xref: /linux/arch/x86/kernel/cpu/microcode/amd.c (revision f4cdf7ca9a1fdcca413157df19753f388a5a224e)
1 // SPDX-License-Identifier: GPL-2.0-only
2 /*
3  *  AMD CPU Microcode Update Driver for Linux
4  *
5  *  This driver allows to upgrade microcode on F10h AMD
6  *  CPUs and later.
7  *
8  *  Copyright (C) 2008-2011 Advanced Micro Devices Inc.
9  *	          2013-2018 Borislav Petkov <bp@alien8.de>
10  *
11  *  Author: Peter Oruba <peter.oruba@amd.com>
12  *
13  *  Based on work by:
14  *  Tigran Aivazian <aivazian.tigran@gmail.com>
15  *
16  *  early loader:
17  *  Copyright (C) 2013 Advanced Micro Devices, Inc.
18  *
19  *  Author: Jacob Shin <jacob.shin@amd.com>
20  *  Fixes: Borislav Petkov <bp@suse.de>
21  */
22 #define pr_fmt(fmt) "microcode: " fmt
23 
24 #include <linux/earlycpio.h>
25 #include <linux/firmware.h>
26 #include <linux/bsearch.h>
27 #include <linux/uaccess.h>
28 #include <linux/vmalloc.h>
29 #include <linux/initrd.h>
30 #include <linux/kernel.h>
31 #include <linux/pci.h>
32 
33 #include <crypto/sha2.h>
34 
35 #include <asm/microcode.h>
36 #include <asm/processor.h>
37 #include <asm/cpuid/api.h>
38 #include <asm/cmdline.h>
39 #include <asm/setup.h>
40 #include <asm/cpu.h>
41 #include <asm/msr.h>
42 #include <asm/tlb.h>
43 
44 #include "internal.h"
45 
46 struct ucode_patch {
47 	struct list_head plist;
48 	void *data;
49 	unsigned int size;
50 	u32 patch_id;
51 	u16 equiv_cpu;
52 };
53 
54 static LIST_HEAD(microcode_cache);
55 
56 #define UCODE_MAGIC			0x00414d44
57 #define UCODE_EQUIV_CPU_TABLE_TYPE	0x00000000
58 #define UCODE_UCODE_TYPE		0x00000001
59 
60 #define SECTION_HDR_SIZE		8
61 #define CONTAINER_HDR_SZ		12
62 
63 struct equiv_cpu_entry {
64 	u32	installed_cpu;
65 	u32	fixed_errata_mask;
66 	u32	fixed_errata_compare;
67 	u16	equiv_cpu;
68 	u16	res;
69 } __packed;
70 
71 struct microcode_header_amd {
72 	u32	data_code;
73 	u32	patch_id;
74 	u16	mc_patch_data_id;
75 	u8	mc_patch_data_len;
76 	u8	init_flag;
77 	u32	mc_patch_data_checksum;
78 	u32	nb_dev_id;
79 	u32	sb_dev_id;
80 	u16	processor_rev_id;
81 	u8	nb_rev_id;
82 	u8	sb_rev_id;
83 	u8	bios_api_rev;
84 	u8	reserved1[3];
85 	u32	match_reg[8];
86 } __packed;
87 
88 struct microcode_amd {
89 	struct microcode_header_amd	hdr;
90 	unsigned int			mpb[];
91 };
92 
93 static struct equiv_cpu_table {
94 	unsigned int num_entries;
95 	struct equiv_cpu_entry *entry;
96 } equiv_table;
97 
98 union zen_patch_rev {
99 	struct {
100 		__u32 rev	 : 8,
101 		      stepping	 : 4,
102 		      model	 : 4,
103 		      __reserved : 4,
104 		      ext_model	 : 4,
105 		      ext_fam	 : 8;
106 	};
107 	__u32 ucode_rev;
108 };
109 
110 union cpuid_1_eax {
111 	struct {
112 		__u32 stepping    : 4,
113 		      model	  : 4,
114 		      family	  : 4,
115 		      __reserved0 : 4,
116 		      ext_model   : 4,
117 		      ext_fam     : 8,
118 		      __reserved1 : 4;
119 	};
120 	__u32 full;
121 };
122 
123 /*
124  * This points to the current valid container of microcode patches which we will
125  * save from the initrd/builtin before jettisoning its contents. @mc is the
126  * microcode patch we found to match.
127  */
128 struct cont_desc {
129 	struct microcode_amd *mc;
130 	u32		     psize;
131 	u8		     *data;
132 	size_t		     size;
133 };
134 
135 /*
136  * Microcode patch container file is prepended to the initrd in cpio
137  * format. See Documentation/arch/x86/microcode.rst
138  */
139 static const char ucode_path[] = "kernel/x86/microcode/AuthenticAMD.bin";
140 
141 /*
142  * This is CPUID(1).EAX on the BSP. It is used in two ways:
143  *
144  * 1. To ignore the equivalence table on Zen1 and newer.
145  *
146  * 2. To match which patches to load because the patch revision ID
147  *    already contains the f/m/s for which the microcode is destined
148  *    for.
149  */
150 static u32 bsp_cpuid_1_eax __ro_after_init;
151 
152 static bool sha_check = true;
153 
154 struct patch_digest {
155 	u32 patch_id;
156 	u8 sha256[SHA256_DIGEST_SIZE];
157 };
158 
159 #include "amd_shas.c"
160 
161 static int cmp_id(const void *key, const void *elem)
162 {
163 	struct patch_digest *pd = (struct patch_digest *)elem;
164 	u32 patch_id = *(u32 *)key;
165 
166 	if (patch_id == pd->patch_id)
167 		return 0;
168 	else if (patch_id < pd->patch_id)
169 		return -1;
170 	else
171 		return 1;
172 }
173 
174 static u32 cpuid_to_ucode_rev(unsigned int val)
175 {
176 	union zen_patch_rev p = {};
177 	union cpuid_1_eax c;
178 
179 	c.full = val;
180 
181 	p.stepping  = c.stepping;
182 	p.model     = c.model;
183 	p.ext_model = c.ext_model;
184 	p.ext_fam   = c.ext_fam;
185 
186 	return p.ucode_rev;
187 }
188 
189 static u32 get_cutoff_revision(u32 rev)
190 {
191 	switch (rev >> 8) {
192 	case 0x80012: return 0x8001277; break;
193 	case 0x80082: return 0x800820f; break;
194 	case 0x83010: return 0x830107c; break;
195 	case 0x86001: return 0x860010e; break;
196 	case 0x86081: return 0x8608108; break;
197 	case 0x87010: return 0x8701034; break;
198 	case 0x8a000: return 0x8a0000a; break;
199 	case 0xa0010: return 0xa00107a; break;
200 	case 0xa0011: return 0xa0011da; break;
201 	case 0xa0012: return 0xa001243; break;
202 	case 0xa0082: return 0xa00820e; break;
203 	case 0xa1011: return 0xa101153; break;
204 	case 0xa1012: return 0xa10124e; break;
205 	case 0xa1081: return 0xa108109; break;
206 	case 0xa2010: return 0xa20102f; break;
207 	case 0xa2012: return 0xa201212; break;
208 	case 0xa4041: return 0xa404109; break;
209 	case 0xa5000: return 0xa500013; break;
210 	case 0xa6012: return 0xa60120a; break;
211 	case 0xa7041: return 0xa704109; break;
212 	case 0xa7052: return 0xa705208; break;
213 	case 0xa7080: return 0xa708009; break;
214 	case 0xa70c0: return 0xa70C009; break;
215 	case 0xaa001: return 0xaa00116; break;
216 	case 0xaa002: return 0xaa00218; break;
217 	case 0xb0021: return 0xb002146; break;
218 	case 0xb0081: return 0xb008111; break;
219 	case 0xb1010: return 0xb101046; break;
220 	case 0xb2040: return 0xb204031; break;
221 	case 0xb4040: return 0xb404031; break;
222 	case 0xb4041: return 0xb404101; break;
223 	case 0xb6000: return 0xb600031; break;
224 	case 0xb6080: return 0xb608031; break;
225 	case 0xb7000: return 0xb700031; break;
226 	default: break;
227 
228 	}
229 	return 0;
230 }
231 
232 static bool need_sha_check(u32 cur_rev)
233 {
234 	u32 cutoff;
235 
236 	cutoff = get_cutoff_revision(cur_rev);
237 	if (cutoff)
238 		return cur_rev <= cutoff;
239 
240 	pr_info("You should not be seeing this. Please send the following couple of lines to x86-<at>-kernel.org\n");
241 	pr_info("CPUID(1).EAX: 0x%x, current revision: 0x%x\n", bsp_cpuid_1_eax, cur_rev);
242 	return true;
243 }
244 
245 static bool cpu_has_entrysign(void)
246 {
247 	unsigned int fam   = x86_family(bsp_cpuid_1_eax);
248 	unsigned int model = x86_model(bsp_cpuid_1_eax);
249 
250 	if (fam == 0x17 || fam == 0x19)
251 		return true;
252 
253 	if (fam == 0x1a) {
254 		if (model <= 0x2f ||
255 		    (0x40 <= model && model <= 0x4f) ||
256 		    (0x60 <= model && model <= 0x7f))
257 			return true;
258 	}
259 
260 	return false;
261 }
262 
263 static bool verify_sha256_digest(u32 patch_id, u32 cur_rev, const u8 *data, unsigned int len)
264 {
265 	struct patch_digest *pd = NULL;
266 	u8 digest[SHA256_DIGEST_SIZE];
267 	int i;
268 
269 	if (!cpu_has_entrysign())
270 		return true;
271 
272 	if (!need_sha_check(cur_rev))
273 		return true;
274 
275 	if (!sha_check)
276 		return true;
277 
278 	pd = bsearch(&patch_id, phashes, ARRAY_SIZE(phashes), sizeof(struct patch_digest), cmp_id);
279 	if (!pd) {
280 		pr_err("No sha256 digest for patch ID: 0x%x found\n", patch_id);
281 		return false;
282 	}
283 
284 	sha256(data, len, digest);
285 
286 	if (memcmp(digest, pd->sha256, sizeof(digest))) {
287 		pr_err("Patch 0x%x SHA256 digest mismatch!\n", patch_id);
288 
289 		for (i = 0; i < SHA256_DIGEST_SIZE; i++)
290 			pr_cont("0x%x ", digest[i]);
291 		pr_info("\n");
292 
293 		return false;
294 	}
295 
296 	return true;
297 }
298 
299 static union cpuid_1_eax ucode_rev_to_cpuid(unsigned int val)
300 {
301 	union zen_patch_rev p;
302 	union cpuid_1_eax c;
303 
304 	p.ucode_rev = val;
305 	c.full = 0;
306 
307 	c.stepping  = p.stepping;
308 	c.model     = p.model;
309 	c.ext_model = p.ext_model;
310 	c.family    = 0xf;
311 	c.ext_fam   = p.ext_fam;
312 
313 	return c;
314 }
315 
316 static u32 get_patch_level(void)
317 {
318 	u32 rev, dummy __always_unused;
319 
320 	if (IS_ENABLED(CONFIG_MICROCODE_DBG) && x86_hypervisor_present) {
321 		int cpu = smp_processor_id();
322 
323 		if (!microcode_rev[cpu]) {
324 			if (!base_rev)
325 				base_rev = cpuid_to_ucode_rev(bsp_cpuid_1_eax);
326 
327 			microcode_rev[cpu] = base_rev;
328 
329 			ucode_dbg("CPU%d, base_rev: 0x%x\n", cpu, base_rev);
330 		}
331 
332 		return microcode_rev[cpu];
333 	}
334 
335 	native_rdmsr(MSR_AMD64_PATCH_LEVEL, rev, dummy);
336 	if (!rev) {
337 		if (x86_family(bsp_cpuid_1_eax) < 0x17)
338 			return rev;
339 
340 		rev = cpuid_to_ucode_rev(bsp_cpuid_1_eax);
341 		pr_info_once("No current revision, generating the lowest one: 0x%x\n", rev);
342 	}
343 
344 	return rev;
345 }
346 
347 static u16 find_equiv_id(struct equiv_cpu_table *et, u32 sig)
348 {
349 	unsigned int i;
350 
351 	/* Zen and newer do not need an equivalence table. */
352 	if (x86_family(bsp_cpuid_1_eax) >= 0x17)
353 		return 0;
354 
355 	if (!et || !et->num_entries)
356 		return 0;
357 
358 	for (i = 0; i < et->num_entries; i++) {
359 		struct equiv_cpu_entry *e = &et->entry[i];
360 
361 		if (sig == e->installed_cpu)
362 			return e->equiv_cpu;
363 	}
364 	return 0;
365 }
366 
367 /*
368  * Check whether there is a valid microcode container file at the beginning
369  * of @buf of size @buf_size.
370  */
371 static bool verify_container(const u8 *buf, size_t buf_size)
372 {
373 	u32 cont_magic;
374 
375 	if (buf_size <= CONTAINER_HDR_SZ) {
376 		ucode_dbg("Truncated microcode container header.\n");
377 		return false;
378 	}
379 
380 	cont_magic = *(const u32 *)buf;
381 	if (cont_magic != UCODE_MAGIC) {
382 		ucode_dbg("Invalid magic value (0x%08x).\n", cont_magic);
383 		return false;
384 	}
385 
386 	return true;
387 }
388 
389 /*
390  * Check whether there is a valid, non-truncated CPU equivalence table at the
391  * beginning of @buf of size @buf_size.
392  */
393 static bool verify_equivalence_table(const u8 *buf, size_t buf_size)
394 {
395 	const u32 *hdr = (const u32 *)buf;
396 	u32 cont_type, equiv_tbl_len;
397 
398 	if (!verify_container(buf, buf_size))
399 		return false;
400 
401 	/* Zen and newer do not need an equivalence table. */
402 	if (x86_family(bsp_cpuid_1_eax) >= 0x17)
403 		return true;
404 
405 	cont_type = hdr[1];
406 	if (cont_type != UCODE_EQUIV_CPU_TABLE_TYPE) {
407 		ucode_dbg("Wrong microcode container equivalence table type: %u.\n",
408 			  cont_type);
409 		return false;
410 	}
411 
412 	buf_size -= CONTAINER_HDR_SZ;
413 
414 	equiv_tbl_len = hdr[2];
415 	if (equiv_tbl_len < sizeof(struct equiv_cpu_entry) ||
416 	    buf_size < equiv_tbl_len) {
417 		ucode_dbg("Truncated equivalence table.\n");
418 		return false;
419 	}
420 
421 	return true;
422 }
423 
424 /*
425  * Check whether there is a valid, non-truncated microcode patch section at the
426  * beginning of @buf of size @buf_size.
427  *
428  * On success, @sh_psize returns the patch size according to the section header,
429  * to the caller.
430  */
431 static bool __verify_patch_section(const u8 *buf, size_t buf_size, u32 *sh_psize)
432 {
433 	u32 p_type, p_size;
434 	const u32 *hdr;
435 
436 	if (buf_size < SECTION_HDR_SIZE) {
437 		ucode_dbg("Truncated patch section.\n");
438 		return false;
439 	}
440 
441 	hdr = (const u32 *)buf;
442 	p_type = hdr[0];
443 	p_size = hdr[1];
444 
445 	if (p_type != UCODE_UCODE_TYPE) {
446 		ucode_dbg("Invalid type field (0x%x) in container file section header.\n",
447 			  p_type);
448 		return false;
449 	}
450 
451 	if (p_size < sizeof(struct microcode_header_amd)) {
452 		ucode_dbg("Patch of size %u too short.\n", p_size);
453 		return false;
454 	}
455 
456 	*sh_psize = p_size;
457 
458 	return true;
459 }
460 
461 /*
462  * Check whether the passed remaining file @buf_size is large enough to contain
463  * a patch of the indicated @sh_psize (and also whether this size does not
464  * exceed the per-family maximum). @sh_psize is the size read from the section
465  * header.
466  */
467 static bool __verify_patch_size(u32 sh_psize, size_t buf_size)
468 {
469 	u8 family = x86_family(bsp_cpuid_1_eax);
470 	u32 max_size;
471 
472 	if (family >= 0x15)
473 		goto ret;
474 
475 #define F1XH_MPB_MAX_SIZE 2048
476 #define F14H_MPB_MAX_SIZE 1824
477 
478 	switch (family) {
479 	case 0x10 ... 0x12:
480 		max_size = F1XH_MPB_MAX_SIZE;
481 		break;
482 	case 0x14:
483 		max_size = F14H_MPB_MAX_SIZE;
484 		break;
485 	default:
486 		WARN(1, "%s: WTF family: 0x%x\n", __func__, family);
487 		return false;
488 	}
489 
490 	if (sh_psize > max_size)
491 		return false;
492 
493 ret:
494 	/* Working with the whole buffer so < is ok. */
495 	return sh_psize <= buf_size;
496 }
497 
498 /*
499  * Verify the patch in @buf.
500  *
501  * Returns:
502  * negative: on error
503  * positive: patch is not for this family, skip it
504  * 0: success
505  */
506 static int verify_patch(const u8 *buf, size_t buf_size, u32 *patch_size)
507 {
508 	u8 family = x86_family(bsp_cpuid_1_eax);
509 	struct microcode_header_amd *mc_hdr;
510 	u32 cur_rev, cutoff, patch_rev;
511 	u32 sh_psize;
512 	u16 proc_id;
513 	u8 patch_fam;
514 
515 	if (!__verify_patch_section(buf, buf_size, &sh_psize))
516 		return -1;
517 
518 	/*
519 	 * The section header length is not included in this indicated size
520 	 * but is present in the leftover file length so we need to subtract
521 	 * it before passing this value to the function below.
522 	 */
523 	buf_size -= SECTION_HDR_SIZE;
524 
525 	/*
526 	 * Check if the remaining buffer is big enough to contain a patch of
527 	 * size sh_psize, as the section claims.
528 	 */
529 	if (buf_size < sh_psize) {
530 		ucode_dbg("Patch of size %u truncated.\n", sh_psize);
531 		return -1;
532 	}
533 
534 	if (!__verify_patch_size(sh_psize, buf_size)) {
535 		ucode_dbg("Per-family patch size mismatch.\n");
536 		return -1;
537 	}
538 
539 	*patch_size = sh_psize;
540 
541 	mc_hdr	= (struct microcode_header_amd *)(buf + SECTION_HDR_SIZE);
542 	if (mc_hdr->nb_dev_id || mc_hdr->sb_dev_id) {
543 		pr_err("Patch-ID 0x%08x: chipset-specific code unsupported.\n", mc_hdr->patch_id);
544 		return -1;
545 	}
546 
547 	proc_id	= mc_hdr->processor_rev_id;
548 	patch_fam = 0xf + (proc_id >> 12);
549 
550 	if (patch_fam != family)
551 		return 1;
552 
553 	cur_rev = get_patch_level();
554 
555 	/* No cutoff revision means old/unaffected by signing algorithm weakness => matches */
556 	cutoff = get_cutoff_revision(cur_rev);
557 	if (!cutoff)
558 		goto ok;
559 
560 	patch_rev = mc_hdr->patch_id;
561 
562 	ucode_dbg("cur_rev: 0x%x, cutoff: 0x%x, patch_rev: 0x%x\n",
563 		  cur_rev, cutoff, patch_rev);
564 
565 	if (cur_rev <= cutoff && patch_rev <= cutoff)
566 		goto ok;
567 
568 	if (cur_rev > cutoff && patch_rev > cutoff)
569 		goto ok;
570 
571 	return 1;
572 
573 ok:
574 	ucode_dbg("Patch-ID 0x%08x: family: 0x%x\n", mc_hdr->patch_id, patch_fam);
575 
576 	return 0;
577 }
578 
579 static bool mc_patch_matches(struct microcode_amd *mc, u16 eq_id)
580 {
581 	/* Zen and newer do not need an equivalence table. */
582 	if (x86_family(bsp_cpuid_1_eax) >= 0x17)
583 		return ucode_rev_to_cpuid(mc->hdr.patch_id).full == bsp_cpuid_1_eax;
584 	else
585 		return eq_id == mc->hdr.processor_rev_id;
586 }
587 
588 /*
589  * This scans the ucode blob for the proper container as we can have multiple
590  * containers glued together.
591  *
592  * Returns the amount of bytes consumed while scanning. @desc contains all the
593  * data we're going to use in later stages of the application.
594  */
595 static size_t parse_container(u8 *ucode, size_t size, struct cont_desc *desc)
596 {
597 	struct equiv_cpu_table table;
598 	size_t orig_size = size;
599 	u32 *hdr = (u32 *)ucode;
600 	u16 eq_id;
601 	u8 *buf;
602 
603 	if (!verify_equivalence_table(ucode, size))
604 		return 0;
605 
606 	buf = ucode;
607 
608 	table.entry = (struct equiv_cpu_entry *)(buf + CONTAINER_HDR_SZ);
609 	table.num_entries = hdr[2] / sizeof(struct equiv_cpu_entry);
610 
611 	/*
612 	 * Find the equivalence ID of our CPU in this table. Even if this table
613 	 * doesn't contain a patch for the CPU, scan through the whole container
614 	 * so that it can be skipped in case there are other containers appended.
615 	 */
616 	eq_id = find_equiv_id(&table, bsp_cpuid_1_eax);
617 
618 	buf  += hdr[2] + CONTAINER_HDR_SZ;
619 	size -= hdr[2] + CONTAINER_HDR_SZ;
620 
621 	/*
622 	 * Scan through the rest of the container to find where it ends. We do
623 	 * some basic sanity-checking too.
624 	 */
625 	while (size > 0) {
626 		struct microcode_amd *mc;
627 		u32 patch_size;
628 		int ret;
629 
630 		ret = verify_patch(buf, size, &patch_size);
631 		if (ret < 0) {
632 			/*
633 			 * Patch verification failed, skip to the next container, if
634 			 * there is one. Before exit, check whether that container has
635 			 * found a patch already. If so, use it.
636 			 */
637 			goto out;
638 		} else if (ret > 0) {
639 			goto skip;
640 		}
641 
642 		mc = (struct microcode_amd *)(buf + SECTION_HDR_SIZE);
643 
644 		if (mc_patch_matches(mc, eq_id)) {
645 			desc->psize = patch_size;
646 			desc->mc = mc;
647 
648 			ucode_dbg(" match: size: %d\n", patch_size);
649 		}
650 
651 skip:
652 		/* Skip patch section header too: */
653 		buf  += patch_size + SECTION_HDR_SIZE;
654 		size -= patch_size + SECTION_HDR_SIZE;
655 	}
656 
657 out:
658 	/*
659 	 * If we have found a patch (desc->mc), it means we're looking at the
660 	 * container which has a patch for this CPU so return 0 to mean, @ucode
661 	 * already points to the proper container. Otherwise, we return the size
662 	 * we scanned so that we can advance to the next container in the
663 	 * buffer.
664 	 */
665 	if (desc->mc) {
666 		desc->data = ucode;
667 		desc->size = orig_size - size;
668 
669 		return 0;
670 	}
671 
672 	return orig_size - size;
673 }
674 
675 /*
676  * Scan the ucode blob for the proper container as we can have multiple
677  * containers glued together.
678  */
679 static void scan_containers(u8 *ucode, size_t size, struct cont_desc *desc)
680 {
681 	while (size) {
682 		size_t s = parse_container(ucode, size, desc);
683 		if (!s)
684 			return;
685 
686 		/* catch wraparound */
687 		if (size >= s) {
688 			ucode += s;
689 			size  -= s;
690 		} else {
691 			return;
692 		}
693 	}
694 }
695 
696 static bool __apply_microcode_amd(struct microcode_amd *mc, u32 *cur_rev,
697 				  unsigned int psize)
698 {
699 	unsigned long p_addr = (unsigned long)&mc->hdr.data_code;
700 
701 	if (!verify_sha256_digest(mc->hdr.patch_id, *cur_rev, (const u8 *)p_addr, psize))
702 		return false;
703 
704 	native_wrmsrq(MSR_AMD64_PATCH_LOADER, p_addr);
705 
706 	if (x86_family(bsp_cpuid_1_eax) == 0x17) {
707 		unsigned long p_addr_end = p_addr + psize - 1;
708 
709 		invlpg(p_addr);
710 
711 		/*
712 		 * Flush next page too if patch image is crossing a page
713 		 * boundary.
714 		 */
715 		if (p_addr >> PAGE_SHIFT != p_addr_end >> PAGE_SHIFT)
716 			invlpg(p_addr_end);
717 	}
718 
719 	if (IS_ENABLED(CONFIG_MICROCODE_DBG) && x86_hypervisor_present)
720 		microcode_rev[smp_processor_id()] = mc->hdr.patch_id;
721 
722 	/* verify patch application was successful */
723 	*cur_rev = get_patch_level();
724 
725 	ucode_dbg("updated rev: 0x%x\n", *cur_rev);
726 
727 	if (*cur_rev != mc->hdr.patch_id)
728 		return false;
729 
730 	return true;
731 }
732 
733 static bool get_builtin_microcode(struct cpio_data *cp)
734 {
735 	char fw_name[36] = "amd-ucode/microcode_amd.bin";
736 	u8 family = x86_family(bsp_cpuid_1_eax);
737 	struct firmware fw;
738 
739 	if (IS_ENABLED(CONFIG_X86_32))
740 		return false;
741 
742 	if (family >= 0x15)
743 		snprintf(fw_name, sizeof(fw_name),
744 			 "amd-ucode/microcode_amd_fam%02hhxh.bin", family);
745 
746 	if (firmware_request_builtin(&fw, fw_name)) {
747 		cp->size = fw.size;
748 		cp->data = (void *)fw.data;
749 		return true;
750 	}
751 
752 	return false;
753 }
754 
755 static bool __init find_blobs_in_containers(struct cpio_data *ret)
756 {
757 	struct cpio_data cp;
758 	bool found;
759 
760 	if (!get_builtin_microcode(&cp))
761 		cp = find_microcode_in_initrd(ucode_path);
762 
763 	found = cp.data && cp.size;
764 	if (found)
765 		*ret = cp;
766 
767 	return found;
768 }
769 
770 /*
771  * Early load occurs before we can vmalloc(). So we look for the microcode
772  * patch container file in initrd, traverse equivalent cpu table, look for a
773  * matching microcode patch, and update, all in initrd memory in place.
774  * When vmalloc() is available for use later -- on 64-bit during first AP load,
775  * and on 32-bit during save_microcode_in_initrd() -- we can call
776  * load_microcode_amd() to save equivalent cpu table and microcode patches in
777  * kernel heap memory.
778  */
779 void __init load_ucode_amd_bsp(struct early_load_data *ed, unsigned int cpuid_1_eax)
780 {
781 	struct cont_desc desc = { };
782 	struct microcode_amd *mc;
783 	struct cpio_data cp = { };
784 	char buf[4];
785 	u32 rev;
786 
787 	if (cmdline_find_option(boot_command_line, "microcode.amd_sha_check", buf, 4)) {
788 		if (!strncmp(buf, "off", 3)) {
789 			sha_check = false;
790 			pr_warn_once("It is a very very bad idea to disable the blobs SHA check!\n");
791 			add_taint(TAINT_CPU_OUT_OF_SPEC, LOCKDEP_STILL_OK);
792 		}
793 	}
794 
795 	bsp_cpuid_1_eax = cpuid_1_eax;
796 
797 	rev = get_patch_level();
798 	ed->old_rev = rev;
799 
800 	/* Needed in load_microcode_amd() */
801 	ucode_cpu_info[0].cpu_sig.sig = cpuid_1_eax;
802 
803 	if (!find_blobs_in_containers(&cp))
804 		return;
805 
806 	scan_containers(cp.data, cp.size, &desc);
807 
808 	mc = desc.mc;
809 	if (!mc)
810 		return;
811 
812 	/*
813 	 * Allow application of the same revision to pick up SMT-specific
814 	 * changes even if the revision of the other SMT thread is already
815 	 * up-to-date.
816 	 */
817 	if (ed->old_rev > mc->hdr.patch_id)
818 		return;
819 
820 	if (__apply_microcode_amd(mc, &rev, desc.psize))
821 		ed->new_rev = rev;
822 }
823 
824 static inline bool patch_cpus_equivalent(struct ucode_patch *p,
825 					 struct ucode_patch *n,
826 					 bool ignore_stepping)
827 {
828 	/* Zen and newer hardcode the f/m/s in the patch ID */
829         if (x86_family(bsp_cpuid_1_eax) >= 0x17) {
830 		union cpuid_1_eax p_cid = ucode_rev_to_cpuid(p->patch_id);
831 		union cpuid_1_eax n_cid = ucode_rev_to_cpuid(n->patch_id);
832 
833 		if (ignore_stepping) {
834 			p_cid.stepping = 0;
835 			n_cid.stepping = 0;
836 		}
837 
838 		return p_cid.full == n_cid.full;
839 	} else {
840 		return p->equiv_cpu == n->equiv_cpu;
841 	}
842 }
843 
844 /*
845  * a small, trivial cache of per-family ucode patches
846  */
847 static struct ucode_patch *cache_find_patch(struct ucode_cpu_info *uci, u16 equiv_cpu)
848 {
849 	struct ucode_patch *p;
850 	struct ucode_patch n;
851 
852 	n.equiv_cpu = equiv_cpu;
853 	n.patch_id  = uci->cpu_sig.rev;
854 
855 	list_for_each_entry(p, &microcode_cache, plist)
856 		if (patch_cpus_equivalent(p, &n, false))
857 			return p;
858 
859 	return NULL;
860 }
861 
862 static inline int patch_newer(struct ucode_patch *p, struct ucode_patch *n)
863 {
864 	/* Zen and newer hardcode the f/m/s in the patch ID */
865         if (x86_family(bsp_cpuid_1_eax) >= 0x17) {
866 		union zen_patch_rev zp, zn;
867 
868 		zp.ucode_rev = p->patch_id;
869 		zn.ucode_rev = n->patch_id;
870 
871 		if (zn.stepping != zp.stepping)
872 			return -1;
873 
874 		return zn.rev > zp.rev;
875 	} else {
876 		return n->patch_id > p->patch_id;
877 	}
878 }
879 
880 static void update_cache(struct ucode_patch *new_patch)
881 {
882 	struct ucode_patch *p;
883 	int ret;
884 
885 	list_for_each_entry(p, &microcode_cache, plist) {
886 		if (patch_cpus_equivalent(p, new_patch, true)) {
887 			ret = patch_newer(p, new_patch);
888 			if (ret < 0)
889 				continue;
890 			else if (!ret) {
891 				/* we already have the latest patch */
892 				kfree(new_patch->data);
893 				kfree(new_patch);
894 				return;
895 			}
896 
897 			list_replace(&p->plist, &new_patch->plist);
898 			kfree(p->data);
899 			kfree(p);
900 			return;
901 		}
902 	}
903 	/* no patch found, add it */
904 	list_add_tail(&new_patch->plist, &microcode_cache);
905 }
906 
907 static void free_cache(void)
908 {
909 	struct ucode_patch *p, *tmp;
910 
911 	list_for_each_entry_safe(p, tmp, &microcode_cache, plist) {
912 		__list_del(p->plist.prev, p->plist.next);
913 		kfree(p->data);
914 		kfree(p);
915 	}
916 }
917 
918 static struct ucode_patch *find_patch(unsigned int cpu)
919 {
920 	struct ucode_cpu_info *uci = ucode_cpu_info + cpu;
921 	u16 equiv_id = 0;
922 
923 	uci->cpu_sig.rev = get_patch_level();
924 
925 	if (x86_family(bsp_cpuid_1_eax) < 0x17) {
926 		equiv_id = find_equiv_id(&equiv_table, uci->cpu_sig.sig);
927 		if (!equiv_id)
928 			return NULL;
929 	}
930 
931 	return cache_find_patch(uci, equiv_id);
932 }
933 
934 void reload_ucode_amd(unsigned int cpu)
935 {
936 	u32 rev, dummy __always_unused;
937 	struct microcode_amd *mc;
938 	struct ucode_patch *p;
939 
940 	p = find_patch(cpu);
941 	if (!p)
942 		return;
943 
944 	mc = p->data;
945 
946 	rev = get_patch_level();
947 	if (rev < mc->hdr.patch_id) {
948 		if (__apply_microcode_amd(mc, &rev, p->size))
949 			pr_info_once("reload revision: 0x%08x\n", rev);
950 	}
951 }
952 
953 static int collect_cpu_info_amd(int cpu, struct cpu_signature *csig)
954 {
955 	struct ucode_cpu_info *uci = ucode_cpu_info + cpu;
956 	struct ucode_patch *p;
957 
958 	csig->sig = cpuid_eax(0x00000001);
959 	csig->rev = get_patch_level();
960 
961 	/*
962 	 * a patch could have been loaded early, set uci->mc so that
963 	 * mc_bp_resume() can call apply_microcode()
964 	 */
965 	p = find_patch(cpu);
966 	if (p && (p->patch_id == csig->rev))
967 		uci->mc = p->data;
968 
969 	return 0;
970 }
971 
972 static enum ucode_state apply_microcode_amd(int cpu)
973 {
974 	struct cpuinfo_x86 *c = &cpu_data(cpu);
975 	struct microcode_amd *mc_amd;
976 	struct ucode_cpu_info *uci;
977 	struct ucode_patch *p;
978 	enum ucode_state ret;
979 	u32 rev;
980 
981 	BUG_ON(raw_smp_processor_id() != cpu);
982 
983 	uci = ucode_cpu_info + cpu;
984 
985 	p = find_patch(cpu);
986 	if (!p)
987 		return UCODE_NFOUND;
988 
989 	rev = uci->cpu_sig.rev;
990 
991 	mc_amd  = p->data;
992 	uci->mc = p->data;
993 
994 	/* need to apply patch? */
995 	if (rev > mc_amd->hdr.patch_id) {
996 		ret = UCODE_OK;
997 		goto out;
998 	}
999 
1000 	if (!__apply_microcode_amd(mc_amd, &rev, p->size)) {
1001 		pr_err("CPU%d: update failed for patch_level=0x%08x\n",
1002 			cpu, mc_amd->hdr.patch_id);
1003 		return UCODE_ERROR;
1004 	}
1005 
1006 	rev = mc_amd->hdr.patch_id;
1007 	ret = UCODE_UPDATED;
1008 
1009 out:
1010 	uci->cpu_sig.rev = rev;
1011 	c->microcode	 = rev;
1012 
1013 	/* Update boot_cpu_data's revision too, if we're on the BSP: */
1014 	if (c->cpu_index == boot_cpu_data.cpu_index)
1015 		boot_cpu_data.microcode = rev;
1016 
1017 	return ret;
1018 }
1019 
1020 void load_ucode_amd_ap(unsigned int cpuid_1_eax)
1021 {
1022 	unsigned int cpu = smp_processor_id();
1023 
1024 	ucode_cpu_info[cpu].cpu_sig.sig = cpuid_1_eax;
1025 	apply_microcode_amd(cpu);
1026 }
1027 
1028 static size_t install_equiv_cpu_table(const u8 *buf, size_t buf_size)
1029 {
1030 	u32 equiv_tbl_len;
1031 	const u32 *hdr;
1032 
1033 	if (!verify_equivalence_table(buf, buf_size))
1034 		return 0;
1035 
1036 	hdr = (const u32 *)buf;
1037 	equiv_tbl_len = hdr[2];
1038 
1039 	/* Zen and newer do not need an equivalence table. */
1040 	if (x86_family(bsp_cpuid_1_eax) >= 0x17)
1041 		goto out;
1042 
1043 	equiv_table.entry = vmalloc(equiv_tbl_len);
1044 	if (!equiv_table.entry) {
1045 		pr_err("failed to allocate equivalent CPU table\n");
1046 		return 0;
1047 	}
1048 
1049 	memcpy(equiv_table.entry, buf + CONTAINER_HDR_SZ, equiv_tbl_len);
1050 	equiv_table.num_entries = equiv_tbl_len / sizeof(struct equiv_cpu_entry);
1051 
1052 out:
1053 	/* add header length */
1054 	return equiv_tbl_len + CONTAINER_HDR_SZ;
1055 }
1056 
1057 static void free_equiv_cpu_table(void)
1058 {
1059 	if (x86_family(bsp_cpuid_1_eax) >= 0x17)
1060 		return;
1061 
1062 	vfree(equiv_table.entry);
1063 	memset(&equiv_table, 0, sizeof(equiv_table));
1064 }
1065 
1066 static void cleanup(void)
1067 {
1068 	free_equiv_cpu_table();
1069 	free_cache();
1070 }
1071 
1072 /*
1073  * Return a non-negative value even if some of the checks failed so that
1074  * we can skip over the next patch. If we return a negative value, we
1075  * signal a grave error like a memory allocation has failed and the
1076  * driver cannot continue functioning normally. In such cases, we tear
1077  * down everything we've used up so far and exit.
1078  */
1079 static int verify_and_add_patch(u8 family, u8 *fw, unsigned int leftover,
1080 				unsigned int *patch_size)
1081 {
1082 	struct microcode_header_amd *mc_hdr;
1083 	struct ucode_patch *patch;
1084 	u16 proc_id;
1085 	int ret;
1086 
1087 	ret = verify_patch(fw, leftover, patch_size);
1088 	if (ret)
1089 		return ret;
1090 
1091 	patch = kzalloc_obj(*patch);
1092 	if (!patch) {
1093 		pr_err("Patch allocation failure.\n");
1094 		return -EINVAL;
1095 	}
1096 
1097 	patch->data = kmemdup(fw + SECTION_HDR_SIZE, *patch_size, GFP_KERNEL);
1098 	if (!patch->data) {
1099 		pr_err("Patch data allocation failure.\n");
1100 		kfree(patch);
1101 		return -EINVAL;
1102 	}
1103 	patch->size = *patch_size;
1104 
1105 	mc_hdr      = (struct microcode_header_amd *)(fw + SECTION_HDR_SIZE);
1106 	proc_id     = mc_hdr->processor_rev_id;
1107 
1108 	INIT_LIST_HEAD(&patch->plist);
1109 	patch->patch_id  = mc_hdr->patch_id;
1110 	patch->equiv_cpu = proc_id;
1111 
1112 	ucode_dbg("%s: Adding patch_id: 0x%08x, proc_id: 0x%04x\n",
1113 		 __func__, patch->patch_id, proc_id);
1114 
1115 	/* ... and add to cache. */
1116 	update_cache(patch);
1117 
1118 	return 0;
1119 }
1120 
1121 /* Scan the blob in @data and add microcode patches to the cache. */
1122 static enum ucode_state __load_microcode_amd(u8 family, const u8 *data, size_t size)
1123 {
1124 	u8 *fw = (u8 *)data;
1125 	size_t offset;
1126 
1127 	offset = install_equiv_cpu_table(data, size);
1128 	if (!offset)
1129 		return UCODE_ERROR;
1130 
1131 	fw   += offset;
1132 	size -= offset;
1133 
1134 	if (*(u32 *)fw != UCODE_UCODE_TYPE) {
1135 		pr_err("invalid type field in container file section header\n");
1136 		free_equiv_cpu_table();
1137 		return UCODE_ERROR;
1138 	}
1139 
1140 	while (size > 0) {
1141 		unsigned int crnt_size = 0;
1142 		int ret;
1143 
1144 		ret = verify_and_add_patch(family, fw, size, &crnt_size);
1145 		if (ret < 0)
1146 			return UCODE_ERROR;
1147 
1148 		fw   +=  crnt_size + SECTION_HDR_SIZE;
1149 		size -= (crnt_size + SECTION_HDR_SIZE);
1150 	}
1151 
1152 	return UCODE_OK;
1153 }
1154 
1155 static enum ucode_state _load_microcode_amd(u8 family, const u8 *data, size_t size)
1156 {
1157 	enum ucode_state ret;
1158 
1159 	/* free old equiv table */
1160 	free_equiv_cpu_table();
1161 
1162 	ret = __load_microcode_amd(family, data, size);
1163 	if (ret != UCODE_OK)
1164 		cleanup();
1165 
1166 	return ret;
1167 }
1168 
1169 static enum ucode_state load_microcode_amd(u8 family, const u8 *data, size_t size)
1170 {
1171 	struct cpuinfo_x86 *c;
1172 	unsigned int nid, cpu;
1173 	struct ucode_patch *p;
1174 	enum ucode_state ret;
1175 
1176 	ret = _load_microcode_amd(family, data, size);
1177 	if (ret != UCODE_OK)
1178 		return ret;
1179 
1180 	for_each_node_with_cpus(nid) {
1181 		cpu = cpumask_first(cpumask_of_node(nid));
1182 		c = &cpu_data(cpu);
1183 
1184 		p = find_patch(cpu);
1185 		if (!p)
1186 			continue;
1187 
1188 		if (c->microcode >= p->patch_id)
1189 			continue;
1190 
1191 		ret = UCODE_NEW;
1192 	}
1193 
1194 	return ret;
1195 }
1196 
1197 static int __init save_microcode_in_initrd(void)
1198 {
1199 	struct cpuinfo_x86 *c = &boot_cpu_data;
1200 	struct cont_desc desc = { 0 };
1201 	unsigned int cpuid_1_eax;
1202 	enum ucode_state ret;
1203 	struct cpio_data cp;
1204 
1205 	if (microcode_loader_disabled() || c->x86_vendor != X86_VENDOR_AMD || c->x86 < 0x10)
1206 		return 0;
1207 
1208 	cpuid_1_eax = native_cpuid_eax(1);
1209 
1210 	if (!find_blobs_in_containers(&cp))
1211 		return -EINVAL;
1212 
1213 	scan_containers(cp.data, cp.size, &desc);
1214 	if (!desc.mc)
1215 		return -EINVAL;
1216 
1217 	ret = _load_microcode_amd(x86_family(cpuid_1_eax), desc.data, desc.size);
1218 	if (ret > UCODE_UPDATED)
1219 		return -EINVAL;
1220 
1221 	return 0;
1222 }
1223 early_initcall(save_microcode_in_initrd);
1224 
1225 /*
1226  * AMD microcode firmware naming convention, up to family 15h they are in
1227  * the legacy file:
1228  *
1229  *    amd-ucode/microcode_amd.bin
1230  *
1231  * This legacy file is always smaller than 2K in size.
1232  *
1233  * Beginning with family 15h, they are in family-specific firmware files:
1234  *
1235  *    amd-ucode/microcode_amd_fam15h.bin
1236  *    amd-ucode/microcode_amd_fam16h.bin
1237  *    ...
1238  *
1239  * These might be larger than 2K.
1240  */
1241 static enum ucode_state request_microcode_amd(int cpu, struct device *device)
1242 {
1243 	char fw_name[36] = "amd-ucode/microcode_amd.bin";
1244 	struct cpuinfo_x86 *c = &cpu_data(cpu);
1245 	enum ucode_state ret = UCODE_NFOUND;
1246 	const struct firmware *fw;
1247 
1248 	if (force_minrev)
1249 		return UCODE_NFOUND;
1250 
1251 	if (c->x86 >= 0x15)
1252 		snprintf(fw_name, sizeof(fw_name), "amd-ucode/microcode_amd_fam%.2xh.bin", c->x86);
1253 
1254 	if (request_firmware_direct(&fw, (const char *)fw_name, device)) {
1255 		ucode_dbg("failed to load file %s\n", fw_name);
1256 		goto out;
1257 	}
1258 
1259 	ret = UCODE_ERROR;
1260 	if (!verify_container(fw->data, fw->size))
1261 		goto fw_release;
1262 
1263 	ret = load_microcode_amd(c->x86, fw->data, fw->size);
1264 
1265  fw_release:
1266 	release_firmware(fw);
1267 
1268  out:
1269 	return ret;
1270 }
1271 
1272 static void microcode_fini_cpu_amd(int cpu)
1273 {
1274 	struct ucode_cpu_info *uci = ucode_cpu_info + cpu;
1275 
1276 	uci->mc = NULL;
1277 }
1278 
1279 static void finalize_late_load_amd(int result)
1280 {
1281 	if (result)
1282 		cleanup();
1283 }
1284 
1285 static struct microcode_ops microcode_amd_ops = {
1286 	.request_microcode_fw	= request_microcode_amd,
1287 	.collect_cpu_info	= collect_cpu_info_amd,
1288 	.apply_microcode	= apply_microcode_amd,
1289 	.microcode_fini_cpu	= microcode_fini_cpu_amd,
1290 	.finalize_late_load	= finalize_late_load_amd,
1291 	.nmi_safe		= true,
1292 };
1293 
1294 struct microcode_ops * __init init_amd_microcode(void)
1295 {
1296 	struct cpuinfo_x86 *c = &boot_cpu_data;
1297 
1298 	if (c->x86_vendor != X86_VENDOR_AMD || c->x86 < 0x10) {
1299 		pr_warn("AMD CPU family 0x%x not supported\n", c->x86);
1300 		return NULL;
1301 	}
1302 	return &microcode_amd_ops;
1303 }
1304 
1305 void __exit exit_amd_microcode(void)
1306 {
1307 	cleanup();
1308 }
1309