1 // SPDX-License-Identifier: GPL-2.0+
2 /*
3  * EFI device path from u-boot device-model mapping
4  *
5  * (C) Copyright 2017 Rob Clark
6  */
7 
8 #define LOG_CATEGORY LOGC_EFI
9 
10 #include <common.h>
11 #include <blk.h>
12 #include <dm.h>
13 #include <log.h>
14 #include <net.h>
15 #include <usb.h>
16 #include <mmc.h>
17 #include <nvme.h>
18 #include <efi_loader.h>
19 #include <part.h>
20 #include <sandboxblockdev.h>
21 #include <uuid.h>
22 #include <asm-generic/unaligned.h>
23 #include <linux/compat.h> /* U16_MAX */
24 
25 #ifdef CONFIG_SANDBOX
26 const efi_guid_t efi_guid_host_dev = U_BOOT_HOST_DEV_GUID;
27 #endif
28 #ifdef CONFIG_VIRTIO_BLK
29 const efi_guid_t efi_guid_virtio_dev = U_BOOT_VIRTIO_DEV_GUID;
30 #endif
31 
32 /* template END node: */
33 static const struct efi_device_path END = {
34 	.type     = DEVICE_PATH_TYPE_END,
35 	.sub_type = DEVICE_PATH_SUB_TYPE_END,
36 	.length   = sizeof(END),
37 };
38 
39 /* template ROOT node: */
40 static const struct efi_device_path_vendor ROOT = {
41 	.dp = {
42 		.type     = DEVICE_PATH_TYPE_HARDWARE_DEVICE,
43 		.sub_type = DEVICE_PATH_SUB_TYPE_VENDOR,
44 		.length   = sizeof(ROOT),
45 	},
46 	.guid = U_BOOT_GUID,
47 };
48 
49 #if defined(CONFIG_MMC)
50 /*
51  * Determine if an MMC device is an SD card.
52  *
53  * @desc	block device descriptor
54  * @return	true if the device is an SD card
55  */
is_sd(struct blk_desc * desc)56 static bool is_sd(struct blk_desc *desc)
57 {
58 	struct mmc *mmc = find_mmc_device(desc->devnum);
59 
60 	if (!mmc)
61 		return false;
62 
63 	return IS_SD(mmc) != 0U;
64 }
65 #endif
66 
dp_alloc(size_t sz)67 static void *dp_alloc(size_t sz)
68 {
69 	void *buf;
70 
71 	if (efi_allocate_pool(EFI_BOOT_SERVICES_DATA, sz, &buf) !=
72 	    EFI_SUCCESS) {
73 		debug("EFI: ERROR: out of memory in %s\n", __func__);
74 		return NULL;
75 	}
76 
77 	memset(buf, 0, sz);
78 	return buf;
79 }
80 
81 /*
82  * Iterate to next block in device-path, terminating (returning NULL)
83  * at /End* node.
84  */
efi_dp_next(const struct efi_device_path * dp)85 struct efi_device_path *efi_dp_next(const struct efi_device_path *dp)
86 {
87 	if (dp == NULL)
88 		return NULL;
89 	if (dp->type == DEVICE_PATH_TYPE_END)
90 		return NULL;
91 	dp = ((void *)dp) + dp->length;
92 	if (dp->type == DEVICE_PATH_TYPE_END)
93 		return NULL;
94 	return (struct efi_device_path *)dp;
95 }
96 
97 /*
98  * Compare two device-paths, stopping when the shorter of the two hits
99  * an End* node. This is useful to, for example, compare a device-path
100  * representing a device with one representing a file on the device, or
101  * a device with a parent device.
102  */
efi_dp_match(const struct efi_device_path * a,const struct efi_device_path * b)103 int efi_dp_match(const struct efi_device_path *a,
104 		 const struct efi_device_path *b)
105 {
106 	while (1) {
107 		int ret;
108 
109 		ret = memcmp(&a->length, &b->length, sizeof(a->length));
110 		if (ret)
111 			return ret;
112 
113 		ret = memcmp(a, b, a->length);
114 		if (ret)
115 			return ret;
116 
117 		a = efi_dp_next(a);
118 		b = efi_dp_next(b);
119 
120 		if (!a || !b)
121 			return 0;
122 	}
123 }
124 
125 /*
126  * We can have device paths that start with a USB WWID or a USB Class node,
127  * and a few other cases which don't encode the full device path with bus
128  * hierarchy:
129  *
130  *   - MESSAGING:USB_WWID
131  *   - MESSAGING:USB_CLASS
132  *   - MEDIA:FILE_PATH
133  *   - MEDIA:HARD_DRIVE
134  *   - MESSAGING:URI
135  *
136  * See UEFI spec (section 3.1.2, about short-form device-paths)
137  */
shorten_path(struct efi_device_path * dp)138 static struct efi_device_path *shorten_path(struct efi_device_path *dp)
139 {
140 	while (dp) {
141 		/*
142 		 * TODO: Add MESSAGING:USB_WWID and MESSAGING:URI..
143 		 * in practice fallback.efi just uses MEDIA:HARD_DRIVE
144 		 * so not sure when we would see these other cases.
145 		 */
146 		if (EFI_DP_TYPE(dp, MESSAGING_DEVICE, MSG_USB_CLASS) ||
147 		    EFI_DP_TYPE(dp, MEDIA_DEVICE, HARD_DRIVE_PATH) ||
148 		    EFI_DP_TYPE(dp, MEDIA_DEVICE, FILE_PATH))
149 			return dp;
150 
151 		dp = efi_dp_next(dp);
152 	}
153 
154 	return dp;
155 }
156 
find_obj(struct efi_device_path * dp,bool short_path,struct efi_device_path ** rem)157 static struct efi_object *find_obj(struct efi_device_path *dp, bool short_path,
158 				   struct efi_device_path **rem)
159 {
160 	struct efi_object *efiobj;
161 	efi_uintn_t dp_size = efi_dp_instance_size(dp);
162 
163 	list_for_each_entry(efiobj, &efi_obj_list, link) {
164 		struct efi_handler *handler;
165 		struct efi_device_path *obj_dp;
166 		efi_status_t ret;
167 
168 		ret = efi_search_protocol(efiobj,
169 					  &efi_guid_device_path, &handler);
170 		if (ret != EFI_SUCCESS)
171 			continue;
172 		obj_dp = handler->protocol_interface;
173 
174 		do {
175 			if (efi_dp_match(dp, obj_dp) == 0) {
176 				if (rem) {
177 					/*
178 					 * Allow partial matches, but inform
179 					 * the caller.
180 					 */
181 					*rem = ((void *)dp) +
182 						efi_dp_instance_size(obj_dp);
183 					return efiobj;
184 				} else {
185 					/* Only return on exact matches */
186 					if (efi_dp_instance_size(obj_dp) ==
187 					    dp_size)
188 						return efiobj;
189 				}
190 			}
191 
192 			obj_dp = shorten_path(efi_dp_next(obj_dp));
193 		} while (short_path && obj_dp);
194 	}
195 
196 	return NULL;
197 }
198 
199 /*
200  * Find an efiobj from device-path, if 'rem' is not NULL, returns the
201  * remaining part of the device path after the matched object.
202  */
efi_dp_find_obj(struct efi_device_path * dp,struct efi_device_path ** rem)203 struct efi_object *efi_dp_find_obj(struct efi_device_path *dp,
204 				   struct efi_device_path **rem)
205 {
206 	struct efi_object *efiobj;
207 
208 	/* Search for an exact match first */
209 	efiobj = find_obj(dp, false, NULL);
210 
211 	/* Then for a fuzzy match */
212 	if (!efiobj)
213 		efiobj = find_obj(dp, false, rem);
214 
215 	/* And now for a fuzzy short match */
216 	if (!efiobj)
217 		efiobj = find_obj(dp, true, rem);
218 
219 	return efiobj;
220 }
221 
222 /*
223  * Determine the last device path node that is not the end node.
224  *
225  * @dp		device path
226  * @return	last node before the end node if it exists
227  *		otherwise NULL
228  */
efi_dp_last_node(const struct efi_device_path * dp)229 const struct efi_device_path *efi_dp_last_node(const struct efi_device_path *dp)
230 {
231 	struct efi_device_path *ret;
232 
233 	if (!dp || dp->type == DEVICE_PATH_TYPE_END)
234 		return NULL;
235 	while (dp) {
236 		ret = (struct efi_device_path *)dp;
237 		dp = efi_dp_next(dp);
238 	}
239 	return ret;
240 }
241 
242 /* get size of the first device path instance excluding end node */
efi_dp_instance_size(const struct efi_device_path * dp)243 efi_uintn_t efi_dp_instance_size(const struct efi_device_path *dp)
244 {
245 	efi_uintn_t sz = 0;
246 
247 	if (!dp || dp->type == DEVICE_PATH_TYPE_END)
248 		return 0;
249 	while (dp) {
250 		sz += dp->length;
251 		dp = efi_dp_next(dp);
252 	}
253 
254 	return sz;
255 }
256 
257 /* get size of multi-instance device path excluding end node */
efi_dp_size(const struct efi_device_path * dp)258 efi_uintn_t efi_dp_size(const struct efi_device_path *dp)
259 {
260 	const struct efi_device_path *p = dp;
261 
262 	if (!p)
263 		return 0;
264 	while (p->type != DEVICE_PATH_TYPE_END ||
265 	       p->sub_type != DEVICE_PATH_SUB_TYPE_END)
266 		p = (void *)p + p->length;
267 
268 	return (void *)p - (void *)dp;
269 }
270 
271 /* copy multi-instance device path */
efi_dp_dup(const struct efi_device_path * dp)272 struct efi_device_path *efi_dp_dup(const struct efi_device_path *dp)
273 {
274 	struct efi_device_path *ndp;
275 	size_t sz = efi_dp_size(dp) + sizeof(END);
276 
277 	if (!dp)
278 		return NULL;
279 
280 	ndp = dp_alloc(sz);
281 	if (!ndp)
282 		return NULL;
283 	memcpy(ndp, dp, sz);
284 
285 	return ndp;
286 }
287 
288 /**
289  * efi_dp_append_or_concatenate() - Append or concatenate two device paths.
290  *				    Concatenated device path will be separated
291  *				    by a sub-type 0xff end node
292  *
293  * @dp1:	First device path
294  * @dp2:	Second device path
295  * @concat:	If true the two device paths will be concatenated and separated
296  *		by an end of entrire device path sub-type 0xff end node.
297  *		If true the second device path will be appended to the first and
298  *		terminated by an end node
299  *
300  * Return:
301  * concatenated device path or NULL. Caller must free the returned value
302  */
303 static struct
efi_dp_append_or_concatenate(const struct efi_device_path * dp1,const struct efi_device_path * dp2,bool concat)304 efi_device_path *efi_dp_append_or_concatenate(const struct efi_device_path *dp1,
305 					      const struct efi_device_path *dp2,
306 					      bool concat)
307 {
308 	struct efi_device_path *ret;
309 	size_t end_size = sizeof(END);
310 
311 	if (concat)
312 		end_size = 2 * sizeof(END);
313 	if (!dp1 && !dp2) {
314 		/* return an end node */
315 		ret = efi_dp_dup(&END);
316 	} else if (!dp1) {
317 		ret = efi_dp_dup(dp2);
318 	} else if (!dp2) {
319 		ret = efi_dp_dup(dp1);
320 	} else {
321 		/* both dp1 and dp2 are non-null */
322 		unsigned sz1 = efi_dp_size(dp1);
323 		unsigned sz2 = efi_dp_size(dp2);
324 		void *p = dp_alloc(sz1 + sz2 + end_size);
325 		if (!p)
326 			return NULL;
327 		ret = p;
328 		memcpy(p, dp1, sz1);
329 		p += sz1;
330 
331 		if (concat) {
332 			memcpy(p, &END, sizeof(END));
333 			p += sizeof(END);
334 		}
335 
336 		/* the end node of the second device path has to be retained */
337 		memcpy(p, dp2, sz2);
338 		p += sz2;
339 		memcpy(p, &END, sizeof(END));
340 	}
341 
342 	return ret;
343 }
344 
345 /**
346  * efi_dp_append() - Append a device to an existing device path.
347  *
348  * @dp1:	First device path
349  * @dp2:	Second device path
350  *
351  * Return:
352  * concatenated device path or NULL. Caller must free the returned value
353  */
efi_dp_append(const struct efi_device_path * dp1,const struct efi_device_path * dp2)354 struct efi_device_path *efi_dp_append(const struct efi_device_path *dp1,
355 				      const struct efi_device_path *dp2)
356 {
357 	return efi_dp_append_or_concatenate(dp1, dp2, false);
358 }
359 
360 /**
361  * efi_dp_concat() - Concatenate 2 device paths. The final device path will
362  *                   contain two device paths separated by and end node (0xff).
363  *
364  * @dp1:	First device path
365  * @dp2:	Second device path
366  *
367  * Return:
368  * concatenated device path or NULL. Caller must free the returned value
369  */
efi_dp_concat(const struct efi_device_path * dp1,const struct efi_device_path * dp2)370 struct efi_device_path *efi_dp_concat(const struct efi_device_path *dp1,
371 				      const struct efi_device_path *dp2)
372 {
373 	return efi_dp_append_or_concatenate(dp1, dp2, true);
374 }
375 
efi_dp_append_node(const struct efi_device_path * dp,const struct efi_device_path * node)376 struct efi_device_path *efi_dp_append_node(const struct efi_device_path *dp,
377 					   const struct efi_device_path *node)
378 {
379 	struct efi_device_path *ret;
380 
381 	if (!node && !dp) {
382 		ret = efi_dp_dup(&END);
383 	} else if (!node) {
384 		ret = efi_dp_dup(dp);
385 	} else if (!dp) {
386 		size_t sz = node->length;
387 		void *p = dp_alloc(sz + sizeof(END));
388 		if (!p)
389 			return NULL;
390 		memcpy(p, node, sz);
391 		memcpy(p + sz, &END, sizeof(END));
392 		ret = p;
393 	} else {
394 		/* both dp and node are non-null */
395 		size_t sz = efi_dp_size(dp);
396 		void *p = dp_alloc(sz + node->length + sizeof(END));
397 		if (!p)
398 			return NULL;
399 		memcpy(p, dp, sz);
400 		memcpy(p + sz, node, node->length);
401 		memcpy(p + sz + node->length, &END, sizeof(END));
402 		ret = p;
403 	}
404 
405 	return ret;
406 }
407 
efi_dp_create_device_node(const u8 type,const u8 sub_type,const u16 length)408 struct efi_device_path *efi_dp_create_device_node(const u8 type,
409 						  const u8 sub_type,
410 						  const u16 length)
411 {
412 	struct efi_device_path *ret;
413 
414 	if (length < sizeof(struct efi_device_path))
415 		return NULL;
416 
417 	ret = dp_alloc(length);
418 	if (!ret)
419 		return ret;
420 	ret->type = type;
421 	ret->sub_type = sub_type;
422 	ret->length = length;
423 	return ret;
424 }
425 
efi_dp_append_instance(const struct efi_device_path * dp,const struct efi_device_path * dpi)426 struct efi_device_path *efi_dp_append_instance(
427 		const struct efi_device_path *dp,
428 		const struct efi_device_path *dpi)
429 {
430 	size_t sz, szi;
431 	struct efi_device_path *p, *ret;
432 
433 	if (!dpi)
434 		return NULL;
435 	if (!dp)
436 		return efi_dp_dup(dpi);
437 	sz = efi_dp_size(dp);
438 	szi = efi_dp_instance_size(dpi);
439 	p = dp_alloc(sz + szi + 2 * sizeof(END));
440 	if (!p)
441 		return NULL;
442 	ret = p;
443 	memcpy(p, dp, sz + sizeof(END));
444 	p = (void *)p + sz;
445 	p->sub_type = DEVICE_PATH_SUB_TYPE_INSTANCE_END;
446 	p = (void *)p + sizeof(END);
447 	memcpy(p, dpi, szi);
448 	p = (void *)p + szi;
449 	memcpy(p, &END, sizeof(END));
450 	return ret;
451 }
452 
efi_dp_get_next_instance(struct efi_device_path ** dp,efi_uintn_t * size)453 struct efi_device_path *efi_dp_get_next_instance(struct efi_device_path **dp,
454 						 efi_uintn_t *size)
455 {
456 	size_t sz;
457 	struct efi_device_path *p;
458 
459 	if (size)
460 		*size = 0;
461 	if (!dp || !*dp)
462 		return NULL;
463 	sz = efi_dp_instance_size(*dp);
464 	p = dp_alloc(sz + sizeof(END));
465 	if (!p)
466 		return NULL;
467 	memcpy(p, *dp, sz + sizeof(END));
468 	*dp = (void *)*dp + sz;
469 	if ((*dp)->sub_type == DEVICE_PATH_SUB_TYPE_INSTANCE_END)
470 		*dp = (void *)*dp + sizeof(END);
471 	else
472 		*dp = NULL;
473 	if (size)
474 		*size = sz + sizeof(END);
475 	return p;
476 }
477 
efi_dp_is_multi_instance(const struct efi_device_path * dp)478 bool efi_dp_is_multi_instance(const struct efi_device_path *dp)
479 {
480 	const struct efi_device_path *p = dp;
481 
482 	if (!p)
483 		return false;
484 	while (p->type != DEVICE_PATH_TYPE_END)
485 		p = (void *)p + p->length;
486 	return p->sub_type == DEVICE_PATH_SUB_TYPE_INSTANCE_END;
487 }
488 
489 /* size of device-path not including END node for device and all parents
490  * up to the root device.
491  */
dp_size(struct udevice * dev)492 __maybe_unused static unsigned int dp_size(struct udevice *dev)
493 {
494 	if (!dev || !dev->driver)
495 		return sizeof(ROOT);
496 
497 	switch (dev->driver->id) {
498 	case UCLASS_ROOT:
499 	case UCLASS_SIMPLE_BUS:
500 		/* stop traversing parents at this point: */
501 		return sizeof(ROOT);
502 	case UCLASS_ETH:
503 		return dp_size(dev->parent) +
504 			sizeof(struct efi_device_path_mac_addr);
505 	case UCLASS_BLK:
506 		switch (dev->parent->uclass->uc_drv->id) {
507 #ifdef CONFIG_IDE
508 		case UCLASS_IDE:
509 			return dp_size(dev->parent) +
510 				sizeof(struct efi_device_path_atapi);
511 #endif
512 #if defined(CONFIG_SCSI)
513 		case UCLASS_SCSI:
514 			return dp_size(dev->parent) +
515 				sizeof(struct efi_device_path_scsi);
516 #endif
517 #if defined(CONFIG_MMC)
518 		case UCLASS_MMC:
519 			return dp_size(dev->parent) +
520 				sizeof(struct efi_device_path_sd_mmc_path);
521 #endif
522 #if defined(CONFIG_AHCI) || defined(CONFIG_SATA)
523 		case UCLASS_AHCI:
524 			return dp_size(dev->parent) +
525 				sizeof(struct efi_device_path_sata);
526 #endif
527 #if defined(CONFIG_NVME)
528 		case UCLASS_NVME:
529 			return dp_size(dev->parent) +
530 				sizeof(struct efi_device_path_nvme);
531 #endif
532 #ifdef CONFIG_SANDBOX
533 		case UCLASS_ROOT:
534 			 /*
535 			  * Sandbox's host device will be represented
536 			  * as vendor device with extra one byte for
537 			  * device number
538 			  */
539 			return dp_size(dev->parent)
540 				+ sizeof(struct efi_device_path_vendor) + 1;
541 #endif
542 #ifdef CONFIG_VIRTIO_BLK
543 		case UCLASS_VIRTIO:
544 			 /*
545 			  * Virtio devices will be represented as a vendor
546 			  * device node with an extra byte for the device
547 			  * number.
548 			  */
549 			return dp_size(dev->parent)
550 				+ sizeof(struct efi_device_path_vendor) + 1;
551 #endif
552 		default:
553 			return dp_size(dev->parent);
554 		}
555 #if defined(CONFIG_MMC)
556 	case UCLASS_MMC:
557 		return dp_size(dev->parent) +
558 			sizeof(struct efi_device_path_sd_mmc_path);
559 #endif
560 	case UCLASS_MASS_STORAGE:
561 	case UCLASS_USB_HUB:
562 		return dp_size(dev->parent) +
563 			sizeof(struct efi_device_path_usb_class);
564 	default:
565 		/* just skip over unknown classes: */
566 		return dp_size(dev->parent);
567 	}
568 }
569 
570 /*
571  * Recursively build a device path.
572  *
573  * @buf		pointer to the end of the device path
574  * @dev		device
575  * @return	pointer to the end of the device path
576  */
dp_fill(void * buf,struct udevice * dev)577 __maybe_unused static void *dp_fill(void *buf, struct udevice *dev)
578 {
579 	if (!dev || !dev->driver)
580 		return buf;
581 
582 	switch (dev->driver->id) {
583 	case UCLASS_ROOT:
584 	case UCLASS_SIMPLE_BUS: {
585 		/* stop traversing parents at this point: */
586 		struct efi_device_path_vendor *vdp = buf;
587 		*vdp = ROOT;
588 		return &vdp[1];
589 	}
590 #ifdef CONFIG_NET
591 	case UCLASS_ETH: {
592 		struct efi_device_path_mac_addr *dp =
593 			dp_fill(buf, dev->parent);
594 		struct eth_pdata *pdata = dev_get_plat(dev);
595 
596 		dp->dp.type = DEVICE_PATH_TYPE_MESSAGING_DEVICE;
597 		dp->dp.sub_type = DEVICE_PATH_SUB_TYPE_MSG_MAC_ADDR;
598 		dp->dp.length = sizeof(*dp);
599 		memset(&dp->mac, 0, sizeof(dp->mac));
600 		/* We only support IPv4 */
601 		memcpy(&dp->mac, &pdata->enetaddr, ARP_HLEN);
602 		/* Ethernet */
603 		dp->if_type = 1;
604 		return &dp[1];
605 	}
606 #endif
607 	case UCLASS_BLK:
608 		switch (dev->parent->uclass->uc_drv->id) {
609 #ifdef CONFIG_SANDBOX
610 		case UCLASS_ROOT: {
611 			/* stop traversing parents at this point: */
612 			struct efi_device_path_vendor *dp;
613 			struct blk_desc *desc = dev_get_uclass_plat(dev);
614 
615 			dp_fill(buf, dev->parent);
616 			dp = buf;
617 			++dp;
618 			dp->dp.type = DEVICE_PATH_TYPE_HARDWARE_DEVICE;
619 			dp->dp.sub_type = DEVICE_PATH_SUB_TYPE_VENDOR;
620 			dp->dp.length = sizeof(*dp) + 1;
621 			memcpy(&dp->guid, &efi_guid_host_dev,
622 			       sizeof(efi_guid_t));
623 			dp->vendor_data[0] = desc->devnum;
624 			return &dp->vendor_data[1];
625 			}
626 #endif
627 #ifdef CONFIG_VIRTIO_BLK
628 		case UCLASS_VIRTIO: {
629 			struct efi_device_path_vendor *dp;
630 			struct blk_desc *desc = dev_get_uclass_plat(dev);
631 
632 			dp_fill(buf, dev->parent);
633 			dp = buf;
634 			++dp;
635 			dp->dp.type = DEVICE_PATH_TYPE_HARDWARE_DEVICE;
636 			dp->dp.sub_type = DEVICE_PATH_SUB_TYPE_VENDOR;
637 			dp->dp.length = sizeof(*dp) + 1;
638 			memcpy(&dp->guid, &efi_guid_virtio_dev,
639 			       sizeof(efi_guid_t));
640 			dp->vendor_data[0] = desc->devnum;
641 			return &dp->vendor_data[1];
642 			}
643 #endif
644 #ifdef CONFIG_IDE
645 		case UCLASS_IDE: {
646 			struct efi_device_path_atapi *dp =
647 			dp_fill(buf, dev->parent);
648 			struct blk_desc *desc = dev_get_uclass_plat(dev);
649 
650 			dp->dp.type = DEVICE_PATH_TYPE_MESSAGING_DEVICE;
651 			dp->dp.sub_type = DEVICE_PATH_SUB_TYPE_MSG_ATAPI;
652 			dp->dp.length = sizeof(*dp);
653 			dp->logical_unit_number = desc->devnum;
654 			dp->primary_secondary = IDE_BUS(desc->devnum);
655 			dp->slave_master = desc->devnum %
656 				(CONFIG_SYS_IDE_MAXDEVICE /
657 				 CONFIG_SYS_IDE_MAXBUS);
658 			return &dp[1];
659 			}
660 #endif
661 #if defined(CONFIG_SCSI)
662 		case UCLASS_SCSI: {
663 			struct efi_device_path_scsi *dp =
664 				dp_fill(buf, dev->parent);
665 			struct blk_desc *desc = dev_get_uclass_plat(dev);
666 
667 			dp->dp.type = DEVICE_PATH_TYPE_MESSAGING_DEVICE;
668 			dp->dp.sub_type = DEVICE_PATH_SUB_TYPE_MSG_SCSI;
669 			dp->dp.length = sizeof(*dp);
670 			dp->logical_unit_number = desc->lun;
671 			dp->target_id = desc->target;
672 			return &dp[1];
673 			}
674 #endif
675 #if defined(CONFIG_MMC)
676 		case UCLASS_MMC: {
677 			struct efi_device_path_sd_mmc_path *sddp =
678 				dp_fill(buf, dev->parent);
679 			struct blk_desc *desc = dev_get_uclass_plat(dev);
680 
681 			sddp->dp.type     = DEVICE_PATH_TYPE_MESSAGING_DEVICE;
682 			sddp->dp.sub_type = is_sd(desc) ?
683 				DEVICE_PATH_SUB_TYPE_MSG_SD :
684 				DEVICE_PATH_SUB_TYPE_MSG_MMC;
685 			sddp->dp.length   = sizeof(*sddp);
686 			sddp->slot_number = dev_seq(dev);
687 			return &sddp[1];
688 			}
689 #endif
690 #if defined(CONFIG_AHCI) || defined(CONFIG_SATA)
691 		case UCLASS_AHCI: {
692 			struct efi_device_path_sata *dp =
693 				dp_fill(buf, dev->parent);
694 			struct blk_desc *desc = dev_get_uclass_plat(dev);
695 
696 			dp->dp.type     = DEVICE_PATH_TYPE_MESSAGING_DEVICE;
697 			dp->dp.sub_type = DEVICE_PATH_SUB_TYPE_MSG_SATA;
698 			dp->dp.length   = sizeof(*dp);
699 			dp->hba_port = desc->devnum;
700 			/* default 0xffff implies no port multiplier */
701 			dp->port_multiplier_port = 0xffff;
702 			dp->logical_unit_number = desc->lun;
703 			return &dp[1];
704 			}
705 #endif
706 #if defined(CONFIG_NVME)
707 		case UCLASS_NVME: {
708 			struct efi_device_path_nvme *dp =
709 				dp_fill(buf, dev->parent);
710 			u32 ns_id;
711 
712 			dp->dp.type     = DEVICE_PATH_TYPE_MESSAGING_DEVICE;
713 			dp->dp.sub_type = DEVICE_PATH_SUB_TYPE_MSG_NVME;
714 			dp->dp.length   = sizeof(*dp);
715 			nvme_get_namespace_id(dev, &ns_id, dp->eui64);
716 			memcpy(&dp->ns_id, &ns_id, sizeof(ns_id));
717 			return &dp[1];
718 			}
719 #endif
720 		default:
721 			debug("%s(%u) %s: unhandled parent class: %s (%u)\n",
722 			      __FILE__, __LINE__, __func__,
723 			      dev->name, dev->parent->uclass->uc_drv->id);
724 			return dp_fill(buf, dev->parent);
725 		}
726 #if defined(CONFIG_MMC)
727 	case UCLASS_MMC: {
728 		struct efi_device_path_sd_mmc_path *sddp =
729 			dp_fill(buf, dev->parent);
730 		struct mmc *mmc = mmc_get_mmc_dev(dev);
731 		struct blk_desc *desc = mmc_get_blk_desc(mmc);
732 
733 		sddp->dp.type     = DEVICE_PATH_TYPE_MESSAGING_DEVICE;
734 		sddp->dp.sub_type = is_sd(desc) ?
735 			DEVICE_PATH_SUB_TYPE_MSG_SD :
736 			DEVICE_PATH_SUB_TYPE_MSG_MMC;
737 		sddp->dp.length   = sizeof(*sddp);
738 		sddp->slot_number = dev_seq(dev);
739 
740 		return &sddp[1];
741 	}
742 #endif
743 	case UCLASS_MASS_STORAGE:
744 	case UCLASS_USB_HUB: {
745 		struct efi_device_path_usb_class *udp =
746 			dp_fill(buf, dev->parent);
747 		struct usb_device *udev = dev_get_parent_priv(dev);
748 		struct usb_device_descriptor *desc = &udev->descriptor;
749 
750 		udp->dp.type     = DEVICE_PATH_TYPE_MESSAGING_DEVICE;
751 		udp->dp.sub_type = DEVICE_PATH_SUB_TYPE_MSG_USB_CLASS;
752 		udp->dp.length   = sizeof(*udp);
753 		udp->vendor_id   = desc->idVendor;
754 		udp->product_id  = desc->idProduct;
755 		udp->device_class    = desc->bDeviceClass;
756 		udp->device_subclass = desc->bDeviceSubClass;
757 		udp->device_protocol = desc->bDeviceProtocol;
758 
759 		return &udp[1];
760 	}
761 	default:
762 		debug("%s(%u) %s: unhandled device class: %s (%u)\n",
763 		      __FILE__, __LINE__, __func__,
764 		      dev->name, dev->driver->id);
765 		return dp_fill(buf, dev->parent);
766 	}
767 }
768 
dp_part_size(struct blk_desc * desc,int part)769 static unsigned dp_part_size(struct blk_desc *desc, int part)
770 {
771 	unsigned dpsize;
772 	struct udevice *dev;
773 	int ret;
774 
775 	ret = blk_find_device(desc->if_type, desc->devnum, &dev);
776 
777 	if (ret)
778 		dev = desc->bdev->parent;
779 	dpsize = dp_size(dev);
780 
781 	if (part == 0) /* the actual disk, not a partition */
782 		return dpsize;
783 
784 	if (desc->part_type == PART_TYPE_ISO)
785 		dpsize += sizeof(struct efi_device_path_cdrom_path);
786 	else
787 		dpsize += sizeof(struct efi_device_path_hard_drive_path);
788 
789 	return dpsize;
790 }
791 
792 /*
793  * Create a device node for a block device partition.
794  *
795  * @buf		buffer to which the device path is written
796  * @desc	block device descriptor
797  * @part	partition number, 0 identifies a block device
798  */
dp_part_node(void * buf,struct blk_desc * desc,int part)799 static void *dp_part_node(void *buf, struct blk_desc *desc, int part)
800 {
801 	struct disk_partition info;
802 
803 	part_get_info(desc, part, &info);
804 
805 	if (desc->part_type == PART_TYPE_ISO) {
806 		struct efi_device_path_cdrom_path *cddp = buf;
807 
808 		cddp->boot_entry = part;
809 		cddp->dp.type = DEVICE_PATH_TYPE_MEDIA_DEVICE;
810 		cddp->dp.sub_type = DEVICE_PATH_SUB_TYPE_CDROM_PATH;
811 		cddp->dp.length = sizeof(*cddp);
812 		cddp->partition_start = info.start;
813 		cddp->partition_size = info.size;
814 
815 		buf = &cddp[1];
816 	} else {
817 		struct efi_device_path_hard_drive_path *hddp = buf;
818 
819 		hddp->dp.type = DEVICE_PATH_TYPE_MEDIA_DEVICE;
820 		hddp->dp.sub_type = DEVICE_PATH_SUB_TYPE_HARD_DRIVE_PATH;
821 		hddp->dp.length = sizeof(*hddp);
822 		hddp->partition_number = part;
823 		hddp->partition_start = info.start;
824 		hddp->partition_end = info.size;
825 		if (desc->part_type == PART_TYPE_EFI)
826 			hddp->partmap_type = 2;
827 		else
828 			hddp->partmap_type = 1;
829 
830 		switch (desc->sig_type) {
831 		case SIG_TYPE_NONE:
832 		default:
833 			hddp->signature_type = 0;
834 			memset(hddp->partition_signature, 0,
835 			       sizeof(hddp->partition_signature));
836 			break;
837 		case SIG_TYPE_MBR:
838 			hddp->signature_type = 1;
839 			memset(hddp->partition_signature, 0,
840 			       sizeof(hddp->partition_signature));
841 			memcpy(hddp->partition_signature, &desc->mbr_sig,
842 			       sizeof(desc->mbr_sig));
843 			break;
844 		case SIG_TYPE_GUID:
845 			hddp->signature_type = 2;
846 			if (uuid_str_to_bin(info.uuid,
847 					    hddp->partition_signature, 1))
848 				log_warning(
849 					"Partition no. %d: invalid guid: %s\n",
850 					part, info.uuid);
851 			break;
852 		}
853 
854 		buf = &hddp[1];
855 	}
856 
857 	return buf;
858 }
859 
860 /*
861  * Create a device path for a block device or one of its partitions.
862  *
863  * @buf		buffer to which the device path is written
864  * @desc	block device descriptor
865  * @part	partition number, 0 identifies a block device
866  */
dp_part_fill(void * buf,struct blk_desc * desc,int part)867 static void *dp_part_fill(void *buf, struct blk_desc *desc, int part)
868 {
869 	struct udevice *dev;
870 	int ret;
871 
872 	ret = blk_find_device(desc->if_type, desc->devnum, &dev);
873 
874 	if (ret)
875 		dev = desc->bdev->parent;
876 	buf = dp_fill(buf, dev);
877 
878 	if (part == 0) /* the actual disk, not a partition */
879 		return buf;
880 
881 	return dp_part_node(buf, desc, part);
882 }
883 
884 /* Construct a device-path from a partition on a block device: */
efi_dp_from_part(struct blk_desc * desc,int part)885 struct efi_device_path *efi_dp_from_part(struct blk_desc *desc, int part)
886 {
887 	void *buf, *start;
888 
889 	start = buf = dp_alloc(dp_part_size(desc, part) + sizeof(END));
890 	if (!buf)
891 		return NULL;
892 
893 	buf = dp_part_fill(buf, desc, part);
894 
895 	*((struct efi_device_path *)buf) = END;
896 
897 	return start;
898 }
899 
900 /*
901  * Create a device node for a block device partition.
902  *
903  * @buf		buffer to which the device path is written
904  * @desc	block device descriptor
905  * @part	partition number, 0 identifies a block device
906  */
efi_dp_part_node(struct blk_desc * desc,int part)907 struct efi_device_path *efi_dp_part_node(struct blk_desc *desc, int part)
908 {
909 	efi_uintn_t dpsize;
910 	void *buf;
911 
912 	if (desc->part_type == PART_TYPE_ISO)
913 		dpsize = sizeof(struct efi_device_path_cdrom_path);
914 	else
915 		dpsize = sizeof(struct efi_device_path_hard_drive_path);
916 	buf = dp_alloc(dpsize);
917 
918 	dp_part_node(buf, desc, part);
919 
920 	return buf;
921 }
922 
923 /**
924  * path_to_uefi() - convert UTF-8 path to an UEFI style path
925  *
926  * Convert UTF-8 path to a UEFI style path (i.e. with backslashes as path
927  * separators and UTF-16).
928  *
929  * @src:	source buffer
930  * @uefi:	target buffer, possibly unaligned
931  */
path_to_uefi(void * uefi,const char * src)932 static void path_to_uefi(void *uefi, const char *src)
933 {
934 	u16 *pos = uefi;
935 
936 	/*
937 	 * efi_set_bootdev() calls this routine indirectly before the UEFI
938 	 * subsystem is initialized. So we cannot assume unaligned access to be
939 	 * enabled.
940 	 */
941 	allow_unaligned();
942 
943 	while (*src) {
944 		s32 code = utf8_get(&src);
945 
946 		if (code < 0)
947 			code = '?';
948 		else if (code == '/')
949 			code = '\\';
950 		utf16_put(code, &pos);
951 	}
952 	*pos = 0;
953 }
954 
955 /*
956  * If desc is NULL, this creates a path with only the file component,
957  * otherwise it creates a full path with both device and file components
958  */
efi_dp_from_file(struct blk_desc * desc,int part,const char * path)959 struct efi_device_path *efi_dp_from_file(struct blk_desc *desc, int part,
960 		const char *path)
961 {
962 	struct efi_device_path_file_path *fp;
963 	void *buf, *start;
964 	size_t dpsize = 0, fpsize;
965 
966 	if (desc)
967 		dpsize = dp_part_size(desc, part);
968 
969 	fpsize = sizeof(struct efi_device_path) +
970 		 2 * (utf8_utf16_strlen(path) + 1);
971 	if (fpsize > U16_MAX)
972 		return NULL;
973 
974 	dpsize += fpsize;
975 
976 	start = buf = dp_alloc(dpsize + sizeof(END));
977 	if (!buf)
978 		return NULL;
979 
980 	if (desc)
981 		buf = dp_part_fill(buf, desc, part);
982 
983 	/* add file-path: */
984 	fp = buf;
985 	fp->dp.type = DEVICE_PATH_TYPE_MEDIA_DEVICE;
986 	fp->dp.sub_type = DEVICE_PATH_SUB_TYPE_FILE_PATH;
987 	fp->dp.length = (u16)fpsize;
988 	path_to_uefi(fp->str, path);
989 	buf += fpsize;
990 
991 	*((struct efi_device_path *)buf) = END;
992 
993 	return start;
994 }
995 
efi_dp_from_uart(void)996 struct efi_device_path *efi_dp_from_uart(void)
997 {
998 	void *buf, *pos;
999 	struct efi_device_path_uart *uart;
1000 	size_t dpsize = sizeof(ROOT) + sizeof(*uart) + sizeof(END);
1001 
1002 	buf = dp_alloc(dpsize);
1003 	if (!buf)
1004 		return NULL;
1005 	pos = buf;
1006 	memcpy(pos, &ROOT, sizeof(ROOT));
1007 	pos += sizeof(ROOT);
1008 	uart = pos;
1009 	uart->dp.type = DEVICE_PATH_TYPE_MESSAGING_DEVICE;
1010 	uart->dp.sub_type = DEVICE_PATH_SUB_TYPE_MSG_UART;
1011 	uart->dp.length = sizeof(*uart);
1012 	pos += sizeof(*uart);
1013 	memcpy(pos, &END, sizeof(END));
1014 
1015 	return buf;
1016 }
1017 
1018 #ifdef CONFIG_NET
efi_dp_from_eth(void)1019 struct efi_device_path *efi_dp_from_eth(void)
1020 {
1021 	void *buf, *start;
1022 	unsigned dpsize = 0;
1023 
1024 	assert(eth_get_dev());
1025 
1026 	dpsize += dp_size(eth_get_dev());
1027 
1028 	start = buf = dp_alloc(dpsize + sizeof(END));
1029 	if (!buf)
1030 		return NULL;
1031 
1032 	buf = dp_fill(buf, eth_get_dev());
1033 
1034 	*((struct efi_device_path *)buf) = END;
1035 
1036 	return start;
1037 }
1038 #endif
1039 
1040 /* Construct a device-path for memory-mapped image */
efi_dp_from_mem(uint32_t memory_type,uint64_t start_address,uint64_t end_address)1041 struct efi_device_path *efi_dp_from_mem(uint32_t memory_type,
1042 					uint64_t start_address,
1043 					uint64_t end_address)
1044 {
1045 	struct efi_device_path_memory *mdp;
1046 	void *buf, *start;
1047 
1048 	start = buf = dp_alloc(sizeof(*mdp) + sizeof(END));
1049 	if (!buf)
1050 		return NULL;
1051 
1052 	mdp = buf;
1053 	mdp->dp.type = DEVICE_PATH_TYPE_HARDWARE_DEVICE;
1054 	mdp->dp.sub_type = DEVICE_PATH_SUB_TYPE_MEMORY;
1055 	mdp->dp.length = sizeof(*mdp);
1056 	mdp->memory_type = memory_type;
1057 	mdp->start_address = start_address;
1058 	mdp->end_address = end_address;
1059 	buf = &mdp[1];
1060 
1061 	*((struct efi_device_path *)buf) = END;
1062 
1063 	return start;
1064 }
1065 
1066 /**
1067  * efi_dp_split_file_path() - split of relative file path from device path
1068  *
1069  * Given a device path indicating a file on a device, separate the device
1070  * path in two: the device path of the actual device and the file path
1071  * relative to this device.
1072  *
1073  * @full_path:		device path including device and file path
1074  * @device_path:	path of the device
1075  * @file_path:		relative path of the file or NULL if there is none
1076  * Return:		status code
1077  */
efi_dp_split_file_path(struct efi_device_path * full_path,struct efi_device_path ** device_path,struct efi_device_path ** file_path)1078 efi_status_t efi_dp_split_file_path(struct efi_device_path *full_path,
1079 				    struct efi_device_path **device_path,
1080 				    struct efi_device_path **file_path)
1081 {
1082 	struct efi_device_path *p, *dp, *fp = NULL;
1083 
1084 	*device_path = NULL;
1085 	*file_path = NULL;
1086 	dp = efi_dp_dup(full_path);
1087 	if (!dp)
1088 		return EFI_OUT_OF_RESOURCES;
1089 	p = dp;
1090 	while (!EFI_DP_TYPE(p, MEDIA_DEVICE, FILE_PATH)) {
1091 		p = efi_dp_next(p);
1092 		if (!p)
1093 			goto out;
1094 	}
1095 	fp = efi_dp_dup(p);
1096 	if (!fp)
1097 		return EFI_OUT_OF_RESOURCES;
1098 	p->type = DEVICE_PATH_TYPE_END;
1099 	p->sub_type = DEVICE_PATH_SUB_TYPE_END;
1100 	p->length = sizeof(*p);
1101 
1102 out:
1103 	*device_path = dp;
1104 	*file_path = fp;
1105 	return EFI_SUCCESS;
1106 }
1107 
1108 /**
1109  * efi_dp_from_name() - convert U-Boot device and file path to device path
1110  *
1111  * @dev:	U-Boot device, e.g. 'mmc'
1112  * @devnr:	U-Boot device number, e.g. 1 for 'mmc:1'
1113  * @path:	file path relative to U-Boot device, may be NULL
1114  * @device:	pointer to receive device path of the device
1115  * @file:	pointer to receive device path for the file
1116  * Return:	status code
1117  */
efi_dp_from_name(const char * dev,const char * devnr,const char * path,struct efi_device_path ** device,struct efi_device_path ** file)1118 efi_status_t efi_dp_from_name(const char *dev, const char *devnr,
1119 			      const char *path,
1120 			      struct efi_device_path **device,
1121 			      struct efi_device_path **file)
1122 {
1123 	struct blk_desc *desc = NULL;
1124 	struct disk_partition fs_partition;
1125 	int part = 0;
1126 	char *filename;
1127 	char *s;
1128 
1129 	if (path && !file)
1130 		return EFI_INVALID_PARAMETER;
1131 
1132 	if (!strcmp(dev, "Net")) {
1133 #ifdef CONFIG_NET
1134 		if (device)
1135 			*device = efi_dp_from_eth();
1136 #endif
1137 	} else if (!strcmp(dev, "Uart")) {
1138 		if (device)
1139 			*device = efi_dp_from_uart();
1140 	} else {
1141 		part = blk_get_device_part_str(dev, devnr, &desc, &fs_partition,
1142 					       1);
1143 		if (part < 0 || !desc)
1144 			return EFI_INVALID_PARAMETER;
1145 
1146 		if (device)
1147 			*device = efi_dp_from_part(desc, part);
1148 	}
1149 
1150 	if (!path)
1151 		return EFI_SUCCESS;
1152 
1153 	filename = calloc(1, strlen(path) + 1);
1154 	if (!filename)
1155 		return EFI_OUT_OF_RESOURCES;
1156 
1157 	sprintf(filename, "%s", path);
1158 	/* DOS style file path: */
1159 	s = filename;
1160 	while ((s = strchr(s, '/')))
1161 		*s++ = '\\';
1162 	*file = efi_dp_from_file(desc, part, filename);
1163 	free(filename);
1164 
1165 	if (!*file)
1166 		return EFI_INVALID_PARAMETER;
1167 
1168 	return EFI_SUCCESS;
1169 }
1170 
1171 /**
1172  * efi_dp_check_length() - check length of a device path
1173  *
1174  * @dp:		pointer to device path
1175  * @maxlen:	maximum length of the device path
1176  * Return:
1177  * * length of the device path if it is less or equal @maxlen
1178  * * -1 if the device path is longer then @maxlen
1179  * * -1 if a device path node has a length of less than 4
1180  * * -EINVAL if maxlen exceeds SSIZE_MAX
1181  */
efi_dp_check_length(const struct efi_device_path * dp,const size_t maxlen)1182 ssize_t efi_dp_check_length(const struct efi_device_path *dp,
1183 			    const size_t maxlen)
1184 {
1185 	ssize_t ret = 0;
1186 	u16 len;
1187 
1188 	if (maxlen > SSIZE_MAX)
1189 		return -EINVAL;
1190 	for (;;) {
1191 		len = dp->length;
1192 		if (len < 4)
1193 			return -1;
1194 		ret += len;
1195 		if (ret > maxlen)
1196 			return -1;
1197 		if (dp->type == DEVICE_PATH_TYPE_END &&
1198 		    dp->sub_type == DEVICE_PATH_SUB_TYPE_END)
1199 			return ret;
1200 		dp = (const struct efi_device_path *)((const u8 *)dp + len);
1201 	}
1202 }
1203 
1204 /**
1205  * efi_dp_from_lo() - Get the instance of a VenMedia node in a
1206  *                    multi-instance device path that matches
1207  *                    a specific GUID. This kind of device paths
1208  *                    is found in Boot#### options describing an
1209  *                    initrd location
1210  *
1211  * @lo:		EFI_LOAD_OPTION containing a valid device path
1212  * @guid:	guid to search for
1213  *
1214  * Return:
1215  * device path including the VenMedia node or NULL.
1216  * Caller must free the returned value.
1217  */
1218 struct
efi_dp_from_lo(struct efi_load_option * lo,const efi_guid_t * guid)1219 efi_device_path *efi_dp_from_lo(struct efi_load_option *lo,
1220 				const efi_guid_t *guid)
1221 {
1222 	struct efi_device_path *fp = lo->file_path;
1223 	struct efi_device_path_vendor *vendor;
1224 	int lo_len = lo->file_path_length;
1225 
1226 	for (; lo_len >=  sizeof(struct efi_device_path);
1227 	     lo_len -= fp->length, fp = (void *)fp + fp->length) {
1228 		if (lo_len < 0 || efi_dp_check_length(fp, lo_len) < 0)
1229 			break;
1230 		if (fp->type != DEVICE_PATH_TYPE_MEDIA_DEVICE ||
1231 		    fp->sub_type != DEVICE_PATH_SUB_TYPE_VENDOR_PATH)
1232 			continue;
1233 
1234 		vendor = (struct efi_device_path_vendor *)fp;
1235 		if (!guidcmp(&vendor->guid, guid))
1236 			return efi_dp_dup(efi_dp_next(fp));
1237 	}
1238 	log_debug("VenMedia(%pUl) not found in %ls\n", &guid, lo->label);
1239 
1240 	return NULL;
1241 }
1242 
1243 /**
1244  * search_gpt_dp_node() - search gpt device path node
1245  *
1246  * @device_path:	device path
1247  *
1248  * Return:	pointer to the gpt device path node
1249  */
search_gpt_dp_node(struct efi_device_path * device_path)1250 struct efi_device_path *search_gpt_dp_node(struct efi_device_path *device_path)
1251 {
1252 	struct efi_device_path *dp = device_path;
1253 
1254 	while (dp) {
1255 		if (dp->type == DEVICE_PATH_TYPE_MEDIA_DEVICE &&
1256 		    dp->sub_type == DEVICE_PATH_SUB_TYPE_HARD_DRIVE_PATH) {
1257 			struct efi_device_path_hard_drive_path *hd_dp =
1258 				(struct efi_device_path_hard_drive_path *)dp;
1259 
1260 			if (hd_dp->partmap_type == PART_FORMAT_GPT &&
1261 			    hd_dp->signature_type == SIG_TYPE_GUID)
1262 				return dp;
1263 		}
1264 		dp = efi_dp_next(dp);
1265 	}
1266 
1267 	return NULL;
1268 }
1269