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Tom Rini10e47792018-05-06 17:58:06 -04001// SPDX-License-Identifier: GPL-2.0+
Dirk Eibach762d3df2013-06-26 15:55:17 +02002/*
3 * (C) Copyright 2013
4 * Reinhard Pfau, Guntermann & Drunck GmbH, reinhard.pfau@gdsys.cc
Dirk Eibach762d3df2013-06-26 15:55:17 +02005 */
6
7/* TODO: some more #ifdef's to avoid unneeded code for stage 1 / stage 2 */
8
9#ifdef CCDM_ID_DEBUG
10#define DEBUG
11#endif
12
13#include <common.h>
Simon Glass8ceca1d2018-11-18 14:22:27 -070014#include <dm.h>
Simon Glass6eaea252019-08-01 09:46:48 -060015#include <env.h>
Dirk Eibach762d3df2013-06-26 15:55:17 +020016#include <malloc.h>
17#include <fs.h>
18#include <i2c.h>
19#include <mmc.h>
Miquel Raynal4c6759e2018-05-15 11:57:06 +020020#include <tpm-v1.h>
Jeroen Hofsteebfe88fe2014-06-12 22:27:12 +020021#include <u-boot/sha1.h>
Dirk Eibach762d3df2013-06-26 15:55:17 +020022#include <asm/byteorder.h>
23#include <asm/unaligned.h>
24#include <pca9698.h>
25
26#undef CCDM_FIRST_STAGE
27#undef CCDM_SECOND_STAGE
28#undef CCDM_AUTO_FIRST_STAGE
29
30#ifdef CONFIG_DEVELOP
31#define CCDM_DEVELOP
32#endif
33
34#ifdef CONFIG_TRAILBLAZER
35#define CCDM_FIRST_STAGE
36#undef CCDM_SECOND_STAGE
37#else
38#undef CCDM_FIRST_STAGE
39#define CCDM_SECOND_STAGE
40#endif
41
42#if defined(CCDM_DEVELOP) && defined(CCDM_SECOND_STAGE) && \
43 !defined(CCCM_FIRST_STAGE)
44#define CCDM_AUTO_FIRST_STAGE
45#endif
46
Dirk Eibach762d3df2013-06-26 15:55:17 +020047/* CCDM specific contants */
48enum {
49 /* NV indices */
50 NV_COMMON_DATA_INDEX = 0x40000001,
51 /* magics for key blob chains */
52 MAGIC_KEY_PROGRAM = 0x68726500,
53 MAGIC_HMAC = 0x68616300,
54 MAGIC_END_OF_CHAIN = 0x00000000,
55 /* sizes */
56 NV_COMMON_DATA_MIN_SIZE = 3 * sizeof(uint64_t) + 2 * sizeof(uint16_t),
57};
58
59/* other constants */
60enum {
61 ESDHC_BOOT_IMAGE_SIG_OFS = 0x40,
62 ESDHC_BOOT_IMAGE_SIZE_OFS = 0x48,
63 ESDHC_BOOT_IMAGE_ADDR_OFS = 0x50,
64 ESDHC_BOOT_IMAGE_TARGET_OFS = 0x58,
65 ESDHC_BOOT_IMAGE_ENTRY_OFS = 0x60,
66};
67
Dirk Eibache674bf12014-07-03 09:28:16 +020068enum {
69 I2C_SOC_0 = 0,
70 I2C_SOC_1 = 1,
71};
72
Dirk Eibach762d3df2013-06-26 15:55:17 +020073struct key_program {
74 uint32_t magic;
75 uint32_t code_crc;
76 uint32_t code_size;
77 uint8_t code[];
78};
79
80struct h_reg {
81 bool valid;
82 uint8_t digest[20];
83};
84
85
86enum access_mode {
87 HREG_NONE = 0,
88 HREG_RD = 1,
89 HREG_WR = 2,
90 HREG_RDWR = 3,
91};
92
93/* register constants */
94enum {
95 FIX_HREG_DEVICE_ID_HASH = 0,
96 FIX_HREG_SELF_HASH = 1,
97 FIX_HREG_STAGE2_HASH = 2,
98 FIX_HREG_VENDOR = 3,
99 COUNT_FIX_HREGS
100};
101
102
103/* hre opcodes */
104enum {
105 /* opcodes w/o data */
106 HRE_NOP = 0x00,
107 HRE_SYNC = HRE_NOP,
108 HRE_CHECK0 = 0x01,
109 /* opcodes w/o data, w/ sync dst */
110 /* opcodes w/ data */
111 HRE_LOAD = 0x81,
112 /* opcodes w/data, w/sync dst */
113 HRE_XOR = 0xC1,
114 HRE_AND = 0xC2,
115 HRE_OR = 0xC3,
116 HRE_EXTEND = 0xC4,
117 HRE_LOADKEY = 0xC5,
118};
119
120/* hre errors */
121enum {
122 HRE_E_OK = 0,
123 HRE_E_TPM_FAILURE,
124 HRE_E_INVALID_HREG,
125};
126
127static uint64_t device_id;
128static uint64_t device_cl;
129static uint64_t device_type;
130
131static uint32_t platform_key_handle;
132
133static void(*bl2_entry)(void);
134
135static struct h_reg pcr_hregs[24];
136static struct h_reg fix_hregs[COUNT_FIX_HREGS];
137static struct h_reg var_hregs[8];
138static uint32_t hre_tpm_err;
139static int hre_err = HRE_E_OK;
140
141#define IS_PCR_HREG(spec) ((spec) & 0x20)
142#define IS_FIX_HREG(spec) (((spec) & 0x38) == 0x08)
143#define IS_VAR_HREG(spec) (((spec) & 0x38) == 0x10)
144#define HREG_IDX(spec) ((spec) & (IS_PCR_HREG(spec) ? 0x1f : 0x7))
145
Simon Glass8ceca1d2018-11-18 14:22:27 -0700146static int get_tpm(struct udevice **devp)
147{
148 int rc;
149
150 rc = uclass_first_device_err(UCLASS_TPM, devp);
151 if (rc) {
152 printf("Could not find TPM (ret=%d)\n", rc);
153 return CMD_RET_FAILURE;
154 }
155
156 return 0;
157}
158
Dirk Eibach762d3df2013-06-26 15:55:17 +0200159static const uint8_t vendor[] = "Guntermann & Drunck";
160
Dirk Eibach762d3df2013-06-26 15:55:17 +0200161/**
162 * @brief read a bunch of data from MMC into memory.
163 *
164 * @param mmc pointer to the mmc structure to use.
165 * @param src offset where the data starts on MMC/SD device (in bytes).
166 * @param dst pointer to the location where the read data should be stored.
167 * @param size number of bytes to read from the MMC/SD device.
168 * @return number of bytes read or -1 on error.
169 */
170static int ccdm_mmc_read(struct mmc *mmc, u64 src, u8 *dst, int size)
171{
172 int result = 0;
173 u32 blk_len, ofs;
174 ulong block_no, n, cnt;
175 u8 *tmp_buf = NULL;
176
177 if (size <= 0)
178 goto end;
179
180 blk_len = mmc->read_bl_len;
181 tmp_buf = malloc(blk_len);
182 if (!tmp_buf)
183 goto failure;
184 block_no = src / blk_len;
185 ofs = src % blk_len;
186
187 if (ofs) {
Stephen Warrene73f2962015-12-07 11:38:48 -0700188 n = mmc->block_dev.block_read(&mmc->block_dev, block_no++, 1,
Dirk Eibach762d3df2013-06-26 15:55:17 +0200189 tmp_buf);
190 if (!n)
191 goto failure;
Masahiro Yamadadb204642014-11-07 03:03:31 +0900192 result = min(size, (int)(blk_len - ofs));
Dirk Eibach762d3df2013-06-26 15:55:17 +0200193 memcpy(dst, tmp_buf + ofs, result);
194 dst += result;
195 size -= result;
196 }
197 cnt = size / blk_len;
198 if (cnt) {
Stephen Warrene73f2962015-12-07 11:38:48 -0700199 n = mmc->block_dev.block_read(&mmc->block_dev, block_no, cnt,
Dirk Eibach762d3df2013-06-26 15:55:17 +0200200 dst);
201 if (n != cnt)
202 goto failure;
203 size -= cnt * blk_len;
204 result += cnt * blk_len;
205 dst += cnt * blk_len;
206 block_no += cnt;
207 }
208 if (size) {
Stephen Warrene73f2962015-12-07 11:38:48 -0700209 n = mmc->block_dev.block_read(&mmc->block_dev, block_no++, 1,
Dirk Eibach762d3df2013-06-26 15:55:17 +0200210 tmp_buf);
211 if (!n)
212 goto failure;
213 memcpy(dst, tmp_buf, size);
214 result += size;
215 }
216 goto end;
217failure:
218 result = -1;
219end:
220 if (tmp_buf)
221 free(tmp_buf);
222 return result;
223}
224
225/**
226 * @brief returns a location where the 2nd stage bootloader can be(/ is) placed.
227 *
228 * @return pointer to the location for/of the 2nd stage bootloader
229 */
230static u8 *get_2nd_stage_bl_location(ulong target_addr)
231{
232 ulong addr;
233#ifdef CCDM_SECOND_STAGE
Simon Glass22c34c22017-08-03 12:22:13 -0600234 addr = env_get_ulong("loadaddr", 16, CONFIG_LOADADDR);
Dirk Eibach762d3df2013-06-26 15:55:17 +0200235#else
236 addr = target_addr;
237#endif
238 return (u8 *)(addr);
239}
240
241
242#ifdef CCDM_SECOND_STAGE
243/**
244 * @brief returns a location where the image can be(/ is) placed.
245 *
246 * @return pointer to the location for/of the image
247 */
248static u8 *get_image_location(void)
249{
250 ulong addr;
251 /* TODO use other area? */
Simon Glass22c34c22017-08-03 12:22:13 -0600252 addr = env_get_ulong("loadaddr", 16, CONFIG_LOADADDR);
Dirk Eibach762d3df2013-06-26 15:55:17 +0200253 return (u8 *)(addr);
254}
255#endif
256
257/**
258 * @brief get the size of a given (TPM) NV area
259 * @param index NV index of the area to get size for
260 * @param size pointer to the size
261 * @return 0 on success, != 0 on error
262 */
Simon Glass8ceca1d2018-11-18 14:22:27 -0700263static int get_tpm_nv_size(struct udevice *tpm, uint32_t index, uint32_t *size)
Dirk Eibach762d3df2013-06-26 15:55:17 +0200264{
265 uint32_t err;
266 uint8_t info[72];
267 uint8_t *ptr;
268 uint16_t v16;
269
Simon Glass8ceca1d2018-11-18 14:22:27 -0700270 err = tpm_get_capability(tpm, TPM_CAP_NV_INDEX, index,
271 info, sizeof(info));
Dirk Eibach762d3df2013-06-26 15:55:17 +0200272 if (err) {
273 printf("tpm_get_capability(CAP_NV_INDEX, %08x) failed: %u\n",
274 index, err);
275 return 1;
276 }
277
278 /* skip tag and nvIndex */
279 ptr = info + 6;
280 /* skip 2 pcr info fields */
281 v16 = get_unaligned_be16(ptr);
282 ptr += 2 + v16 + 1 + 20;
283 v16 = get_unaligned_be16(ptr);
284 ptr += 2 + v16 + 1 + 20;
285 /* skip permission and flags */
286 ptr += 6 + 3;
287
288 *size = get_unaligned_be32(ptr);
289 return 0;
290}
291
292/**
293 * @brief search for a key by usage auth and pub key hash.
294 * @param auth usage auth of the key to search for
295 * @param pubkey_digest (SHA1) hash of the pub key structure of the key
296 * @param[out] handle the handle of the key iff found
297 * @return 0 if key was found in TPM; != 0 if not.
298 */
Simon Glass8ceca1d2018-11-18 14:22:27 -0700299static int find_key(struct udevice *tpm, const uint8_t auth[20],
300 const uint8_t pubkey_digest[20], uint32_t *handle)
Dirk Eibach762d3df2013-06-26 15:55:17 +0200301{
302 uint16_t key_count;
303 uint32_t key_handles[10];
304 uint8_t buf[288];
305 uint8_t *ptr;
306 uint32_t err;
307 uint8_t digest[20];
308 size_t buf_len;
309 unsigned int i;
310
311 /* fetch list of already loaded keys in the TPM */
Simon Glass8ceca1d2018-11-18 14:22:27 -0700312 err = tpm_get_capability(tpm, TPM_CAP_HANDLE, TPM_RT_KEY, buf,
313 sizeof(buf));
Dirk Eibach762d3df2013-06-26 15:55:17 +0200314 if (err)
315 return -1;
316 key_count = get_unaligned_be16(buf);
317 ptr = buf + 2;
318 for (i = 0; i < key_count; ++i, ptr += 4)
319 key_handles[i] = get_unaligned_be32(ptr);
320
321 /* now search a(/ the) key which we can access with the given auth */
322 for (i = 0; i < key_count; ++i) {
323 buf_len = sizeof(buf);
Simon Glass8ceca1d2018-11-18 14:22:27 -0700324 err = tpm_get_pub_key_oiap(tpm, key_handles[i], auth, buf,
325 &buf_len);
Dirk Eibach762d3df2013-06-26 15:55:17 +0200326 if (err && err != TPM_AUTHFAIL)
327 return -1;
328 if (err)
329 continue;
330 sha1_csum(buf, buf_len, digest);
331 if (!memcmp(digest, pubkey_digest, 20)) {
332 *handle = key_handles[i];
333 return 0;
334 }
335 }
336 return 1;
337}
338
339/**
340 * @brief read CCDM common data from TPM NV
341 * @return 0 if CCDM common data was found and read, !=0 if something failed.
342 */
Simon Glass8ceca1d2018-11-18 14:22:27 -0700343static int read_common_data(struct udevice *tpm)
Dirk Eibach762d3df2013-06-26 15:55:17 +0200344{
345 uint32_t size;
346 uint32_t err;
347 uint8_t buf[256];
348 sha1_context ctx;
349
Simon Glass8ceca1d2018-11-18 14:22:27 -0700350 if (get_tpm_nv_size(tpm, NV_COMMON_DATA_INDEX, &size) ||
Dirk Eibach762d3df2013-06-26 15:55:17 +0200351 size < NV_COMMON_DATA_MIN_SIZE)
352 return 1;
Simon Glass8ceca1d2018-11-18 14:22:27 -0700353 err = tpm_nv_read_value(tpm, NV_COMMON_DATA_INDEX,
354 buf, min(sizeof(buf), size));
Dirk Eibach762d3df2013-06-26 15:55:17 +0200355 if (err) {
356 printf("tpm_nv_read_value() failed: %u\n", err);
357 return 1;
358 }
359
360 device_id = get_unaligned_be64(buf);
361 device_cl = get_unaligned_be64(buf + 8);
362 device_type = get_unaligned_be64(buf + 16);
363
364 sha1_starts(&ctx);
365 sha1_update(&ctx, buf, 24);
366 sha1_finish(&ctx, fix_hregs[FIX_HREG_DEVICE_ID_HASH].digest);
367 fix_hregs[FIX_HREG_DEVICE_ID_HASH].valid = true;
368
369 platform_key_handle = get_unaligned_be32(buf + 24);
370
371 return 0;
372}
373
374/**
375 * @brief compute hash of bootloader itself.
376 * @param[out] dst hash register where the hash should be stored
377 * @return 0 on success, != 0 on failure.
378 *
379 * @note MUST be called at a time where the boot loader is accessible at the
380 * configured location (; so take care when code is reallocated).
381 */
382static int compute_self_hash(struct h_reg *dst)
383{
384 sha1_csum((const uint8_t *)CONFIG_SYS_MONITOR_BASE,
385 CONFIG_SYS_MONITOR_LEN, dst->digest);
386 dst->valid = true;
387 return 0;
388}
389
390int ccdm_compute_self_hash(void)
391{
392 if (!fix_hregs[FIX_HREG_SELF_HASH].valid)
393 compute_self_hash(&fix_hregs[FIX_HREG_SELF_HASH]);
394 return 0;
395}
396
397/**
398 * @brief compute the hash of the 2nd stage boot loader (on SD card)
399 * @param[out] dst hash register to store the computed hash
400 * @return 0 on success, != 0 on failure
401 *
402 * Determines the size and location of the 2nd stage boot loader on SD card,
403 * loads the 2nd stage boot loader and computes the (SHA1) hash value.
404 * Within the 1st stage boot loader, the 2nd stage boot loader is loaded at
405 * the desired memory location and the variable @a bl2_entry is set.
406 *
407 * @note This sets the variable @a bl2_entry to the entry point when the
408 * 2nd stage boot loader is loaded at its configured memory location.
409 */
410static int compute_second_stage_hash(struct h_reg *dst)
411{
412 int result = 0;
413 u32 code_len, code_offset, target_addr, exec_entry;
414 struct mmc *mmc;
415 u8 *load_addr = NULL;
416 u8 buf[128];
417
418 mmc = find_mmc_device(0);
419 if (!mmc)
420 goto failure;
421 mmc_init(mmc);
422
423 if (ccdm_mmc_read(mmc, 0, buf, sizeof(buf)) < 0)
424 goto failure;
425
426 code_offset = *(u32 *)(buf + ESDHC_BOOT_IMAGE_ADDR_OFS);
427 code_len = *(u32 *)(buf + ESDHC_BOOT_IMAGE_SIZE_OFS);
428 target_addr = *(u32 *)(buf + ESDHC_BOOT_IMAGE_TARGET_OFS);
429 exec_entry = *(u32 *)(buf + ESDHC_BOOT_IMAGE_ENTRY_OFS);
430
431 load_addr = get_2nd_stage_bl_location(target_addr);
432 if (load_addr == (u8 *)target_addr)
433 bl2_entry = (void(*)(void))exec_entry;
434
435 if (ccdm_mmc_read(mmc, code_offset, load_addr, code_len) < 0)
436 goto failure;
437
438 sha1_csum(load_addr, code_len, dst->digest);
439 dst->valid = true;
440
441 goto end;
442failure:
443 result = 1;
444 bl2_entry = NULL;
445end:
446 return result;
447}
448
449/**
450 * @brief get pointer to hash register by specification
451 * @param spec specification of a hash register
452 * @return pointer to hash register or NULL if @a spec does not qualify a
453 * valid hash register; NULL else.
454 */
455static struct h_reg *get_hreg(uint8_t spec)
456{
457 uint8_t idx;
458
459 idx = HREG_IDX(spec);
460 if (IS_FIX_HREG(spec)) {
461 if (idx < ARRAY_SIZE(fix_hregs))
462 return fix_hregs + idx;
463 hre_err = HRE_E_INVALID_HREG;
464 } else if (IS_PCR_HREG(spec)) {
465 if (idx < ARRAY_SIZE(pcr_hregs))
466 return pcr_hregs + idx;
467 hre_err = HRE_E_INVALID_HREG;
468 } else if (IS_VAR_HREG(spec)) {
469 if (idx < ARRAY_SIZE(var_hregs))
470 return var_hregs + idx;
471 hre_err = HRE_E_INVALID_HREG;
472 }
473 return NULL;
474}
475
476/**
477 * @brief get pointer of a hash register by specification and usage.
478 * @param spec specification of a hash register
479 * @param mode access mode (read or write or read/write)
480 * @return pointer to hash register if found and valid; NULL else.
481 *
482 * This func uses @a get_reg() to determine the hash register for a given spec.
483 * If a register is found it is validated according to the desired access mode.
484 * The value of automatic registers (PCR register and fixed registers) is
485 * loaded or computed on read access.
486 */
Simon Glass8ceca1d2018-11-18 14:22:27 -0700487static struct h_reg *access_hreg(struct udevice *tpm, uint8_t spec,
488 enum access_mode mode)
Dirk Eibach762d3df2013-06-26 15:55:17 +0200489{
490 struct h_reg *result;
491
492 result = get_hreg(spec);
493 if (!result)
494 return NULL;
495
496 if (mode & HREG_WR) {
497 if (IS_FIX_HREG(spec)) {
498 hre_err = HRE_E_INVALID_HREG;
499 return NULL;
500 }
501 }
502 if (mode & HREG_RD) {
503 if (!result->valid) {
504 if (IS_PCR_HREG(spec)) {
Simon Glass8ceca1d2018-11-18 14:22:27 -0700505 hre_tpm_err = tpm_pcr_read(tpm, HREG_IDX(spec),
Dirk Eibach762d3df2013-06-26 15:55:17 +0200506 result->digest, 20);
507 result->valid = (hre_tpm_err == TPM_SUCCESS);
508 } else if (IS_FIX_HREG(spec)) {
509 switch (HREG_IDX(spec)) {
510 case FIX_HREG_DEVICE_ID_HASH:
Simon Glass8ceca1d2018-11-18 14:22:27 -0700511 read_common_data(tpm);
Dirk Eibach762d3df2013-06-26 15:55:17 +0200512 break;
513 case FIX_HREG_SELF_HASH:
514 ccdm_compute_self_hash();
515 break;
516 case FIX_HREG_STAGE2_HASH:
517 compute_second_stage_hash(result);
518 break;
519 case FIX_HREG_VENDOR:
520 memcpy(result->digest, vendor, 20);
521 result->valid = true;
522 break;
523 }
524 } else {
525 result->valid = true;
526 }
527 }
528 if (!result->valid) {
529 hre_err = HRE_E_INVALID_HREG;
530 return NULL;
531 }
532 }
533
534 return result;
535}
536
537static void *compute_and(void *_dst, const void *_src, size_t n)
538{
539 uint8_t *dst = _dst;
540 const uint8_t *src = _src;
541 size_t i;
542
543 for (i = n; i-- > 0; )
544 *dst++ &= *src++;
545
546 return _dst;
547}
548
549static void *compute_or(void *_dst, const void *_src, size_t n)
550{
551 uint8_t *dst = _dst;
552 const uint8_t *src = _src;
553 size_t i;
554
555 for (i = n; i-- > 0; )
556 *dst++ |= *src++;
557
558 return _dst;
559}
560
561static void *compute_xor(void *_dst, const void *_src, size_t n)
562{
563 uint8_t *dst = _dst;
564 const uint8_t *src = _src;
565 size_t i;
566
567 for (i = n; i-- > 0; )
568 *dst++ ^= *src++;
569
570 return _dst;
571}
572
573static void *compute_extend(void *_dst, const void *_src, size_t n)
574{
575 uint8_t digest[20];
576 sha1_context ctx;
577
578 sha1_starts(&ctx);
579 sha1_update(&ctx, _dst, n);
580 sha1_update(&ctx, _src, n);
581 sha1_finish(&ctx, digest);
582 memcpy(_dst, digest, min(n, sizeof(digest)));
583
584 return _dst;
585}
586
Simon Glass8ceca1d2018-11-18 14:22:27 -0700587static int hre_op_loadkey(struct udevice *tpm, struct h_reg *src_reg,
588 struct h_reg *dst_reg, const void *key,
589 size_t key_size)
Dirk Eibach762d3df2013-06-26 15:55:17 +0200590{
591 uint32_t parent_handle;
592 uint32_t key_handle;
593
594 if (!src_reg || !dst_reg || !src_reg->valid || !dst_reg->valid)
595 return -1;
Simon Glass8ceca1d2018-11-18 14:22:27 -0700596 if (find_key(tpm, src_reg->digest, dst_reg->digest, &parent_handle))
Dirk Eibach762d3df2013-06-26 15:55:17 +0200597 return -1;
Simon Glass8ceca1d2018-11-18 14:22:27 -0700598 hre_tpm_err = tpm_load_key2_oiap(tpm, parent_handle, key, key_size,
599 src_reg->digest, &key_handle);
Dirk Eibach762d3df2013-06-26 15:55:17 +0200600 if (hre_tpm_err) {
601 hre_err = HRE_E_TPM_FAILURE;
602 return -1;
603 }
604 /* TODO remember key handle somehow? */
605
606 return 0;
607}
608
609/**
610 * @brief executes the next opcode on the hash register engine.
611 * @param[in,out] ip pointer to the opcode (instruction pointer)
612 * @param[in,out] code_size (remaining) size of the code
613 * @return new instruction pointer on success, NULL on error.
614 */
Simon Glass8ceca1d2018-11-18 14:22:27 -0700615static const uint8_t *hre_execute_op(struct udevice *tpm, const uint8_t **ip,
616 size_t *code_size)
Dirk Eibach762d3df2013-06-26 15:55:17 +0200617{
618 bool dst_modified = false;
619 uint32_t ins;
620 uint8_t opcode;
621 uint8_t src_spec;
622 uint8_t dst_spec;
623 uint16_t data_size;
624 struct h_reg *src_reg, *dst_reg;
625 uint8_t buf[20];
626 const uint8_t *src_buf, *data;
627 uint8_t *ptr;
628 int i;
629 void * (*bin_func)(void *, const void *, size_t);
630
631 if (*code_size < 4)
632 return NULL;
633
634 ins = get_unaligned_be32(*ip);
635 opcode = **ip;
636 data = *ip + 4;
637 src_spec = (ins >> 18) & 0x3f;
638 dst_spec = (ins >> 12) & 0x3f;
639 data_size = (ins & 0x7ff);
640
641 debug("HRE: ins=%08x (op=%02x, s=%02x, d=%02x, L=%d)\n", ins,
642 opcode, src_spec, dst_spec, data_size);
643
644 if ((opcode & 0x80) && (data_size + 4) > *code_size)
645 return NULL;
646
Simon Glass8ceca1d2018-11-18 14:22:27 -0700647 src_reg = access_hreg(tpm, src_spec, HREG_RD);
Dirk Eibach762d3df2013-06-26 15:55:17 +0200648 if (hre_err || hre_tpm_err)
649 return NULL;
Simon Glass8ceca1d2018-11-18 14:22:27 -0700650 dst_reg = access_hreg(tpm, dst_spec,
651 (opcode & 0x40) ? HREG_RDWR : HREG_WR);
Dirk Eibach762d3df2013-06-26 15:55:17 +0200652 if (hre_err || hre_tpm_err)
653 return NULL;
654
655 switch (opcode) {
656 case HRE_NOP:
657 goto end;
658 case HRE_CHECK0:
659 if (src_reg) {
660 for (i = 0; i < 20; ++i) {
661 if (src_reg->digest[i])
662 return NULL;
663 }
664 }
665 break;
666 case HRE_LOAD:
667 bin_func = memcpy;
668 goto do_bin_func;
669 case HRE_XOR:
670 bin_func = compute_xor;
671 goto do_bin_func;
672 case HRE_AND:
673 bin_func = compute_and;
674 goto do_bin_func;
675 case HRE_OR:
676 bin_func = compute_or;
677 goto do_bin_func;
678 case HRE_EXTEND:
679 bin_func = compute_extend;
680do_bin_func:
681 if (!dst_reg)
682 return NULL;
683 if (src_reg) {
684 src_buf = src_reg->digest;
685 } else {
686 if (!data_size) {
687 memset(buf, 0, 20);
688 src_buf = buf;
689 } else if (data_size == 1) {
690 memset(buf, *data, 20);
691 src_buf = buf;
692 } else if (data_size >= 20) {
693 src_buf = data;
694 } else {
695 src_buf = buf;
696 for (ptr = (uint8_t *)src_buf, i = 20; i > 0;
697 i -= data_size, ptr += data_size)
Masahiro Yamadadb204642014-11-07 03:03:31 +0900698 memcpy(ptr, data,
699 min_t(size_t, i, data_size));
Dirk Eibach762d3df2013-06-26 15:55:17 +0200700 }
701 }
702 bin_func(dst_reg->digest, src_buf, 20);
703 dst_reg->valid = true;
704 dst_modified = true;
705 break;
706 case HRE_LOADKEY:
Simon Glass8ceca1d2018-11-18 14:22:27 -0700707 if (hre_op_loadkey(tpm, src_reg, dst_reg, data, data_size))
Dirk Eibach762d3df2013-06-26 15:55:17 +0200708 return NULL;
709 break;
710 default:
711 return NULL;
712 }
713
714 if (dst_reg && dst_modified && IS_PCR_HREG(dst_spec)) {
Simon Glass8ceca1d2018-11-18 14:22:27 -0700715 hre_tpm_err = tpm_extend(tpm, HREG_IDX(dst_spec),
716 dst_reg->digest, dst_reg->digest);
Dirk Eibach762d3df2013-06-26 15:55:17 +0200717 if (hre_tpm_err) {
718 hre_err = HRE_E_TPM_FAILURE;
719 return NULL;
720 }
721 }
722end:
723 *ip += 4;
724 *code_size -= 4;
725 if (opcode & 0x80) {
726 *ip += data_size;
727 *code_size -= data_size;
728 }
729
730 return *ip;
731}
732
733/**
734 * @brief runs a program on the hash register engine.
735 * @param code pointer to the (HRE) code.
736 * @param code_size size of the code (in bytes).
737 * @return 0 on success, != 0 on failure.
738 */
Simon Glass8ceca1d2018-11-18 14:22:27 -0700739static int hre_run_program(struct udevice *tpm, const uint8_t *code,
740 size_t code_size)
Dirk Eibach762d3df2013-06-26 15:55:17 +0200741{
742 size_t code_left;
743 const uint8_t *ip = code;
744
745 code_left = code_size;
746 hre_tpm_err = 0;
747 hre_err = HRE_E_OK;
748 while (code_left > 0)
Simon Glass8ceca1d2018-11-18 14:22:27 -0700749 if (!hre_execute_op(tpm, &ip, &code_left))
Dirk Eibach762d3df2013-06-26 15:55:17 +0200750 return -1;
751
752 return hre_err;
753}
754
755static int check_hmac(struct key_program *hmac,
756 const uint8_t *data, size_t data_size)
757{
758 uint8_t key[20], computed_hmac[20];
759 uint32_t type;
760
761 type = get_unaligned_be32(hmac->code);
762 if (type != 0)
763 return 1;
764 memset(key, 0, sizeof(key));
765 compute_extend(key, pcr_hregs[1].digest, 20);
766 compute_extend(key, pcr_hregs[2].digest, 20);
767 compute_extend(key, pcr_hregs[3].digest, 20);
768 compute_extend(key, pcr_hregs[4].digest, 20);
769
770 sha1_hmac(key, sizeof(key), data, data_size, computed_hmac);
771
772 return memcmp(computed_hmac, hmac->code + 4, 20);
773}
774
775static int verify_program(struct key_program *prg)
776{
777 uint32_t crc;
778 crc = crc32(0, prg->code, prg->code_size);
779
780 if (crc != prg->code_crc) {
781 printf("HRC crc mismatch: %08x != %08x\n",
782 crc, prg->code_crc);
783 return 1;
784 }
785 return 0;
786}
787
788#if defined(CCDM_FIRST_STAGE) || (defined CCDM_AUTO_FIRST_STAGE)
789static struct key_program *load_sd_key_program(void)
790{
791 u32 code_len, code_offset;
792 struct mmc *mmc;
793 u8 buf[128];
794 struct key_program *result = NULL, *hmac = NULL;
795 struct key_program header;
796
797 mmc = find_mmc_device(0);
798 if (!mmc)
799 return NULL;
800 mmc_init(mmc);
801
802 if (ccdm_mmc_read(mmc, 0, buf, sizeof(buf)) <= 0)
803 goto failure;
804
805 code_offset = *(u32 *)(buf + ESDHC_BOOT_IMAGE_ADDR_OFS);
806 code_len = *(u32 *)(buf + ESDHC_BOOT_IMAGE_SIZE_OFS);
807
808 code_offset += code_len;
809 /* TODO: the following needs to be the size of the 2nd stage env */
810 code_offset += CONFIG_ENV_SIZE;
811
812 if (ccdm_mmc_read(mmc, code_offset, buf, 4*3) < 0)
813 goto failure;
814
815 header.magic = get_unaligned_be32(buf);
816 header.code_crc = get_unaligned_be32(buf + 4);
817 header.code_size = get_unaligned_be32(buf + 8);
818
819 if (header.magic != MAGIC_KEY_PROGRAM)
820 goto failure;
821
822 result = malloc(sizeof(struct key_program) + header.code_size);
823 if (!result)
824 goto failure;
825 *result = header;
826
827 printf("load key program chunk from SD card (%u bytes) ",
828 header.code_size);
829 code_offset += 12;
830 if (ccdm_mmc_read(mmc, code_offset, result->code, header.code_size)
831 < 0)
832 goto failure;
833 code_offset += header.code_size;
834 puts("\n");
835
836 if (verify_program(result))
837 goto failure;
838
839 if (ccdm_mmc_read(mmc, code_offset, buf, 4*3) < 0)
840 goto failure;
841
842 header.magic = get_unaligned_be32(buf);
843 header.code_crc = get_unaligned_be32(buf + 4);
844 header.code_size = get_unaligned_be32(buf + 8);
845
846 if (header.magic == MAGIC_HMAC) {
847 puts("check integrity\n");
848 hmac = malloc(sizeof(struct key_program) + header.code_size);
849 if (!hmac)
850 goto failure;
851 *hmac = header;
852 code_offset += 12;
853 if (ccdm_mmc_read(mmc, code_offset, hmac->code,
854 hmac->code_size) < 0)
855 goto failure;
856 if (verify_program(hmac))
857 goto failure;
858 if (check_hmac(hmac, result->code, result->code_size)) {
859 puts("key program integrity could not be verified\n");
860 goto failure;
861 }
862 puts("key program verified\n");
863 }
864
865 goto end;
866failure:
867 if (result)
868 free(result);
869 result = NULL;
870end:
871 if (hmac)
872 free(hmac);
873
874 return result;
875}
876#endif
877
878#ifdef CCDM_SECOND_STAGE
879/**
880 * @brief load a key program from file system.
881 * @param ifname interface of the file system
882 * @param dev_part_str device part of the file system
883 * @param fs_type tyep of the file system
884 * @param path path of the file to load.
885 * @return the loaded structure or NULL on failure.
886 */
887static struct key_program *load_key_chunk(const char *ifname,
888 const char *dev_part_str, int fs_type,
889 const char *path)
890{
891 struct key_program *result = NULL;
892 struct key_program header;
893 uint32_t crc;
894 uint8_t buf[12];
Suriyan Ramasami96171fb2014-11-17 14:39:38 -0800895 loff_t i;
Dirk Eibach762d3df2013-06-26 15:55:17 +0200896
897 if (fs_set_blk_dev(ifname, dev_part_str, fs_type))
898 goto failure;
Suriyan Ramasami96171fb2014-11-17 14:39:38 -0800899 if (fs_read(path, (ulong)buf, 0, 12, &i) < 0)
900 goto failure;
Dirk Eibach762d3df2013-06-26 15:55:17 +0200901 if (i < 12)
902 goto failure;
903 header.magic = get_unaligned_be32(buf);
904 header.code_crc = get_unaligned_be32(buf + 4);
905 header.code_size = get_unaligned_be32(buf + 8);
906
907 if (header.magic != MAGIC_HMAC && header.magic != MAGIC_KEY_PROGRAM)
908 goto failure;
909
910 result = malloc(sizeof(struct key_program) + header.code_size);
911 if (!result)
912 goto failure;
913 if (fs_set_blk_dev(ifname, dev_part_str, fs_type))
914 goto failure;
Suriyan Ramasami96171fb2014-11-17 14:39:38 -0800915 if (fs_read(path, (ulong)result, 0,
916 sizeof(struct key_program) + header.code_size, &i) < 0)
917 goto failure;
Dirk Eibach762d3df2013-06-26 15:55:17 +0200918 if (i <= 0)
919 goto failure;
920 *result = header;
921
922 crc = crc32(0, result->code, result->code_size);
923
924 if (crc != result->code_crc) {
925 printf("%s: HRC crc mismatch: %08x != %08x\n",
926 path, crc, result->code_crc);
927 goto failure;
928 }
929 goto end;
930failure:
931 if (result) {
932 free(result);
933 result = NULL;
934 }
935end:
936 return result;
937}
938#endif
939
940#if defined(CCDM_FIRST_STAGE) || (defined CCDM_AUTO_FIRST_STAGE)
Tom Rini910c7932017-06-16 13:06:26 -0400941static const uint8_t prg_stage1_prepare[] = {
942 0x00, 0x20, 0x00, 0x00, /* opcode: SYNC f0 */
943 0x00, 0x24, 0x00, 0x00, /* opcode: SYNC f1 */
944 0x01, 0x80, 0x00, 0x00, /* opcode: CHECK0 PCR0 */
945 0x81, 0x22, 0x00, 0x00, /* opcode: LOAD PCR0, f0 */
946 0x01, 0x84, 0x00, 0x00, /* opcode: CHECK0 PCR1 */
947 0x81, 0x26, 0x10, 0x00, /* opcode: LOAD PCR1, f1 */
948 0x01, 0x88, 0x00, 0x00, /* opcode: CHECK0 PCR2 */
949 0x81, 0x2a, 0x20, 0x00, /* opcode: LOAD PCR2, f2 */
950 0x01, 0x8c, 0x00, 0x00, /* opcode: CHECK0 PCR3 */
951 0x81, 0x2e, 0x30, 0x00, /* opcode: LOAD PCR3, f3 */
952};
953
Simon Glass8ceca1d2018-11-18 14:22:27 -0700954static int first_stage_actions(struct udevice *tpm)
Dirk Eibach762d3df2013-06-26 15:55:17 +0200955{
956 int result = 0;
957 struct key_program *sd_prg = NULL;
958
959 puts("CCDM S1: start actions\n");
960#ifndef CCDM_SECOND_STAGE
Simon Glass8ceca1d2018-11-18 14:22:27 -0700961 if (tpm_continue_self_test(tpm))
Dirk Eibach762d3df2013-06-26 15:55:17 +0200962 goto failure;
963#else
Simon Glass8ceca1d2018-11-18 14:22:27 -0700964 tpm_continue_self_test(tpm);
Dirk Eibach762d3df2013-06-26 15:55:17 +0200965#endif
966 mdelay(37);
967
Simon Glass8ceca1d2018-11-18 14:22:27 -0700968 if (hre_run_program(tpm, prg_stage1_prepare,
969 sizeof(prg_stage1_prepare)))
Dirk Eibach762d3df2013-06-26 15:55:17 +0200970 goto failure;
971
972 sd_prg = load_sd_key_program();
973 if (sd_prg) {
Simon Glass8ceca1d2018-11-18 14:22:27 -0700974 if (hre_run_program(tpm, sd_prg->code, sd_prg->code_size))
Dirk Eibach762d3df2013-06-26 15:55:17 +0200975 goto failure;
976 puts("SD code run successfully\n");
977 } else {
978 puts("no key program found on SD\n");
979 goto failure;
980 }
981 goto end;
982failure:
983 result = 1;
984end:
985 if (sd_prg)
986 free(sd_prg);
987 printf("CCDM S1: actions done (%d)\n", result);
988 return result;
989}
990#endif
991
992#ifdef CCDM_FIRST_STAGE
993static int first_stage_init(void)
994{
Simon Glass8ceca1d2018-11-18 14:22:27 -0700995 struct udevice *tpm;
996 int ret;
997
Dirk Eibach762d3df2013-06-26 15:55:17 +0200998 puts("CCDM S1\n");
Simon Glass8ceca1d2018-11-18 14:22:27 -0700999 ret = get_tpm(&tpm);
1000 if (ret || tpm_init(tpm) || tpm_startup(tpm, TPM_ST_CLEAR))
Dirk Eibach762d3df2013-06-26 15:55:17 +02001001 return 1;
Simon Glass8ceca1d2018-11-18 14:22:27 -07001002 ret = first_stage_actions(tpm);
Dirk Eibach762d3df2013-06-26 15:55:17 +02001003#ifndef CCDM_SECOND_STAGE
Simon Glass8ceca1d2018-11-18 14:22:27 -07001004 if (!ret) {
Dirk Eibach762d3df2013-06-26 15:55:17 +02001005 if (bl2_entry)
1006 (*bl2_entry)();
Simon Glass8ceca1d2018-11-18 14:22:27 -07001007 ret = 1;
Dirk Eibach762d3df2013-06-26 15:55:17 +02001008 }
1009#endif
Simon Glass8ceca1d2018-11-18 14:22:27 -07001010 return ret;
Dirk Eibach762d3df2013-06-26 15:55:17 +02001011}
1012#endif
1013
1014#ifdef CCDM_SECOND_STAGE
Tom Rini09868d42017-05-08 22:14:26 -04001015static const uint8_t prg_stage2_prepare[] = {
1016 0x00, 0x80, 0x00, 0x00, /* opcode: SYNC PCR0 */
1017 0x00, 0x84, 0x00, 0x00, /* opcode: SYNC PCR1 */
1018 0x00, 0x88, 0x00, 0x00, /* opcode: SYNC PCR2 */
1019 0x00, 0x8c, 0x00, 0x00, /* opcode: SYNC PCR3 */
1020 0x00, 0x90, 0x00, 0x00, /* opcode: SYNC PCR4 */
1021};
1022
1023static const uint8_t prg_stage2_success[] = {
1024 0x81, 0x02, 0x40, 0x14, /* opcode: LOAD PCR4, #<20B data> */
1025 0x48, 0xfd, 0x95, 0x17, 0xe7, 0x54, 0x6b, 0x68, /* data */
1026 0x92, 0x31, 0x18, 0x05, 0xf8, 0x58, 0x58, 0x3c, /* data */
1027 0xe4, 0xd2, 0x81, 0xe0, /* data */
1028};
1029
1030static const uint8_t prg_stage_fail[] = {
1031 0x81, 0x01, 0x00, 0x14, /* opcode: LOAD v0, #<20B data> */
1032 0xc0, 0x32, 0xad, 0xc1, 0xff, 0x62, 0x9c, 0x9b, /* data */
1033 0x66, 0xf2, 0x27, 0x49, 0xad, 0x66, 0x7e, 0x6b, /* data */
1034 0xea, 0xdf, 0x14, 0x4b, /* data */
1035 0x81, 0x42, 0x30, 0x00, /* opcode: LOAD PCR3, v0 */
1036 0x81, 0x42, 0x40, 0x00, /* opcode: LOAD PCR4, v0 */
1037};
1038
Dirk Eibach762d3df2013-06-26 15:55:17 +02001039static int second_stage_init(void)
1040{
1041 static const char mac_suffix[] = ".mac";
1042 bool did_first_stage_run = true;
1043 int result = 0;
1044 char *cptr, *mmcdev = NULL;
1045 struct key_program *hmac_blob = NULL;
1046 const char *image_path = "/ccdm.itb";
1047 char *mac_path = NULL;
1048 ulong image_addr;
Suriyan Ramasami96171fb2014-11-17 14:39:38 -08001049 loff_t image_size;
Simon Glass8ceca1d2018-11-18 14:22:27 -07001050 struct udevice *tpm;
Dirk Eibach762d3df2013-06-26 15:55:17 +02001051 uint32_t err;
Simon Glass8ceca1d2018-11-18 14:22:27 -07001052 int ret;
Dirk Eibach762d3df2013-06-26 15:55:17 +02001053
1054 printf("CCDM S2\n");
Simon Glass8ceca1d2018-11-18 14:22:27 -07001055 ret = get_tpm(&tpm);
1056 if (ret || tpm_init(tpm))
Dirk Eibach762d3df2013-06-26 15:55:17 +02001057 return 1;
Simon Glass8ceca1d2018-11-18 14:22:27 -07001058 err = tpm_startup(tpm, TPM_ST_CLEAR);
Dirk Eibach762d3df2013-06-26 15:55:17 +02001059 if (err != TPM_INVALID_POSTINIT)
1060 did_first_stage_run = false;
1061
1062#ifdef CCDM_AUTO_FIRST_STAGE
Simon Glass8ceca1d2018-11-18 14:22:27 -07001063 if (!did_first_stage_run && first_stage_actions(tpm))
Dirk Eibach762d3df2013-06-26 15:55:17 +02001064 goto failure;
1065#else
1066 if (!did_first_stage_run)
1067 goto failure;
1068#endif
1069
Simon Glass8ceca1d2018-11-18 14:22:27 -07001070 if (hre_run_program(tpm, prg_stage2_prepare,
1071 sizeof(prg_stage2_prepare)))
Dirk Eibach762d3df2013-06-26 15:55:17 +02001072 goto failure;
1073
1074 /* run "prepboot" from env to get "mmcdev" set */
Simon Glass64b723f2017-08-03 12:22:12 -06001075 cptr = env_get("prepboot");
Dirk Eibach762d3df2013-06-26 15:55:17 +02001076 if (cptr && !run_command(cptr, 0))
Simon Glass64b723f2017-08-03 12:22:12 -06001077 mmcdev = env_get("mmcdev");
Dirk Eibach762d3df2013-06-26 15:55:17 +02001078 if (!mmcdev)
1079 goto failure;
1080
Simon Glass64b723f2017-08-03 12:22:12 -06001081 cptr = env_get("ramdiskimage");
Dirk Eibach762d3df2013-06-26 15:55:17 +02001082 if (cptr)
1083 image_path = cptr;
1084
1085 mac_path = malloc(strlen(image_path) + strlen(mac_suffix) + 1);
1086 if (mac_path == NULL)
1087 goto failure;
1088 strcpy(mac_path, image_path);
1089 strcat(mac_path, mac_suffix);
1090
1091 /* read image from mmcdev (ccdm.itb) */
1092 image_addr = (ulong)get_image_location();
1093 if (fs_set_blk_dev("mmc", mmcdev, FS_TYPE_EXT))
1094 goto failure;
Suriyan Ramasami96171fb2014-11-17 14:39:38 -08001095 if (fs_read(image_path, image_addr, 0, 0, &image_size) < 0)
1096 goto failure;
Dirk Eibach762d3df2013-06-26 15:55:17 +02001097 if (image_size <= 0)
1098 goto failure;
Suriyan Ramasami96171fb2014-11-17 14:39:38 -08001099 printf("CCDM image found on %s, %lld bytes\n", mmcdev, image_size);
Dirk Eibach762d3df2013-06-26 15:55:17 +02001100
1101 hmac_blob = load_key_chunk("mmc", mmcdev, FS_TYPE_EXT, mac_path);
1102 if (!hmac_blob) {
1103 puts("failed to load mac file\n");
1104 goto failure;
1105 }
1106 if (verify_program(hmac_blob)) {
1107 puts("corrupted mac file\n");
1108 goto failure;
1109 }
1110 if (check_hmac(hmac_blob, (u8 *)image_addr, image_size)) {
1111 puts("image integrity could not be verified\n");
1112 goto failure;
1113 }
1114 puts("CCDM image OK\n");
1115
Simon Glass8ceca1d2018-11-18 14:22:27 -07001116 hre_run_program(tpm, prg_stage2_success, sizeof(prg_stage2_success));
Dirk Eibach762d3df2013-06-26 15:55:17 +02001117
1118 goto end;
1119failure:
1120 result = 1;
Simon Glass8ceca1d2018-11-18 14:22:27 -07001121 hre_run_program(tpm, prg_stage_fail, sizeof(prg_stage_fail));
Dirk Eibach762d3df2013-06-26 15:55:17 +02001122end:
1123 if (hmac_blob)
1124 free(hmac_blob);
1125 if (mac_path)
1126 free(mac_path);
1127
1128 return result;
1129}
1130#endif
1131
1132int show_self_hash(void)
1133{
1134 struct h_reg *hash_ptr;
1135#ifdef CCDM_SECOND_STAGE
1136 struct h_reg hash;
1137
1138 hash_ptr = &hash;
1139 if (compute_self_hash(hash_ptr))
1140 return 1;
1141#else
1142 hash_ptr = &fix_hregs[FIX_HREG_SELF_HASH];
1143#endif
1144 puts("self hash: ");
1145 if (hash_ptr && hash_ptr->valid)
1146 print_buffer(0, hash_ptr->digest, 1, 20, 20);
1147 else
1148 puts("INVALID\n");
1149
1150 return 0;
1151}
1152
1153/**
1154 * @brief let the system hang.
1155 *
1156 * Called on error.
1157 * Will stop the boot process; display a message and signal the error condition
1158 * by blinking the "status" and the "finder" LED of the controller board.
1159 *
1160 * @note the develop version runs the blink cycle 2 times and then returns.
1161 * The release version never returns.
1162 */
1163static void ccdm_hang(void)
1164{
1165 static const u64 f0 = 0x0ba3bb8ba2e880; /* blink code "finder" LED */
1166 static const u64 s0 = 0x00f0f0f0f0f0f0; /* blink code "status" LED */
1167 u64 f, s;
1168 int i;
1169#ifdef CCDM_DEVELOP
1170 int j;
1171#endif
1172
Dirk Eibache674bf12014-07-03 09:28:16 +02001173 I2C_SET_BUS(I2C_SOC_0);
Dirk Eibach762d3df2013-06-26 15:55:17 +02001174 pca9698_direction_output(0x22, 0, 0); /* Finder */
1175 pca9698_direction_output(0x22, 4, 0); /* Status */
1176
1177 puts("### ERROR ### Please RESET the board ###\n");
1178 bootstage_error(BOOTSTAGE_ID_NEED_RESET);
1179#ifdef CCDM_DEVELOP
1180 puts("*** ERROR ******** THIS WOULD HANG ******** ERROR ***\n");
1181 puts("** but we continue since this is a DEVELOP version **\n");
1182 puts("*** ERROR ******** THIS WOULD HANG ******** ERROR ***\n");
1183 for (j = 2; j-- > 0;) {
1184 putc('#');
1185#else
1186 for (;;) {
1187#endif
1188 f = f0;
1189 s = s0;
1190 for (i = 54; i-- > 0;) {
1191 pca9698_set_value(0x22, 0, !(f & 1));
1192 pca9698_set_value(0x22, 4, (s & 1));
1193 f >>= 1;
1194 s >>= 1;
1195 mdelay(120);
1196 }
1197 }
1198 puts("\ncontinue...\n");
1199}
1200
1201int startup_ccdm_id_module(void)
1202{
1203 int result = 0;
1204 unsigned int orig_i2c_bus;
1205
Dirk Eibache674bf12014-07-03 09:28:16 +02001206 orig_i2c_bus = i2c_get_bus_num();
1207 i2c_set_bus_num(I2C_SOC_1);
Dirk Eibach762d3df2013-06-26 15:55:17 +02001208
1209 /* goto end; */
1210
1211#ifdef CCDM_DEVELOP
1212 show_self_hash();
1213#endif
1214#ifdef CCDM_FIRST_STAGE
1215 result = first_stage_init();
1216 if (result) {
1217 puts("1st stage init failed\n");
1218 goto failure;
1219 }
1220#endif
1221#ifdef CCDM_SECOND_STAGE
1222 result = second_stage_init();
1223 if (result) {
1224 puts("2nd stage init failed\n");
1225 goto failure;
1226 }
1227#endif
1228
1229 goto end;
1230failure:
1231 result = 1;
1232end:
Dirk Eibache674bf12014-07-03 09:28:16 +02001233 i2c_set_bus_num(orig_i2c_bus);
Dirk Eibach762d3df2013-06-26 15:55:17 +02001234 if (result)
1235 ccdm_hang();
1236
1237 return result;
1238}