oldpolicydb), GFP_KERNEL);
2189	if (!oldpolicydb) {
2190		kfree(newsidtab);
2191		return -ENOMEM;
2192	}
2193	newpolicydb = oldpolicydb + 1;
2194
2195	rc = policydb_read(newpolicydb, fp);
2196	if (rc) {
2197		kfree(newsidtab);
2198		goto out;
2199	}
2200
2201	newpolicydb->len = len;
2202	/* If switching between different policy types, log MLS status */
2203	if (policydb->mls_enabled && !newpolicydb->mls_enabled)
2204		pr_info("SELinux: Disabling MLS support...\n");
2205	else if (!policydb->mls_enabled && newpolicydb->mls_enabled)
2206		pr_info("SELinux: Enabling MLS support...\n");
2207
2208	rc = policydb_load_isids(newpolicydb, newsidtab);
2209	if (rc) {
2210		pr_err("SELinux:  unable to load the initial SIDs\n");
2211		policydb_destroy(newpolicydb);
2212		kfree(newsidtab);
2213		goto out;
2214	}
2215
2216	rc = selinux_set_mapping(newpolicydb, secclass_map, &newmap);
2217	if (rc)
2218		goto err;
2219
2220	rc = security_preserve_bools(state, newpolicydb);
 
2221	if (rc) {
2222		pr_err("SELinux:  unable to preserve booleans\n");
2223		goto err;
2224	}
2225
2226	oldsidtab = state->ss->sidtab;
2227
2228	/*
2229	 * Convert the internal representations of contexts
2230	 * in the new SID table.
2231	 */
2232	args.state = state;
2233	args.oldp = policydb;
2234	args.newp = newpolicydb;
2235
2236	convert_params.func = convert_context;
2237	convert_params.args = &args;
2238	convert_params.target = newsidtab;
2239
2240	rc = sidtab_convert(oldsidtab, &convert_params);
 
 
 
 
 
 
 
 
 
 
 
 
 
2241	if (rc) {
2242		pr_err("SELinux:  unable to convert the internal"
2243			" representation of contexts in the new SID"
2244			" table\n");
2245		goto err;
2246	}
2247
2248	/* Save the old policydb and SID table to free later. */
2249	memcpy(oldpolicydb, policydb, sizeof(*policydb));
2250
2251	/* Install the new policydb and SID table. */
2252	write_lock_irq(&state->ss->policy_rwlock);
2253	memcpy(policydb, newpolicydb, sizeof(*policydb));
2254	state->ss->sidtab = newsidtab;
2255	security_load_policycaps(state);
2256	oldmapping = state->ss->map.mapping;
2257	state->ss->map.mapping = newmap.mapping;
2258	state->ss->map.size = newmap.size;
2259	seqno = ++state->ss->latest_granting;
2260	write_unlock_irq(&state->ss->policy_rwlock);
2261
2262	/* Free the old policydb and SID table. */
2263	policydb_destroy(oldpolicydb);
2264	sidtab_destroy(oldsidtab);
2265	kfree(oldsidtab);
2266	kfree(oldmapping);
2267
2268	avc_ss_reset(state->avc, seqno);
2269	selnl_notify_policyload(seqno);
2270	selinux_status_update_policyload(state, seqno);
2271	selinux_netlbl_cache_invalidate();
2272	selinux_xfrm_notify_policyload();
2273
2274	rc = 0;
2275	goto out;
 
 
 
 
 
 
 
 
 
 
2276
2277err:
2278	kfree(newmap.mapping);
2279	sidtab_destroy(newsidtab);
2280	kfree(newsidtab);
2281	policydb_destroy(newpolicydb);
2282
2283out:
2284	kfree(oldpolicydb);
2285	return rc;
2286}
2287
2288size_t security_policydb_len(struct selinux_state *state)
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
2289{
2290	struct policydb *p = &state->ss->policydb;
2291	size_t len;
2292
2293	read_lock(&state->ss->policy_rwlock);
2294	len = p->len;
2295	read_unlock(&state->ss->policy_rwlock);
 
 
 
2296
2297	return len;
 
 
 
 
 
 
 
2298}
2299
2300/**
2301 * security_port_sid - Obtain the SID for a port.
 
2302 * @protocol: protocol number
2303 * @port: port number
2304 * @out_sid: security identifier
2305 */
2306int security_port_sid(struct selinux_state *state,
2307		      u8 protocol, u16 port, u32 *out_sid)
2308{
 
2309	struct policydb *policydb;
2310	struct sidtab *sidtab;
2311	struct ocontext *c;
2312	int rc = 0;
2313
2314	read_lock(&state->ss->policy_rwlock);
 
 
 
2315
2316	policydb = &state->ss->policydb;
2317	sidtab = state->ss->sidtab;
 
 
 
 
2318
2319	c = policydb->ocontexts[OCON_PORT];
2320	while (c) {
2321		if (c->u.port.protocol == protocol &&
2322		    c->u.port.low_port <= port &&
2323		    c->u.port.high_port >= port)
2324			break;
2325		c = c->next;
2326	}
2327
2328	if (c) {
2329		if (!c->sid[0]) {
2330			rc = sidtab_context_to_sid(sidtab, &c->context[0],
2331						   &c->sid[0]);
2332			if (rc)
2333				goto out;
2334		}
2335		*out_sid = c->sid[0];
 
2336	} else {
2337		*out_sid = SECINITSID_PORT;
2338	}
2339
2340out:
2341	read_unlock(&state->ss->policy_rwlock);
2342	return rc;
2343}
2344
2345/**
2346 * security_pkey_sid - Obtain the SID for a pkey.
 
2347 * @subnet_prefix: Subnet Prefix
2348 * @pkey_num: pkey number
2349 * @out_sid: security identifier
2350 */
2351int security_ib_pkey_sid(struct selinux_state *state,
2352			 u64 subnet_prefix, u16 pkey_num, u32 *out_sid)
2353{
 
2354	struct policydb *policydb;
2355	struct sidtab *sidtab;
2356	struct ocontext *c;
2357	int rc = 0;
2358
2359	read_lock(&state->ss->policy_rwlock);
 
 
 
2360
2361	policydb = &state->ss->policydb;
2362	sidtab = state->ss->sidtab;
 
 
 
 
2363
2364	c = policydb->ocontexts[OCON_IBPKEY];
2365	while (c) {
2366		if (c->u.ibpkey.low_pkey <= pkey_num &&
2367		    c->u.ibpkey.high_pkey >= pkey_num &&
2368		    c->u.ibpkey.subnet_prefix == subnet_prefix)
2369			break;
2370
2371		c = c->next;
2372	}
2373
2374	if (c) {
2375		if (!c->sid[0]) {
2376			rc = sidtab_context_to_sid(sidtab,
2377						   &c->context[0],
2378						   &c->sid[0]);
2379			if (rc)
2380				goto out;
2381		}
2382		*out_sid = c->sid[0];
 
2383	} else
2384		*out_sid = SECINITSID_UNLABELED;
2385
2386out:
2387	read_unlock(&state->ss->policy_rwlock);
2388	return rc;
2389}
2390
2391/**
2392 * security_ib_endport_sid - Obtain the SID for a subnet management interface.
 
2393 * @dev_name: device name
2394 * @port: port number
2395 * @out_sid: security identifier
2396 */
2397int security_ib_endport_sid(struct selinux_state *state,
2398			    const char *dev_name, u8 port_num, u32 *out_sid)
2399{
 
2400	struct policydb *policydb;
2401	struct sidtab *sidtab;
2402	struct ocontext *c;
2403	int rc = 0;
2404
2405	read_lock(&state->ss->policy_rwlock);
 
 
 
2406
2407	policydb = &state->ss->policydb;
2408	sidtab = state->ss->sidtab;
 
 
 
 
2409
2410	c = policydb->ocontexts[OCON_IBENDPORT];
2411	while (c) {
2412		if (c->u.ibendport.port == port_num &&
2413		    !strncmp(c->u.ibendport.dev_name,
2414			     dev_name,
2415			     IB_DEVICE_NAME_MAX))
2416			break;
2417
2418		c = c->next;
2419	}
2420
2421	if (c) {
2422		if (!c->sid[0]) {
2423			rc = sidtab_context_to_sid(sidtab, &c->context[0],
2424						   &c->sid[0]);
2425			if (rc)
2426				goto out;
2427		}
2428		*out_sid = c->sid[0];
 
2429	} else
2430		*out_sid = SECINITSID_UNLABELED;
2431
2432out:
2433	read_unlock(&state->ss->policy_rwlock);
2434	return rc;
2435}
2436
2437/**
2438 * security_netif_sid - Obtain the SID for a network interface.
 
2439 * @name: interface name
2440 * @if_sid: interface SID
2441 */
2442int security_netif_sid(struct selinux_state *state,
2443		       char *name, u32 *if_sid)
2444{
 
2445	struct policydb *policydb;
2446	struct sidtab *sidtab;
2447	int rc = 0;
2448	struct ocontext *c;
2449
2450	read_lock(&state->ss->policy_rwlock);
 
 
 
2451
2452	policydb = &state->ss->policydb;
2453	sidtab = state->ss->sidtab;
 
 
 
 
2454
2455	c = policydb->ocontexts[OCON_NETIF];
2456	while (c) {
2457		if (strcmp(name, c->u.name) == 0)
2458			break;
2459		c = c->next;
2460	}
2461
2462	if (c) {
2463		if (!c->sid[0] || !c->sid[1]) {
2464			rc = sidtab_context_to_sid(sidtab, &c->context[0],
2465						   &c->sid[0]);
2466			if (rc)
2467				goto out;
2468			rc = sidtab_context_to_sid(sidtab, &c->context[1],
2469						   &c->sid[1]);
2470			if (rc)
2471				goto out;
2472		}
2473		*if_sid = c->sid[0];
 
2474	} else
2475		*if_sid = SECINITSID_NETIF;
2476
2477out:
2478	read_unlock(&state->ss->policy_rwlock);
2479	return rc;
2480}
2481
2482static int match_ipv6_addrmask(u32 *input, u32 *addr, u32 *mask)
2483{
2484	int i, fail = 0;
2485
2486	for (i = 0; i < 4; i++)
2487		if (addr[i] != (input[i] & mask[i])) {
2488			fail = 1;
2489			break;
2490		}
2491
2492	return !fail;
2493}
2494
2495/**
2496 * security_node_sid - Obtain the SID for a node (host).
 
2497 * @domain: communication domain aka address family
2498 * @addrp: address
2499 * @addrlen: address length in bytes
2500 * @out_sid: security identifier
2501 */
2502int security_node_sid(struct selinux_state *state,
2503		      u16 domain,
2504		      void *addrp,
2505		      u32 addrlen,
2506		      u32 *out_sid)
2507{
 
2508	struct policydb *policydb;
2509	struct sidtab *sidtab;
2510	int rc;
2511	struct ocontext *c;
2512
2513	read_lock(&state->ss->policy_rwlock);
 
 
 
2514
2515	policydb = &state->ss->policydb;
2516	sidtab = state->ss->sidtab;
 
 
 
2517
2518	switch (domain) {
2519	case AF_INET: {
2520		u32 addr;
2521
2522		rc = -EINVAL;
2523		if (addrlen != sizeof(u32))
2524			goto out;
2525
2526		addr = *((u32 *)addrp);
2527
2528		c = policydb->ocontexts[OCON_NODE];
2529		while (c) {
2530			if (c->u.node.addr == (addr & c->u.node.mask))
2531				break;
2532			c = c->next;
2533		}
2534		break;
2535	}
2536
2537	case AF_INET6:
2538		rc = -EINVAL;
2539		if (addrlen != sizeof(u64) * 2)
2540			goto out;
2541		c = policydb->ocontexts[OCON_NODE6];
2542		while (c) {
2543			if (match_ipv6_addrmask(addrp, c->u.node6.addr,
2544						c->u.node6.mask))
2545				break;
2546			c = c->next;
2547		}
2548		break;
2549
2550	default:
2551		rc = 0;
2552		*out_sid = SECINITSID_NODE;
2553		goto out;
2554	}
2555
2556	if (c) {
2557		if (!c->sid[0]) {
2558			rc = sidtab_context_to_sid(sidtab,
2559						   &c->context[0],
2560						   &c->sid[0]);
2561			if (rc)
2562				goto out;
2563		}
2564		*out_sid = c->sid[0];
 
2565	} else {
2566		*out_sid = SECINITSID_NODE;
2567	}
2568
2569	rc = 0;
2570out:
2571	read_unlock(&state->ss->policy_rwlock);
2572	return rc;
2573}
2574
2575#define SIDS_NEL 25
2576
2577/**
2578 * security_get_user_sids - Obtain reachable SIDs for a user.
 
2579 * @fromsid: starting SID
2580 * @username: username
2581 * @sids: array of reachable SIDs for user
2582 * @nel: number of elements in @sids
2583 *
2584 * Generate the set of SIDs for legal security contexts
2585 * for a given user that can be reached by @fromsid.
2586 * Set *@sids to point to a dynamically allocated
2587 * array containing the set of SIDs.  Set *@nel to the
2588 * number of elements in the array.
2589 */
2590
2591int security_get_user_sids(struct selinux_state *state,
2592			   u32 fromsid,
2593			   char *username,
2594			   u32 **sids,
2595			   u32 *nel)
2596{
 
2597	struct policydb *policydb;
2598	struct sidtab *sidtab;
2599	struct context *fromcon, usercon;
2600	u32 *mysids = NULL, *mysids2, sid;
2601	u32 mynel = 0, maxnel = SIDS_NEL;
2602	struct user_datum *user;
2603	struct role_datum *role;
2604	struct ebitmap_node *rnode, *tnode;
2605	int rc = 0, i, j;
2606
2607	*sids = NULL;
2608	*nel = 0;
2609
2610	if (!selinux_initialized(state))
2611		goto out;
2612
2613	read_lock(&state->ss->policy_rwlock);
 
 
2614
2615	policydb = &state->ss->policydb;
2616	sidtab = state->ss->sidtab;
 
 
 
 
2617
2618	context_init(&usercon);
2619
2620	rc = -EINVAL;
2621	fromcon = sidtab_search(sidtab, fromsid);
2622	if (!fromcon)
2623		goto out_unlock;
2624
2625	rc = -EINVAL;
2626	user = symtab_search(&policydb->p_users, username);
2627	if (!user)
2628		goto out_unlock;
2629
2630	usercon.user = user->value;
2631
2632	rc = -ENOMEM;
2633	mysids = kcalloc(maxnel, sizeof(*mysids), GFP_ATOMIC);
2634	if (!mysids)
2635		goto out_unlock;
2636
2637	ebitmap_for_each_positive_bit(&user->roles, rnode, i) {
2638		role = policydb->role_val_to_struct[i];
2639		usercon.role = i + 1;
2640		ebitmap_for_each_positive_bit(&role->types, tnode, j) {
2641			usercon.type = j + 1;
2642
2643			if (mls_setup_user_range(policydb, fromcon, user,
2644						 &usercon))
2645				continue;
2646
2647			rc = sidtab_context_to_sid(sidtab, &usercon, &sid);
 
 
 
 
2648			if (rc)
2649				goto out_unlock;
2650			if (mynel < maxnel) {
2651				mysids[mynel++] = sid;
2652			} else {
2653				rc = -ENOMEM;
2654				maxnel += SIDS_NEL;
2655				mysids2 = kcalloc(maxnel, sizeof(*mysids2), GFP_ATOMIC);
2656				if (!mysids2)
2657					goto out_unlock;
2658				memcpy(mysids2, mysids, mynel * sizeof(*mysids2));
2659				kfree(mysids);
2660				mysids = mysids2;
2661				mysids[mynel++] = sid;
2662			}
2663		}
2664	}
2665	rc = 0;
2666out_unlock:
2667	read_unlock(&state->ss->policy_rwlock);
2668	if (rc || !mynel) {
2669		kfree(mysids);
2670		goto out;
2671	}
2672
2673	rc = -ENOMEM;
2674	mysids2 = kcalloc(mynel, sizeof(*mysids2), GFP_KERNEL);
2675	if (!mysids2) {
2676		kfree(mysids);
2677		goto out;
2678	}
2679	for (i = 0, j = 0; i < mynel; i++) {
2680		struct av_decision dummy_avd;
2681		rc = avc_has_perm_noaudit(state,
2682					  fromsid, mysids[i],
2683					  SECCLASS_PROCESS, /* kernel value */
2684					  PROCESS__TRANSITION, AVC_STRICT,
2685					  &dummy_avd);
2686		if (!rc)
2687			mysids2[j++] = mysids[i];
2688		cond_resched();
2689	}
2690	rc = 0;
2691	kfree(mysids);
2692	*sids = mysids2;
2693	*nel = j;
2694out:
2695	return rc;
2696}
2697
2698/**
2699 * __security_genfs_sid - Helper to obtain a SID for a file in a filesystem
 
2700 * @fstype: filesystem type
2701 * @path: path from root of mount
2702 * @sclass: file security class
2703 * @sid: SID for path
2704 *
2705 * Obtain a SID to use for a file in a filesystem that
2706 * cannot support xattr or use a fixed labeling behavior like
2707 * transition SIDs or task SIDs.
2708 *
2709 * The caller must acquire the policy_rwlock before calling this function.
 
2710 */
2711static inline int __security_genfs_sid(struct selinux_state *state,
2712				       const char *fstype,
2713				       char *path,
2714				       u16 orig_sclass,
2715				       u32 *sid)
2716{
2717	struct policydb *policydb = &state->ss->policydb;
2718	struct sidtab *sidtab = state->ss->sidtab;
2719	int len;
2720	u16 sclass;
2721	struct genfs *genfs;
2722	struct ocontext *c;
2723	int rc, cmp = 0;
2724
2725	while (path[0] == '/' && path[1] == '/')
2726		path++;
2727
2728	sclass = unmap_class(&state->ss->map, orig_sclass);
2729	*sid = SECINITSID_UNLABELED;
2730
2731	for (genfs = policydb->genfs; genfs; genfs = genfs->next) {
2732		cmp = strcmp(fstype, genfs->fstype);
2733		if (cmp <= 0)
2734			break;
2735	}
2736
2737	rc = -ENOENT;
2738	if (!genfs || cmp)
2739		goto out;
2740
2741	for (c = genfs->head; c; c = c->next) {
2742		len = strlen(c->u.name);
2743		if ((!c->v.sclass || sclass == c->v.sclass) &&
2744		    (strncmp(c->u.name, path, len) == 0))
2745			break;
2746	}
2747
2748	rc = -ENOENT;
2749	if (!c)
2750		goto out;
2751
2752	if (!c->sid[0]) {
2753		rc = sidtab_context_to_sid(sidtab, &c->context[0], &c->sid[0]);
2754		if (rc)
2755			goto out;
2756	}
2757
2758	*sid = c->sid[0];
2759	rc = 0;
2760out:
2761	return rc;
2762}
2763
2764/**
2765 * security_genfs_sid - Obtain a SID for a file in a filesystem
 
2766 * @fstype: filesystem type
2767 * @path: path from root of mount
2768 * @sclass: file security class
2769 * @sid: SID for path
2770 *
2771 * Acquire policy_rwlock before calling __security_genfs_sid() and release
2772 * it afterward.
2773 */
2774int security_genfs_sid(struct selinux_state *state,
2775		       const char *fstype,
2776		       char *path,
2777		       u16 orig_sclass,
2778		       u32 *sid)
2779{
 
2780	int retval;
2781
2782	read_lock(&state->ss->policy_rwlock);
2783	retval = __security_genfs_sid(state, fstype, path, orig_sclass, sid);
2784	read_unlock(&state->ss->policy_rwlock);
 
 
 
 
 
 
 
 
 
2785	return retval;
2786}
2787
 
 
 
 
 
 
 
 
 
 
2788/**
2789 * security_fs_use - Determine how to handle labeling for a filesystem.
 
2790 * @sb: superblock in question
2791 */
2792int security_fs_use(struct selinux_state *state, struct super_block *sb)
2793{
 
2794	struct policydb *policydb;
2795	struct sidtab *sidtab;
2796	int rc = 0;
2797	struct ocontext *c;
2798	struct superblock_security_struct *sbsec = sb->s_security;
2799	const char *fstype = sb->s_type->name;
2800
2801	read_lock(&state->ss->policy_rwlock);
 
 
 
 
2802
2803	policydb = &state->ss->policydb;
2804	sidtab = state->ss->sidtab;
 
 
 
2805
2806	c = policydb->ocontexts[OCON_FSUSE];
2807	while (c) {
2808		if (strcmp(fstype, c->u.name) == 0)
2809			break;
2810		c = c->next;
2811	}
2812
2813	if (c) {
2814		sbsec->behavior = c->v.behavior;
2815		if (!c->sid[0]) {
2816			rc = sidtab_context_to_sid(sidtab, &c->context[0],
2817						   &c->sid[0]);
2818			if (rc)
2819				goto out;
2820		}
2821		sbsec->sid = c->sid[0];
 
2822	} else {
2823		rc = __security_genfs_sid(state, fstype, "/", SECCLASS_DIR,
2824					  &sbsec->sid);
 
 
 
 
2825		if (rc) {
2826			sbsec->behavior = SECURITY_FS_USE_NONE;
2827			rc = 0;
2828		} else {
2829			sbsec->behavior = SECURITY_FS_USE_GENFS;
2830		}
2831	}
2832
2833out:
2834	read_unlock(&state->ss->policy_rwlock);
2835	return rc;
2836}
2837
2838int security_get_bools(struct selinux_state *state,
2839		       u32 *len, char ***names, int **values)
2840{
2841	struct policydb *policydb;
2842	u32 i;
2843	int rc;
2844
2845	if (!selinux_initialized(state)) {
2846		*len = 0;
2847		*names = NULL;
2848		*values = NULL;
2849		return 0;
2850	}
2851
2852	read_lock(&state->ss->policy_rwlock);
2853
2854	policydb = &state->ss->policydb;
2855
2856	*names = NULL;
2857	*values = NULL;
2858
2859	rc = 0;
2860	*len = policydb->p_bools.nprim;
2861	if (!*len)
2862		goto out;
2863
2864	rc = -ENOMEM;
2865	*names = kcalloc(*len, sizeof(char *), GFP_ATOMIC);
2866	if (!*names)
2867		goto err;
2868
2869	rc = -ENOMEM;
2870	*values = kcalloc(*len, sizeof(int), GFP_ATOMIC);
2871	if (!*values)
2872		goto err;
2873
2874	for (i = 0; i < *len; i++) {
2875		(*values)[i] = policydb->bool_val_to_struct[i]->state;
2876
2877		rc = -ENOMEM;
2878		(*names)[i] = kstrdup(sym_name(policydb, SYM_BOOLS, i),
2879				      GFP_ATOMIC);
2880		if (!(*names)[i])
2881			goto err;
2882	}
2883	rc = 0;
2884out:
2885	read_unlock(&state->ss->policy_rwlock);
2886	return rc;
2887err:
2888	if (*names) {
2889		for (i = 0; i < *len; i++)
2890			kfree((*names)[i]);
2891		kfree(*names);
2892	}
2893	kfree(*values);
2894	*len = 0;
2895	*names = NULL;
2896	*values = NULL;
2897	goto out;
2898}
2899
2900
2901int security_set_bools(struct selinux_state *state, u32 len, int *values)
2902{
2903	struct policydb *policydb;
2904	int rc;
2905	u32 i, lenp, seqno = 0;
2906
2907	write_lock_irq(&state->ss->policy_rwlock);
 
2908
2909	policydb = &state->ss->policydb;
 
2910
2911	rc = -EFAULT;
2912	lenp = policydb->p_bools.nprim;
2913	if (len != lenp)
2914		goto out;
 
 
 
 
 
 
 
 
 
 
 
 
 
2915
 
2916	for (i = 0; i < len; i++) {
2917		if (!!values[i] != policydb->bool_val_to_struct[i]->state) {
 
 
 
2918			audit_log(audit_context(), GFP_ATOMIC,
2919				AUDIT_MAC_CONFIG_CHANGE,
2920				"bool=%s val=%d old_val=%d auid=%u ses=%u",
2921				sym_name(policydb, SYM_BOOLS, i),
2922				!!values[i],
2923				policydb->bool_val_to_struct[i]->state,
2924				from_kuid(&init_user_ns, audit_get_loginuid(current)),
2925				audit_get_sessionid(current));
 
2926		}
2927		if (values[i])
2928			policydb->bool_val_to_struct[i]->state = 1;
2929		else
2930			policydb->bool_val_to_struct[i]->state = 0;
2931	}
2932
2933	evaluate_cond_nodes(policydb);
 
2934
2935	seqno = ++state->ss->latest_granting;
2936	rc = 0;
2937out:
2938	write_unlock_irq(&state->ss->policy_rwlock);
2939	if (!rc) {
2940		avc_ss_reset(state->avc, seqno);
2941		selnl_notify_policyload(seqno);
2942		selinux_status_update_policyload(state, seqno);
2943		selinux_xfrm_notify_policyload();
2944	}
2945	return rc;
 
 
 
 
 
 
 
2946}
2947
2948int security_get_bool_value(struct selinux_state *state,
2949			    u32 index)
2950{
 
2951	struct policydb *policydb;
2952	int rc;
2953	u32 len;
2954
2955	read_lock(&state->ss->policy_rwlock);
 
2956
2957	policydb = &state->ss->policydb;
 
 
2958
2959	rc = -EFAULT;
2960	len = policydb->p_bools.nprim;
2961	if (index >= len)
2962		goto out;
2963
2964	rc = policydb->bool_val_to_struct[index]->state;
2965out:
2966	read_unlock(&state->ss->policy_rwlock);
2967	return rc;
2968}
2969
2970static int security_preserve_bools(struct selinux_state *state,
2971				   struct policydb *policydb)
2972{
2973	int rc, *bvalues = NULL;
2974	char **bnames = NULL;
2975	struct cond_bool_datum *booldatum;
2976	u32 i, nbools = 0;
2977
2978	rc = security_get_bools(state, &nbools, &bnames, &bvalues);
2979	if (rc)
2980		goto out;
2981	for (i = 0; i < nbools; i++) {
2982		booldatum = symtab_search(&policydb->p_bools, bnames[i]);
 
2983		if (booldatum)
2984			booldatum->state = bvalues[i];
2985	}
2986	evaluate_cond_nodes(policydb);
2987
2988out:
2989	if (bnames) {
2990		for (i = 0; i < nbools; i++)
2991			kfree(bnames[i]);
2992	}
2993	kfree(bnames);
2994	kfree(bvalues);
2995	return rc;
2996}
2997
2998/*
2999 * security_sid_mls_copy() - computes a new sid based on the given
3000 * sid and the mls portion of mls_sid.
3001 */
3002int security_sid_mls_copy(struct selinux_state *state,
3003			  u32 sid, u32 mls_sid, u32 *new_sid)
3004{
3005	struct policydb *policydb = &state->ss->policydb;
3006	struct sidtab *sidtab = state->ss->sidtab;
 
3007	struct context *context1;
3008	struct context *context2;
3009	struct context newcon;
3010	char *s;
3011	u32 len;
3012	int rc;
3013
3014	rc = 0;
3015	if (!selinux_initialized(state) || !policydb->mls_enabled) {
3016		*new_sid = sid;
3017		goto out;
3018	}
3019
 
 
3020	context_init(&newcon);
3021
3022	read_lock(&state->ss->policy_rwlock);
 
 
 
 
 
 
 
 
3023
3024	rc = -EINVAL;
3025	context1 = sidtab_search(sidtab, sid);
3026	if (!context1) {
3027		pr_err("SELinux: %s:  unrecognized SID %d\n",
3028			__func__, sid);
3029		goto out_unlock;
3030	}
3031
3032	rc = -EINVAL;
3033	context2 = sidtab_search(sidtab, mls_sid);
3034	if (!context2) {
3035		pr_err("SELinux: %s:  unrecognized SID %d\n",
3036			__func__, mls_sid);
3037		goto out_unlock;
3038	}
3039
3040	newcon.user = context1->user;
3041	newcon.role = context1->role;
3042	newcon.type = context1->type;
3043	rc = mls_context_cpy(&newcon, context2);
3044	if (rc)
3045		goto out_unlock;
3046
3047	/* Check the validity of the new context. */
3048	if (!policydb_context_isvalid(policydb, &newcon)) {
3049		rc = convert_context_handle_invalid_context(state, &newcon);
 
3050		if (rc) {
3051			if (!context_struct_to_string(policydb, &newcon, &s,
3052						      &len)) {
3053				struct audit_buffer *ab;
3054
3055				ab = audit_log_start(audit_context(),
3056						     GFP_ATOMIC,
3057						     AUDIT_SELINUX_ERR);
3058				audit_log_format(ab,
3059						 "op=security_sid_mls_copy invalid_context=");
3060				/* don't record NUL with untrusted strings */
3061				audit_log_n_untrustedstring(ab, s, len - 1);
3062				audit_log_end(ab);
3063				kfree(s);
3064			}
3065			goto out_unlock;
3066		}
3067	}
3068	rc = sidtab_context_to_sid(sidtab, &newcon, new_sid);
 
 
 
 
 
3069out_unlock:
3070	read_unlock(&state->ss->policy_rwlock);
3071	context_destroy(&newcon);
3072out:
3073	return rc;
3074}
3075
3076/**
3077 * security_net_peersid_resolve - Compare and resolve two network peer SIDs
 
3078 * @nlbl_sid: NetLabel SID
3079 * @nlbl_type: NetLabel labeling protocol type
3080 * @xfrm_sid: XFRM SID
 
3081 *
3082 * Description:
3083 * Compare the @nlbl_sid and @xfrm_sid values and if the two SIDs can be
3084 * resolved into a single SID it is returned via @peer_sid and the function
3085 * returns zero.  Otherwise @peer_sid is set to SECSID_NULL and the function
3086 * returns a negative value.  A table summarizing the behavior is below:
3087 *
3088 *                                 | function return |      @sid
3089 *   ------------------------------+-----------------+-----------------
3090 *   no peer labels                |        0        |    SECSID_NULL
3091 *   single peer label             |        0        |    <peer_label>
3092 *   multiple, consistent labels   |        0        |    <peer_label>
3093 *   multiple, inconsistent labels |    -<errno>     |    SECSID_NULL
3094 *
3095 */
3096int security_net_peersid_resolve(struct selinux_state *state,
3097				 u32 nlbl_sid, u32 nlbl_type,
3098				 u32 xfrm_sid,
3099				 u32 *peer_sid)
3100{
3101	struct policydb *policydb = &state->ss->policydb;
3102	struct sidtab *sidtab = state->ss->sidtab;
 
3103	int rc;
3104	struct context *nlbl_ctx;
3105	struct context *xfrm_ctx;
3106
3107	*peer_sid = SECSID_NULL;
3108
3109	/* handle the common (which also happens to be the set of easy) cases
3110	 * right away, these two if statements catch everything involving a
3111	 * single or absent peer SID/label */
3112	if (xfrm_sid == SECSID_NULL) {
3113		*peer_sid = nlbl_sid;
3114		return 0;
3115	}
3116	/* NOTE: an nlbl_type == NETLBL_NLTYPE_UNLABELED is a "fallback" label
3117	 * and is treated as if nlbl_sid == SECSID_NULL when a XFRM SID/label
3118	 * is present */
3119	if (nlbl_sid == SECSID_NULL || nlbl_type == NETLBL_NLTYPE_UNLABELED) {
3120		*peer_sid = xfrm_sid;
3121		return 0;
3122	}
3123
 
 
 
 
 
 
 
 
3124	/*
3125	 * We don't need to check initialized here since the only way both
3126	 * nlbl_sid and xfrm_sid are not equal to SECSID_NULL would be if the
3127	 * security server was initialized and state->initialized was true.
3128	 */
3129	if (!policydb->mls_enabled)
3130		return 0;
3131
3132	read_lock(&state->ss->policy_rwlock);
3133
3134	rc = -EINVAL;
3135	nlbl_ctx = sidtab_search(sidtab, nlbl_sid);
3136	if (!nlbl_ctx) {
3137		pr_err("SELinux: %s:  unrecognized SID %d\n",
3138		       __func__, nlbl_sid);
3139		goto out;
3140	}
3141	rc = -EINVAL;
3142	xfrm_ctx = sidtab_search(sidtab, xfrm_sid);
3143	if (!xfrm_ctx) {
3144		pr_err("SELinux: %s:  unrecognized SID %d\n",
3145		       __func__, xfrm_sid);
3146		goto out;
3147	}
3148	rc = (mls_context_cmp(nlbl_ctx, xfrm_ctx) ? 0 : -EACCES);
3149	if (rc)
3150		goto out;
3151
3152	/* at present NetLabel SIDs/labels really only carry MLS
3153	 * information so if the MLS portion of the NetLabel SID
3154	 * matches the MLS portion of the labeled XFRM SID/label
3155	 * then pass along the XFRM SID as it is the most
3156	 * expressive */
3157	*peer_sid = xfrm_sid;
3158out:
3159	read_unlock(&state->ss->policy_rwlock);
3160	return rc;
3161}
3162
3163static int get_classes_callback(void *k, void *d, void *args)
3164{
3165	struct class_datum *datum = d;
3166	char *name = k, **classes = args;
3167	int value = datum->value - 1;
3168
3169	classes[value] = kstrdup(name, GFP_ATOMIC);
3170	if (!classes[value])
3171		return -ENOMEM;
3172
3173	return 0;
3174}
3175
3176int security_get_classes(struct selinux_state *state,
3177			 char ***classes, int *nclasses)
3178{
3179	struct policydb *policydb = &state->ss->policydb;
3180	int rc;
3181
3182	if (!selinux_initialized(state)) {
3183		*nclasses = 0;
3184		*classes = NULL;
3185		return 0;
3186	}
3187
3188	read_lock(&state->ss->policy_rwlock);
3189
3190	rc = -ENOMEM;
3191	*nclasses = policydb->p_classes.nprim;
3192	*classes = kcalloc(*nclasses, sizeof(**classes), GFP_ATOMIC);
3193	if (!*classes)
3194		goto out;
3195
3196	rc = hashtab_map(&policydb->p_classes.table, get_classes_callback,
3197			 *classes);
3198	if (rc) {
3199		int i;
3200		for (i = 0; i < *nclasses; i++)
3201			kfree((*classes)[i]);
3202		kfree(*classes);
3203	}
3204
3205out:
3206	read_unlock(&state->ss->policy_rwlock);
3207	return rc;
3208}
3209
3210static int get_permissions_callback(void *k, void *d, void *args)
3211{
3212	struct perm_datum *datum = d;
3213	char *name = k, **perms = args;
3214	int value = datum->value - 1;
3215
3216	perms[value] = kstrdup(name, GFP_ATOMIC);
3217	if (!perms[value])
3218		return -ENOMEM;
3219
3220	return 0;
3221}
3222
3223int security_get_permissions(struct selinux_state *state,
3224			     char *class, char ***perms, int *nperms)
3225{
3226	struct policydb *policydb = &state->ss->policydb;
3227	int rc, i;
3228	struct class_datum *match;
3229
3230	read_lock(&state->ss->policy_rwlock);
3231
3232	rc = -EINVAL;
3233	match = symtab_search(&policydb->p_classes, class);
3234	if (!match) {
3235		pr_err("SELinux: %s:  unrecognized class %s\n",
3236			__func__, class);
3237		goto out;
3238	}
3239
3240	rc = -ENOMEM;
3241	*nperms = match->permissions.nprim;
3242	*perms = kcalloc(*nperms, sizeof(**perms), GFP_ATOMIC);
3243	if (!*perms)
3244		goto out;
3245
3246	if (match->comdatum) {
3247		rc = hashtab_map(&match->comdatum->permissions.table,
3248				 get_permissions_callback, *perms);
3249		if (rc)
3250			goto err;
3251	}
3252
3253	rc = hashtab_map(&match->permissions.table, get_permissions_callback,
3254			 *perms);
3255	if (rc)
3256		goto err;
3257
3258out:
3259	read_unlock(&state->ss->policy_rwlock);
3260	return rc;
3261
3262err:
3263	read_unlock(&state->ss->policy_rwlock);
3264	for (i = 0; i < *nperms; i++)
3265		kfree((*perms)[i]);
3266	kfree(*perms);
3267	return rc;
3268}
3269
3270int security_get_reject_unknown(struct selinux_state *state)
3271{
3272	return state->ss->policydb.reject_unknown;
 
 
 
 
 
 
 
 
 
 
3273}
3274
3275int security_get_allow_unknown(struct selinux_state *state)
3276{
3277	return state->ss->policydb.allow_unknown;
 
 
 
 
 
 
 
 
 
 
3278}
3279
3280/**
3281 * security_policycap_supported - Check for a specific policy capability
 
3282 * @req_cap: capability
3283 *
3284 * Description:
3285 * This function queries the currently loaded policy to see if it supports the
3286 * capability specified by @req_cap.  Returns true (1) if the capability is
3287 * supported, false (0) if it isn't supported.
3288 *
3289 */
3290int security_policycap_supported(struct selinux_state *state,
3291				 unsigned int req_cap)
3292{
3293	struct policydb *policydb = &state->ss->policydb;
3294	int rc;
3295
3296	read_lock(&state->ss->policy_rwlock);
3297	rc = ebitmap_get_bit(&policydb->policycaps, req_cap);
3298	read_unlock(&state->ss->policy_rwlock);
 
 
 
 
3299
3300	return rc;
3301}
3302
3303struct selinux_audit_rule {
3304	u32 au_seqno;
3305	struct context au_ctxt;
3306};
3307
3308void selinux_audit_rule_free(void *vrule)
3309{
3310	struct selinux_audit_rule *rule = vrule;
3311
3312	if (rule) {
3313		context_destroy(&rule->au_ctxt);
3314		kfree(rule);
3315	}
3316}
3317
3318int selinux_audit_rule_init(u32 field, u32 op, char *rulestr, void **vrule)
3319{
3320	struct selinux_state *state = &selinux_state;
3321	struct policydb *policydb = &state->ss->policydb;
 
3322	struct selinux_audit_rule *tmprule;
3323	struct role_datum *roledatum;
3324	struct type_datum *typedatum;
3325	struct user_datum *userdatum;
3326	struct selinux_audit_rule **rule = (struct selinux_audit_rule **)vrule;
3327	int rc = 0;
3328
3329	*rule = NULL;
3330
3331	if (!selinux_initialized(state))
3332		return -EOPNOTSUPP;
3333
3334	switch (field) {
3335	case AUDIT_SUBJ_USER:
3336	case AUDIT_SUBJ_ROLE:
3337	case AUDIT_SUBJ_TYPE:
3338	case AUDIT_OBJ_USER:
3339	case AUDIT_OBJ_ROLE:
3340	case AUDIT_OBJ_TYPE:
3341		/* only 'equals' and 'not equals' fit user, role, and type */
3342		if (op != Audit_equal && op != Audit_not_equal)
3343			return -EINVAL;
3344		break;
3345	case AUDIT_SUBJ_SEN:
3346	case AUDIT_SUBJ_CLR:
3347	case AUDIT_OBJ_LEV_LOW:
3348	case AUDIT_OBJ_LEV_HIGH:
3349		/* we do not allow a range, indicated by the presence of '-' */
3350		if (strchr(rulestr, '-'))
3351			return -EINVAL;
3352		break;
3353	default:
3354		/* only the above fields are valid */
3355		return -EINVAL;
3356	}
3357
3358	tmprule = kzalloc(sizeof(struct selinux_audit_rule), GFP_KERNEL);
3359	if (!tmprule)
3360		return -ENOMEM;
3361
3362	context_init(&tmprule->au_ctxt);
3363
3364	read_lock(&state->ss->policy_rwlock);
 
 
3365
3366	tmprule->au_seqno = state->ss->latest_granting;
3367
3368	switch (field) {
3369	case AUDIT_SUBJ_USER:
3370	case AUDIT_OBJ_USER:
3371		rc = -EINVAL;
3372		userdatum = symtab_search(&policydb->p_users, rulestr);
3373		if (!userdatum)
3374			goto out;
3375		tmprule->au_ctxt.user = userdatum->value;
3376		break;
3377	case AUDIT_SUBJ_ROLE:
3378	case AUDIT_OBJ_ROLE:
3379		rc = -EINVAL;
3380		roledatum = symtab_search(&policydb->p_roles, rulestr);
3381		if (!roledatum)
3382			goto out;
3383		tmprule->au_ctxt.role = roledatum->value;
3384		break;
3385	case AUDIT_SUBJ_TYPE:
3386	case AUDIT_OBJ_TYPE:
3387		rc = -EINVAL;
3388		typedatum = symtab_search(&policydb->p_types, rulestr);
3389		if (!typedatum)
3390			goto out;
3391		tmprule->au_ctxt.type = typedatum->value;
3392		break;
3393	case AUDIT_SUBJ_SEN:
3394	case AUDIT_SUBJ_CLR:
3395	case AUDIT_OBJ_LEV_LOW:
3396	case AUDIT_OBJ_LEV_HIGH:
3397		rc = mls_from_string(policydb, rulestr, &tmprule->au_ctxt,
3398				     GFP_ATOMIC);
3399		if (rc)
3400			goto out;
3401		break;
3402	}
3403	rc = 0;
3404out:
3405	read_unlock(&state->ss->policy_rwlock);
3406
3407	if (rc) {
3408		selinux_audit_rule_free(tmprule);
3409		tmprule = NULL;
3410	}
3411
3412	*rule = tmprule;
3413
3414	return rc;
3415}
3416
3417/* Check to see if the rule contains any selinux fields */
3418int selinux_audit_rule_known(struct audit_krule *rule)
3419{
3420	int i;
3421
3422	for (i = 0; i < rule->field_count; i++) {
3423		struct audit_field *f = &rule->fields[i];
3424		switch (f->type) {
3425		case AUDIT_SUBJ_USER:
3426		case AUDIT_SUBJ_ROLE:
3427		case AUDIT_SUBJ_TYPE:
3428		case AUDIT_SUBJ_SEN:
3429		case AUDIT_SUBJ_CLR:
3430		case AUDIT_OBJ_USER:
3431		case AUDIT_OBJ_ROLE:
3432		case AUDIT_OBJ_TYPE:
3433		case AUDIT_OBJ_LEV_LOW:
3434		case AUDIT_OBJ_LEV_HIGH:
3435			return 1;
3436		}
3437	}
3438
3439	return 0;
3440}
3441
3442int selinux_audit_rule_match(u32 sid, u32 field, u32 op, void *vrule)
3443{
3444	struct selinux_state *state = &selinux_state;
 
3445	struct context *ctxt;
3446	struct mls_level *level;
3447	struct selinux_audit_rule *rule = vrule;
3448	int match = 0;
3449
3450	if (unlikely(!rule)) {
3451		WARN_ONCE(1, "selinux_audit_rule_match: missing rule\n");
3452		return -ENOENT;
3453	}
3454
3455	read_lock(&state->ss->policy_rwlock);
 
 
 
3456
3457	if (rule->au_seqno < state->ss->latest_granting) {
 
 
3458		match = -ESTALE;
3459		goto out;
3460	}
3461
3462	ctxt = sidtab_search(state->ss->sidtab, sid);
3463	if (unlikely(!ctxt)) {
3464		WARN_ONCE(1, "selinux_audit_rule_match: unrecognized SID %d\n",
3465			  sid);
3466		match = -ENOENT;
3467		goto out;
3468	}
3469
3470	/* a field/op pair that is not caught here will simply fall through
3471	   without a match */
3472	switch (field) {
3473	case AUDIT_SUBJ_USER:
3474	case AUDIT_OBJ_USER:
3475		switch (op) {
3476		case Audit_equal:
3477			match = (ctxt->user == rule->au_ctxt.user);
3478			break;
3479		case Audit_not_equal:
3480			match = (ctxt->user != rule->au_ctxt.user);
3481			break;
3482		}
3483		break;
3484	case AUDIT_SUBJ_ROLE:
3485	case AUDIT_OBJ_ROLE:
3486		switch (op) {
3487		case Audit_equal:
3488			match = (ctxt->role == rule->au_ctxt.role);
3489			break;
3490		case Audit_not_equal:
3491			match = (ctxt->role != rule->au_ctxt.role);
3492			break;
3493		}
3494		break;
3495	case AUDIT_SUBJ_TYPE:
3496	case AUDIT_OBJ_TYPE:
3497		switch (op) {
3498		case Audit_equal:
3499			match = (ctxt->type == rule->au_ctxt.type);
3500			break;
3501		case Audit_not_equal:
3502			match = (ctxt->type != rule->au_ctxt.type);
3503			break;
3504		}
3505		break;
3506	case AUDIT_SUBJ_SEN:
3507	case AUDIT_SUBJ_CLR:
3508	case AUDIT_OBJ_LEV_LOW:
3509	case AUDIT_OBJ_LEV_HIGH:
3510		level = ((field == AUDIT_SUBJ_SEN ||
3511			  field == AUDIT_OBJ_LEV_LOW) ?
3512			 &ctxt->range.level[0] : &ctxt->range.level[1]);
3513		switch (op) {
3514		case Audit_equal:
3515			match = mls_level_eq(&rule->au_ctxt.range.level[0],
3516					     level);
3517			break;
3518		case Audit_not_equal:
3519			match = !mls_level_eq(&rule->au_ctxt.range.level[0],
3520					      level);
3521			break;
3522		case Audit_lt:
3523			match = (mls_level_dom(&rule->au_ctxt.range.level[0],
3524					       level) &&
3525				 !mls_level_eq(&rule->au_ctxt.range.level[0],
3526					       level));
3527			break;
3528		case Audit_le:
3529			match = mls_level_dom(&rule->au_ctxt.range.level[0],
3530					      level);
3531			break;
3532		case Audit_gt:
3533			match = (mls_level_dom(level,
3534					      &rule->au_ctxt.range.level[0]) &&
3535				 !mls_level_eq(level,
3536					       &rule->au_ctxt.range.level[0]));
3537			break;
3538		case Audit_ge:
3539			match = mls_level_dom(level,
3540					      &rule->au_ctxt.range.level[0]);
3541			break;
3542		}
3543	}
3544
3545out:
3546	read_unlock(&state->ss->policy_rwlock);
3547	return match;
3548}
3549
3550static int (*aurule_callback)(void) = audit_update_lsm_rules;
3551
3552static int aurule_avc_callback(u32 event)
3553{
3554	int err = 0;
3555
3556	if (event == AVC_CALLBACK_RESET && aurule_callback)
3557		err = aurule_callback();
3558	return err;
3559}
3560
3561static int __init aurule_init(void)
3562{
3563	int err;
3564
3565	err = avc_add_callback(aurule_avc_callback, AVC_CALLBACK_RESET);
3566	if (err)
3567		panic("avc_add_callback() failed, error %d\n", err);
3568
3569	return err;
3570}
3571__initcall(aurule_init);
3572
3573#ifdef CONFIG_NETLABEL
3574/**
3575 * security_netlbl_cache_add - Add an entry to the NetLabel cache
3576 * @secattr: the NetLabel packet security attributes
3577 * @sid: the SELinux SID
3578 *
3579 * Description:
3580 * Attempt to cache the context in @ctx, which was derived from the packet in
3581 * @skb, in the NetLabel subsystem cache.  This function assumes @secattr has
3582 * already been initialized.
3583 *
3584 */
3585static void security_netlbl_cache_add(struct netlbl_lsm_secattr *secattr,
3586				      u32 sid)
3587{
3588	u32 *sid_cache;
3589
3590	sid_cache = kmalloc(sizeof(*sid_cache), GFP_ATOMIC);
3591	if (sid_cache == NULL)
3592		return;
3593	secattr->cache = netlbl_secattr_cache_alloc(GFP_ATOMIC);
3594	if (secattr->cache == NULL) {
3595		kfree(sid_cache);
3596		return;
3597	}
3598
3599	*sid_cache = sid;
3600	secattr->cache->free = kfree;
3601	secattr->cache->data = sid_cache;
3602	secattr->flags |= NETLBL_SECATTR_CACHE;
3603}
3604
3605/**
3606 * security_netlbl_secattr_to_sid - Convert a NetLabel secattr to a SELinux SID
 
3607 * @secattr: the NetLabel packet security attributes
3608 * @sid: the SELinux SID
3609 *
3610 * Description:
3611 * Convert the given NetLabel security attributes in @secattr into a
3612 * SELinux SID.  If the @secattr field does not contain a full SELinux
3613 * SID/context then use SECINITSID_NETMSG as the foundation.  If possible the
3614 * 'cache' field of @secattr is set and the CACHE flag is set; this is to
3615 * allow the @secattr to be used by NetLabel to cache the secattr to SID
3616 * conversion for future lookups.  Returns zero on success, negative values on
3617 * failure.
3618 *
3619 */
3620int security_netlbl_secattr_to_sid(struct selinux_state *state,
3621				   struct netlbl_lsm_secattr *secattr,
3622				   u32 *sid)
3623{
3624	struct policydb *policydb = &state->ss->policydb;
3625	struct sidtab *sidtab = state->ss->sidtab;
 
3626	int rc;
3627	struct context *ctx;
3628	struct context ctx_new;
3629
3630	if (!selinux_initialized(state)) {
3631		*sid = SECSID_NULL;
3632		return 0;
3633	}
3634
3635	read_lock(&state->ss->policy_rwlock);
 
 
 
 
 
3636
3637	if (secattr->flags & NETLBL_SECATTR_CACHE)
3638		*sid = *(u32 *)secattr->cache->data;
3639	else if (secattr->flags & NETLBL_SECATTR_SECID)
3640		*sid = secattr->attr.secid;
3641	else if (secattr->flags & NETLBL_SECATTR_MLS_LVL) {
3642		rc = -EIDRM;
3643		ctx = sidtab_search(sidtab, SECINITSID_NETMSG);
3644		if (ctx == NULL)
3645			goto out;
3646
3647		context_init(&ctx_new);
3648		ctx_new.user = ctx->user;
3649		ctx_new.role = ctx->role;
3650		ctx_new.type = ctx->type;
3651		mls_import_netlbl_lvl(policydb, &ctx_new, secattr);
3652		if (secattr->flags & NETLBL_SECATTR_MLS_CAT) {
3653			rc = mls_import_netlbl_cat(policydb, &ctx_new, secattr);
3654			if (rc)
3655				goto out;
3656		}
3657		rc = -EIDRM;
3658		if (!mls_context_isvalid(policydb, &ctx_new))
3659			goto out_free;
 
 
3660
3661		rc = sidtab_context_to_sid(sidtab, &ctx_new, sid);
 
 
 
 
 
3662		if (rc)
3663			goto out_free;
3664
3665		security_netlbl_cache_add(secattr, *sid);
3666
3667		ebitmap_destroy(&ctx_new.range.level[0].cat);
3668	} else
3669		*sid = SECSID_NULL;
3670
3671	read_unlock(&state->ss->policy_rwlock);
3672	return 0;
3673out_free:
3674	ebitmap_destroy(&ctx_new.range.level[0].cat);
3675out:
3676	read_unlock(&state->ss->policy_rwlock);
3677	return rc;
3678}
3679
3680/**
3681 * security_netlbl_sid_to_secattr - Convert a SELinux SID to a NetLabel secattr
 
3682 * @sid: the SELinux SID
3683 * @secattr: the NetLabel packet security attributes
3684 *
3685 * Description:
3686 * Convert the given SELinux SID in @sid into a NetLabel security attribute.
3687 * Returns zero on success, negative values on failure.
3688 *
3689 */
3690int security_netlbl_sid_to_secattr(struct selinux_state *state,
3691				   u32 sid, struct netlbl_lsm_secattr *secattr)
3692{
3693	struct policydb *policydb = &state->ss->policydb;
 
3694	int rc;
3695	struct context *ctx;
3696
3697	if (!selinux_initialized(state))
3698		return 0;
3699
3700	read_lock(&state->ss->policy_rwlock);
 
 
3701
3702	rc = -ENOENT;
3703	ctx = sidtab_search(state->ss->sidtab, sid);
3704	if (ctx == NULL)
3705		goto out;
3706
3707	rc = -ENOMEM;
3708	secattr->domain = kstrdup(sym_name(policydb, SYM_TYPES, ctx->type - 1),
3709				  GFP_ATOMIC);
3710	if (secattr->domain == NULL)
3711		goto out;
3712
3713	secattr->attr.secid = sid;
3714	secattr->flags |= NETLBL_SECATTR_DOMAIN_CPY | NETLBL_SECATTR_SECID;
3715	mls_export_netlbl_lvl(policydb, ctx, secattr);
3716	rc = mls_export_netlbl_cat(policydb, ctx, secattr);
3717out:
3718	read_unlock(&state->ss->policy_rwlock);
3719	return rc;
3720}
3721#endif /* CONFIG_NETLABEL */
3722
3723/**
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
3724 * security_read_policy - read the policy.
 
3725 * @data: binary policy data
3726 * @len: length of data in bytes
3727 *
3728 */
3729int security_read_policy(struct selinux_state *state,
3730			 void **data, size_t *len)
3731{
3732	struct policydb *policydb = &state->ss->policydb;
3733	int rc;
3734	struct policy_file fp;
3735
3736	if (!selinux_initialized(state))
 
 
3737		return -EINVAL;
3738
3739	*len = security_policydb_len(state);
3740
3741	*data = vmalloc_user(*len);
3742	if (!*data)
3743		return -ENOMEM;
3744
3745	fp.data = *data;
3746	fp.len = *len;
3747
3748	read_lock(&state->ss->policy_rwlock);
3749	rc = policydb_write(policydb, &fp);
3750	read_unlock(&state->ss->policy_rwlock);
 
 
 
 
 
 
 
 
 
 
 
 
 
 
3751
3752	if (rc)
3753		return rc;
 
 
3754
3755	*len = (unsigned long)fp.data - (unsigned long)*data;
3756	return 0;
 
 
3757
 
 
 
 
 
 
 
3758}