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v4.6
 
   1/*
   2 * composite.c - infrastructure for Composite USB Gadgets
   3 *
   4 * Copyright (C) 2006-2008 David Brownell
   5 *
   6 * This program is free software; you can redistribute it and/or modify
   7 * it under the terms of the GNU General Public License as published by
   8 * the Free Software Foundation; either version 2 of the License, or
   9 * (at your option) any later version.
  10 */
  11
  12/* #define VERBOSE_DEBUG */
  13
  14#include <linux/kallsyms.h>
  15#include <linux/kernel.h>
  16#include <linux/slab.h>
  17#include <linux/module.h>
  18#include <linux/device.h>
  19#include <linux/utsname.h>
  20
  21#include <linux/usb/composite.h>
  22#include <linux/usb/otg.h>
  23#include <asm/unaligned.h>
  24
  25#include "u_os_desc.h"
  26
  27/**
  28 * struct usb_os_string - represents OS String to be reported by a gadget
  29 * @bLength: total length of the entire descritor, always 0x12
  30 * @bDescriptorType: USB_DT_STRING
  31 * @qwSignature: the OS String proper
  32 * @bMS_VendorCode: code used by the host for subsequent requests
  33 * @bPad: not used, must be zero
  34 */
  35struct usb_os_string {
  36	__u8	bLength;
  37	__u8	bDescriptorType;
  38	__u8	qwSignature[OS_STRING_QW_SIGN_LEN];
  39	__u8	bMS_VendorCode;
  40	__u8	bPad;
  41} __packed;
  42
  43/*
  44 * The code in this file is utility code, used to build a gadget driver
  45 * from one or more "function" drivers, one or more "configuration"
  46 * objects, and a "usb_composite_driver" by gluing them together along
  47 * with the relevant device-wide data.
  48 */
  49
  50static struct usb_gadget_strings **get_containers_gs(
  51		struct usb_gadget_string_container *uc)
  52{
  53	return (struct usb_gadget_strings **)uc->stash;
  54}
  55
  56/**
  57 * function_descriptors() - get function descriptors for speed
  58 * @f: the function
  59 * @speed: the speed
  60 *
  61 * Returns the descriptors or NULL if not set.
  62 */
  63static struct usb_descriptor_header **
  64function_descriptors(struct usb_function *f,
  65		     enum usb_device_speed speed)
  66{
  67	struct usb_descriptor_header **descriptors;
  68
 
 
 
 
 
  69	switch (speed) {
  70	case USB_SPEED_SUPER_PLUS:
  71		descriptors = f->ssp_descriptors;
  72		break;
 
 
  73	case USB_SPEED_SUPER:
  74		descriptors = f->ss_descriptors;
  75		break;
 
 
  76	case USB_SPEED_HIGH:
  77		descriptors = f->hs_descriptors;
  78		break;
 
 
  79	default:
  80		descriptors = f->fs_descriptors;
  81	}
  82
 
 
 
 
 
  83	return descriptors;
  84}
  85
  86/**
  87 * next_ep_desc() - advance to the next EP descriptor
  88 * @t: currect pointer within descriptor array
  89 *
  90 * Return: next EP descriptor or NULL
  91 *
  92 * Iterate over @t until either EP descriptor found or
  93 * NULL (that indicates end of list) encountered
  94 */
  95static struct usb_descriptor_header**
  96next_ep_desc(struct usb_descriptor_header **t)
  97{
  98	for (; *t; t++) {
  99		if ((*t)->bDescriptorType == USB_DT_ENDPOINT)
 100			return t;
 101	}
 102	return NULL;
 103}
 104
 105/*
 106 * for_each_ep_desc()- iterate over endpoint descriptors in the
 107 *		descriptors list
 108 * @start:	pointer within descriptor array.
 109 * @ep_desc:	endpoint descriptor to use as the loop cursor
 110 */
 111#define for_each_ep_desc(start, ep_desc) \
 112	for (ep_desc = next_ep_desc(start); \
 113	      ep_desc; ep_desc = next_ep_desc(ep_desc+1))
 114
 115/**
 116 * config_ep_by_speed() - configures the given endpoint
 117 * according to gadget speed.
 118 * @g: pointer to the gadget
 119 * @f: usb function
 120 * @_ep: the endpoint to configure
 121 *
 122 * Return: error code, 0 on success
 123 *
 124 * This function chooses the right descriptors for a given
 125 * endpoint according to gadget speed and saves it in the
 126 * endpoint desc field. If the endpoint already has a descriptor
 127 * assigned to it - overwrites it with currently corresponding
 128 * descriptor. The endpoint maxpacket field is updated according
 129 * to the chosen descriptor.
 130 * Note: the supplied function should hold all the descriptors
 131 * for supported speeds
 132 */
 133int config_ep_by_speed(struct usb_gadget *g,
 134			struct usb_function *f,
 135			struct usb_ep *_ep)
 136{
 137	struct usb_composite_dev	*cdev = get_gadget_data(g);
 138	struct usb_endpoint_descriptor *chosen_desc = NULL;
 139	struct usb_descriptor_header **speed_desc = NULL;
 140
 141	struct usb_ss_ep_comp_descriptor *comp_desc = NULL;
 142	int want_comp_desc = 0;
 143
 144	struct usb_descriptor_header **d_spd; /* cursor for speed desc */
 145
 146	if (!g || !f || !_ep)
 147		return -EIO;
 148
 149	/* select desired speed */
 150	switch (g->speed) {
 151	case USB_SPEED_SUPER_PLUS:
 152		if (gadget_is_superspeed_plus(g)) {
 153			speed_desc = f->ssp_descriptors;
 154			want_comp_desc = 1;
 155			break;
 156		}
 157		/* else: Fall trough */
 158	case USB_SPEED_SUPER:
 159		if (gadget_is_superspeed(g)) {
 160			speed_desc = f->ss_descriptors;
 161			want_comp_desc = 1;
 162			break;
 163		}
 164		/* else: Fall trough */
 165	case USB_SPEED_HIGH:
 166		if (gadget_is_dualspeed(g)) {
 167			speed_desc = f->hs_descriptors;
 168			break;
 169		}
 170		/* else: fall through */
 171	default:
 172		speed_desc = f->fs_descriptors;
 173	}
 174	/* find descriptors */
 175	for_each_ep_desc(speed_desc, d_spd) {
 176		chosen_desc = (struct usb_endpoint_descriptor *)*d_spd;
 177		if (chosen_desc->bEndpointAddress == _ep->address)
 178			goto ep_found;
 179	}
 180	return -EIO;
 181
 182ep_found:
 183	/* commit results */
 184	_ep->maxpacket = usb_endpoint_maxp(chosen_desc);
 185	_ep->desc = chosen_desc;
 186	_ep->comp_desc = NULL;
 187	_ep->maxburst = 0;
 188	_ep->mult = 0;
 
 
 
 
 
 189	if (!want_comp_desc)
 190		return 0;
 191
 192	/*
 193	 * Companion descriptor should follow EP descriptor
 194	 * USB 3.0 spec, #9.6.7
 195	 */
 196	comp_desc = (struct usb_ss_ep_comp_descriptor *)*(++d_spd);
 197	if (!comp_desc ||
 198	    (comp_desc->bDescriptorType != USB_DT_SS_ENDPOINT_COMP))
 199		return -EIO;
 200	_ep->comp_desc = comp_desc;
 201	if (g->speed >= USB_SPEED_SUPER) {
 202		switch (usb_endpoint_type(_ep->desc)) {
 203		case USB_ENDPOINT_XFER_ISOC:
 204			/* mult: bits 1:0 of bmAttributes */
 205			_ep->mult = comp_desc->bmAttributes & 0x3;
 
 206		case USB_ENDPOINT_XFER_BULK:
 207		case USB_ENDPOINT_XFER_INT:
 208			_ep->maxburst = comp_desc->bMaxBurst + 1;
 209			break;
 210		default:
 211			if (comp_desc->bMaxBurst != 0)
 
 
 
 212				ERROR(cdev, "ep0 bMaxBurst must be 0\n");
 
 213			_ep->maxburst = 1;
 214			break;
 215		}
 216	}
 217	return 0;
 218}
 219EXPORT_SYMBOL_GPL(config_ep_by_speed);
 220
 221/**
 222 * usb_add_function() - add a function to a configuration
 223 * @config: the configuration
 224 * @function: the function being added
 225 * Context: single threaded during gadget setup
 226 *
 227 * After initialization, each configuration must have one or more
 228 * functions added to it.  Adding a function involves calling its @bind()
 229 * method to allocate resources such as interface and string identifiers
 230 * and endpoints.
 231 *
 232 * This function returns the value of the function's bind(), which is
 233 * zero for success else a negative errno value.
 234 */
 235int usb_add_function(struct usb_configuration *config,
 236		struct usb_function *function)
 237{
 238	int	value = -EINVAL;
 239
 240	DBG(config->cdev, "adding '%s'/%p to config '%s'/%p\n",
 241			function->name, function,
 242			config->label, config);
 243
 244	if (!function->set_alt || !function->disable)
 245		goto done;
 246
 247	function->config = config;
 248	list_add_tail(&function->list, &config->functions);
 249
 250	if (function->bind_deactivated) {
 251		value = usb_function_deactivate(function);
 252		if (value)
 253			goto done;
 254	}
 255
 256	/* REVISIT *require* function->bind? */
 257	if (function->bind) {
 258		value = function->bind(config, function);
 259		if (value < 0) {
 260			list_del(&function->list);
 261			function->config = NULL;
 262		}
 263	} else
 264		value = 0;
 265
 266	/* We allow configurations that don't work at both speeds.
 267	 * If we run into a lowspeed Linux system, treat it the same
 268	 * as full speed ... it's the function drivers that will need
 269	 * to avoid bulk and ISO transfers.
 270	 */
 271	if (!config->fullspeed && function->fs_descriptors)
 272		config->fullspeed = true;
 273	if (!config->highspeed && function->hs_descriptors)
 274		config->highspeed = true;
 275	if (!config->superspeed && function->ss_descriptors)
 276		config->superspeed = true;
 277	if (!config->superspeed_plus && function->ssp_descriptors)
 278		config->superspeed_plus = true;
 279
 280done:
 281	if (value)
 282		DBG(config->cdev, "adding '%s'/%p --> %d\n",
 283				function->name, function, value);
 284	return value;
 285}
 286EXPORT_SYMBOL_GPL(usb_add_function);
 287
 288void usb_remove_function(struct usb_configuration *c, struct usb_function *f)
 289{
 290	if (f->disable)
 291		f->disable(f);
 292
 293	bitmap_zero(f->endpoints, 32);
 294	list_del(&f->list);
 295	if (f->unbind)
 296		f->unbind(c, f);
 
 
 
 297}
 298EXPORT_SYMBOL_GPL(usb_remove_function);
 299
 300/**
 301 * usb_function_deactivate - prevent function and gadget enumeration
 302 * @function: the function that isn't yet ready to respond
 303 *
 304 * Blocks response of the gadget driver to host enumeration by
 305 * preventing the data line pullup from being activated.  This is
 306 * normally called during @bind() processing to change from the
 307 * initial "ready to respond" state, or when a required resource
 308 * becomes available.
 309 *
 310 * For example, drivers that serve as a passthrough to a userspace
 311 * daemon can block enumeration unless that daemon (such as an OBEX,
 312 * MTP, or print server) is ready to handle host requests.
 313 *
 314 * Not all systems support software control of their USB peripheral
 315 * data pullups.
 316 *
 317 * Returns zero on success, else negative errno.
 318 */
 319int usb_function_deactivate(struct usb_function *function)
 320{
 321	struct usb_composite_dev	*cdev = function->config->cdev;
 322	unsigned long			flags;
 323	int				status = 0;
 324
 325	spin_lock_irqsave(&cdev->lock, flags);
 326
 327	if (cdev->deactivations == 0)
 328		status = usb_gadget_deactivate(cdev->gadget);
 329	if (status == 0)
 330		cdev->deactivations++;
 331
 332	spin_unlock_irqrestore(&cdev->lock, flags);
 333	return status;
 334}
 335EXPORT_SYMBOL_GPL(usb_function_deactivate);
 336
 337/**
 338 * usb_function_activate - allow function and gadget enumeration
 339 * @function: function on which usb_function_activate() was called
 340 *
 341 * Reverses effect of usb_function_deactivate().  If no more functions
 342 * are delaying their activation, the gadget driver will respond to
 343 * host enumeration procedures.
 344 *
 345 * Returns zero on success, else negative errno.
 346 */
 347int usb_function_activate(struct usb_function *function)
 348{
 349	struct usb_composite_dev	*cdev = function->config->cdev;
 350	unsigned long			flags;
 351	int				status = 0;
 352
 353	spin_lock_irqsave(&cdev->lock, flags);
 354
 355	if (WARN_ON(cdev->deactivations == 0))
 356		status = -EINVAL;
 357	else {
 358		cdev->deactivations--;
 359		if (cdev->deactivations == 0)
 360			status = usb_gadget_activate(cdev->gadget);
 361	}
 362
 363	spin_unlock_irqrestore(&cdev->lock, flags);
 364	return status;
 365}
 366EXPORT_SYMBOL_GPL(usb_function_activate);
 367
 368/**
 369 * usb_interface_id() - allocate an unused interface ID
 370 * @config: configuration associated with the interface
 371 * @function: function handling the interface
 372 * Context: single threaded during gadget setup
 373 *
 374 * usb_interface_id() is called from usb_function.bind() callbacks to
 375 * allocate new interface IDs.  The function driver will then store that
 376 * ID in interface, association, CDC union, and other descriptors.  It
 377 * will also handle any control requests targeted at that interface,
 378 * particularly changing its altsetting via set_alt().  There may
 379 * also be class-specific or vendor-specific requests to handle.
 380 *
 381 * All interface identifier should be allocated using this routine, to
 382 * ensure that for example different functions don't wrongly assign
 383 * different meanings to the same identifier.  Note that since interface
 384 * identifiers are configuration-specific, functions used in more than
 385 * one configuration (or more than once in a given configuration) need
 386 * multiple versions of the relevant descriptors.
 387 *
 388 * Returns the interface ID which was allocated; or -ENODEV if no
 389 * more interface IDs can be allocated.
 390 */
 391int usb_interface_id(struct usb_configuration *config,
 392		struct usb_function *function)
 393{
 394	unsigned id = config->next_interface_id;
 395
 396	if (id < MAX_CONFIG_INTERFACES) {
 397		config->interface[id] = function;
 398		config->next_interface_id = id + 1;
 399		return id;
 400	}
 401	return -ENODEV;
 402}
 403EXPORT_SYMBOL_GPL(usb_interface_id);
 404
 405static u8 encode_bMaxPower(enum usb_device_speed speed,
 406		struct usb_configuration *c)
 407{
 408	unsigned val;
 409
 410	if (c->MaxPower)
 411		val = c->MaxPower;
 412	else
 413		val = CONFIG_USB_GADGET_VBUS_DRAW;
 414	if (!val)
 415		return 0;
 416	switch (speed) {
 417	case USB_SPEED_SUPER:
 418		return DIV_ROUND_UP(val, 8);
 419	default:
 420		return DIV_ROUND_UP(val, 2);
 421	}
 422}
 423
 424static int config_buf(struct usb_configuration *config,
 425		enum usb_device_speed speed, void *buf, u8 type)
 426{
 427	struct usb_config_descriptor	*c = buf;
 428	void				*next = buf + USB_DT_CONFIG_SIZE;
 429	int				len;
 430	struct usb_function		*f;
 431	int				status;
 432
 433	len = USB_COMP_EP0_BUFSIZ - USB_DT_CONFIG_SIZE;
 434	/* write the config descriptor */
 435	c = buf;
 436	c->bLength = USB_DT_CONFIG_SIZE;
 437	c->bDescriptorType = type;
 438	/* wTotalLength is written later */
 439	c->bNumInterfaces = config->next_interface_id;
 440	c->bConfigurationValue = config->bConfigurationValue;
 441	c->iConfiguration = config->iConfiguration;
 442	c->bmAttributes = USB_CONFIG_ATT_ONE | config->bmAttributes;
 443	c->bMaxPower = encode_bMaxPower(speed, config);
 444
 445	/* There may be e.g. OTG descriptors */
 446	if (config->descriptors) {
 447		status = usb_descriptor_fillbuf(next, len,
 448				config->descriptors);
 449		if (status < 0)
 450			return status;
 451		len -= status;
 452		next += status;
 453	}
 454
 455	/* add each function's descriptors */
 456	list_for_each_entry(f, &config->functions, list) {
 457		struct usb_descriptor_header **descriptors;
 458
 459		descriptors = function_descriptors(f, speed);
 460		if (!descriptors)
 461			continue;
 462		status = usb_descriptor_fillbuf(next, len,
 463			(const struct usb_descriptor_header **) descriptors);
 464		if (status < 0)
 465			return status;
 466		len -= status;
 467		next += status;
 468	}
 469
 470	len = next - buf;
 471	c->wTotalLength = cpu_to_le16(len);
 472	return len;
 473}
 474
 475static int config_desc(struct usb_composite_dev *cdev, unsigned w_value)
 476{
 477	struct usb_gadget		*gadget = cdev->gadget;
 478	struct usb_configuration	*c;
 479	struct list_head		*pos;
 480	u8				type = w_value >> 8;
 481	enum usb_device_speed		speed = USB_SPEED_UNKNOWN;
 482
 483	if (gadget->speed >= USB_SPEED_SUPER)
 484		speed = gadget->speed;
 485	else if (gadget_is_dualspeed(gadget)) {
 486		int	hs = 0;
 487		if (gadget->speed == USB_SPEED_HIGH)
 488			hs = 1;
 489		if (type == USB_DT_OTHER_SPEED_CONFIG)
 490			hs = !hs;
 491		if (hs)
 492			speed = USB_SPEED_HIGH;
 493
 494	}
 495
 496	/* This is a lookup by config *INDEX* */
 497	w_value &= 0xff;
 498
 499	pos = &cdev->configs;
 500	c = cdev->os_desc_config;
 501	if (c)
 502		goto check_config;
 503
 504	while ((pos = pos->next) !=  &cdev->configs) {
 505		c = list_entry(pos, typeof(*c), list);
 506
 507		/* skip OS Descriptors config which is handled separately */
 508		if (c == cdev->os_desc_config)
 509			continue;
 510
 511check_config:
 512		/* ignore configs that won't work at this speed */
 513		switch (speed) {
 514		case USB_SPEED_SUPER_PLUS:
 515			if (!c->superspeed_plus)
 516				continue;
 517			break;
 518		case USB_SPEED_SUPER:
 519			if (!c->superspeed)
 520				continue;
 521			break;
 522		case USB_SPEED_HIGH:
 523			if (!c->highspeed)
 524				continue;
 525			break;
 526		default:
 527			if (!c->fullspeed)
 528				continue;
 529		}
 530
 531		if (w_value == 0)
 532			return config_buf(c, speed, cdev->req->buf, type);
 533		w_value--;
 534	}
 535	return -EINVAL;
 536}
 537
 538static int count_configs(struct usb_composite_dev *cdev, unsigned type)
 539{
 540	struct usb_gadget		*gadget = cdev->gadget;
 541	struct usb_configuration	*c;
 542	unsigned			count = 0;
 543	int				hs = 0;
 544	int				ss = 0;
 545	int				ssp = 0;
 546
 547	if (gadget_is_dualspeed(gadget)) {
 548		if (gadget->speed == USB_SPEED_HIGH)
 549			hs = 1;
 550		if (gadget->speed == USB_SPEED_SUPER)
 551			ss = 1;
 552		if (gadget->speed == USB_SPEED_SUPER_PLUS)
 553			ssp = 1;
 554		if (type == USB_DT_DEVICE_QUALIFIER)
 555			hs = !hs;
 556	}
 557	list_for_each_entry(c, &cdev->configs, list) {
 558		/* ignore configs that won't work at this speed */
 559		if (ssp) {
 560			if (!c->superspeed_plus)
 561				continue;
 562		} else if (ss) {
 563			if (!c->superspeed)
 564				continue;
 565		} else if (hs) {
 566			if (!c->highspeed)
 567				continue;
 568		} else {
 569			if (!c->fullspeed)
 570				continue;
 571		}
 572		count++;
 573	}
 574	return count;
 575}
 576
 577/**
 578 * bos_desc() - prepares the BOS descriptor.
 579 * @cdev: pointer to usb_composite device to generate the bos
 580 *	descriptor for
 581 *
 582 * This function generates the BOS (Binary Device Object)
 583 * descriptor and its device capabilities descriptors. The BOS
 584 * descriptor should be supported by a SuperSpeed device.
 585 */
 586static int bos_desc(struct usb_composite_dev *cdev)
 587{
 588	struct usb_ext_cap_descriptor	*usb_ext;
 589	struct usb_ss_cap_descriptor	*ss_cap;
 590	struct usb_dcd_config_params	dcd_config_params;
 591	struct usb_bos_descriptor	*bos = cdev->req->buf;
 592
 593	bos->bLength = USB_DT_BOS_SIZE;
 594	bos->bDescriptorType = USB_DT_BOS;
 595
 596	bos->wTotalLength = cpu_to_le16(USB_DT_BOS_SIZE);
 597	bos->bNumDeviceCaps = 0;
 598
 599	/*
 600	 * A SuperSpeed device shall include the USB2.0 extension descriptor
 601	 * and shall support LPM when operating in USB2.0 HS mode.
 602	 */
 603	usb_ext = cdev->req->buf + le16_to_cpu(bos->wTotalLength);
 604	bos->bNumDeviceCaps++;
 605	le16_add_cpu(&bos->wTotalLength, USB_DT_USB_EXT_CAP_SIZE);
 606	usb_ext->bLength = USB_DT_USB_EXT_CAP_SIZE;
 607	usb_ext->bDescriptorType = USB_DT_DEVICE_CAPABILITY;
 608	usb_ext->bDevCapabilityType = USB_CAP_TYPE_EXT;
 609	usb_ext->bmAttributes = cpu_to_le32(USB_LPM_SUPPORT | USB_BESL_SUPPORT);
 610
 611	/*
 612	 * The Superspeed USB Capability descriptor shall be implemented by all
 613	 * SuperSpeed devices.
 614	 */
 615	ss_cap = cdev->req->buf + le16_to_cpu(bos->wTotalLength);
 616	bos->bNumDeviceCaps++;
 617	le16_add_cpu(&bos->wTotalLength, USB_DT_USB_SS_CAP_SIZE);
 618	ss_cap->bLength = USB_DT_USB_SS_CAP_SIZE;
 619	ss_cap->bDescriptorType = USB_DT_DEVICE_CAPABILITY;
 620	ss_cap->bDevCapabilityType = USB_SS_CAP_TYPE;
 621	ss_cap->bmAttributes = 0; /* LTM is not supported yet */
 622	ss_cap->wSpeedSupported = cpu_to_le16(USB_LOW_SPEED_OPERATION |
 623				USB_FULL_SPEED_OPERATION |
 624				USB_HIGH_SPEED_OPERATION |
 625				USB_5GBPS_OPERATION);
 626	ss_cap->bFunctionalitySupport = USB_LOW_SPEED_OPERATION;
 627
 628	/* Get Controller configuration */
 629	if (cdev->gadget->ops->get_config_params)
 630		cdev->gadget->ops->get_config_params(&dcd_config_params);
 631	else {
 632		dcd_config_params.bU1devExitLat = USB_DEFAULT_U1_DEV_EXIT_LAT;
 633		dcd_config_params.bU2DevExitLat =
 634			cpu_to_le16(USB_DEFAULT_U2_DEV_EXIT_LAT);
 
 
 
 
 
 
 
 
 635	}
 636	ss_cap->bU1devExitLat = dcd_config_params.bU1devExitLat;
 637	ss_cap->bU2DevExitLat = dcd_config_params.bU2DevExitLat;
 638
 639	/* The SuperSpeedPlus USB Device Capability descriptor */
 640	if (gadget_is_superspeed_plus(cdev->gadget)) {
 641		struct usb_ssp_cap_descriptor *ssp_cap;
 642
 643		ssp_cap = cdev->req->buf + le16_to_cpu(bos->wTotalLength);
 644		bos->bNumDeviceCaps++;
 645
 646		/*
 647		 * Report typical values.
 648		 */
 649
 650		le16_add_cpu(&bos->wTotalLength, USB_DT_USB_SSP_CAP_SIZE(1));
 651		ssp_cap->bLength = USB_DT_USB_SSP_CAP_SIZE(1);
 652		ssp_cap->bDescriptorType = USB_DT_DEVICE_CAPABILITY;
 653		ssp_cap->bDevCapabilityType = USB_SSP_CAP_TYPE;
 654		ssp_cap->bReserved = 0;
 655		ssp_cap->wReserved = 0;
 656
 657		/* SSAC = 1 (2 attributes) */
 658		ssp_cap->bmAttributes = cpu_to_le32(1);
 659
 660		/* Min RX/TX Lane Count = 1 */
 661		ssp_cap->wFunctionalitySupport =
 662			cpu_to_le16((1 << 8) | (1 << 12));
 663
 664		/*
 665		 * bmSublinkSpeedAttr[0]:
 666		 *   ST  = Symmetric, RX
 667		 *   LSE =  3 (Gbps)
 668		 *   LP  =  1 (SuperSpeedPlus)
 669		 *   LSM = 10 (10 Gbps)
 670		 */
 671		ssp_cap->bmSublinkSpeedAttr[0] =
 672			cpu_to_le32((3 << 4) | (1 << 14) | (0xa << 16));
 673		/*
 674		 * bmSublinkSpeedAttr[1] =
 675		 *   ST  = Symmetric, TX
 676		 *   LSE =  3 (Gbps)
 677		 *   LP  =  1 (SuperSpeedPlus)
 678		 *   LSM = 10 (10 Gbps)
 679		 */
 680		ssp_cap->bmSublinkSpeedAttr[1] =
 681			cpu_to_le32((3 << 4) | (1 << 14) |
 682				    (0xa << 16) | (1 << 7));
 683	}
 684
 685	return le16_to_cpu(bos->wTotalLength);
 686}
 687
 688static void device_qual(struct usb_composite_dev *cdev)
 689{
 690	struct usb_qualifier_descriptor	*qual = cdev->req->buf;
 691
 692	qual->bLength = sizeof(*qual);
 693	qual->bDescriptorType = USB_DT_DEVICE_QUALIFIER;
 694	/* POLICY: same bcdUSB and device type info at both speeds */
 695	qual->bcdUSB = cdev->desc.bcdUSB;
 696	qual->bDeviceClass = cdev->desc.bDeviceClass;
 697	qual->bDeviceSubClass = cdev->desc.bDeviceSubClass;
 698	qual->bDeviceProtocol = cdev->desc.bDeviceProtocol;
 699	/* ASSUME same EP0 fifo size at both speeds */
 700	qual->bMaxPacketSize0 = cdev->gadget->ep0->maxpacket;
 701	qual->bNumConfigurations = count_configs(cdev, USB_DT_DEVICE_QUALIFIER);
 702	qual->bRESERVED = 0;
 703}
 704
 705/*-------------------------------------------------------------------------*/
 706
 707static void reset_config(struct usb_composite_dev *cdev)
 708{
 709	struct usb_function		*f;
 710
 711	DBG(cdev, "reset config\n");
 712
 713	list_for_each_entry(f, &cdev->config->functions, list) {
 714		if (f->disable)
 715			f->disable(f);
 716
 717		bitmap_zero(f->endpoints, 32);
 718	}
 719	cdev->config = NULL;
 720	cdev->delayed_status = 0;
 721}
 722
 723static int set_config(struct usb_composite_dev *cdev,
 724		const struct usb_ctrlrequest *ctrl, unsigned number)
 725{
 726	struct usb_gadget	*gadget = cdev->gadget;
 727	struct usb_configuration *c = NULL;
 728	int			result = -EINVAL;
 729	unsigned		power = gadget_is_otg(gadget) ? 8 : 100;
 730	int			tmp;
 731
 732	if (number) {
 733		list_for_each_entry(c, &cdev->configs, list) {
 734			if (c->bConfigurationValue == number) {
 735				/*
 736				 * We disable the FDs of the previous
 737				 * configuration only if the new configuration
 738				 * is a valid one
 739				 */
 740				if (cdev->config)
 741					reset_config(cdev);
 742				result = 0;
 743				break;
 744			}
 745		}
 746		if (result < 0)
 747			goto done;
 748	} else { /* Zero configuration value - need to reset the config */
 749		if (cdev->config)
 750			reset_config(cdev);
 751		result = 0;
 752	}
 753
 754	INFO(cdev, "%s config #%d: %s\n",
 755	     usb_speed_string(gadget->speed),
 756	     number, c ? c->label : "unconfigured");
 757
 758	if (!c)
 759		goto done;
 760
 761	usb_gadget_set_state(gadget, USB_STATE_CONFIGURED);
 762	cdev->config = c;
 763
 764	/* Initialize all interfaces by setting them to altsetting zero. */
 765	for (tmp = 0; tmp < MAX_CONFIG_INTERFACES; tmp++) {
 766		struct usb_function	*f = c->interface[tmp];
 767		struct usb_descriptor_header **descriptors;
 768
 769		if (!f)
 770			break;
 771
 772		/*
 773		 * Record which endpoints are used by the function. This is used
 774		 * to dispatch control requests targeted at that endpoint to the
 775		 * function's setup callback instead of the current
 776		 * configuration's setup callback.
 777		 */
 778		descriptors = function_descriptors(f, gadget->speed);
 779
 780		for (; *descriptors; ++descriptors) {
 781			struct usb_endpoint_descriptor *ep;
 782			int addr;
 783
 784			if ((*descriptors)->bDescriptorType != USB_DT_ENDPOINT)
 785				continue;
 786
 787			ep = (struct usb_endpoint_descriptor *)*descriptors;
 788			addr = ((ep->bEndpointAddress & 0x80) >> 3)
 789			     |  (ep->bEndpointAddress & 0x0f);
 790			set_bit(addr, f->endpoints);
 791		}
 792
 793		result = f->set_alt(f, tmp, 0);
 794		if (result < 0) {
 795			DBG(cdev, "interface %d (%s/%p) alt 0 --> %d\n",
 796					tmp, f->name, f, result);
 797
 798			reset_config(cdev);
 799			goto done;
 800		}
 801
 802		if (result == USB_GADGET_DELAYED_STATUS) {
 803			DBG(cdev,
 804			 "%s: interface %d (%s) requested delayed status\n",
 805					__func__, tmp, f->name);
 806			cdev->delayed_status++;
 807			DBG(cdev, "delayed_status count %d\n",
 808					cdev->delayed_status);
 809		}
 810	}
 811
 812	/* when we return, be sure our power usage is valid */
 813	power = c->MaxPower ? c->MaxPower : CONFIG_USB_GADGET_VBUS_DRAW;
 814done:
 815	usb_gadget_vbus_draw(gadget, power);
 816	if (result >= 0 && cdev->delayed_status)
 817		result = USB_GADGET_DELAYED_STATUS;
 818	return result;
 819}
 820
 821int usb_add_config_only(struct usb_composite_dev *cdev,
 822		struct usb_configuration *config)
 823{
 824	struct usb_configuration *c;
 825
 826	if (!config->bConfigurationValue)
 827		return -EINVAL;
 828
 829	/* Prevent duplicate configuration identifiers */
 830	list_for_each_entry(c, &cdev->configs, list) {
 831		if (c->bConfigurationValue == config->bConfigurationValue)
 832			return -EBUSY;
 833	}
 834
 835	config->cdev = cdev;
 836	list_add_tail(&config->list, &cdev->configs);
 837
 838	INIT_LIST_HEAD(&config->functions);
 839	config->next_interface_id = 0;
 840	memset(config->interface, 0, sizeof(config->interface));
 841
 842	return 0;
 843}
 844EXPORT_SYMBOL_GPL(usb_add_config_only);
 845
 846/**
 847 * usb_add_config() - add a configuration to a device.
 848 * @cdev: wraps the USB gadget
 849 * @config: the configuration, with bConfigurationValue assigned
 850 * @bind: the configuration's bind function
 851 * Context: single threaded during gadget setup
 852 *
 853 * One of the main tasks of a composite @bind() routine is to
 854 * add each of the configurations it supports, using this routine.
 855 *
 856 * This function returns the value of the configuration's @bind(), which
 857 * is zero for success else a negative errno value.  Binding configurations
 858 * assigns global resources including string IDs, and per-configuration
 859 * resources such as interface IDs and endpoints.
 860 */
 861int usb_add_config(struct usb_composite_dev *cdev,
 862		struct usb_configuration *config,
 863		int (*bind)(struct usb_configuration *))
 864{
 865	int				status = -EINVAL;
 866
 867	if (!bind)
 868		goto done;
 869
 870	DBG(cdev, "adding config #%u '%s'/%p\n",
 871			config->bConfigurationValue,
 872			config->label, config);
 873
 874	status = usb_add_config_only(cdev, config);
 875	if (status)
 876		goto done;
 877
 878	status = bind(config);
 879	if (status < 0) {
 880		while (!list_empty(&config->functions)) {
 881			struct usb_function		*f;
 882
 883			f = list_first_entry(&config->functions,
 884					struct usb_function, list);
 885			list_del(&f->list);
 886			if (f->unbind) {
 887				DBG(cdev, "unbind function '%s'/%p\n",
 888					f->name, f);
 889				f->unbind(config, f);
 890				/* may free memory for "f" */
 891			}
 892		}
 893		list_del(&config->list);
 894		config->cdev = NULL;
 895	} else {
 896		unsigned	i;
 897
 898		DBG(cdev, "cfg %d/%p speeds:%s%s%s%s\n",
 899			config->bConfigurationValue, config,
 900			config->superspeed_plus ? " superplus" : "",
 901			config->superspeed ? " super" : "",
 902			config->highspeed ? " high" : "",
 903			config->fullspeed
 904				? (gadget_is_dualspeed(cdev->gadget)
 905					? " full"
 906					: " full/low")
 907				: "");
 908
 909		for (i = 0; i < MAX_CONFIG_INTERFACES; i++) {
 910			struct usb_function	*f = config->interface[i];
 911
 912			if (!f)
 913				continue;
 914			DBG(cdev, "  interface %d = %s/%p\n",
 915				i, f->name, f);
 916		}
 917	}
 918
 919	/* set_alt(), or next bind(), sets up ep->claimed as needed */
 920	usb_ep_autoconfig_reset(cdev->gadget);
 921
 922done:
 923	if (status)
 924		DBG(cdev, "added config '%s'/%u --> %d\n", config->label,
 925				config->bConfigurationValue, status);
 926	return status;
 927}
 928EXPORT_SYMBOL_GPL(usb_add_config);
 929
 930static void remove_config(struct usb_composite_dev *cdev,
 931			      struct usb_configuration *config)
 932{
 933	while (!list_empty(&config->functions)) {
 934		struct usb_function		*f;
 935
 936		f = list_first_entry(&config->functions,
 937				struct usb_function, list);
 938		list_del(&f->list);
 939		if (f->unbind) {
 940			DBG(cdev, "unbind function '%s'/%p\n", f->name, f);
 941			f->unbind(config, f);
 942			/* may free memory for "f" */
 943		}
 944	}
 945	list_del(&config->list);
 946	if (config->unbind) {
 947		DBG(cdev, "unbind config '%s'/%p\n", config->label, config);
 948		config->unbind(config);
 949			/* may free memory for "c" */
 950	}
 951}
 952
 953/**
 954 * usb_remove_config() - remove a configuration from a device.
 955 * @cdev: wraps the USB gadget
 956 * @config: the configuration
 957 *
 958 * Drivers must call usb_gadget_disconnect before calling this function
 959 * to disconnect the device from the host and make sure the host will not
 960 * try to enumerate the device while we are changing the config list.
 961 */
 962void usb_remove_config(struct usb_composite_dev *cdev,
 963		      struct usb_configuration *config)
 964{
 965	unsigned long flags;
 966
 967	spin_lock_irqsave(&cdev->lock, flags);
 968
 969	if (cdev->config == config)
 970		reset_config(cdev);
 971
 972	spin_unlock_irqrestore(&cdev->lock, flags);
 973
 974	remove_config(cdev, config);
 975}
 976
 977/*-------------------------------------------------------------------------*/
 978
 979/* We support strings in multiple languages ... string descriptor zero
 980 * says which languages are supported.  The typical case will be that
 981 * only one language (probably English) is used, with i18n handled on
 982 * the host side.
 983 */
 984
 985static void collect_langs(struct usb_gadget_strings **sp, __le16 *buf)
 986{
 987	const struct usb_gadget_strings	*s;
 988	__le16				language;
 989	__le16				*tmp;
 990
 991	while (*sp) {
 992		s = *sp;
 993		language = cpu_to_le16(s->language);
 994		for (tmp = buf; *tmp && tmp < &buf[126]; tmp++) {
 995			if (*tmp == language)
 996				goto repeat;
 997		}
 998		*tmp++ = language;
 999repeat:
1000		sp++;
1001	}
1002}
1003
1004static int lookup_string(
1005	struct usb_gadget_strings	**sp,
1006	void				*buf,
1007	u16				language,
1008	int				id
1009)
1010{
1011	struct usb_gadget_strings	*s;
1012	int				value;
1013
1014	while (*sp) {
1015		s = *sp++;
1016		if (s->language != language)
1017			continue;
1018		value = usb_gadget_get_string(s, id, buf);
1019		if (value > 0)
1020			return value;
1021	}
1022	return -EINVAL;
1023}
1024
1025static int get_string(struct usb_composite_dev *cdev,
1026		void *buf, u16 language, int id)
1027{
1028	struct usb_composite_driver	*composite = cdev->driver;
1029	struct usb_gadget_string_container *uc;
1030	struct usb_configuration	*c;
1031	struct usb_function		*f;
1032	int				len;
1033
1034	/* Yes, not only is USB's i18n support probably more than most
1035	 * folk will ever care about ... also, it's all supported here.
1036	 * (Except for UTF8 support for Unicode's "Astral Planes".)
1037	 */
1038
1039	/* 0 == report all available language codes */
1040	if (id == 0) {
1041		struct usb_string_descriptor	*s = buf;
1042		struct usb_gadget_strings	**sp;
1043
1044		memset(s, 0, 256);
1045		s->bDescriptorType = USB_DT_STRING;
1046
1047		sp = composite->strings;
1048		if (sp)
1049			collect_langs(sp, s->wData);
1050
1051		list_for_each_entry(c, &cdev->configs, list) {
1052			sp = c->strings;
1053			if (sp)
1054				collect_langs(sp, s->wData);
1055
1056			list_for_each_entry(f, &c->functions, list) {
1057				sp = f->strings;
1058				if (sp)
1059					collect_langs(sp, s->wData);
1060			}
1061		}
1062		list_for_each_entry(uc, &cdev->gstrings, list) {
1063			struct usb_gadget_strings **sp;
1064
1065			sp = get_containers_gs(uc);
1066			collect_langs(sp, s->wData);
1067		}
1068
1069		for (len = 0; len <= 126 && s->wData[len]; len++)
1070			continue;
1071		if (!len)
1072			return -EINVAL;
1073
1074		s->bLength = 2 * (len + 1);
1075		return s->bLength;
1076	}
1077
1078	if (cdev->use_os_string && language == 0 && id == OS_STRING_IDX) {
1079		struct usb_os_string *b = buf;
1080		b->bLength = sizeof(*b);
1081		b->bDescriptorType = USB_DT_STRING;
1082		compiletime_assert(
1083			sizeof(b->qwSignature) == sizeof(cdev->qw_sign),
1084			"qwSignature size must be equal to qw_sign");
1085		memcpy(&b->qwSignature, cdev->qw_sign, sizeof(b->qwSignature));
1086		b->bMS_VendorCode = cdev->b_vendor_code;
1087		b->bPad = 0;
1088		return sizeof(*b);
1089	}
1090
1091	list_for_each_entry(uc, &cdev->gstrings, list) {
1092		struct usb_gadget_strings **sp;
1093
1094		sp = get_containers_gs(uc);
1095		len = lookup_string(sp, buf, language, id);
1096		if (len > 0)
1097			return len;
1098	}
1099
1100	/* String IDs are device-scoped, so we look up each string
1101	 * table we're told about.  These lookups are infrequent;
1102	 * simpler-is-better here.
1103	 */
1104	if (composite->strings) {
1105		len = lookup_string(composite->strings, buf, language, id);
1106		if (len > 0)
1107			return len;
1108	}
1109	list_for_each_entry(c, &cdev->configs, list) {
1110		if (c->strings) {
1111			len = lookup_string(c->strings, buf, language, id);
1112			if (len > 0)
1113				return len;
1114		}
1115		list_for_each_entry(f, &c->functions, list) {
1116			if (!f->strings)
1117				continue;
1118			len = lookup_string(f->strings, buf, language, id);
1119			if (len > 0)
1120				return len;
1121		}
1122	}
1123	return -EINVAL;
1124}
1125
1126/**
1127 * usb_string_id() - allocate an unused string ID
1128 * @cdev: the device whose string descriptor IDs are being allocated
1129 * Context: single threaded during gadget setup
1130 *
1131 * @usb_string_id() is called from bind() callbacks to allocate
1132 * string IDs.  Drivers for functions, configurations, or gadgets will
1133 * then store that ID in the appropriate descriptors and string table.
1134 *
1135 * All string identifier should be allocated using this,
1136 * @usb_string_ids_tab() or @usb_string_ids_n() routine, to ensure
1137 * that for example different functions don't wrongly assign different
1138 * meanings to the same identifier.
1139 */
1140int usb_string_id(struct usb_composite_dev *cdev)
1141{
1142	if (cdev->next_string_id < 254) {
1143		/* string id 0 is reserved by USB spec for list of
1144		 * supported languages */
1145		/* 255 reserved as well? -- mina86 */
1146		cdev->next_string_id++;
1147		return cdev->next_string_id;
1148	}
1149	return -ENODEV;
1150}
1151EXPORT_SYMBOL_GPL(usb_string_id);
1152
1153/**
1154 * usb_string_ids() - allocate unused string IDs in batch
1155 * @cdev: the device whose string descriptor IDs are being allocated
1156 * @str: an array of usb_string objects to assign numbers to
1157 * Context: single threaded during gadget setup
1158 *
1159 * @usb_string_ids() is called from bind() callbacks to allocate
1160 * string IDs.  Drivers for functions, configurations, or gadgets will
1161 * then copy IDs from the string table to the appropriate descriptors
1162 * and string table for other languages.
1163 *
1164 * All string identifier should be allocated using this,
1165 * @usb_string_id() or @usb_string_ids_n() routine, to ensure that for
1166 * example different functions don't wrongly assign different meanings
1167 * to the same identifier.
1168 */
1169int usb_string_ids_tab(struct usb_composite_dev *cdev, struct usb_string *str)
1170{
1171	int next = cdev->next_string_id;
1172
1173	for (; str->s; ++str) {
1174		if (unlikely(next >= 254))
1175			return -ENODEV;
1176		str->id = ++next;
1177	}
1178
1179	cdev->next_string_id = next;
1180
1181	return 0;
1182}
1183EXPORT_SYMBOL_GPL(usb_string_ids_tab);
1184
1185static struct usb_gadget_string_container *copy_gadget_strings(
1186		struct usb_gadget_strings **sp, unsigned n_gstrings,
1187		unsigned n_strings)
1188{
1189	struct usb_gadget_string_container *uc;
1190	struct usb_gadget_strings **gs_array;
1191	struct usb_gadget_strings *gs;
1192	struct usb_string *s;
1193	unsigned mem;
1194	unsigned n_gs;
1195	unsigned n_s;
1196	void *stash;
1197
1198	mem = sizeof(*uc);
1199	mem += sizeof(void *) * (n_gstrings + 1);
1200	mem += sizeof(struct usb_gadget_strings) * n_gstrings;
1201	mem += sizeof(struct usb_string) * (n_strings + 1) * (n_gstrings);
1202	uc = kmalloc(mem, GFP_KERNEL);
1203	if (!uc)
1204		return ERR_PTR(-ENOMEM);
1205	gs_array = get_containers_gs(uc);
1206	stash = uc->stash;
1207	stash += sizeof(void *) * (n_gstrings + 1);
1208	for (n_gs = 0; n_gs < n_gstrings; n_gs++) {
1209		struct usb_string *org_s;
1210
1211		gs_array[n_gs] = stash;
1212		gs = gs_array[n_gs];
1213		stash += sizeof(struct usb_gadget_strings);
1214		gs->language = sp[n_gs]->language;
1215		gs->strings = stash;
1216		org_s = sp[n_gs]->strings;
1217
1218		for (n_s = 0; n_s < n_strings; n_s++) {
1219			s = stash;
1220			stash += sizeof(struct usb_string);
1221			if (org_s->s)
1222				s->s = org_s->s;
1223			else
1224				s->s = "";
1225			org_s++;
1226		}
1227		s = stash;
1228		s->s = NULL;
1229		stash += sizeof(struct usb_string);
1230
1231	}
1232	gs_array[n_gs] = NULL;
1233	return uc;
1234}
1235
1236/**
1237 * usb_gstrings_attach() - attach gadget strings to a cdev and assign ids
1238 * @cdev: the device whose string descriptor IDs are being allocated
1239 * and attached.
1240 * @sp: an array of usb_gadget_strings to attach.
1241 * @n_strings: number of entries in each usb_strings array (sp[]->strings)
1242 *
1243 * This function will create a deep copy of usb_gadget_strings and usb_string
1244 * and attach it to the cdev. The actual string (usb_string.s) will not be
1245 * copied but only a referenced will be made. The struct usb_gadget_strings
1246 * array may contain multiple languages and should be NULL terminated.
1247 * The ->language pointer of each struct usb_gadget_strings has to contain the
1248 * same amount of entries.
1249 * For instance: sp[0] is en-US, sp[1] is es-ES. It is expected that the first
1250 * usb_string entry of es-ES contains the translation of the first usb_string
1251 * entry of en-US. Therefore both entries become the same id assign.
1252 */
1253struct usb_string *usb_gstrings_attach(struct usb_composite_dev *cdev,
1254		struct usb_gadget_strings **sp, unsigned n_strings)
1255{
1256	struct usb_gadget_string_container *uc;
1257	struct usb_gadget_strings **n_gs;
1258	unsigned n_gstrings = 0;
1259	unsigned i;
1260	int ret;
1261
1262	for (i = 0; sp[i]; i++)
1263		n_gstrings++;
1264
1265	if (!n_gstrings)
1266		return ERR_PTR(-EINVAL);
1267
1268	uc = copy_gadget_strings(sp, n_gstrings, n_strings);
1269	if (IS_ERR(uc))
1270		return ERR_CAST(uc);
1271
1272	n_gs = get_containers_gs(uc);
1273	ret = usb_string_ids_tab(cdev, n_gs[0]->strings);
1274	if (ret)
1275		goto err;
1276
1277	for (i = 1; i < n_gstrings; i++) {
1278		struct usb_string *m_s;
1279		struct usb_string *s;
1280		unsigned n;
1281
1282		m_s = n_gs[0]->strings;
1283		s = n_gs[i]->strings;
1284		for (n = 0; n < n_strings; n++) {
1285			s->id = m_s->id;
1286			s++;
1287			m_s++;
1288		}
1289	}
1290	list_add_tail(&uc->list, &cdev->gstrings);
1291	return n_gs[0]->strings;
1292err:
1293	kfree(uc);
1294	return ERR_PTR(ret);
1295}
1296EXPORT_SYMBOL_GPL(usb_gstrings_attach);
1297
1298/**
1299 * usb_string_ids_n() - allocate unused string IDs in batch
1300 * @c: the device whose string descriptor IDs are being allocated
1301 * @n: number of string IDs to allocate
1302 * Context: single threaded during gadget setup
1303 *
1304 * Returns the first requested ID.  This ID and next @n-1 IDs are now
1305 * valid IDs.  At least provided that @n is non-zero because if it
1306 * is, returns last requested ID which is now very useful information.
1307 *
1308 * @usb_string_ids_n() is called from bind() callbacks to allocate
1309 * string IDs.  Drivers for functions, configurations, or gadgets will
1310 * then store that ID in the appropriate descriptors and string table.
1311 *
1312 * All string identifier should be allocated using this,
1313 * @usb_string_id() or @usb_string_ids_n() routine, to ensure that for
1314 * example different functions don't wrongly assign different meanings
1315 * to the same identifier.
1316 */
1317int usb_string_ids_n(struct usb_composite_dev *c, unsigned n)
1318{
1319	unsigned next = c->next_string_id;
1320	if (unlikely(n > 254 || (unsigned)next + n > 254))
1321		return -ENODEV;
1322	c->next_string_id += n;
1323	return next + 1;
1324}
1325EXPORT_SYMBOL_GPL(usb_string_ids_n);
1326
1327/*-------------------------------------------------------------------------*/
1328
1329static void composite_setup_complete(struct usb_ep *ep, struct usb_request *req)
1330{
1331	struct usb_composite_dev *cdev;
1332
1333	if (req->status || req->actual != req->length)
1334		DBG((struct usb_composite_dev *) ep->driver_data,
1335				"setup complete --> %d, %d/%d\n",
1336				req->status, req->actual, req->length);
1337
1338	/*
1339	 * REVIST The same ep0 requests are shared with function drivers
1340	 * so they don't have to maintain the same ->complete() stubs.
1341	 *
1342	 * Because of that, we need to check for the validity of ->context
1343	 * here, even though we know we've set it to something useful.
1344	 */
1345	if (!req->context)
1346		return;
1347
1348	cdev = req->context;
1349
1350	if (cdev->req == req)
1351		cdev->setup_pending = false;
1352	else if (cdev->os_desc_req == req)
1353		cdev->os_desc_pending = false;
1354	else
1355		WARN(1, "unknown request %p\n", req);
1356}
1357
1358static int composite_ep0_queue(struct usb_composite_dev *cdev,
1359		struct usb_request *req, gfp_t gfp_flags)
1360{
1361	int ret;
1362
1363	ret = usb_ep_queue(cdev->gadget->ep0, req, gfp_flags);
1364	if (ret == 0) {
1365		if (cdev->req == req)
1366			cdev->setup_pending = true;
1367		else if (cdev->os_desc_req == req)
1368			cdev->os_desc_pending = true;
1369		else
1370			WARN(1, "unknown request %p\n", req);
1371	}
1372
1373	return ret;
1374}
1375
1376static int count_ext_compat(struct usb_configuration *c)
1377{
1378	int i, res;
1379
1380	res = 0;
1381	for (i = 0; i < c->next_interface_id; ++i) {
1382		struct usb_function *f;
1383		int j;
1384
1385		f = c->interface[i];
1386		for (j = 0; j < f->os_desc_n; ++j) {
1387			struct usb_os_desc *d;
1388
1389			if (i != f->os_desc_table[j].if_id)
1390				continue;
1391			d = f->os_desc_table[j].os_desc;
1392			if (d && d->ext_compat_id)
1393				++res;
1394		}
1395	}
1396	BUG_ON(res > 255);
1397	return res;
1398}
1399
1400static void fill_ext_compat(struct usb_configuration *c, u8 *buf)
1401{
1402	int i, count;
1403
1404	count = 16;
 
1405	for (i = 0; i < c->next_interface_id; ++i) {
1406		struct usb_function *f;
1407		int j;
1408
1409		f = c->interface[i];
1410		for (j = 0; j < f->os_desc_n; ++j) {
1411			struct usb_os_desc *d;
1412
1413			if (i != f->os_desc_table[j].if_id)
1414				continue;
1415			d = f->os_desc_table[j].os_desc;
1416			if (d && d->ext_compat_id) {
1417				*buf++ = i;
1418				*buf++ = 0x01;
1419				memcpy(buf, d->ext_compat_id, 16);
1420				buf += 22;
1421			} else {
1422				++buf;
1423				*buf = 0x01;
1424				buf += 23;
1425			}
1426			count += 24;
1427			if (count >= 4096)
1428				return;
1429		}
1430	}
 
 
1431}
1432
1433static int count_ext_prop(struct usb_configuration *c, int interface)
1434{
1435	struct usb_function *f;
1436	int j;
1437
1438	f = c->interface[interface];
1439	for (j = 0; j < f->os_desc_n; ++j) {
1440		struct usb_os_desc *d;
1441
1442		if (interface != f->os_desc_table[j].if_id)
1443			continue;
1444		d = f->os_desc_table[j].os_desc;
1445		if (d && d->ext_compat_id)
1446			return d->ext_prop_count;
1447	}
1448	return 0;
1449}
1450
1451static int len_ext_prop(struct usb_configuration *c, int interface)
1452{
1453	struct usb_function *f;
1454	struct usb_os_desc *d;
1455	int j, res;
1456
1457	res = 10; /* header length */
1458	f = c->interface[interface];
1459	for (j = 0; j < f->os_desc_n; ++j) {
1460		if (interface != f->os_desc_table[j].if_id)
1461			continue;
1462		d = f->os_desc_table[j].os_desc;
1463		if (d)
1464			return min(res + d->ext_prop_len, 4096);
1465	}
1466	return res;
1467}
1468
1469static int fill_ext_prop(struct usb_configuration *c, int interface, u8 *buf)
1470{
1471	struct usb_function *f;
1472	struct usb_os_desc *d;
1473	struct usb_os_desc_ext_prop *ext_prop;
1474	int j, count, n, ret;
1475	u8 *start = buf;
1476
1477	f = c->interface[interface];
 
 
1478	for (j = 0; j < f->os_desc_n; ++j) {
1479		if (interface != f->os_desc_table[j].if_id)
1480			continue;
1481		d = f->os_desc_table[j].os_desc;
1482		if (d)
1483			list_for_each_entry(ext_prop, &d->ext_prop, entry) {
1484				/* 4kB minus header length */
1485				n = buf - start;
1486				if (n >= 4086)
1487					return 0;
1488
1489				count = ext_prop->data_len +
1490					ext_prop->name_len + 14;
1491				if (count > 4086 - n)
1492					return -EINVAL;
1493				usb_ext_prop_put_size(buf, count);
1494				usb_ext_prop_put_type(buf, ext_prop->type);
1495				ret = usb_ext_prop_put_name(buf, ext_prop->name,
1496							    ext_prop->name_len);
1497				if (ret < 0)
1498					return ret;
1499				switch (ext_prop->type) {
1500				case USB_EXT_PROP_UNICODE:
1501				case USB_EXT_PROP_UNICODE_ENV:
1502				case USB_EXT_PROP_UNICODE_LINK:
1503					usb_ext_prop_put_unicode(buf, ret,
1504							 ext_prop->data,
1505							 ext_prop->data_len);
1506					break;
1507				case USB_EXT_PROP_BINARY:
1508					usb_ext_prop_put_binary(buf, ret,
1509							ext_prop->data,
1510							ext_prop->data_len);
1511					break;
1512				case USB_EXT_PROP_LE32:
1513					/* not implemented */
1514				case USB_EXT_PROP_BE32:
1515					/* not implemented */
1516				default:
1517					return -EINVAL;
1518				}
1519				buf += count;
 
1520			}
1521	}
1522
1523	return 0;
1524}
1525
1526/*
1527 * The setup() callback implements all the ep0 functionality that's
1528 * not handled lower down, in hardware or the hardware driver(like
1529 * device and endpoint feature flags, and their status).  It's all
1530 * housekeeping for the gadget function we're implementing.  Most of
1531 * the work is in config and function specific setup.
1532 */
1533int
1534composite_setup(struct usb_gadget *gadget, const struct usb_ctrlrequest *ctrl)
1535{
1536	struct usb_composite_dev	*cdev = get_gadget_data(gadget);
1537	struct usb_request		*req = cdev->req;
1538	int				value = -EOPNOTSUPP;
1539	int				status = 0;
1540	u16				w_index = le16_to_cpu(ctrl->wIndex);
1541	u8				intf = w_index & 0xFF;
1542	u16				w_value = le16_to_cpu(ctrl->wValue);
1543	u16				w_length = le16_to_cpu(ctrl->wLength);
1544	struct usb_function		*f = NULL;
1545	u8				endp;
1546
1547	/* partial re-init of the response message; the function or the
1548	 * gadget might need to intercept e.g. a control-OUT completion
1549	 * when we delegate to it.
1550	 */
1551	req->zero = 0;
1552	req->context = cdev;
1553	req->complete = composite_setup_complete;
1554	req->length = 0;
1555	gadget->ep0->driver_data = cdev;
1556
1557	/*
1558	 * Don't let non-standard requests match any of the cases below
1559	 * by accident.
1560	 */
1561	if ((ctrl->bRequestType & USB_TYPE_MASK) != USB_TYPE_STANDARD)
1562		goto unknown;
1563
1564	switch (ctrl->bRequest) {
1565
1566	/* we handle all standard USB descriptors */
1567	case USB_REQ_GET_DESCRIPTOR:
1568		if (ctrl->bRequestType != USB_DIR_IN)
1569			goto unknown;
1570		switch (w_value >> 8) {
1571
1572		case USB_DT_DEVICE:
1573			cdev->desc.bNumConfigurations =
1574				count_configs(cdev, USB_DT_DEVICE);
1575			cdev->desc.bMaxPacketSize0 =
1576				cdev->gadget->ep0->maxpacket;
1577			if (gadget_is_superspeed(gadget)) {
1578				if (gadget->speed >= USB_SPEED_SUPER) {
1579					cdev->desc.bcdUSB = cpu_to_le16(0x0310);
1580					cdev->desc.bMaxPacketSize0 = 9;
1581				} else {
1582					cdev->desc.bcdUSB = cpu_to_le16(0x0210);
1583				}
1584			} else {
1585				cdev->desc.bcdUSB = cpu_to_le16(0x0200);
 
 
 
1586			}
1587
1588			value = min(w_length, (u16) sizeof cdev->desc);
1589			memcpy(req->buf, &cdev->desc, value);
1590			break;
1591		case USB_DT_DEVICE_QUALIFIER:
1592			if (!gadget_is_dualspeed(gadget) ||
1593			    gadget->speed >= USB_SPEED_SUPER)
1594				break;
1595			device_qual(cdev);
1596			value = min_t(int, w_length,
1597				sizeof(struct usb_qualifier_descriptor));
1598			break;
1599		case USB_DT_OTHER_SPEED_CONFIG:
1600			if (!gadget_is_dualspeed(gadget) ||
1601			    gadget->speed >= USB_SPEED_SUPER)
1602				break;
1603			/* FALLTHROUGH */
1604		case USB_DT_CONFIG:
1605			value = config_desc(cdev, w_value);
1606			if (value >= 0)
1607				value = min(w_length, (u16) value);
1608			break;
1609		case USB_DT_STRING:
1610			value = get_string(cdev, req->buf,
1611					w_index, w_value & 0xff);
1612			if (value >= 0)
1613				value = min(w_length, (u16) value);
1614			break;
1615		case USB_DT_BOS:
1616			if (gadget_is_superspeed(gadget)) {
 
1617				value = bos_desc(cdev);
1618				value = min(w_length, (u16) value);
1619			}
1620			break;
1621		case USB_DT_OTG:
1622			if (gadget_is_otg(gadget)) {
1623				struct usb_configuration *config;
1624				int otg_desc_len = 0;
1625
1626				if (cdev->config)
1627					config = cdev->config;
1628				else
1629					config = list_first_entry(
1630							&cdev->configs,
1631						struct usb_configuration, list);
1632				if (!config)
1633					goto done;
1634
1635				if (gadget->otg_caps &&
1636					(gadget->otg_caps->otg_rev >= 0x0200))
1637					otg_desc_len += sizeof(
1638						struct usb_otg20_descriptor);
1639				else
1640					otg_desc_len += sizeof(
1641						struct usb_otg_descriptor);
1642
1643				value = min_t(int, w_length, otg_desc_len);
1644				memcpy(req->buf, config->descriptors[0], value);
1645			}
1646			break;
1647		}
1648		break;
1649
1650	/* any number of configs can work */
1651	case USB_REQ_SET_CONFIGURATION:
1652		if (ctrl->bRequestType != 0)
1653			goto unknown;
1654		if (gadget_is_otg(gadget)) {
1655			if (gadget->a_hnp_support)
1656				DBG(cdev, "HNP available\n");
1657			else if (gadget->a_alt_hnp_support)
1658				DBG(cdev, "HNP on another port\n");
1659			else
1660				VDBG(cdev, "HNP inactive\n");
1661		}
1662		spin_lock(&cdev->lock);
1663		value = set_config(cdev, ctrl, w_value);
1664		spin_unlock(&cdev->lock);
1665		break;
1666	case USB_REQ_GET_CONFIGURATION:
1667		if (ctrl->bRequestType != USB_DIR_IN)
1668			goto unknown;
1669		if (cdev->config)
1670			*(u8 *)req->buf = cdev->config->bConfigurationValue;
1671		else
1672			*(u8 *)req->buf = 0;
1673		value = min(w_length, (u16) 1);
1674		break;
1675
1676	/* function drivers must handle get/set altsetting; if there's
1677	 * no get() method, we know only altsetting zero works.
1678	 */
1679	case USB_REQ_SET_INTERFACE:
1680		if (ctrl->bRequestType != USB_RECIP_INTERFACE)
1681			goto unknown;
1682		if (!cdev->config || intf >= MAX_CONFIG_INTERFACES)
1683			break;
1684		f = cdev->config->interface[intf];
1685		if (!f)
1686			break;
1687		if (w_value && !f->set_alt)
 
 
 
 
 
 
1688			break;
1689		value = f->set_alt(f, w_index, w_value);
1690		if (value == USB_GADGET_DELAYED_STATUS) {
1691			DBG(cdev,
1692			 "%s: interface %d (%s) requested delayed status\n",
1693					__func__, intf, f->name);
1694			cdev->delayed_status++;
1695			DBG(cdev, "delayed_status count %d\n",
1696					cdev->delayed_status);
1697		}
1698		break;
1699	case USB_REQ_GET_INTERFACE:
1700		if (ctrl->bRequestType != (USB_DIR_IN|USB_RECIP_INTERFACE))
1701			goto unknown;
1702		if (!cdev->config || intf >= MAX_CONFIG_INTERFACES)
1703			break;
1704		f = cdev->config->interface[intf];
1705		if (!f)
1706			break;
1707		/* lots of interfaces only need altsetting zero... */
1708		value = f->get_alt ? f->get_alt(f, w_index) : 0;
1709		if (value < 0)
1710			break;
1711		*((u8 *)req->buf) = value;
1712		value = min(w_length, (u16) 1);
1713		break;
1714	case USB_REQ_GET_STATUS:
1715		if (gadget_is_otg(gadget) && gadget->hnp_polling_support &&
1716						(w_index == OTG_STS_SELECTOR)) {
1717			if (ctrl->bRequestType != (USB_DIR_IN |
1718							USB_RECIP_DEVICE))
1719				goto unknown;
1720			*((u8 *)req->buf) = gadget->host_request_flag;
1721			value = 1;
1722			break;
1723		}
1724
1725		/*
1726		 * USB 3.0 additions:
1727		 * Function driver should handle get_status request. If such cb
1728		 * wasn't supplied we respond with default value = 0
1729		 * Note: function driver should supply such cb only for the
1730		 * first interface of the function
1731		 */
1732		if (!gadget_is_superspeed(gadget))
1733			goto unknown;
1734		if (ctrl->bRequestType != (USB_DIR_IN | USB_RECIP_INTERFACE))
1735			goto unknown;
1736		value = 2;	/* This is the length of the get_status reply */
1737		put_unaligned_le16(0, req->buf);
1738		if (!cdev->config || intf >= MAX_CONFIG_INTERFACES)
1739			break;
1740		f = cdev->config->interface[intf];
1741		if (!f)
1742			break;
1743		status = f->get_status ? f->get_status(f) : 0;
1744		if (status < 0)
1745			break;
1746		put_unaligned_le16(status & 0x0000ffff, req->buf);
1747		break;
1748	/*
1749	 * Function drivers should handle SetFeature/ClearFeature
1750	 * (FUNCTION_SUSPEND) request. function_suspend cb should be supplied
1751	 * only for the first interface of the function
1752	 */
1753	case USB_REQ_CLEAR_FEATURE:
1754	case USB_REQ_SET_FEATURE:
1755		if (!gadget_is_superspeed(gadget))
1756			goto unknown;
1757		if (ctrl->bRequestType != (USB_DIR_OUT | USB_RECIP_INTERFACE))
1758			goto unknown;
1759		switch (w_value) {
1760		case USB_INTRF_FUNC_SUSPEND:
1761			if (!cdev->config || intf >= MAX_CONFIG_INTERFACES)
1762				break;
1763			f = cdev->config->interface[intf];
1764			if (!f)
1765				break;
1766			value = 0;
1767			if (f->func_suspend)
1768				value = f->func_suspend(f, w_index >> 8);
1769			if (value < 0) {
1770				ERROR(cdev,
1771				      "func_suspend() returned error %d\n",
1772				      value);
1773				value = 0;
1774			}
1775			break;
1776		}
1777		break;
1778	default:
1779unknown:
1780		/*
1781		 * OS descriptors handling
1782		 */
1783		if (cdev->use_os_string && cdev->os_desc_config &&
1784		    (ctrl->bRequestType & USB_TYPE_VENDOR) &&
1785		    ctrl->bRequest == cdev->b_vendor_code) {
1786			struct usb_request		*req;
1787			struct usb_configuration	*os_desc_cfg;
1788			u8				*buf;
1789			int				interface;
1790			int				count = 0;
1791
1792			req = cdev->os_desc_req;
1793			req->context = cdev;
1794			req->complete = composite_setup_complete;
1795			buf = req->buf;
1796			os_desc_cfg = cdev->os_desc_config;
 
1797			memset(buf, 0, w_length);
1798			buf[5] = 0x01;
1799			switch (ctrl->bRequestType & USB_RECIP_MASK) {
1800			case USB_RECIP_DEVICE:
1801				if (w_index != 0x4 || (w_value >> 8))
1802					break;
1803				buf[6] = w_index;
1804				if (w_length == 0x10) {
1805					/* Number of ext compat interfaces */
1806					count = count_ext_compat(os_desc_cfg);
1807					buf[8] = count;
1808					count *= 24; /* 24 B/ext compat desc */
1809					count += 16; /* header */
1810					put_unaligned_le32(count, buf);
1811					value = w_length;
1812				} else {
1813					/* "extended compatibility ID"s */
1814					count = count_ext_compat(os_desc_cfg);
1815					buf[8] = count;
1816					count *= 24; /* 24 B/ext compat desc */
1817					count += 16; /* header */
1818					put_unaligned_le32(count, buf);
1819					buf += 16;
1820					fill_ext_compat(os_desc_cfg, buf);
1821					value = w_length;
1822				}
1823				break;
1824			case USB_RECIP_INTERFACE:
1825				if (w_index != 0x5 || (w_value >> 8))
1826					break;
1827				interface = w_value & 0xFF;
1828				buf[6] = w_index;
1829				if (w_length == 0x0A) {
1830					count = count_ext_prop(os_desc_cfg,
1831						interface);
1832					put_unaligned_le16(count, buf + 8);
1833					count = len_ext_prop(os_desc_cfg,
1834						interface);
1835					put_unaligned_le32(count, buf);
1836
1837					value = w_length;
1838				} else {
1839					count = count_ext_prop(os_desc_cfg,
1840						interface);
1841					put_unaligned_le16(count, buf + 8);
1842					count = len_ext_prop(os_desc_cfg,
1843						interface);
1844					put_unaligned_le32(count, buf);
1845					buf += 10;
1846					value = fill_ext_prop(os_desc_cfg,
1847							      interface, buf);
1848					if (value < 0)
1849						return value;
1850
1851					value = w_length;
1852				}
1853				break;
1854			}
1855			req->length = value;
1856			req->context = cdev;
1857			req->zero = value < w_length;
1858			value = composite_ep0_queue(cdev, req, GFP_ATOMIC);
1859			if (value < 0) {
1860				DBG(cdev, "ep_queue --> %d\n", value);
1861				req->status = 0;
1862				composite_setup_complete(gadget->ep0, req);
1863			}
1864			return value;
1865		}
1866
1867		VDBG(cdev,
1868			"non-core control req%02x.%02x v%04x i%04x l%d\n",
1869			ctrl->bRequestType, ctrl->bRequest,
1870			w_value, w_index, w_length);
1871
1872		/* functions always handle their interfaces and endpoints...
1873		 * punt other recipients (other, WUSB, ...) to the current
1874		 * configuration code.
1875		 *
1876		 * REVISIT it could make sense to let the composite device
1877		 * take such requests too, if that's ever needed:  to work
1878		 * in config 0, etc.
1879		 */
1880		if (cdev->config) {
1881			list_for_each_entry(f, &cdev->config->functions, list)
1882				if (f->req_match && f->req_match(f, ctrl))
 
1883					goto try_fun_setup;
1884			f = NULL;
 
 
 
 
 
 
1885		}
 
1886
1887		switch (ctrl->bRequestType & USB_RECIP_MASK) {
1888		case USB_RECIP_INTERFACE:
1889			if (!cdev->config || intf >= MAX_CONFIG_INTERFACES)
1890				break;
1891			f = cdev->config->interface[intf];
1892			break;
1893
1894		case USB_RECIP_ENDPOINT:
 
 
1895			endp = ((w_index & 0x80) >> 3) | (w_index & 0x0f);
1896			list_for_each_entry(f, &cdev->config->functions, list) {
1897				if (test_bit(endp, f->endpoints))
1898					break;
1899			}
1900			if (&f->list == &cdev->config->functions)
1901				f = NULL;
1902			break;
1903		}
1904try_fun_setup:
1905		if (f && f->setup)
1906			value = f->setup(f, ctrl);
1907		else {
1908			struct usb_configuration	*c;
1909
1910			c = cdev->config;
1911			if (!c)
1912				goto done;
1913
1914			/* try current config's setup */
1915			if (c->setup) {
1916				value = c->setup(c, ctrl);
1917				goto done;
1918			}
1919
1920			/* try the only function in the current config */
1921			if (!list_is_singular(&c->functions))
1922				goto done;
1923			f = list_first_entry(&c->functions, struct usb_function,
1924					     list);
1925			if (f->setup)
1926				value = f->setup(f, ctrl);
1927		}
1928
1929		goto done;
1930	}
1931
 
1932	/* respond with data transfer before status phase? */
1933	if (value >= 0 && value != USB_GADGET_DELAYED_STATUS) {
1934		req->length = value;
1935		req->context = cdev;
1936		req->zero = value < w_length;
1937		value = composite_ep0_queue(cdev, req, GFP_ATOMIC);
1938		if (value < 0) {
1939			DBG(cdev, "ep_queue --> %d\n", value);
1940			req->status = 0;
1941			composite_setup_complete(gadget->ep0, req);
1942		}
1943	} else if (value == USB_GADGET_DELAYED_STATUS && w_length != 0) {
1944		WARN(cdev,
1945			"%s: Delayed status not supported for w_length != 0",
1946			__func__);
1947	}
1948
1949done:
1950	/* device either stalls (value < 0) or reports success */
1951	return value;
1952}
1953
1954void composite_disconnect(struct usb_gadget *gadget)
1955{
1956	struct usb_composite_dev	*cdev = get_gadget_data(gadget);
1957	unsigned long			flags;
1958
1959	/* REVISIT:  should we have config and device level
1960	 * disconnect callbacks?
1961	 */
1962	spin_lock_irqsave(&cdev->lock, flags);
1963	if (cdev->config)
1964		reset_config(cdev);
1965	if (cdev->driver->disconnect)
1966		cdev->driver->disconnect(cdev);
1967	spin_unlock_irqrestore(&cdev->lock, flags);
1968}
1969
1970/*-------------------------------------------------------------------------*/
1971
1972static ssize_t suspended_show(struct device *dev, struct device_attribute *attr,
1973			      char *buf)
1974{
1975	struct usb_gadget *gadget = dev_to_usb_gadget(dev);
1976	struct usb_composite_dev *cdev = get_gadget_data(gadget);
1977
1978	return sprintf(buf, "%d\n", cdev->suspended);
1979}
1980static DEVICE_ATTR_RO(suspended);
1981
1982static void __composite_unbind(struct usb_gadget *gadget, bool unbind_driver)
1983{
1984	struct usb_composite_dev	*cdev = get_gadget_data(gadget);
 
 
1985
1986	/* composite_disconnect() must already have been called
1987	 * by the underlying peripheral controller driver!
1988	 * so there's no i/o concurrency that could affect the
1989	 * state protected by cdev->lock.
1990	 */
1991	WARN_ON(cdev->config);
1992
1993	while (!list_empty(&cdev->configs)) {
1994		struct usb_configuration	*c;
1995		c = list_first_entry(&cdev->configs,
1996				struct usb_configuration, list);
1997		remove_config(cdev, c);
1998	}
1999	if (cdev->driver->unbind && unbind_driver)
2000		cdev->driver->unbind(cdev);
2001
2002	composite_dev_cleanup(cdev);
2003
 
 
 
2004	kfree(cdev->def_manufacturer);
2005	kfree(cdev);
2006	set_gadget_data(gadget, NULL);
2007}
2008
2009static void composite_unbind(struct usb_gadget *gadget)
2010{
2011	__composite_unbind(gadget, true);
2012}
2013
2014static void update_unchanged_dev_desc(struct usb_device_descriptor *new,
2015		const struct usb_device_descriptor *old)
2016{
2017	__le16 idVendor;
2018	__le16 idProduct;
2019	__le16 bcdDevice;
2020	u8 iSerialNumber;
2021	u8 iManufacturer;
2022	u8 iProduct;
2023
2024	/*
2025	 * these variables may have been set in
2026	 * usb_composite_overwrite_options()
2027	 */
2028	idVendor = new->idVendor;
2029	idProduct = new->idProduct;
2030	bcdDevice = new->bcdDevice;
2031	iSerialNumber = new->iSerialNumber;
2032	iManufacturer = new->iManufacturer;
2033	iProduct = new->iProduct;
2034
2035	*new = *old;
2036	if (idVendor)
2037		new->idVendor = idVendor;
2038	if (idProduct)
2039		new->idProduct = idProduct;
2040	if (bcdDevice)
2041		new->bcdDevice = bcdDevice;
2042	else
2043		new->bcdDevice = cpu_to_le16(get_default_bcdDevice());
2044	if (iSerialNumber)
2045		new->iSerialNumber = iSerialNumber;
2046	if (iManufacturer)
2047		new->iManufacturer = iManufacturer;
2048	if (iProduct)
2049		new->iProduct = iProduct;
2050}
2051
2052int composite_dev_prepare(struct usb_composite_driver *composite,
2053		struct usb_composite_dev *cdev)
2054{
2055	struct usb_gadget *gadget = cdev->gadget;
2056	int ret = -ENOMEM;
2057
2058	/* preallocate control response and buffer */
2059	cdev->req = usb_ep_alloc_request(gadget->ep0, GFP_KERNEL);
2060	if (!cdev->req)
2061		return -ENOMEM;
2062
2063	cdev->req->buf = kmalloc(USB_COMP_EP0_BUFSIZ, GFP_KERNEL);
2064	if (!cdev->req->buf)
2065		goto fail;
2066
2067	ret = device_create_file(&gadget->dev, &dev_attr_suspended);
2068	if (ret)
2069		goto fail_dev;
2070
2071	cdev->req->complete = composite_setup_complete;
2072	cdev->req->context = cdev;
2073	gadget->ep0->driver_data = cdev;
2074
2075	cdev->driver = composite;
2076
2077	/*
2078	 * As per USB compliance update, a device that is actively drawing
2079	 * more than 100mA from USB must report itself as bus-powered in
2080	 * the GetStatus(DEVICE) call.
2081	 */
2082	if (CONFIG_USB_GADGET_VBUS_DRAW <= USB_SELF_POWER_VBUS_MAX_DRAW)
2083		usb_gadget_set_selfpowered(gadget);
2084
2085	/* interface and string IDs start at zero via kzalloc.
2086	 * we force endpoints to start unassigned; few controller
2087	 * drivers will zero ep->driver_data.
2088	 */
2089	usb_ep_autoconfig_reset(gadget);
2090	return 0;
2091fail_dev:
2092	kfree(cdev->req->buf);
2093fail:
2094	usb_ep_free_request(gadget->ep0, cdev->req);
2095	cdev->req = NULL;
2096	return ret;
2097}
2098
2099int composite_os_desc_req_prepare(struct usb_composite_dev *cdev,
2100				  struct usb_ep *ep0)
2101{
2102	int ret = 0;
2103
2104	cdev->os_desc_req = usb_ep_alloc_request(ep0, GFP_KERNEL);
2105	if (!cdev->os_desc_req) {
2106		ret = PTR_ERR(cdev->os_desc_req);
2107		goto end;
2108	}
2109
2110	/* OS feature descriptor length <= 4kB */
2111	cdev->os_desc_req->buf = kmalloc(4096, GFP_KERNEL);
2112	if (!cdev->os_desc_req->buf) {
2113		ret = PTR_ERR(cdev->os_desc_req->buf);
2114		kfree(cdev->os_desc_req);
2115		goto end;
2116	}
2117	cdev->os_desc_req->context = cdev;
2118	cdev->os_desc_req->complete = composite_setup_complete;
2119end:
2120	return ret;
2121}
2122
2123void composite_dev_cleanup(struct usb_composite_dev *cdev)
2124{
2125	struct usb_gadget_string_container *uc, *tmp;
 
2126
2127	list_for_each_entry_safe(uc, tmp, &cdev->gstrings, list) {
2128		list_del(&uc->list);
2129		kfree(uc);
2130	}
2131	if (cdev->os_desc_req) {
2132		if (cdev->os_desc_pending)
2133			usb_ep_dequeue(cdev->gadget->ep0, cdev->os_desc_req);
2134
2135		kfree(cdev->os_desc_req->buf);
2136		usb_ep_free_request(cdev->gadget->ep0, cdev->os_desc_req);
2137	}
2138	if (cdev->req) {
2139		if (cdev->setup_pending)
2140			usb_ep_dequeue(cdev->gadget->ep0, cdev->req);
2141
2142		kfree(cdev->req->buf);
2143		usb_ep_free_request(cdev->gadget->ep0, cdev->req);
2144	}
2145	cdev->next_string_id = 0;
2146	device_remove_file(&cdev->gadget->dev, &dev_attr_suspended);
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
2147}
2148
2149static int composite_bind(struct usb_gadget *gadget,
2150		struct usb_gadget_driver *gdriver)
2151{
2152	struct usb_composite_dev	*cdev;
2153	struct usb_composite_driver	*composite = to_cdriver(gdriver);
2154	int				status = -ENOMEM;
2155
2156	cdev = kzalloc(sizeof *cdev, GFP_KERNEL);
2157	if (!cdev)
2158		return status;
2159
2160	spin_lock_init(&cdev->lock);
2161	cdev->gadget = gadget;
2162	set_gadget_data(gadget, cdev);
2163	INIT_LIST_HEAD(&cdev->configs);
2164	INIT_LIST_HEAD(&cdev->gstrings);
2165
2166	status = composite_dev_prepare(composite, cdev);
2167	if (status)
2168		goto fail;
2169
2170	/* composite gadget needs to assign strings for whole device (like
2171	 * serial number), register function drivers, potentially update
2172	 * power state and consumption, etc
2173	 */
2174	status = composite->bind(cdev);
2175	if (status < 0)
2176		goto fail;
2177
2178	if (cdev->use_os_string) {
2179		status = composite_os_desc_req_prepare(cdev, gadget->ep0);
2180		if (status)
2181			goto fail;
2182	}
2183
2184	update_unchanged_dev_desc(&cdev->desc, composite->dev);
2185
2186	/* has userspace failed to provide a serial number? */
2187	if (composite->needs_serial && !cdev->desc.iSerialNumber)
2188		WARNING(cdev, "userspace failed to provide iSerialNumber\n");
2189
2190	INFO(cdev, "%s ready\n", composite->name);
2191	return 0;
2192
2193fail:
2194	__composite_unbind(gadget, false);
2195	return status;
2196}
2197
2198/*-------------------------------------------------------------------------*/
2199
2200void composite_suspend(struct usb_gadget *gadget)
2201{
2202	struct usb_composite_dev	*cdev = get_gadget_data(gadget);
2203	struct usb_function		*f;
2204
2205	/* REVISIT:  should we have config level
2206	 * suspend/resume callbacks?
2207	 */
2208	DBG(cdev, "suspend\n");
2209	if (cdev->config) {
2210		list_for_each_entry(f, &cdev->config->functions, list) {
2211			if (f->suspend)
2212				f->suspend(f);
2213		}
2214	}
2215	if (cdev->driver->suspend)
2216		cdev->driver->suspend(cdev);
2217
2218	cdev->suspended = 1;
2219
2220	usb_gadget_vbus_draw(gadget, 2);
2221}
2222
2223void composite_resume(struct usb_gadget *gadget)
2224{
2225	struct usb_composite_dev	*cdev = get_gadget_data(gadget);
2226	struct usb_function		*f;
2227	u16				maxpower;
2228
2229	/* REVISIT:  should we have config level
2230	 * suspend/resume callbacks?
2231	 */
2232	DBG(cdev, "resume\n");
2233	if (cdev->driver->resume)
2234		cdev->driver->resume(cdev);
2235	if (cdev->config) {
2236		list_for_each_entry(f, &cdev->config->functions, list) {
2237			if (f->resume)
2238				f->resume(f);
2239		}
2240
2241		maxpower = cdev->config->MaxPower;
2242
2243		usb_gadget_vbus_draw(gadget, maxpower ?
2244			maxpower : CONFIG_USB_GADGET_VBUS_DRAW);
2245	}
2246
2247	cdev->suspended = 0;
2248}
2249
2250/*-------------------------------------------------------------------------*/
2251
2252static const struct usb_gadget_driver composite_driver_template = {
2253	.bind		= composite_bind,
2254	.unbind		= composite_unbind,
2255
2256	.setup		= composite_setup,
2257	.reset		= composite_disconnect,
2258	.disconnect	= composite_disconnect,
2259
2260	.suspend	= composite_suspend,
2261	.resume		= composite_resume,
2262
2263	.driver	= {
2264		.owner		= THIS_MODULE,
2265	},
2266};
2267
2268/**
2269 * usb_composite_probe() - register a composite driver
2270 * @driver: the driver to register
2271 *
2272 * Context: single threaded during gadget setup
2273 *
2274 * This function is used to register drivers using the composite driver
2275 * framework.  The return value is zero, or a negative errno value.
2276 * Those values normally come from the driver's @bind method, which does
2277 * all the work of setting up the driver to match the hardware.
2278 *
2279 * On successful return, the gadget is ready to respond to requests from
2280 * the host, unless one of its components invokes usb_gadget_disconnect()
2281 * while it was binding.  That would usually be done in order to wait for
2282 * some userspace participation.
2283 */
2284int usb_composite_probe(struct usb_composite_driver *driver)
2285{
2286	struct usb_gadget_driver *gadget_driver;
2287
2288	if (!driver || !driver->dev || !driver->bind)
2289		return -EINVAL;
2290
2291	if (!driver->name)
2292		driver->name = "composite";
2293
2294	driver->gadget_driver = composite_driver_template;
2295	gadget_driver = &driver->gadget_driver;
2296
2297	gadget_driver->function =  (char *) driver->name;
2298	gadget_driver->driver.name = driver->name;
2299	gadget_driver->max_speed = driver->max_speed;
2300
2301	return usb_gadget_probe_driver(gadget_driver);
2302}
2303EXPORT_SYMBOL_GPL(usb_composite_probe);
2304
2305/**
2306 * usb_composite_unregister() - unregister a composite driver
2307 * @driver: the driver to unregister
2308 *
2309 * This function is used to unregister drivers using the composite
2310 * driver framework.
2311 */
2312void usb_composite_unregister(struct usb_composite_driver *driver)
2313{
2314	usb_gadget_unregister_driver(&driver->gadget_driver);
2315}
2316EXPORT_SYMBOL_GPL(usb_composite_unregister);
2317
2318/**
2319 * usb_composite_setup_continue() - Continue with the control transfer
2320 * @cdev: the composite device who's control transfer was kept waiting
2321 *
2322 * This function must be called by the USB function driver to continue
2323 * with the control transfer's data/status stage in case it had requested to
2324 * delay the data/status stages. A USB function's setup handler (e.g. set_alt())
2325 * can request the composite framework to delay the setup request's data/status
2326 * stages by returning USB_GADGET_DELAYED_STATUS.
2327 */
2328void usb_composite_setup_continue(struct usb_composite_dev *cdev)
2329{
2330	int			value;
2331	struct usb_request	*req = cdev->req;
2332	unsigned long		flags;
2333
2334	DBG(cdev, "%s\n", __func__);
2335	spin_lock_irqsave(&cdev->lock, flags);
2336
2337	if (cdev->delayed_status == 0) {
2338		WARN(cdev, "%s: Unexpected call\n", __func__);
2339
2340	} else if (--cdev->delayed_status == 0) {
2341		DBG(cdev, "%s: Completing delayed status\n", __func__);
2342		req->length = 0;
2343		req->context = cdev;
2344		value = composite_ep0_queue(cdev, req, GFP_ATOMIC);
2345		if (value < 0) {
2346			DBG(cdev, "ep_queue --> %d\n", value);
2347			req->status = 0;
2348			composite_setup_complete(cdev->gadget->ep0, req);
2349		}
2350	}
2351
2352	spin_unlock_irqrestore(&cdev->lock, flags);
2353}
2354EXPORT_SYMBOL_GPL(usb_composite_setup_continue);
2355
2356static char *composite_default_mfr(struct usb_gadget *gadget)
2357{
2358	char *mfr;
2359	int len;
2360
2361	len = snprintf(NULL, 0, "%s %s with %s", init_utsname()->sysname,
2362			init_utsname()->release, gadget->name);
2363	len++;
2364	mfr = kmalloc(len, GFP_KERNEL);
2365	if (!mfr)
2366		return NULL;
2367	snprintf(mfr, len, "%s %s with %s", init_utsname()->sysname,
2368			init_utsname()->release, gadget->name);
2369	return mfr;
2370}
2371
2372void usb_composite_overwrite_options(struct usb_composite_dev *cdev,
2373		struct usb_composite_overwrite *covr)
2374{
2375	struct usb_device_descriptor	*desc = &cdev->desc;
2376	struct usb_gadget_strings	*gstr = cdev->driver->strings[0];
2377	struct usb_string		*dev_str = gstr->strings;
2378
2379	if (covr->idVendor)
2380		desc->idVendor = cpu_to_le16(covr->idVendor);
2381
2382	if (covr->idProduct)
2383		desc->idProduct = cpu_to_le16(covr->idProduct);
2384
2385	if (covr->bcdDevice)
2386		desc->bcdDevice = cpu_to_le16(covr->bcdDevice);
2387
2388	if (covr->serial_number) {
2389		desc->iSerialNumber = dev_str[USB_GADGET_SERIAL_IDX].id;
2390		dev_str[USB_GADGET_SERIAL_IDX].s = covr->serial_number;
2391	}
2392	if (covr->manufacturer) {
2393		desc->iManufacturer = dev_str[USB_GADGET_MANUFACTURER_IDX].id;
2394		dev_str[USB_GADGET_MANUFACTURER_IDX].s = covr->manufacturer;
2395
2396	} else if (!strlen(dev_str[USB_GADGET_MANUFACTURER_IDX].s)) {
2397		desc->iManufacturer = dev_str[USB_GADGET_MANUFACTURER_IDX].id;
2398		cdev->def_manufacturer = composite_default_mfr(cdev->gadget);
2399		dev_str[USB_GADGET_MANUFACTURER_IDX].s = cdev->def_manufacturer;
2400	}
2401
2402	if (covr->product) {
2403		desc->iProduct = dev_str[USB_GADGET_PRODUCT_IDX].id;
2404		dev_str[USB_GADGET_PRODUCT_IDX].s = covr->product;
2405	}
2406}
2407EXPORT_SYMBOL_GPL(usb_composite_overwrite_options);
2408
2409MODULE_LICENSE("GPL");
2410MODULE_AUTHOR("David Brownell");
v4.17
   1// SPDX-License-Identifier: GPL-2.0+
   2/*
   3 * composite.c - infrastructure for Composite USB Gadgets
   4 *
   5 * Copyright (C) 2006-2008 David Brownell
 
 
 
 
 
   6 */
   7
   8/* #define VERBOSE_DEBUG */
   9
  10#include <linux/kallsyms.h>
  11#include <linux/kernel.h>
  12#include <linux/slab.h>
  13#include <linux/module.h>
  14#include <linux/device.h>
  15#include <linux/utsname.h>
  16
  17#include <linux/usb/composite.h>
  18#include <linux/usb/otg.h>
  19#include <asm/unaligned.h>
  20
  21#include "u_os_desc.h"
  22
  23/**
  24 * struct usb_os_string - represents OS String to be reported by a gadget
  25 * @bLength: total length of the entire descritor, always 0x12
  26 * @bDescriptorType: USB_DT_STRING
  27 * @qwSignature: the OS String proper
  28 * @bMS_VendorCode: code used by the host for subsequent requests
  29 * @bPad: not used, must be zero
  30 */
  31struct usb_os_string {
  32	__u8	bLength;
  33	__u8	bDescriptorType;
  34	__u8	qwSignature[OS_STRING_QW_SIGN_LEN];
  35	__u8	bMS_VendorCode;
  36	__u8	bPad;
  37} __packed;
  38
  39/*
  40 * The code in this file is utility code, used to build a gadget driver
  41 * from one or more "function" drivers, one or more "configuration"
  42 * objects, and a "usb_composite_driver" by gluing them together along
  43 * with the relevant device-wide data.
  44 */
  45
  46static struct usb_gadget_strings **get_containers_gs(
  47		struct usb_gadget_string_container *uc)
  48{
  49	return (struct usb_gadget_strings **)uc->stash;
  50}
  51
  52/**
  53 * function_descriptors() - get function descriptors for speed
  54 * @f: the function
  55 * @speed: the speed
  56 *
  57 * Returns the descriptors or NULL if not set.
  58 */
  59static struct usb_descriptor_header **
  60function_descriptors(struct usb_function *f,
  61		     enum usb_device_speed speed)
  62{
  63	struct usb_descriptor_header **descriptors;
  64
  65	/*
  66	 * NOTE: we try to help gadget drivers which might not be setting
  67	 * max_speed appropriately.
  68	 */
  69
  70	switch (speed) {
  71	case USB_SPEED_SUPER_PLUS:
  72		descriptors = f->ssp_descriptors;
  73		if (descriptors)
  74			break;
  75		/* FALLTHROUGH */
  76	case USB_SPEED_SUPER:
  77		descriptors = f->ss_descriptors;
  78		if (descriptors)
  79			break;
  80		/* FALLTHROUGH */
  81	case USB_SPEED_HIGH:
  82		descriptors = f->hs_descriptors;
  83		if (descriptors)
  84			break;
  85		/* FALLTHROUGH */
  86	default:
  87		descriptors = f->fs_descriptors;
  88	}
  89
  90	/*
  91	 * if we can't find any descriptors at all, then this gadget deserves to
  92	 * Oops with a NULL pointer dereference
  93	 */
  94
  95	return descriptors;
  96}
  97
  98/**
  99 * next_ep_desc() - advance to the next EP descriptor
 100 * @t: currect pointer within descriptor array
 101 *
 102 * Return: next EP descriptor or NULL
 103 *
 104 * Iterate over @t until either EP descriptor found or
 105 * NULL (that indicates end of list) encountered
 106 */
 107static struct usb_descriptor_header**
 108next_ep_desc(struct usb_descriptor_header **t)
 109{
 110	for (; *t; t++) {
 111		if ((*t)->bDescriptorType == USB_DT_ENDPOINT)
 112			return t;
 113	}
 114	return NULL;
 115}
 116
 117/*
 118 * for_each_ep_desc()- iterate over endpoint descriptors in the
 119 *		descriptors list
 120 * @start:	pointer within descriptor array.
 121 * @ep_desc:	endpoint descriptor to use as the loop cursor
 122 */
 123#define for_each_ep_desc(start, ep_desc) \
 124	for (ep_desc = next_ep_desc(start); \
 125	      ep_desc; ep_desc = next_ep_desc(ep_desc+1))
 126
 127/**
 128 * config_ep_by_speed() - configures the given endpoint
 129 * according to gadget speed.
 130 * @g: pointer to the gadget
 131 * @f: usb function
 132 * @_ep: the endpoint to configure
 133 *
 134 * Return: error code, 0 on success
 135 *
 136 * This function chooses the right descriptors for a given
 137 * endpoint according to gadget speed and saves it in the
 138 * endpoint desc field. If the endpoint already has a descriptor
 139 * assigned to it - overwrites it with currently corresponding
 140 * descriptor. The endpoint maxpacket field is updated according
 141 * to the chosen descriptor.
 142 * Note: the supplied function should hold all the descriptors
 143 * for supported speeds
 144 */
 145int config_ep_by_speed(struct usb_gadget *g,
 146			struct usb_function *f,
 147			struct usb_ep *_ep)
 148{
 
 149	struct usb_endpoint_descriptor *chosen_desc = NULL;
 150	struct usb_descriptor_header **speed_desc = NULL;
 151
 152	struct usb_ss_ep_comp_descriptor *comp_desc = NULL;
 153	int want_comp_desc = 0;
 154
 155	struct usb_descriptor_header **d_spd; /* cursor for speed desc */
 156
 157	if (!g || !f || !_ep)
 158		return -EIO;
 159
 160	/* select desired speed */
 161	switch (g->speed) {
 162	case USB_SPEED_SUPER_PLUS:
 163		if (gadget_is_superspeed_plus(g)) {
 164			speed_desc = f->ssp_descriptors;
 165			want_comp_desc = 1;
 166			break;
 167		}
 168		/* fall through */
 169	case USB_SPEED_SUPER:
 170		if (gadget_is_superspeed(g)) {
 171			speed_desc = f->ss_descriptors;
 172			want_comp_desc = 1;
 173			break;
 174		}
 175		/* fall through */
 176	case USB_SPEED_HIGH:
 177		if (gadget_is_dualspeed(g)) {
 178			speed_desc = f->hs_descriptors;
 179			break;
 180		}
 181		/* fall through */
 182	default:
 183		speed_desc = f->fs_descriptors;
 184	}
 185	/* find descriptors */
 186	for_each_ep_desc(speed_desc, d_spd) {
 187		chosen_desc = (struct usb_endpoint_descriptor *)*d_spd;
 188		if (chosen_desc->bEndpointAddress == _ep->address)
 189			goto ep_found;
 190	}
 191	return -EIO;
 192
 193ep_found:
 194	/* commit results */
 195	_ep->maxpacket = usb_endpoint_maxp(chosen_desc);
 196	_ep->desc = chosen_desc;
 197	_ep->comp_desc = NULL;
 198	_ep->maxburst = 0;
 199	_ep->mult = 1;
 200
 201	if (g->speed == USB_SPEED_HIGH && (usb_endpoint_xfer_isoc(_ep->desc) ||
 202				usb_endpoint_xfer_int(_ep->desc)))
 203		_ep->mult = usb_endpoint_maxp_mult(_ep->desc);
 204
 205	if (!want_comp_desc)
 206		return 0;
 207
 208	/*
 209	 * Companion descriptor should follow EP descriptor
 210	 * USB 3.0 spec, #9.6.7
 211	 */
 212	comp_desc = (struct usb_ss_ep_comp_descriptor *)*(++d_spd);
 213	if (!comp_desc ||
 214	    (comp_desc->bDescriptorType != USB_DT_SS_ENDPOINT_COMP))
 215		return -EIO;
 216	_ep->comp_desc = comp_desc;
 217	if (g->speed >= USB_SPEED_SUPER) {
 218		switch (usb_endpoint_type(_ep->desc)) {
 219		case USB_ENDPOINT_XFER_ISOC:
 220			/* mult: bits 1:0 of bmAttributes */
 221			_ep->mult = (comp_desc->bmAttributes & 0x3) + 1;
 222			/* fall through */
 223		case USB_ENDPOINT_XFER_BULK:
 224		case USB_ENDPOINT_XFER_INT:
 225			_ep->maxburst = comp_desc->bMaxBurst + 1;
 226			break;
 227		default:
 228			if (comp_desc->bMaxBurst != 0) {
 229				struct usb_composite_dev *cdev;
 230
 231				cdev = get_gadget_data(g);
 232				ERROR(cdev, "ep0 bMaxBurst must be 0\n");
 233			}
 234			_ep->maxburst = 1;
 235			break;
 236		}
 237	}
 238	return 0;
 239}
 240EXPORT_SYMBOL_GPL(config_ep_by_speed);
 241
 242/**
 243 * usb_add_function() - add a function to a configuration
 244 * @config: the configuration
 245 * @function: the function being added
 246 * Context: single threaded during gadget setup
 247 *
 248 * After initialization, each configuration must have one or more
 249 * functions added to it.  Adding a function involves calling its @bind()
 250 * method to allocate resources such as interface and string identifiers
 251 * and endpoints.
 252 *
 253 * This function returns the value of the function's bind(), which is
 254 * zero for success else a negative errno value.
 255 */
 256int usb_add_function(struct usb_configuration *config,
 257		struct usb_function *function)
 258{
 259	int	value = -EINVAL;
 260
 261	DBG(config->cdev, "adding '%s'/%p to config '%s'/%p\n",
 262			function->name, function,
 263			config->label, config);
 264
 265	if (!function->set_alt || !function->disable)
 266		goto done;
 267
 268	function->config = config;
 269	list_add_tail(&function->list, &config->functions);
 270
 271	if (function->bind_deactivated) {
 272		value = usb_function_deactivate(function);
 273		if (value)
 274			goto done;
 275	}
 276
 277	/* REVISIT *require* function->bind? */
 278	if (function->bind) {
 279		value = function->bind(config, function);
 280		if (value < 0) {
 281			list_del(&function->list);
 282			function->config = NULL;
 283		}
 284	} else
 285		value = 0;
 286
 287	/* We allow configurations that don't work at both speeds.
 288	 * If we run into a lowspeed Linux system, treat it the same
 289	 * as full speed ... it's the function drivers that will need
 290	 * to avoid bulk and ISO transfers.
 291	 */
 292	if (!config->fullspeed && function->fs_descriptors)
 293		config->fullspeed = true;
 294	if (!config->highspeed && function->hs_descriptors)
 295		config->highspeed = true;
 296	if (!config->superspeed && function->ss_descriptors)
 297		config->superspeed = true;
 298	if (!config->superspeed_plus && function->ssp_descriptors)
 299		config->superspeed_plus = true;
 300
 301done:
 302	if (value)
 303		DBG(config->cdev, "adding '%s'/%p --> %d\n",
 304				function->name, function, value);
 305	return value;
 306}
 307EXPORT_SYMBOL_GPL(usb_add_function);
 308
 309void usb_remove_function(struct usb_configuration *c, struct usb_function *f)
 310{
 311	if (f->disable)
 312		f->disable(f);
 313
 314	bitmap_zero(f->endpoints, 32);
 315	list_del(&f->list);
 316	if (f->unbind)
 317		f->unbind(c, f);
 318
 319	if (f->bind_deactivated)
 320		usb_function_activate(f);
 321}
 322EXPORT_SYMBOL_GPL(usb_remove_function);
 323
 324/**
 325 * usb_function_deactivate - prevent function and gadget enumeration
 326 * @function: the function that isn't yet ready to respond
 327 *
 328 * Blocks response of the gadget driver to host enumeration by
 329 * preventing the data line pullup from being activated.  This is
 330 * normally called during @bind() processing to change from the
 331 * initial "ready to respond" state, or when a required resource
 332 * becomes available.
 333 *
 334 * For example, drivers that serve as a passthrough to a userspace
 335 * daemon can block enumeration unless that daemon (such as an OBEX,
 336 * MTP, or print server) is ready to handle host requests.
 337 *
 338 * Not all systems support software control of their USB peripheral
 339 * data pullups.
 340 *
 341 * Returns zero on success, else negative errno.
 342 */
 343int usb_function_deactivate(struct usb_function *function)
 344{
 345	struct usb_composite_dev	*cdev = function->config->cdev;
 346	unsigned long			flags;
 347	int				status = 0;
 348
 349	spin_lock_irqsave(&cdev->lock, flags);
 350
 351	if (cdev->deactivations == 0)
 352		status = usb_gadget_deactivate(cdev->gadget);
 353	if (status == 0)
 354		cdev->deactivations++;
 355
 356	spin_unlock_irqrestore(&cdev->lock, flags);
 357	return status;
 358}
 359EXPORT_SYMBOL_GPL(usb_function_deactivate);
 360
 361/**
 362 * usb_function_activate - allow function and gadget enumeration
 363 * @function: function on which usb_function_activate() was called
 364 *
 365 * Reverses effect of usb_function_deactivate().  If no more functions
 366 * are delaying their activation, the gadget driver will respond to
 367 * host enumeration procedures.
 368 *
 369 * Returns zero on success, else negative errno.
 370 */
 371int usb_function_activate(struct usb_function *function)
 372{
 373	struct usb_composite_dev	*cdev = function->config->cdev;
 374	unsigned long			flags;
 375	int				status = 0;
 376
 377	spin_lock_irqsave(&cdev->lock, flags);
 378
 379	if (WARN_ON(cdev->deactivations == 0))
 380		status = -EINVAL;
 381	else {
 382		cdev->deactivations--;
 383		if (cdev->deactivations == 0)
 384			status = usb_gadget_activate(cdev->gadget);
 385	}
 386
 387	spin_unlock_irqrestore(&cdev->lock, flags);
 388	return status;
 389}
 390EXPORT_SYMBOL_GPL(usb_function_activate);
 391
 392/**
 393 * usb_interface_id() - allocate an unused interface ID
 394 * @config: configuration associated with the interface
 395 * @function: function handling the interface
 396 * Context: single threaded during gadget setup
 397 *
 398 * usb_interface_id() is called from usb_function.bind() callbacks to
 399 * allocate new interface IDs.  The function driver will then store that
 400 * ID in interface, association, CDC union, and other descriptors.  It
 401 * will also handle any control requests targeted at that interface,
 402 * particularly changing its altsetting via set_alt().  There may
 403 * also be class-specific or vendor-specific requests to handle.
 404 *
 405 * All interface identifier should be allocated using this routine, to
 406 * ensure that for example different functions don't wrongly assign
 407 * different meanings to the same identifier.  Note that since interface
 408 * identifiers are configuration-specific, functions used in more than
 409 * one configuration (or more than once in a given configuration) need
 410 * multiple versions of the relevant descriptors.
 411 *
 412 * Returns the interface ID which was allocated; or -ENODEV if no
 413 * more interface IDs can be allocated.
 414 */
 415int usb_interface_id(struct usb_configuration *config,
 416		struct usb_function *function)
 417{
 418	unsigned id = config->next_interface_id;
 419
 420	if (id < MAX_CONFIG_INTERFACES) {
 421		config->interface[id] = function;
 422		config->next_interface_id = id + 1;
 423		return id;
 424	}
 425	return -ENODEV;
 426}
 427EXPORT_SYMBOL_GPL(usb_interface_id);
 428
 429static u8 encode_bMaxPower(enum usb_device_speed speed,
 430		struct usb_configuration *c)
 431{
 432	unsigned val;
 433
 434	if (c->MaxPower)
 435		val = c->MaxPower;
 436	else
 437		val = CONFIG_USB_GADGET_VBUS_DRAW;
 438	if (!val)
 439		return 0;
 440	switch (speed) {
 441	case USB_SPEED_SUPER:
 442		return DIV_ROUND_UP(val, 8);
 443	default:
 444		return DIV_ROUND_UP(val, 2);
 445	}
 446}
 447
 448static int config_buf(struct usb_configuration *config,
 449		enum usb_device_speed speed, void *buf, u8 type)
 450{
 451	struct usb_config_descriptor	*c = buf;
 452	void				*next = buf + USB_DT_CONFIG_SIZE;
 453	int				len;
 454	struct usb_function		*f;
 455	int				status;
 456
 457	len = USB_COMP_EP0_BUFSIZ - USB_DT_CONFIG_SIZE;
 458	/* write the config descriptor */
 459	c = buf;
 460	c->bLength = USB_DT_CONFIG_SIZE;
 461	c->bDescriptorType = type;
 462	/* wTotalLength is written later */
 463	c->bNumInterfaces = config->next_interface_id;
 464	c->bConfigurationValue = config->bConfigurationValue;
 465	c->iConfiguration = config->iConfiguration;
 466	c->bmAttributes = USB_CONFIG_ATT_ONE | config->bmAttributes;
 467	c->bMaxPower = encode_bMaxPower(speed, config);
 468
 469	/* There may be e.g. OTG descriptors */
 470	if (config->descriptors) {
 471		status = usb_descriptor_fillbuf(next, len,
 472				config->descriptors);
 473		if (status < 0)
 474			return status;
 475		len -= status;
 476		next += status;
 477	}
 478
 479	/* add each function's descriptors */
 480	list_for_each_entry(f, &config->functions, list) {
 481		struct usb_descriptor_header **descriptors;
 482
 483		descriptors = function_descriptors(f, speed);
 484		if (!descriptors)
 485			continue;
 486		status = usb_descriptor_fillbuf(next, len,
 487			(const struct usb_descriptor_header **) descriptors);
 488		if (status < 0)
 489			return status;
 490		len -= status;
 491		next += status;
 492	}
 493
 494	len = next - buf;
 495	c->wTotalLength = cpu_to_le16(len);
 496	return len;
 497}
 498
 499static int config_desc(struct usb_composite_dev *cdev, unsigned w_value)
 500{
 501	struct usb_gadget		*gadget = cdev->gadget;
 502	struct usb_configuration	*c;
 503	struct list_head		*pos;
 504	u8				type = w_value >> 8;
 505	enum usb_device_speed		speed = USB_SPEED_UNKNOWN;
 506
 507	if (gadget->speed >= USB_SPEED_SUPER)
 508		speed = gadget->speed;
 509	else if (gadget_is_dualspeed(gadget)) {
 510		int	hs = 0;
 511		if (gadget->speed == USB_SPEED_HIGH)
 512			hs = 1;
 513		if (type == USB_DT_OTHER_SPEED_CONFIG)
 514			hs = !hs;
 515		if (hs)
 516			speed = USB_SPEED_HIGH;
 517
 518	}
 519
 520	/* This is a lookup by config *INDEX* */
 521	w_value &= 0xff;
 522
 523	pos = &cdev->configs;
 524	c = cdev->os_desc_config;
 525	if (c)
 526		goto check_config;
 527
 528	while ((pos = pos->next) !=  &cdev->configs) {
 529		c = list_entry(pos, typeof(*c), list);
 530
 531		/* skip OS Descriptors config which is handled separately */
 532		if (c == cdev->os_desc_config)
 533			continue;
 534
 535check_config:
 536		/* ignore configs that won't work at this speed */
 537		switch (speed) {
 538		case USB_SPEED_SUPER_PLUS:
 539			if (!c->superspeed_plus)
 540				continue;
 541			break;
 542		case USB_SPEED_SUPER:
 543			if (!c->superspeed)
 544				continue;
 545			break;
 546		case USB_SPEED_HIGH:
 547			if (!c->highspeed)
 548				continue;
 549			break;
 550		default:
 551			if (!c->fullspeed)
 552				continue;
 553		}
 554
 555		if (w_value == 0)
 556			return config_buf(c, speed, cdev->req->buf, type);
 557		w_value--;
 558	}
 559	return -EINVAL;
 560}
 561
 562static int count_configs(struct usb_composite_dev *cdev, unsigned type)
 563{
 564	struct usb_gadget		*gadget = cdev->gadget;
 565	struct usb_configuration	*c;
 566	unsigned			count = 0;
 567	int				hs = 0;
 568	int				ss = 0;
 569	int				ssp = 0;
 570
 571	if (gadget_is_dualspeed(gadget)) {
 572		if (gadget->speed == USB_SPEED_HIGH)
 573			hs = 1;
 574		if (gadget->speed == USB_SPEED_SUPER)
 575			ss = 1;
 576		if (gadget->speed == USB_SPEED_SUPER_PLUS)
 577			ssp = 1;
 578		if (type == USB_DT_DEVICE_QUALIFIER)
 579			hs = !hs;
 580	}
 581	list_for_each_entry(c, &cdev->configs, list) {
 582		/* ignore configs that won't work at this speed */
 583		if (ssp) {
 584			if (!c->superspeed_plus)
 585				continue;
 586		} else if (ss) {
 587			if (!c->superspeed)
 588				continue;
 589		} else if (hs) {
 590			if (!c->highspeed)
 591				continue;
 592		} else {
 593			if (!c->fullspeed)
 594				continue;
 595		}
 596		count++;
 597	}
 598	return count;
 599}
 600
 601/**
 602 * bos_desc() - prepares the BOS descriptor.
 603 * @cdev: pointer to usb_composite device to generate the bos
 604 *	descriptor for
 605 *
 606 * This function generates the BOS (Binary Device Object)
 607 * descriptor and its device capabilities descriptors. The BOS
 608 * descriptor should be supported by a SuperSpeed device.
 609 */
 610static int bos_desc(struct usb_composite_dev *cdev)
 611{
 612	struct usb_ext_cap_descriptor	*usb_ext;
 
 613	struct usb_dcd_config_params	dcd_config_params;
 614	struct usb_bos_descriptor	*bos = cdev->req->buf;
 615
 616	bos->bLength = USB_DT_BOS_SIZE;
 617	bos->bDescriptorType = USB_DT_BOS;
 618
 619	bos->wTotalLength = cpu_to_le16(USB_DT_BOS_SIZE);
 620	bos->bNumDeviceCaps = 0;
 621
 622	/*
 623	 * A SuperSpeed device shall include the USB2.0 extension descriptor
 624	 * and shall support LPM when operating in USB2.0 HS mode.
 625	 */
 626	usb_ext = cdev->req->buf + le16_to_cpu(bos->wTotalLength);
 627	bos->bNumDeviceCaps++;
 628	le16_add_cpu(&bos->wTotalLength, USB_DT_USB_EXT_CAP_SIZE);
 629	usb_ext->bLength = USB_DT_USB_EXT_CAP_SIZE;
 630	usb_ext->bDescriptorType = USB_DT_DEVICE_CAPABILITY;
 631	usb_ext->bDevCapabilityType = USB_CAP_TYPE_EXT;
 632	usb_ext->bmAttributes = cpu_to_le32(USB_LPM_SUPPORT | USB_BESL_SUPPORT);
 633
 634	/*
 635	 * The Superspeed USB Capability descriptor shall be implemented by all
 636	 * SuperSpeed devices.
 637	 */
 638	if (gadget_is_superspeed(cdev->gadget)) {
 639		struct usb_ss_cap_descriptor *ss_cap;
 640
 641		ss_cap = cdev->req->buf + le16_to_cpu(bos->wTotalLength);
 642		bos->bNumDeviceCaps++;
 643		le16_add_cpu(&bos->wTotalLength, USB_DT_USB_SS_CAP_SIZE);
 644		ss_cap->bLength = USB_DT_USB_SS_CAP_SIZE;
 645		ss_cap->bDescriptorType = USB_DT_DEVICE_CAPABILITY;
 646		ss_cap->bDevCapabilityType = USB_SS_CAP_TYPE;
 647		ss_cap->bmAttributes = 0; /* LTM is not supported yet */
 648		ss_cap->wSpeedSupported = cpu_to_le16(USB_LOW_SPEED_OPERATION |
 649						      USB_FULL_SPEED_OPERATION |
 650						      USB_HIGH_SPEED_OPERATION |
 651						      USB_5GBPS_OPERATION);
 652		ss_cap->bFunctionalitySupport = USB_LOW_SPEED_OPERATION;
 653
 654		/* Get Controller configuration */
 655		if (cdev->gadget->ops->get_config_params) {
 656			cdev->gadget->ops->get_config_params(
 657				&dcd_config_params);
 658		} else {
 659			dcd_config_params.bU1devExitLat =
 660				USB_DEFAULT_U1_DEV_EXIT_LAT;
 661			dcd_config_params.bU2DevExitLat =
 662				cpu_to_le16(USB_DEFAULT_U2_DEV_EXIT_LAT);
 663		}
 664		ss_cap->bU1devExitLat = dcd_config_params.bU1devExitLat;
 665		ss_cap->bU2DevExitLat = dcd_config_params.bU2DevExitLat;
 666	}
 
 
 667
 668	/* The SuperSpeedPlus USB Device Capability descriptor */
 669	if (gadget_is_superspeed_plus(cdev->gadget)) {
 670		struct usb_ssp_cap_descriptor *ssp_cap;
 671
 672		ssp_cap = cdev->req->buf + le16_to_cpu(bos->wTotalLength);
 673		bos->bNumDeviceCaps++;
 674
 675		/*
 676		 * Report typical values.
 677		 */
 678
 679		le16_add_cpu(&bos->wTotalLength, USB_DT_USB_SSP_CAP_SIZE(1));
 680		ssp_cap->bLength = USB_DT_USB_SSP_CAP_SIZE(1);
 681		ssp_cap->bDescriptorType = USB_DT_DEVICE_CAPABILITY;
 682		ssp_cap->bDevCapabilityType = USB_SSP_CAP_TYPE;
 683		ssp_cap->bReserved = 0;
 684		ssp_cap->wReserved = 0;
 685
 686		/* SSAC = 1 (2 attributes) */
 687		ssp_cap->bmAttributes = cpu_to_le32(1);
 688
 689		/* Min RX/TX Lane Count = 1 */
 690		ssp_cap->wFunctionalitySupport =
 691			cpu_to_le16((1 << 8) | (1 << 12));
 692
 693		/*
 694		 * bmSublinkSpeedAttr[0]:
 695		 *   ST  = Symmetric, RX
 696		 *   LSE =  3 (Gbps)
 697		 *   LP  =  1 (SuperSpeedPlus)
 698		 *   LSM = 10 (10 Gbps)
 699		 */
 700		ssp_cap->bmSublinkSpeedAttr[0] =
 701			cpu_to_le32((3 << 4) | (1 << 14) | (0xa << 16));
 702		/*
 703		 * bmSublinkSpeedAttr[1] =
 704		 *   ST  = Symmetric, TX
 705		 *   LSE =  3 (Gbps)
 706		 *   LP  =  1 (SuperSpeedPlus)
 707		 *   LSM = 10 (10 Gbps)
 708		 */
 709		ssp_cap->bmSublinkSpeedAttr[1] =
 710			cpu_to_le32((3 << 4) | (1 << 14) |
 711				    (0xa << 16) | (1 << 7));
 712	}
 713
 714	return le16_to_cpu(bos->wTotalLength);
 715}
 716
 717static void device_qual(struct usb_composite_dev *cdev)
 718{
 719	struct usb_qualifier_descriptor	*qual = cdev->req->buf;
 720
 721	qual->bLength = sizeof(*qual);
 722	qual->bDescriptorType = USB_DT_DEVICE_QUALIFIER;
 723	/* POLICY: same bcdUSB and device type info at both speeds */
 724	qual->bcdUSB = cdev->desc.bcdUSB;
 725	qual->bDeviceClass = cdev->desc.bDeviceClass;
 726	qual->bDeviceSubClass = cdev->desc.bDeviceSubClass;
 727	qual->bDeviceProtocol = cdev->desc.bDeviceProtocol;
 728	/* ASSUME same EP0 fifo size at both speeds */
 729	qual->bMaxPacketSize0 = cdev->gadget->ep0->maxpacket;
 730	qual->bNumConfigurations = count_configs(cdev, USB_DT_DEVICE_QUALIFIER);
 731	qual->bRESERVED = 0;
 732}
 733
 734/*-------------------------------------------------------------------------*/
 735
 736static void reset_config(struct usb_composite_dev *cdev)
 737{
 738	struct usb_function		*f;
 739
 740	DBG(cdev, "reset config\n");
 741
 742	list_for_each_entry(f, &cdev->config->functions, list) {
 743		if (f->disable)
 744			f->disable(f);
 745
 746		bitmap_zero(f->endpoints, 32);
 747	}
 748	cdev->config = NULL;
 749	cdev->delayed_status = 0;
 750}
 751
 752static int set_config(struct usb_composite_dev *cdev,
 753		const struct usb_ctrlrequest *ctrl, unsigned number)
 754{
 755	struct usb_gadget	*gadget = cdev->gadget;
 756	struct usb_configuration *c = NULL;
 757	int			result = -EINVAL;
 758	unsigned		power = gadget_is_otg(gadget) ? 8 : 100;
 759	int			tmp;
 760
 761	if (number) {
 762		list_for_each_entry(c, &cdev->configs, list) {
 763			if (c->bConfigurationValue == number) {
 764				/*
 765				 * We disable the FDs of the previous
 766				 * configuration only if the new configuration
 767				 * is a valid one
 768				 */
 769				if (cdev->config)
 770					reset_config(cdev);
 771				result = 0;
 772				break;
 773			}
 774		}
 775		if (result < 0)
 776			goto done;
 777	} else { /* Zero configuration value - need to reset the config */
 778		if (cdev->config)
 779			reset_config(cdev);
 780		result = 0;
 781	}
 782
 783	INFO(cdev, "%s config #%d: %s\n",
 784	     usb_speed_string(gadget->speed),
 785	     number, c ? c->label : "unconfigured");
 786
 787	if (!c)
 788		goto done;
 789
 790	usb_gadget_set_state(gadget, USB_STATE_CONFIGURED);
 791	cdev->config = c;
 792
 793	/* Initialize all interfaces by setting them to altsetting zero. */
 794	for (tmp = 0; tmp < MAX_CONFIG_INTERFACES; tmp++) {
 795		struct usb_function	*f = c->interface[tmp];
 796		struct usb_descriptor_header **descriptors;
 797
 798		if (!f)
 799			break;
 800
 801		/*
 802		 * Record which endpoints are used by the function. This is used
 803		 * to dispatch control requests targeted at that endpoint to the
 804		 * function's setup callback instead of the current
 805		 * configuration's setup callback.
 806		 */
 807		descriptors = function_descriptors(f, gadget->speed);
 808
 809		for (; *descriptors; ++descriptors) {
 810			struct usb_endpoint_descriptor *ep;
 811			int addr;
 812
 813			if ((*descriptors)->bDescriptorType != USB_DT_ENDPOINT)
 814				continue;
 815
 816			ep = (struct usb_endpoint_descriptor *)*descriptors;
 817			addr = ((ep->bEndpointAddress & 0x80) >> 3)
 818			     |  (ep->bEndpointAddress & 0x0f);
 819			set_bit(addr, f->endpoints);
 820		}
 821
 822		result = f->set_alt(f, tmp, 0);
 823		if (result < 0) {
 824			DBG(cdev, "interface %d (%s/%p) alt 0 --> %d\n",
 825					tmp, f->name, f, result);
 826
 827			reset_config(cdev);
 828			goto done;
 829		}
 830
 831		if (result == USB_GADGET_DELAYED_STATUS) {
 832			DBG(cdev,
 833			 "%s: interface %d (%s) requested delayed status\n",
 834					__func__, tmp, f->name);
 835			cdev->delayed_status++;
 836			DBG(cdev, "delayed_status count %d\n",
 837					cdev->delayed_status);
 838		}
 839	}
 840
 841	/* when we return, be sure our power usage is valid */
 842	power = c->MaxPower ? c->MaxPower : CONFIG_USB_GADGET_VBUS_DRAW;
 843done:
 844	usb_gadget_vbus_draw(gadget, power);
 845	if (result >= 0 && cdev->delayed_status)
 846		result = USB_GADGET_DELAYED_STATUS;
 847	return result;
 848}
 849
 850int usb_add_config_only(struct usb_composite_dev *cdev,
 851		struct usb_configuration *config)
 852{
 853	struct usb_configuration *c;
 854
 855	if (!config->bConfigurationValue)
 856		return -EINVAL;
 857
 858	/* Prevent duplicate configuration identifiers */
 859	list_for_each_entry(c, &cdev->configs, list) {
 860		if (c->bConfigurationValue == config->bConfigurationValue)
 861			return -EBUSY;
 862	}
 863
 864	config->cdev = cdev;
 865	list_add_tail(&config->list, &cdev->configs);
 866
 867	INIT_LIST_HEAD(&config->functions);
 868	config->next_interface_id = 0;
 869	memset(config->interface, 0, sizeof(config->interface));
 870
 871	return 0;
 872}
 873EXPORT_SYMBOL_GPL(usb_add_config_only);
 874
 875/**
 876 * usb_add_config() - add a configuration to a device.
 877 * @cdev: wraps the USB gadget
 878 * @config: the configuration, with bConfigurationValue assigned
 879 * @bind: the configuration's bind function
 880 * Context: single threaded during gadget setup
 881 *
 882 * One of the main tasks of a composite @bind() routine is to
 883 * add each of the configurations it supports, using this routine.
 884 *
 885 * This function returns the value of the configuration's @bind(), which
 886 * is zero for success else a negative errno value.  Binding configurations
 887 * assigns global resources including string IDs, and per-configuration
 888 * resources such as interface IDs and endpoints.
 889 */
 890int usb_add_config(struct usb_composite_dev *cdev,
 891		struct usb_configuration *config,
 892		int (*bind)(struct usb_configuration *))
 893{
 894	int				status = -EINVAL;
 895
 896	if (!bind)
 897		goto done;
 898
 899	DBG(cdev, "adding config #%u '%s'/%p\n",
 900			config->bConfigurationValue,
 901			config->label, config);
 902
 903	status = usb_add_config_only(cdev, config);
 904	if (status)
 905		goto done;
 906
 907	status = bind(config);
 908	if (status < 0) {
 909		while (!list_empty(&config->functions)) {
 910			struct usb_function		*f;
 911
 912			f = list_first_entry(&config->functions,
 913					struct usb_function, list);
 914			list_del(&f->list);
 915			if (f->unbind) {
 916				DBG(cdev, "unbind function '%s'/%p\n",
 917					f->name, f);
 918				f->unbind(config, f);
 919				/* may free memory for "f" */
 920			}
 921		}
 922		list_del(&config->list);
 923		config->cdev = NULL;
 924	} else {
 925		unsigned	i;
 926
 927		DBG(cdev, "cfg %d/%p speeds:%s%s%s%s\n",
 928			config->bConfigurationValue, config,
 929			config->superspeed_plus ? " superplus" : "",
 930			config->superspeed ? " super" : "",
 931			config->highspeed ? " high" : "",
 932			config->fullspeed
 933				? (gadget_is_dualspeed(cdev->gadget)
 934					? " full"
 935					: " full/low")
 936				: "");
 937
 938		for (i = 0; i < MAX_CONFIG_INTERFACES; i++) {
 939			struct usb_function	*f = config->interface[i];
 940
 941			if (!f)
 942				continue;
 943			DBG(cdev, "  interface %d = %s/%p\n",
 944				i, f->name, f);
 945		}
 946	}
 947
 948	/* set_alt(), or next bind(), sets up ep->claimed as needed */
 949	usb_ep_autoconfig_reset(cdev->gadget);
 950
 951done:
 952	if (status)
 953		DBG(cdev, "added config '%s'/%u --> %d\n", config->label,
 954				config->bConfigurationValue, status);
 955	return status;
 956}
 957EXPORT_SYMBOL_GPL(usb_add_config);
 958
 959static void remove_config(struct usb_composite_dev *cdev,
 960			      struct usb_configuration *config)
 961{
 962	while (!list_empty(&config->functions)) {
 963		struct usb_function		*f;
 964
 965		f = list_first_entry(&config->functions,
 966				struct usb_function, list);
 967
 968		usb_remove_function(config, f);
 
 
 
 
 969	}
 970	list_del(&config->list);
 971	if (config->unbind) {
 972		DBG(cdev, "unbind config '%s'/%p\n", config->label, config);
 973		config->unbind(config);
 974			/* may free memory for "c" */
 975	}
 976}
 977
 978/**
 979 * usb_remove_config() - remove a configuration from a device.
 980 * @cdev: wraps the USB gadget
 981 * @config: the configuration
 982 *
 983 * Drivers must call usb_gadget_disconnect before calling this function
 984 * to disconnect the device from the host and make sure the host will not
 985 * try to enumerate the device while we are changing the config list.
 986 */
 987void usb_remove_config(struct usb_composite_dev *cdev,
 988		      struct usb_configuration *config)
 989{
 990	unsigned long flags;
 991
 992	spin_lock_irqsave(&cdev->lock, flags);
 993
 994	if (cdev->config == config)
 995		reset_config(cdev);
 996
 997	spin_unlock_irqrestore(&cdev->lock, flags);
 998
 999	remove_config(cdev, config);
1000}
1001
1002/*-------------------------------------------------------------------------*/
1003
1004/* We support strings in multiple languages ... string descriptor zero
1005 * says which languages are supported.  The typical case will be that
1006 * only one language (probably English) is used, with i18n handled on
1007 * the host side.
1008 */
1009
1010static void collect_langs(struct usb_gadget_strings **sp, __le16 *buf)
1011{
1012	const struct usb_gadget_strings	*s;
1013	__le16				language;
1014	__le16				*tmp;
1015
1016	while (*sp) {
1017		s = *sp;
1018		language = cpu_to_le16(s->language);
1019		for (tmp = buf; *tmp && tmp < &buf[126]; tmp++) {
1020			if (*tmp == language)
1021				goto repeat;
1022		}
1023		*tmp++ = language;
1024repeat:
1025		sp++;
1026	}
1027}
1028
1029static int lookup_string(
1030	struct usb_gadget_strings	**sp,
1031	void				*buf,
1032	u16				language,
1033	int				id
1034)
1035{
1036	struct usb_gadget_strings	*s;
1037	int				value;
1038
1039	while (*sp) {
1040		s = *sp++;
1041		if (s->language != language)
1042			continue;
1043		value = usb_gadget_get_string(s, id, buf);
1044		if (value > 0)
1045			return value;
1046	}
1047	return -EINVAL;
1048}
1049
1050static int get_string(struct usb_composite_dev *cdev,
1051		void *buf, u16 language, int id)
1052{
1053	struct usb_composite_driver	*composite = cdev->driver;
1054	struct usb_gadget_string_container *uc;
1055	struct usb_configuration	*c;
1056	struct usb_function		*f;
1057	int				len;
1058
1059	/* Yes, not only is USB's i18n support probably more than most
1060	 * folk will ever care about ... also, it's all supported here.
1061	 * (Except for UTF8 support for Unicode's "Astral Planes".)
1062	 */
1063
1064	/* 0 == report all available language codes */
1065	if (id == 0) {
1066		struct usb_string_descriptor	*s = buf;
1067		struct usb_gadget_strings	**sp;
1068
1069		memset(s, 0, 256);
1070		s->bDescriptorType = USB_DT_STRING;
1071
1072		sp = composite->strings;
1073		if (sp)
1074			collect_langs(sp, s->wData);
1075
1076		list_for_each_entry(c, &cdev->configs, list) {
1077			sp = c->strings;
1078			if (sp)
1079				collect_langs(sp, s->wData);
1080
1081			list_for_each_entry(f, &c->functions, list) {
1082				sp = f->strings;
1083				if (sp)
1084					collect_langs(sp, s->wData);
1085			}
1086		}
1087		list_for_each_entry(uc, &cdev->gstrings, list) {
1088			struct usb_gadget_strings **sp;
1089
1090			sp = get_containers_gs(uc);
1091			collect_langs(sp, s->wData);
1092		}
1093
1094		for (len = 0; len <= 126 && s->wData[len]; len++)
1095			continue;
1096		if (!len)
1097			return -EINVAL;
1098
1099		s->bLength = 2 * (len + 1);
1100		return s->bLength;
1101	}
1102
1103	if (cdev->use_os_string && language == 0 && id == OS_STRING_IDX) {
1104		struct usb_os_string *b = buf;
1105		b->bLength = sizeof(*b);
1106		b->bDescriptorType = USB_DT_STRING;
1107		compiletime_assert(
1108			sizeof(b->qwSignature) == sizeof(cdev->qw_sign),
1109			"qwSignature size must be equal to qw_sign");
1110		memcpy(&b->qwSignature, cdev->qw_sign, sizeof(b->qwSignature));
1111		b->bMS_VendorCode = cdev->b_vendor_code;
1112		b->bPad = 0;
1113		return sizeof(*b);
1114	}
1115
1116	list_for_each_entry(uc, &cdev->gstrings, list) {
1117		struct usb_gadget_strings **sp;
1118
1119		sp = get_containers_gs(uc);
1120		len = lookup_string(sp, buf, language, id);
1121		if (len > 0)
1122			return len;
1123	}
1124
1125	/* String IDs are device-scoped, so we look up each string
1126	 * table we're told about.  These lookups are infrequent;
1127	 * simpler-is-better here.
1128	 */
1129	if (composite->strings) {
1130		len = lookup_string(composite->strings, buf, language, id);
1131		if (len > 0)
1132			return len;
1133	}
1134	list_for_each_entry(c, &cdev->configs, list) {
1135		if (c->strings) {
1136			len = lookup_string(c->strings, buf, language, id);
1137			if (len > 0)
1138				return len;
1139		}
1140		list_for_each_entry(f, &c->functions, list) {
1141			if (!f->strings)
1142				continue;
1143			len = lookup_string(f->strings, buf, language, id);
1144			if (len > 0)
1145				return len;
1146		}
1147	}
1148	return -EINVAL;
1149}
1150
1151/**
1152 * usb_string_id() - allocate an unused string ID
1153 * @cdev: the device whose string descriptor IDs are being allocated
1154 * Context: single threaded during gadget setup
1155 *
1156 * @usb_string_id() is called from bind() callbacks to allocate
1157 * string IDs.  Drivers for functions, configurations, or gadgets will
1158 * then store that ID in the appropriate descriptors and string table.
1159 *
1160 * All string identifier should be allocated using this,
1161 * @usb_string_ids_tab() or @usb_string_ids_n() routine, to ensure
1162 * that for example different functions don't wrongly assign different
1163 * meanings to the same identifier.
1164 */
1165int usb_string_id(struct usb_composite_dev *cdev)
1166{
1167	if (cdev->next_string_id < 254) {
1168		/* string id 0 is reserved by USB spec for list of
1169		 * supported languages */
1170		/* 255 reserved as well? -- mina86 */
1171		cdev->next_string_id++;
1172		return cdev->next_string_id;
1173	}
1174	return -ENODEV;
1175}
1176EXPORT_SYMBOL_GPL(usb_string_id);
1177
1178/**
1179 * usb_string_ids() - allocate unused string IDs in batch
1180 * @cdev: the device whose string descriptor IDs are being allocated
1181 * @str: an array of usb_string objects to assign numbers to
1182 * Context: single threaded during gadget setup
1183 *
1184 * @usb_string_ids() is called from bind() callbacks to allocate
1185 * string IDs.  Drivers for functions, configurations, or gadgets will
1186 * then copy IDs from the string table to the appropriate descriptors
1187 * and string table for other languages.
1188 *
1189 * All string identifier should be allocated using this,
1190 * @usb_string_id() or @usb_string_ids_n() routine, to ensure that for
1191 * example different functions don't wrongly assign different meanings
1192 * to the same identifier.
1193 */
1194int usb_string_ids_tab(struct usb_composite_dev *cdev, struct usb_string *str)
1195{
1196	int next = cdev->next_string_id;
1197
1198	for (; str->s; ++str) {
1199		if (unlikely(next >= 254))
1200			return -ENODEV;
1201		str->id = ++next;
1202	}
1203
1204	cdev->next_string_id = next;
1205
1206	return 0;
1207}
1208EXPORT_SYMBOL_GPL(usb_string_ids_tab);
1209
1210static struct usb_gadget_string_container *copy_gadget_strings(
1211		struct usb_gadget_strings **sp, unsigned n_gstrings,
1212		unsigned n_strings)
1213{
1214	struct usb_gadget_string_container *uc;
1215	struct usb_gadget_strings **gs_array;
1216	struct usb_gadget_strings *gs;
1217	struct usb_string *s;
1218	unsigned mem;
1219	unsigned n_gs;
1220	unsigned n_s;
1221	void *stash;
1222
1223	mem = sizeof(*uc);
1224	mem += sizeof(void *) * (n_gstrings + 1);
1225	mem += sizeof(struct usb_gadget_strings) * n_gstrings;
1226	mem += sizeof(struct usb_string) * (n_strings + 1) * (n_gstrings);
1227	uc = kmalloc(mem, GFP_KERNEL);
1228	if (!uc)
1229		return ERR_PTR(-ENOMEM);
1230	gs_array = get_containers_gs(uc);
1231	stash = uc->stash;
1232	stash += sizeof(void *) * (n_gstrings + 1);
1233	for (n_gs = 0; n_gs < n_gstrings; n_gs++) {
1234		struct usb_string *org_s;
1235
1236		gs_array[n_gs] = stash;
1237		gs = gs_array[n_gs];
1238		stash += sizeof(struct usb_gadget_strings);
1239		gs->language = sp[n_gs]->language;
1240		gs->strings = stash;
1241		org_s = sp[n_gs]->strings;
1242
1243		for (n_s = 0; n_s < n_strings; n_s++) {
1244			s = stash;
1245			stash += sizeof(struct usb_string);
1246			if (org_s->s)
1247				s->s = org_s->s;
1248			else
1249				s->s = "";
1250			org_s++;
1251		}
1252		s = stash;
1253		s->s = NULL;
1254		stash += sizeof(struct usb_string);
1255
1256	}
1257	gs_array[n_gs] = NULL;
1258	return uc;
1259}
1260
1261/**
1262 * usb_gstrings_attach() - attach gadget strings to a cdev and assign ids
1263 * @cdev: the device whose string descriptor IDs are being allocated
1264 * and attached.
1265 * @sp: an array of usb_gadget_strings to attach.
1266 * @n_strings: number of entries in each usb_strings array (sp[]->strings)
1267 *
1268 * This function will create a deep copy of usb_gadget_strings and usb_string
1269 * and attach it to the cdev. The actual string (usb_string.s) will not be
1270 * copied but only a referenced will be made. The struct usb_gadget_strings
1271 * array may contain multiple languages and should be NULL terminated.
1272 * The ->language pointer of each struct usb_gadget_strings has to contain the
1273 * same amount of entries.
1274 * For instance: sp[0] is en-US, sp[1] is es-ES. It is expected that the first
1275 * usb_string entry of es-ES contains the translation of the first usb_string
1276 * entry of en-US. Therefore both entries become the same id assign.
1277 */
1278struct usb_string *usb_gstrings_attach(struct usb_composite_dev *cdev,
1279		struct usb_gadget_strings **sp, unsigned n_strings)
1280{
1281	struct usb_gadget_string_container *uc;
1282	struct usb_gadget_strings **n_gs;
1283	unsigned n_gstrings = 0;
1284	unsigned i;
1285	int ret;
1286
1287	for (i = 0; sp[i]; i++)
1288		n_gstrings++;
1289
1290	if (!n_gstrings)
1291		return ERR_PTR(-EINVAL);
1292
1293	uc = copy_gadget_strings(sp, n_gstrings, n_strings);
1294	if (IS_ERR(uc))
1295		return ERR_CAST(uc);
1296
1297	n_gs = get_containers_gs(uc);
1298	ret = usb_string_ids_tab(cdev, n_gs[0]->strings);
1299	if (ret)
1300		goto err;
1301
1302	for (i = 1; i < n_gstrings; i++) {
1303		struct usb_string *m_s;
1304		struct usb_string *s;
1305		unsigned n;
1306
1307		m_s = n_gs[0]->strings;
1308		s = n_gs[i]->strings;
1309		for (n = 0; n < n_strings; n++) {
1310			s->id = m_s->id;
1311			s++;
1312			m_s++;
1313		}
1314	}
1315	list_add_tail(&uc->list, &cdev->gstrings);
1316	return n_gs[0]->strings;
1317err:
1318	kfree(uc);
1319	return ERR_PTR(ret);
1320}
1321EXPORT_SYMBOL_GPL(usb_gstrings_attach);
1322
1323/**
1324 * usb_string_ids_n() - allocate unused string IDs in batch
1325 * @c: the device whose string descriptor IDs are being allocated
1326 * @n: number of string IDs to allocate
1327 * Context: single threaded during gadget setup
1328 *
1329 * Returns the first requested ID.  This ID and next @n-1 IDs are now
1330 * valid IDs.  At least provided that @n is non-zero because if it
1331 * is, returns last requested ID which is now very useful information.
1332 *
1333 * @usb_string_ids_n() is called from bind() callbacks to allocate
1334 * string IDs.  Drivers for functions, configurations, or gadgets will
1335 * then store that ID in the appropriate descriptors and string table.
1336 *
1337 * All string identifier should be allocated using this,
1338 * @usb_string_id() or @usb_string_ids_n() routine, to ensure that for
1339 * example different functions don't wrongly assign different meanings
1340 * to the same identifier.
1341 */
1342int usb_string_ids_n(struct usb_composite_dev *c, unsigned n)
1343{
1344	unsigned next = c->next_string_id;
1345	if (unlikely(n > 254 || (unsigned)next + n > 254))
1346		return -ENODEV;
1347	c->next_string_id += n;
1348	return next + 1;
1349}
1350EXPORT_SYMBOL_GPL(usb_string_ids_n);
1351
1352/*-------------------------------------------------------------------------*/
1353
1354static void composite_setup_complete(struct usb_ep *ep, struct usb_request *req)
1355{
1356	struct usb_composite_dev *cdev;
1357
1358	if (req->status || req->actual != req->length)
1359		DBG((struct usb_composite_dev *) ep->driver_data,
1360				"setup complete --> %d, %d/%d\n",
1361				req->status, req->actual, req->length);
1362
1363	/*
1364	 * REVIST The same ep0 requests are shared with function drivers
1365	 * so they don't have to maintain the same ->complete() stubs.
1366	 *
1367	 * Because of that, we need to check for the validity of ->context
1368	 * here, even though we know we've set it to something useful.
1369	 */
1370	if (!req->context)
1371		return;
1372
1373	cdev = req->context;
1374
1375	if (cdev->req == req)
1376		cdev->setup_pending = false;
1377	else if (cdev->os_desc_req == req)
1378		cdev->os_desc_pending = false;
1379	else
1380		WARN(1, "unknown request %p\n", req);
1381}
1382
1383static int composite_ep0_queue(struct usb_composite_dev *cdev,
1384		struct usb_request *req, gfp_t gfp_flags)
1385{
1386	int ret;
1387
1388	ret = usb_ep_queue(cdev->gadget->ep0, req, gfp_flags);
1389	if (ret == 0) {
1390		if (cdev->req == req)
1391			cdev->setup_pending = true;
1392		else if (cdev->os_desc_req == req)
1393			cdev->os_desc_pending = true;
1394		else
1395			WARN(1, "unknown request %p\n", req);
1396	}
1397
1398	return ret;
1399}
1400
1401static int count_ext_compat(struct usb_configuration *c)
1402{
1403	int i, res;
1404
1405	res = 0;
1406	for (i = 0; i < c->next_interface_id; ++i) {
1407		struct usb_function *f;
1408		int j;
1409
1410		f = c->interface[i];
1411		for (j = 0; j < f->os_desc_n; ++j) {
1412			struct usb_os_desc *d;
1413
1414			if (i != f->os_desc_table[j].if_id)
1415				continue;
1416			d = f->os_desc_table[j].os_desc;
1417			if (d && d->ext_compat_id)
1418				++res;
1419		}
1420	}
1421	BUG_ON(res > 255);
1422	return res;
1423}
1424
1425static int fill_ext_compat(struct usb_configuration *c, u8 *buf)
1426{
1427	int i, count;
1428
1429	count = 16;
1430	buf += 16;
1431	for (i = 0; i < c->next_interface_id; ++i) {
1432		struct usb_function *f;
1433		int j;
1434
1435		f = c->interface[i];
1436		for (j = 0; j < f->os_desc_n; ++j) {
1437			struct usb_os_desc *d;
1438
1439			if (i != f->os_desc_table[j].if_id)
1440				continue;
1441			d = f->os_desc_table[j].os_desc;
1442			if (d && d->ext_compat_id) {
1443				*buf++ = i;
1444				*buf++ = 0x01;
1445				memcpy(buf, d->ext_compat_id, 16);
1446				buf += 22;
1447			} else {
1448				++buf;
1449				*buf = 0x01;
1450				buf += 23;
1451			}
1452			count += 24;
1453			if (count + 24 >= USB_COMP_EP0_OS_DESC_BUFSIZ)
1454				return count;
1455		}
1456	}
1457
1458	return count;
1459}
1460
1461static int count_ext_prop(struct usb_configuration *c, int interface)
1462{
1463	struct usb_function *f;
1464	int j;
1465
1466	f = c->interface[interface];
1467	for (j = 0; j < f->os_desc_n; ++j) {
1468		struct usb_os_desc *d;
1469
1470		if (interface != f->os_desc_table[j].if_id)
1471			continue;
1472		d = f->os_desc_table[j].os_desc;
1473		if (d && d->ext_compat_id)
1474			return d->ext_prop_count;
1475	}
1476	return 0;
1477}
1478
1479static int len_ext_prop(struct usb_configuration *c, int interface)
1480{
1481	struct usb_function *f;
1482	struct usb_os_desc *d;
1483	int j, res;
1484
1485	res = 10; /* header length */
1486	f = c->interface[interface];
1487	for (j = 0; j < f->os_desc_n; ++j) {
1488		if (interface != f->os_desc_table[j].if_id)
1489			continue;
1490		d = f->os_desc_table[j].os_desc;
1491		if (d)
1492			return min(res + d->ext_prop_len, 4096);
1493	}
1494	return res;
1495}
1496
1497static int fill_ext_prop(struct usb_configuration *c, int interface, u8 *buf)
1498{
1499	struct usb_function *f;
1500	struct usb_os_desc *d;
1501	struct usb_os_desc_ext_prop *ext_prop;
1502	int j, count, n, ret;
 
1503
1504	f = c->interface[interface];
1505	count = 10; /* header length */
1506	buf += 10;
1507	for (j = 0; j < f->os_desc_n; ++j) {
1508		if (interface != f->os_desc_table[j].if_id)
1509			continue;
1510		d = f->os_desc_table[j].os_desc;
1511		if (d)
1512			list_for_each_entry(ext_prop, &d->ext_prop, entry) {
1513				n = ext_prop->data_len +
 
 
 
 
 
1514					ext_prop->name_len + 14;
1515				if (count + n >= USB_COMP_EP0_OS_DESC_BUFSIZ)
1516					return count;
1517				usb_ext_prop_put_size(buf, n);
1518				usb_ext_prop_put_type(buf, ext_prop->type);
1519				ret = usb_ext_prop_put_name(buf, ext_prop->name,
1520							    ext_prop->name_len);
1521				if (ret < 0)
1522					return ret;
1523				switch (ext_prop->type) {
1524				case USB_EXT_PROP_UNICODE:
1525				case USB_EXT_PROP_UNICODE_ENV:
1526				case USB_EXT_PROP_UNICODE_LINK:
1527					usb_ext_prop_put_unicode(buf, ret,
1528							 ext_prop->data,
1529							 ext_prop->data_len);
1530					break;
1531				case USB_EXT_PROP_BINARY:
1532					usb_ext_prop_put_binary(buf, ret,
1533							ext_prop->data,
1534							ext_prop->data_len);
1535					break;
1536				case USB_EXT_PROP_LE32:
1537					/* not implemented */
1538				case USB_EXT_PROP_BE32:
1539					/* not implemented */
1540				default:
1541					return -EINVAL;
1542				}
1543				buf += n;
1544				count += n;
1545			}
1546	}
1547
1548	return count;
1549}
1550
1551/*
1552 * The setup() callback implements all the ep0 functionality that's
1553 * not handled lower down, in hardware or the hardware driver(like
1554 * device and endpoint feature flags, and their status).  It's all
1555 * housekeeping for the gadget function we're implementing.  Most of
1556 * the work is in config and function specific setup.
1557 */
1558int
1559composite_setup(struct usb_gadget *gadget, const struct usb_ctrlrequest *ctrl)
1560{
1561	struct usb_composite_dev	*cdev = get_gadget_data(gadget);
1562	struct usb_request		*req = cdev->req;
1563	int				value = -EOPNOTSUPP;
1564	int				status = 0;
1565	u16				w_index = le16_to_cpu(ctrl->wIndex);
1566	u8				intf = w_index & 0xFF;
1567	u16				w_value = le16_to_cpu(ctrl->wValue);
1568	u16				w_length = le16_to_cpu(ctrl->wLength);
1569	struct usb_function		*f = NULL;
1570	u8				endp;
1571
1572	/* partial re-init of the response message; the function or the
1573	 * gadget might need to intercept e.g. a control-OUT completion
1574	 * when we delegate to it.
1575	 */
1576	req->zero = 0;
1577	req->context = cdev;
1578	req->complete = composite_setup_complete;
1579	req->length = 0;
1580	gadget->ep0->driver_data = cdev;
1581
1582	/*
1583	 * Don't let non-standard requests match any of the cases below
1584	 * by accident.
1585	 */
1586	if ((ctrl->bRequestType & USB_TYPE_MASK) != USB_TYPE_STANDARD)
1587		goto unknown;
1588
1589	switch (ctrl->bRequest) {
1590
1591	/* we handle all standard USB descriptors */
1592	case USB_REQ_GET_DESCRIPTOR:
1593		if (ctrl->bRequestType != USB_DIR_IN)
1594			goto unknown;
1595		switch (w_value >> 8) {
1596
1597		case USB_DT_DEVICE:
1598			cdev->desc.bNumConfigurations =
1599				count_configs(cdev, USB_DT_DEVICE);
1600			cdev->desc.bMaxPacketSize0 =
1601				cdev->gadget->ep0->maxpacket;
1602			if (gadget_is_superspeed(gadget)) {
1603				if (gadget->speed >= USB_SPEED_SUPER) {
1604					cdev->desc.bcdUSB = cpu_to_le16(0x0310);
1605					cdev->desc.bMaxPacketSize0 = 9;
1606				} else {
1607					cdev->desc.bcdUSB = cpu_to_le16(0x0210);
1608				}
1609			} else {
1610				if (gadget->lpm_capable)
1611					cdev->desc.bcdUSB = cpu_to_le16(0x0201);
1612				else
1613					cdev->desc.bcdUSB = cpu_to_le16(0x0200);
1614			}
1615
1616			value = min(w_length, (u16) sizeof cdev->desc);
1617			memcpy(req->buf, &cdev->desc, value);
1618			break;
1619		case USB_DT_DEVICE_QUALIFIER:
1620			if (!gadget_is_dualspeed(gadget) ||
1621			    gadget->speed >= USB_SPEED_SUPER)
1622				break;
1623			device_qual(cdev);
1624			value = min_t(int, w_length,
1625				sizeof(struct usb_qualifier_descriptor));
1626			break;
1627		case USB_DT_OTHER_SPEED_CONFIG:
1628			if (!gadget_is_dualspeed(gadget) ||
1629			    gadget->speed >= USB_SPEED_SUPER)
1630				break;
1631			/* FALLTHROUGH */
1632		case USB_DT_CONFIG:
1633			value = config_desc(cdev, w_value);
1634			if (value >= 0)
1635				value = min(w_length, (u16) value);
1636			break;
1637		case USB_DT_STRING:
1638			value = get_string(cdev, req->buf,
1639					w_index, w_value & 0xff);
1640			if (value >= 0)
1641				value = min(w_length, (u16) value);
1642			break;
1643		case USB_DT_BOS:
1644			if (gadget_is_superspeed(gadget) ||
1645			    gadget->lpm_capable) {
1646				value = bos_desc(cdev);
1647				value = min(w_length, (u16) value);
1648			}
1649			break;
1650		case USB_DT_OTG:
1651			if (gadget_is_otg(gadget)) {
1652				struct usb_configuration *config;
1653				int otg_desc_len = 0;
1654
1655				if (cdev->config)
1656					config = cdev->config;
1657				else
1658					config = list_first_entry(
1659							&cdev->configs,
1660						struct usb_configuration, list);
1661				if (!config)
1662					goto done;
1663
1664				if (gadget->otg_caps &&
1665					(gadget->otg_caps->otg_rev >= 0x0200))
1666					otg_desc_len += sizeof(
1667						struct usb_otg20_descriptor);
1668				else
1669					otg_desc_len += sizeof(
1670						struct usb_otg_descriptor);
1671
1672				value = min_t(int, w_length, otg_desc_len);
1673				memcpy(req->buf, config->descriptors[0], value);
1674			}
1675			break;
1676		}
1677		break;
1678
1679	/* any number of configs can work */
1680	case USB_REQ_SET_CONFIGURATION:
1681		if (ctrl->bRequestType != 0)
1682			goto unknown;
1683		if (gadget_is_otg(gadget)) {
1684			if (gadget->a_hnp_support)
1685				DBG(cdev, "HNP available\n");
1686			else if (gadget->a_alt_hnp_support)
1687				DBG(cdev, "HNP on another port\n");
1688			else
1689				VDBG(cdev, "HNP inactive\n");
1690		}
1691		spin_lock(&cdev->lock);
1692		value = set_config(cdev, ctrl, w_value);
1693		spin_unlock(&cdev->lock);
1694		break;
1695	case USB_REQ_GET_CONFIGURATION:
1696		if (ctrl->bRequestType != USB_DIR_IN)
1697			goto unknown;
1698		if (cdev->config)
1699			*(u8 *)req->buf = cdev->config->bConfigurationValue;
1700		else
1701			*(u8 *)req->buf = 0;
1702		value = min(w_length, (u16) 1);
1703		break;
1704
1705	/* function drivers must handle get/set altsetting */
 
 
1706	case USB_REQ_SET_INTERFACE:
1707		if (ctrl->bRequestType != USB_RECIP_INTERFACE)
1708			goto unknown;
1709		if (!cdev->config || intf >= MAX_CONFIG_INTERFACES)
1710			break;
1711		f = cdev->config->interface[intf];
1712		if (!f)
1713			break;
1714
1715		/*
1716		 * If there's no get_alt() method, we know only altsetting zero
1717		 * works. There is no need to check if set_alt() is not NULL
1718		 * as we check this in usb_add_function().
1719		 */
1720		if (w_value && !f->get_alt)
1721			break;
1722		value = f->set_alt(f, w_index, w_value);
1723		if (value == USB_GADGET_DELAYED_STATUS) {
1724			DBG(cdev,
1725			 "%s: interface %d (%s) requested delayed status\n",
1726					__func__, intf, f->name);
1727			cdev->delayed_status++;
1728			DBG(cdev, "delayed_status count %d\n",
1729					cdev->delayed_status);
1730		}
1731		break;
1732	case USB_REQ_GET_INTERFACE:
1733		if (ctrl->bRequestType != (USB_DIR_IN|USB_RECIP_INTERFACE))
1734			goto unknown;
1735		if (!cdev->config || intf >= MAX_CONFIG_INTERFACES)
1736			break;
1737		f = cdev->config->interface[intf];
1738		if (!f)
1739			break;
1740		/* lots of interfaces only need altsetting zero... */
1741		value = f->get_alt ? f->get_alt(f, w_index) : 0;
1742		if (value < 0)
1743			break;
1744		*((u8 *)req->buf) = value;
1745		value = min(w_length, (u16) 1);
1746		break;
1747	case USB_REQ_GET_STATUS:
1748		if (gadget_is_otg(gadget) && gadget->hnp_polling_support &&
1749						(w_index == OTG_STS_SELECTOR)) {
1750			if (ctrl->bRequestType != (USB_DIR_IN |
1751							USB_RECIP_DEVICE))
1752				goto unknown;
1753			*((u8 *)req->buf) = gadget->host_request_flag;
1754			value = 1;
1755			break;
1756		}
1757
1758		/*
1759		 * USB 3.0 additions:
1760		 * Function driver should handle get_status request. If such cb
1761		 * wasn't supplied we respond with default value = 0
1762		 * Note: function driver should supply such cb only for the
1763		 * first interface of the function
1764		 */
1765		if (!gadget_is_superspeed(gadget))
1766			goto unknown;
1767		if (ctrl->bRequestType != (USB_DIR_IN | USB_RECIP_INTERFACE))
1768			goto unknown;
1769		value = 2;	/* This is the length of the get_status reply */
1770		put_unaligned_le16(0, req->buf);
1771		if (!cdev->config || intf >= MAX_CONFIG_INTERFACES)
1772			break;
1773		f = cdev->config->interface[intf];
1774		if (!f)
1775			break;
1776		status = f->get_status ? f->get_status(f) : 0;
1777		if (status < 0)
1778			break;
1779		put_unaligned_le16(status & 0x0000ffff, req->buf);
1780		break;
1781	/*
1782	 * Function drivers should handle SetFeature/ClearFeature
1783	 * (FUNCTION_SUSPEND) request. function_suspend cb should be supplied
1784	 * only for the first interface of the function
1785	 */
1786	case USB_REQ_CLEAR_FEATURE:
1787	case USB_REQ_SET_FEATURE:
1788		if (!gadget_is_superspeed(gadget))
1789			goto unknown;
1790		if (ctrl->bRequestType != (USB_DIR_OUT | USB_RECIP_INTERFACE))
1791			goto unknown;
1792		switch (w_value) {
1793		case USB_INTRF_FUNC_SUSPEND:
1794			if (!cdev->config || intf >= MAX_CONFIG_INTERFACES)
1795				break;
1796			f = cdev->config->interface[intf];
1797			if (!f)
1798				break;
1799			value = 0;
1800			if (f->func_suspend)
1801				value = f->func_suspend(f, w_index >> 8);
1802			if (value < 0) {
1803				ERROR(cdev,
1804				      "func_suspend() returned error %d\n",
1805				      value);
1806				value = 0;
1807			}
1808			break;
1809		}
1810		break;
1811	default:
1812unknown:
1813		/*
1814		 * OS descriptors handling
1815		 */
1816		if (cdev->use_os_string && cdev->os_desc_config &&
1817		    (ctrl->bRequestType & USB_TYPE_VENDOR) &&
1818		    ctrl->bRequest == cdev->b_vendor_code) {
1819			struct usb_request		*req;
1820			struct usb_configuration	*os_desc_cfg;
1821			u8				*buf;
1822			int				interface;
1823			int				count = 0;
1824
1825			req = cdev->os_desc_req;
1826			req->context = cdev;
1827			req->complete = composite_setup_complete;
1828			buf = req->buf;
1829			os_desc_cfg = cdev->os_desc_config;
1830			w_length = min_t(u16, w_length, USB_COMP_EP0_OS_DESC_BUFSIZ);
1831			memset(buf, 0, w_length);
1832			buf[5] = 0x01;
1833			switch (ctrl->bRequestType & USB_RECIP_MASK) {
1834			case USB_RECIP_DEVICE:
1835				if (w_index != 0x4 || (w_value >> 8))
1836					break;
1837				buf[6] = w_index;
1838				/* Number of ext compat interfaces */
1839				count = count_ext_compat(os_desc_cfg);
1840				buf[8] = count;
1841				count *= 24; /* 24 B/ext compat desc */
1842				count += 16; /* header */
1843				put_unaligned_le32(count, buf);
1844				value = w_length;
1845				if (w_length > 0x10) {
1846					value = fill_ext_compat(os_desc_cfg, buf);
1847					value = min_t(u16, w_length, value);
 
 
 
 
 
 
 
 
1848				}
1849				break;
1850			case USB_RECIP_INTERFACE:
1851				if (w_index != 0x5 || (w_value >> 8))
1852					break;
1853				interface = w_value & 0xFF;
1854				buf[6] = w_index;
1855				count = count_ext_prop(os_desc_cfg,
1856					interface);
1857				put_unaligned_le16(count, buf + 8);
1858				count = len_ext_prop(os_desc_cfg,
1859					interface);
1860				put_unaligned_le32(count, buf);
1861				value = w_length;
1862				if (w_length > 0x0A) {
 
 
 
 
 
 
 
 
 
1863					value = fill_ext_prop(os_desc_cfg,
1864							      interface, buf);
1865					if (value >= 0)
1866						value = min_t(u16, w_length, value);
 
 
1867				}
1868				break;
1869			}
1870
1871			goto check_value;
 
 
 
 
 
 
 
 
1872		}
1873
1874		VDBG(cdev,
1875			"non-core control req%02x.%02x v%04x i%04x l%d\n",
1876			ctrl->bRequestType, ctrl->bRequest,
1877			w_value, w_index, w_length);
1878
1879		/* functions always handle their interfaces and endpoints...
1880		 * punt other recipients (other, WUSB, ...) to the current
1881		 * configuration code.
 
 
 
 
1882		 */
1883		if (cdev->config) {
1884			list_for_each_entry(f, &cdev->config->functions, list)
1885				if (f->req_match &&
1886				    f->req_match(f, ctrl, false))
1887					goto try_fun_setup;
1888		} else {
1889			struct usb_configuration *c;
1890			list_for_each_entry(c, &cdev->configs, list)
1891				list_for_each_entry(f, &c->functions, list)
1892					if (f->req_match &&
1893					    f->req_match(f, ctrl, true))
1894						goto try_fun_setup;
1895		}
1896		f = NULL;
1897
1898		switch (ctrl->bRequestType & USB_RECIP_MASK) {
1899		case USB_RECIP_INTERFACE:
1900			if (!cdev->config || intf >= MAX_CONFIG_INTERFACES)
1901				break;
1902			f = cdev->config->interface[intf];
1903			break;
1904
1905		case USB_RECIP_ENDPOINT:
1906			if (!cdev->config)
1907				break;
1908			endp = ((w_index & 0x80) >> 3) | (w_index & 0x0f);
1909			list_for_each_entry(f, &cdev->config->functions, list) {
1910				if (test_bit(endp, f->endpoints))
1911					break;
1912			}
1913			if (&f->list == &cdev->config->functions)
1914				f = NULL;
1915			break;
1916		}
1917try_fun_setup:
1918		if (f && f->setup)
1919			value = f->setup(f, ctrl);
1920		else {
1921			struct usb_configuration	*c;
1922
1923			c = cdev->config;
1924			if (!c)
1925				goto done;
1926
1927			/* try current config's setup */
1928			if (c->setup) {
1929				value = c->setup(c, ctrl);
1930				goto done;
1931			}
1932
1933			/* try the only function in the current config */
1934			if (!list_is_singular(&c->functions))
1935				goto done;
1936			f = list_first_entry(&c->functions, struct usb_function,
1937					     list);
1938			if (f->setup)
1939				value = f->setup(f, ctrl);
1940		}
1941
1942		goto done;
1943	}
1944
1945check_value:
1946	/* respond with data transfer before status phase? */
1947	if (value >= 0 && value != USB_GADGET_DELAYED_STATUS) {
1948		req->length = value;
1949		req->context = cdev;
1950		req->zero = value < w_length;
1951		value = composite_ep0_queue(cdev, req, GFP_ATOMIC);
1952		if (value < 0) {
1953			DBG(cdev, "ep_queue --> %d\n", value);
1954			req->status = 0;
1955			composite_setup_complete(gadget->ep0, req);
1956		}
1957	} else if (value == USB_GADGET_DELAYED_STATUS && w_length != 0) {
1958		WARN(cdev,
1959			"%s: Delayed status not supported for w_length != 0",
1960			__func__);
1961	}
1962
1963done:
1964	/* device either stalls (value < 0) or reports success */
1965	return value;
1966}
1967
1968void composite_disconnect(struct usb_gadget *gadget)
1969{
1970	struct usb_composite_dev	*cdev = get_gadget_data(gadget);
1971	unsigned long			flags;
1972
1973	/* REVISIT:  should we have config and device level
1974	 * disconnect callbacks?
1975	 */
1976	spin_lock_irqsave(&cdev->lock, flags);
1977	if (cdev->config)
1978		reset_config(cdev);
1979	if (cdev->driver->disconnect)
1980		cdev->driver->disconnect(cdev);
1981	spin_unlock_irqrestore(&cdev->lock, flags);
1982}
1983
1984/*-------------------------------------------------------------------------*/
1985
1986static ssize_t suspended_show(struct device *dev, struct device_attribute *attr,
1987			      char *buf)
1988{
1989	struct usb_gadget *gadget = dev_to_usb_gadget(dev);
1990	struct usb_composite_dev *cdev = get_gadget_data(gadget);
1991
1992	return sprintf(buf, "%d\n", cdev->suspended);
1993}
1994static DEVICE_ATTR_RO(suspended);
1995
1996static void __composite_unbind(struct usb_gadget *gadget, bool unbind_driver)
1997{
1998	struct usb_composite_dev	*cdev = get_gadget_data(gadget);
1999	struct usb_gadget_strings	*gstr = cdev->driver->strings[0];
2000	struct usb_string		*dev_str = gstr->strings;
2001
2002	/* composite_disconnect() must already have been called
2003	 * by the underlying peripheral controller driver!
2004	 * so there's no i/o concurrency that could affect the
2005	 * state protected by cdev->lock.
2006	 */
2007	WARN_ON(cdev->config);
2008
2009	while (!list_empty(&cdev->configs)) {
2010		struct usb_configuration	*c;
2011		c = list_first_entry(&cdev->configs,
2012				struct usb_configuration, list);
2013		remove_config(cdev, c);
2014	}
2015	if (cdev->driver->unbind && unbind_driver)
2016		cdev->driver->unbind(cdev);
2017
2018	composite_dev_cleanup(cdev);
2019
2020	if (dev_str[USB_GADGET_MANUFACTURER_IDX].s == cdev->def_manufacturer)
2021		dev_str[USB_GADGET_MANUFACTURER_IDX].s = "";
2022
2023	kfree(cdev->def_manufacturer);
2024	kfree(cdev);
2025	set_gadget_data(gadget, NULL);
2026}
2027
2028static void composite_unbind(struct usb_gadget *gadget)
2029{
2030	__composite_unbind(gadget, true);
2031}
2032
2033static void update_unchanged_dev_desc(struct usb_device_descriptor *new,
2034		const struct usb_device_descriptor *old)
2035{
2036	__le16 idVendor;
2037	__le16 idProduct;
2038	__le16 bcdDevice;
2039	u8 iSerialNumber;
2040	u8 iManufacturer;
2041	u8 iProduct;
2042
2043	/*
2044	 * these variables may have been set in
2045	 * usb_composite_overwrite_options()
2046	 */
2047	idVendor = new->idVendor;
2048	idProduct = new->idProduct;
2049	bcdDevice = new->bcdDevice;
2050	iSerialNumber = new->iSerialNumber;
2051	iManufacturer = new->iManufacturer;
2052	iProduct = new->iProduct;
2053
2054	*new = *old;
2055	if (idVendor)
2056		new->idVendor = idVendor;
2057	if (idProduct)
2058		new->idProduct = idProduct;
2059	if (bcdDevice)
2060		new->bcdDevice = bcdDevice;
2061	else
2062		new->bcdDevice = cpu_to_le16(get_default_bcdDevice());
2063	if (iSerialNumber)
2064		new->iSerialNumber = iSerialNumber;
2065	if (iManufacturer)
2066		new->iManufacturer = iManufacturer;
2067	if (iProduct)
2068		new->iProduct = iProduct;
2069}
2070
2071int composite_dev_prepare(struct usb_composite_driver *composite,
2072		struct usb_composite_dev *cdev)
2073{
2074	struct usb_gadget *gadget = cdev->gadget;
2075	int ret = -ENOMEM;
2076
2077	/* preallocate control response and buffer */
2078	cdev->req = usb_ep_alloc_request(gadget->ep0, GFP_KERNEL);
2079	if (!cdev->req)
2080		return -ENOMEM;
2081
2082	cdev->req->buf = kmalloc(USB_COMP_EP0_BUFSIZ, GFP_KERNEL);
2083	if (!cdev->req->buf)
2084		goto fail;
2085
2086	ret = device_create_file(&gadget->dev, &dev_attr_suspended);
2087	if (ret)
2088		goto fail_dev;
2089
2090	cdev->req->complete = composite_setup_complete;
2091	cdev->req->context = cdev;
2092	gadget->ep0->driver_data = cdev;
2093
2094	cdev->driver = composite;
2095
2096	/*
2097	 * As per USB compliance update, a device that is actively drawing
2098	 * more than 100mA from USB must report itself as bus-powered in
2099	 * the GetStatus(DEVICE) call.
2100	 */
2101	if (CONFIG_USB_GADGET_VBUS_DRAW <= USB_SELF_POWER_VBUS_MAX_DRAW)
2102		usb_gadget_set_selfpowered(gadget);
2103
2104	/* interface and string IDs start at zero via kzalloc.
2105	 * we force endpoints to start unassigned; few controller
2106	 * drivers will zero ep->driver_data.
2107	 */
2108	usb_ep_autoconfig_reset(gadget);
2109	return 0;
2110fail_dev:
2111	kfree(cdev->req->buf);
2112fail:
2113	usb_ep_free_request(gadget->ep0, cdev->req);
2114	cdev->req = NULL;
2115	return ret;
2116}
2117
2118int composite_os_desc_req_prepare(struct usb_composite_dev *cdev,
2119				  struct usb_ep *ep0)
2120{
2121	int ret = 0;
2122
2123	cdev->os_desc_req = usb_ep_alloc_request(ep0, GFP_KERNEL);
2124	if (!cdev->os_desc_req) {
2125		ret = -ENOMEM;
2126		goto end;
2127	}
2128
2129	cdev->os_desc_req->buf = kmalloc(USB_COMP_EP0_OS_DESC_BUFSIZ,
2130					 GFP_KERNEL);
2131	if (!cdev->os_desc_req->buf) {
2132		ret = -ENOMEM;
2133		usb_ep_free_request(ep0, cdev->os_desc_req);
2134		goto end;
2135	}
2136	cdev->os_desc_req->context = cdev;
2137	cdev->os_desc_req->complete = composite_setup_complete;
2138end:
2139	return ret;
2140}
2141
2142void composite_dev_cleanup(struct usb_composite_dev *cdev)
2143{
2144	struct usb_gadget_string_container *uc, *tmp;
2145	struct usb_ep			   *ep, *tmp_ep;
2146
2147	list_for_each_entry_safe(uc, tmp, &cdev->gstrings, list) {
2148		list_del(&uc->list);
2149		kfree(uc);
2150	}
2151	if (cdev->os_desc_req) {
2152		if (cdev->os_desc_pending)
2153			usb_ep_dequeue(cdev->gadget->ep0, cdev->os_desc_req);
2154
2155		kfree(cdev->os_desc_req->buf);
2156		usb_ep_free_request(cdev->gadget->ep0, cdev->os_desc_req);
2157	}
2158	if (cdev->req) {
2159		if (cdev->setup_pending)
2160			usb_ep_dequeue(cdev->gadget->ep0, cdev->req);
2161
2162		kfree(cdev->req->buf);
2163		usb_ep_free_request(cdev->gadget->ep0, cdev->req);
2164	}
2165	cdev->next_string_id = 0;
2166	device_remove_file(&cdev->gadget->dev, &dev_attr_suspended);
2167
2168	/*
2169	 * Some UDC backends have a dynamic EP allocation scheme.
2170	 *
2171	 * In that case, the dispose() callback is used to notify the
2172	 * backend that the EPs are no longer in use.
2173	 *
2174	 * Note: The UDC backend can remove the EP from the ep_list as
2175	 *	 a result, so we need to use the _safe list iterator.
2176	 */
2177	list_for_each_entry_safe(ep, tmp_ep,
2178				 &cdev->gadget->ep_list, ep_list) {
2179		if (ep->ops->dispose)
2180			ep->ops->dispose(ep);
2181	}
2182}
2183
2184static int composite_bind(struct usb_gadget *gadget,
2185		struct usb_gadget_driver *gdriver)
2186{
2187	struct usb_composite_dev	*cdev;
2188	struct usb_composite_driver	*composite = to_cdriver(gdriver);
2189	int				status = -ENOMEM;
2190
2191	cdev = kzalloc(sizeof *cdev, GFP_KERNEL);
2192	if (!cdev)
2193		return status;
2194
2195	spin_lock_init(&cdev->lock);
2196	cdev->gadget = gadget;
2197	set_gadget_data(gadget, cdev);
2198	INIT_LIST_HEAD(&cdev->configs);
2199	INIT_LIST_HEAD(&cdev->gstrings);
2200
2201	status = composite_dev_prepare(composite, cdev);
2202	if (status)
2203		goto fail;
2204
2205	/* composite gadget needs to assign strings for whole device (like
2206	 * serial number), register function drivers, potentially update
2207	 * power state and consumption, etc
2208	 */
2209	status = composite->bind(cdev);
2210	if (status < 0)
2211		goto fail;
2212
2213	if (cdev->use_os_string) {
2214		status = composite_os_desc_req_prepare(cdev, gadget->ep0);
2215		if (status)
2216			goto fail;
2217	}
2218
2219	update_unchanged_dev_desc(&cdev->desc, composite->dev);
2220
2221	/* has userspace failed to provide a serial number? */
2222	if (composite->needs_serial && !cdev->desc.iSerialNumber)
2223		WARNING(cdev, "userspace failed to provide iSerialNumber\n");
2224
2225	INFO(cdev, "%s ready\n", composite->name);
2226	return 0;
2227
2228fail:
2229	__composite_unbind(gadget, false);
2230	return status;
2231}
2232
2233/*-------------------------------------------------------------------------*/
2234
2235void composite_suspend(struct usb_gadget *gadget)
2236{
2237	struct usb_composite_dev	*cdev = get_gadget_data(gadget);
2238	struct usb_function		*f;
2239
2240	/* REVISIT:  should we have config level
2241	 * suspend/resume callbacks?
2242	 */
2243	DBG(cdev, "suspend\n");
2244	if (cdev->config) {
2245		list_for_each_entry(f, &cdev->config->functions, list) {
2246			if (f->suspend)
2247				f->suspend(f);
2248		}
2249	}
2250	if (cdev->driver->suspend)
2251		cdev->driver->suspend(cdev);
2252
2253	cdev->suspended = 1;
2254
2255	usb_gadget_vbus_draw(gadget, 2);
2256}
2257
2258void composite_resume(struct usb_gadget *gadget)
2259{
2260	struct usb_composite_dev	*cdev = get_gadget_data(gadget);
2261	struct usb_function		*f;
2262	u16				maxpower;
2263
2264	/* REVISIT:  should we have config level
2265	 * suspend/resume callbacks?
2266	 */
2267	DBG(cdev, "resume\n");
2268	if (cdev->driver->resume)
2269		cdev->driver->resume(cdev);
2270	if (cdev->config) {
2271		list_for_each_entry(f, &cdev->config->functions, list) {
2272			if (f->resume)
2273				f->resume(f);
2274		}
2275
2276		maxpower = cdev->config->MaxPower;
2277
2278		usb_gadget_vbus_draw(gadget, maxpower ?
2279			maxpower : CONFIG_USB_GADGET_VBUS_DRAW);
2280	}
2281
2282	cdev->suspended = 0;
2283}
2284
2285/*-------------------------------------------------------------------------*/
2286
2287static const struct usb_gadget_driver composite_driver_template = {
2288	.bind		= composite_bind,
2289	.unbind		= composite_unbind,
2290
2291	.setup		= composite_setup,
2292	.reset		= composite_disconnect,
2293	.disconnect	= composite_disconnect,
2294
2295	.suspend	= composite_suspend,
2296	.resume		= composite_resume,
2297
2298	.driver	= {
2299		.owner		= THIS_MODULE,
2300	},
2301};
2302
2303/**
2304 * usb_composite_probe() - register a composite driver
2305 * @driver: the driver to register
2306 *
2307 * Context: single threaded during gadget setup
2308 *
2309 * This function is used to register drivers using the composite driver
2310 * framework.  The return value is zero, or a negative errno value.
2311 * Those values normally come from the driver's @bind method, which does
2312 * all the work of setting up the driver to match the hardware.
2313 *
2314 * On successful return, the gadget is ready to respond to requests from
2315 * the host, unless one of its components invokes usb_gadget_disconnect()
2316 * while it was binding.  That would usually be done in order to wait for
2317 * some userspace participation.
2318 */
2319int usb_composite_probe(struct usb_composite_driver *driver)
2320{
2321	struct usb_gadget_driver *gadget_driver;
2322
2323	if (!driver || !driver->dev || !driver->bind)
2324		return -EINVAL;
2325
2326	if (!driver->name)
2327		driver->name = "composite";
2328
2329	driver->gadget_driver = composite_driver_template;
2330	gadget_driver = &driver->gadget_driver;
2331
2332	gadget_driver->function =  (char *) driver->name;
2333	gadget_driver->driver.name = driver->name;
2334	gadget_driver->max_speed = driver->max_speed;
2335
2336	return usb_gadget_probe_driver(gadget_driver);
2337}
2338EXPORT_SYMBOL_GPL(usb_composite_probe);
2339
2340/**
2341 * usb_composite_unregister() - unregister a composite driver
2342 * @driver: the driver to unregister
2343 *
2344 * This function is used to unregister drivers using the composite
2345 * driver framework.
2346 */
2347void usb_composite_unregister(struct usb_composite_driver *driver)
2348{
2349	usb_gadget_unregister_driver(&driver->gadget_driver);
2350}
2351EXPORT_SYMBOL_GPL(usb_composite_unregister);
2352
2353/**
2354 * usb_composite_setup_continue() - Continue with the control transfer
2355 * @cdev: the composite device who's control transfer was kept waiting
2356 *
2357 * This function must be called by the USB function driver to continue
2358 * with the control transfer's data/status stage in case it had requested to
2359 * delay the data/status stages. A USB function's setup handler (e.g. set_alt())
2360 * can request the composite framework to delay the setup request's data/status
2361 * stages by returning USB_GADGET_DELAYED_STATUS.
2362 */
2363void usb_composite_setup_continue(struct usb_composite_dev *cdev)
2364{
2365	int			value;
2366	struct usb_request	*req = cdev->req;
2367	unsigned long		flags;
2368
2369	DBG(cdev, "%s\n", __func__);
2370	spin_lock_irqsave(&cdev->lock, flags);
2371
2372	if (cdev->delayed_status == 0) {
2373		WARN(cdev, "%s: Unexpected call\n", __func__);
2374
2375	} else if (--cdev->delayed_status == 0) {
2376		DBG(cdev, "%s: Completing delayed status\n", __func__);
2377		req->length = 0;
2378		req->context = cdev;
2379		value = composite_ep0_queue(cdev, req, GFP_ATOMIC);
2380		if (value < 0) {
2381			DBG(cdev, "ep_queue --> %d\n", value);
2382			req->status = 0;
2383			composite_setup_complete(cdev->gadget->ep0, req);
2384		}
2385	}
2386
2387	spin_unlock_irqrestore(&cdev->lock, flags);
2388}
2389EXPORT_SYMBOL_GPL(usb_composite_setup_continue);
2390
2391static char *composite_default_mfr(struct usb_gadget *gadget)
2392{
2393	return kasprintf(GFP_KERNEL, "%s %s with %s", init_utsname()->sysname,
2394			 init_utsname()->release, gadget->name);
 
 
 
 
 
 
 
 
 
 
2395}
2396
2397void usb_composite_overwrite_options(struct usb_composite_dev *cdev,
2398		struct usb_composite_overwrite *covr)
2399{
2400	struct usb_device_descriptor	*desc = &cdev->desc;
2401	struct usb_gadget_strings	*gstr = cdev->driver->strings[0];
2402	struct usb_string		*dev_str = gstr->strings;
2403
2404	if (covr->idVendor)
2405		desc->idVendor = cpu_to_le16(covr->idVendor);
2406
2407	if (covr->idProduct)
2408		desc->idProduct = cpu_to_le16(covr->idProduct);
2409
2410	if (covr->bcdDevice)
2411		desc->bcdDevice = cpu_to_le16(covr->bcdDevice);
2412
2413	if (covr->serial_number) {
2414		desc->iSerialNumber = dev_str[USB_GADGET_SERIAL_IDX].id;
2415		dev_str[USB_GADGET_SERIAL_IDX].s = covr->serial_number;
2416	}
2417	if (covr->manufacturer) {
2418		desc->iManufacturer = dev_str[USB_GADGET_MANUFACTURER_IDX].id;
2419		dev_str[USB_GADGET_MANUFACTURER_IDX].s = covr->manufacturer;
2420
2421	} else if (!strlen(dev_str[USB_GADGET_MANUFACTURER_IDX].s)) {
2422		desc->iManufacturer = dev_str[USB_GADGET_MANUFACTURER_IDX].id;
2423		cdev->def_manufacturer = composite_default_mfr(cdev->gadget);
2424		dev_str[USB_GADGET_MANUFACTURER_IDX].s = cdev->def_manufacturer;
2425	}
2426
2427	if (covr->product) {
2428		desc->iProduct = dev_str[USB_GADGET_PRODUCT_IDX].id;
2429		dev_str[USB_GADGET_PRODUCT_IDX].s = covr->product;
2430	}
2431}
2432EXPORT_SYMBOL_GPL(usb_composite_overwrite_options);
2433
2434MODULE_LICENSE("GPL");
2435MODULE_AUTHOR("David Brownell");