imagetag.c 18 KB

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  1. /*
  2. * This file is subject to the terms and conditions of the GNU General Public
  3. * License. See the file "COPYING" in the main directory of this archive
  4. * for more details.
  5. *
  6. * Copyright (C) 2008 Axel Gembe <ago@bastart.eu.org>
  7. * Copyright (C) 2009-2010 Daniel Dickinson <openwrt@cshore.neomailbox.net>
  8. */
  9. #include <stdio.h>
  10. #include <stdlib.h>
  11. #include <string.h>
  12. #include <stdint.h>
  13. #include <time.h>
  14. #include <unistd.h>
  15. #include <sys/stat.h>
  16. #include <netinet/in.h>
  17. #include "bcm_tag.h"
  18. #include "imagetag_cmdline.h"
  19. #define DEADCODE 0xDEADC0DE
  20. /* Kernel header */
  21. struct kernelhdr {
  22. uint32_t loadaddr; /* Kernel load address */
  23. uint32_t entry; /* Kernel entry point address */
  24. uint32_t lzmalen; /* Compressed length of the LZMA data that follows */
  25. };
  26. static char pirellitab[NUM_PIRELLI][BOARDID_LEN] = PIRELLI_BOARDS;
  27. static uint32_t crc32tab[256] = {
  28. 0x00000000, 0x77073096, 0xEE0E612C, 0x990951BA, 0x076DC419, 0x706AF48F, 0xE963A535, 0x9E6495A3,
  29. 0x0EDB8832, 0x79DCB8A4, 0xE0D5E91E, 0x97D2D988, 0x09B64C2B, 0x7EB17CBD, 0xE7B82D07, 0x90BF1D91,
  30. 0x1DB71064, 0x6AB020F2, 0xF3B97148, 0x84BE41DE, 0x1ADAD47D, 0x6DDDE4EB, 0xF4D4B551, 0x83D385C7,
  31. 0x136C9856, 0x646BA8C0, 0xFD62F97A, 0x8A65C9EC, 0x14015C4F, 0x63066CD9, 0xFA0F3D63, 0x8D080DF5,
  32. 0x3B6E20C8, 0x4C69105E, 0xD56041E4, 0xA2677172, 0x3C03E4D1, 0x4B04D447, 0xD20D85FD, 0xA50AB56B,
  33. 0x35B5A8FA, 0x42B2986C, 0xDBBBC9D6, 0xACBCF940, 0x32D86CE3, 0x45DF5C75, 0xDCD60DCF, 0xABD13D59,
  34. 0x26D930AC, 0x51DE003A, 0xC8D75180, 0xBFD06116, 0x21B4F4B5, 0x56B3C423, 0xCFBA9599, 0xB8BDA50F,
  35. 0x2802B89E, 0x5F058808, 0xC60CD9B2, 0xB10BE924, 0x2F6F7C87, 0x58684C11, 0xC1611DAB, 0xB6662D3D,
  36. 0x76DC4190, 0x01DB7106, 0x98D220BC, 0xEFD5102A, 0x71B18589, 0x06B6B51F, 0x9FBFE4A5, 0xE8B8D433,
  37. 0x7807C9A2, 0x0F00F934, 0x9609A88E, 0xE10E9818, 0x7F6A0DBB, 0x086D3D2D, 0x91646C97, 0xE6635C01,
  38. 0x6B6B51F4, 0x1C6C6162, 0x856530D8, 0xF262004E, 0x6C0695ED, 0x1B01A57B, 0x8208F4C1, 0xF50FC457,
  39. 0x65B0D9C6, 0x12B7E950, 0x8BBEB8EA, 0xFCB9887C, 0x62DD1DDF, 0x15DA2D49, 0x8CD37CF3, 0xFBD44C65,
  40. 0x4DB26158, 0x3AB551CE, 0xA3BC0074, 0xD4BB30E2, 0x4ADFA541, 0x3DD895D7, 0xA4D1C46D, 0xD3D6F4FB,
  41. 0x4369E96A, 0x346ED9FC, 0xAD678846, 0xDA60B8D0, 0x44042D73, 0x33031DE5, 0xAA0A4C5F, 0xDD0D7CC9,
  42. 0x5005713C, 0x270241AA, 0xBE0B1010, 0xC90C2086, 0x5768B525, 0x206F85B3, 0xB966D409, 0xCE61E49F,
  43. 0x5EDEF90E, 0x29D9C998, 0xB0D09822, 0xC7D7A8B4, 0x59B33D17, 0x2EB40D81, 0xB7BD5C3B, 0xC0BA6CAD,
  44. 0xEDB88320, 0x9ABFB3B6, 0x03B6E20C, 0x74B1D29A, 0xEAD54739, 0x9DD277AF, 0x04DB2615, 0x73DC1683,
  45. 0xE3630B12, 0x94643B84, 0x0D6D6A3E, 0x7A6A5AA8, 0xE40ECF0B, 0x9309FF9D, 0x0A00AE27, 0x7D079EB1,
  46. 0xF00F9344, 0x8708A3D2, 0x1E01F268, 0x6906C2FE, 0xF762575D, 0x806567CB, 0x196C3671, 0x6E6B06E7,
  47. 0xFED41B76, 0x89D32BE0, 0x10DA7A5A, 0x67DD4ACC, 0xF9B9DF6F, 0x8EBEEFF9, 0x17B7BE43, 0x60B08ED5,
  48. 0xD6D6A3E8, 0xA1D1937E, 0x38D8C2C4, 0x4FDFF252, 0xD1BB67F1, 0xA6BC5767, 0x3FB506DD, 0x48B2364B,
  49. 0xD80D2BDA, 0xAF0A1B4C, 0x36034AF6, 0x41047A60, 0xDF60EFC3, 0xA867DF55, 0x316E8EEF, 0x4669BE79,
  50. 0xCB61B38C, 0xBC66831A, 0x256FD2A0, 0x5268E236, 0xCC0C7795, 0xBB0B4703, 0x220216B9, 0x5505262F,
  51. 0xC5BA3BBE, 0xB2BD0B28, 0x2BB45A92, 0x5CB36A04, 0xC2D7FFA7, 0xB5D0CF31, 0x2CD99E8B, 0x5BDEAE1D,
  52. 0x9B64C2B0, 0xEC63F226, 0x756AA39C, 0x026D930A, 0x9C0906A9, 0xEB0E363F, 0x72076785, 0x05005713,
  53. 0x95BF4A82, 0xE2B87A14, 0x7BB12BAE, 0x0CB61B38, 0x92D28E9B, 0xE5D5BE0D, 0x7CDCEFB7, 0x0BDBDF21,
  54. 0x86D3D2D4, 0xF1D4E242, 0x68DDB3F8, 0x1FDA836E, 0x81BE16CD, 0xF6B9265B, 0x6FB077E1, 0x18B74777,
  55. 0x88085AE6, 0xFF0F6A70, 0x66063BCA, 0x11010B5C, 0x8F659EFF, 0xF862AE69, 0x616BFFD3, 0x166CCF45,
  56. 0xA00AE278, 0xD70DD2EE, 0x4E048354, 0x3903B3C2, 0xA7672661, 0xD06016F7, 0x4969474D, 0x3E6E77DB,
  57. 0xAED16A4A, 0xD9D65ADC, 0x40DF0B66, 0x37D83BF0, 0xA9BCAE53, 0xDEBB9EC5, 0x47B2CF7F, 0x30B5FFE9,
  58. 0xBDBDF21C, 0xCABAC28A, 0x53B39330, 0x24B4A3A6, 0xBAD03605, 0xCDD70693, 0x54DE5729, 0x23D967BF,
  59. 0xB3667A2E, 0xC4614AB8, 0x5D681B02, 0x2A6F2B94, 0xB40BBE37, 0xC30C8EA1, 0x5A05DF1B, 0x2D02EF8D
  60. };
  61. void int2tag(char *tag, uint32_t value) {
  62. uint32_t network = htonl(value);
  63. memcpy(tag, (char *)(&network), 4);
  64. }
  65. uint32_t crc32(uint32_t crc, uint8_t *data, size_t len)
  66. {
  67. while (len--)
  68. crc = (crc >> 8) ^ crc32tab[(crc ^ *data++) & 0xFF];
  69. return crc;
  70. }
  71. uint32_t compute_crc32(uint32_t crc, FILE *binfile, size_t compute_start, size_t compute_len)
  72. {
  73. uint8_t readbuf[1024];
  74. size_t read;
  75. fseek(binfile, compute_start, SEEK_SET);
  76. /* read block of 1024 bytes */
  77. while (binfile && !feof(binfile) && !ferror(binfile) && (compute_len >= sizeof(readbuf))) {
  78. read = fread(readbuf, sizeof(uint8_t), sizeof(readbuf), binfile);
  79. crc = crc32(crc, readbuf, read);
  80. compute_len = compute_len - read;
  81. }
  82. /* Less than 1024 bytes remains, read compute_len bytes */
  83. if (binfile && !feof(binfile) && !ferror(binfile) && (compute_len > 0)) {
  84. read = fread(readbuf, sizeof(uint8_t), compute_len, binfile);
  85. crc = crc32(crc, readbuf, read);
  86. }
  87. return crc;
  88. }
  89. size_t getlen(FILE *fp)
  90. {
  91. size_t retval, curpos;
  92. if (!fp)
  93. return 0;
  94. curpos = ftell(fp);
  95. fseek(fp, 0, SEEK_END);
  96. retval = ftell(fp);
  97. fseek(fp, curpos, SEEK_SET);
  98. return retval;
  99. }
  100. int tagfile(const char *kernel, const char *rootfs, const char *bin, \
  101. const struct gengetopt_args_info *args, \
  102. uint32_t flash_start, uint32_t image_offset, \
  103. uint32_t block_size, uint32_t load_address, uint32_t entry)
  104. {
  105. struct bcm_tag tag;
  106. struct kernelhdr khdr;
  107. FILE *kernelfile = NULL, *rootfsfile = NULL, *binfile = NULL, *cfefile = NULL;
  108. size_t cfeoff, cfelen, kerneloff, kernellen, rootfsoff, rootfslen, \
  109. read, imagelen, rootfsoffpadlen = 0, kernelfslen, kerneloffpadlen = 0, oldrootfslen;
  110. uint8_t readbuf[1024];
  111. uint32_t imagecrc = IMAGETAG_CRC_START;
  112. uint32_t kernelcrc = IMAGETAG_CRC_START;
  113. uint32_t rootfscrc = IMAGETAG_CRC_START;
  114. uint32_t kernelfscrc = IMAGETAG_CRC_START;
  115. uint32_t fwaddr = 0;
  116. uint8_t crc_val;
  117. const uint32_t deadcode = htonl(DEADCODE);
  118. int i;
  119. int is_pirelli = 0;
  120. memset(&tag, 0, sizeof(struct bcm_tag));
  121. if (!kernel || !rootfs) {
  122. fprintf(stderr, "imagetag can't create an image without both kernel and rootfs\n");
  123. }
  124. if (kernel && !(kernelfile = fopen(kernel, "rb"))) {
  125. fprintf(stderr, "Unable to open kernel \"%s\"\n", kernel);
  126. return 1;
  127. }
  128. if (rootfs && !(rootfsfile = fopen(rootfs, "rb"))) {
  129. fprintf(stderr, "Unable to open rootfs \"%s\"\n", rootfs);
  130. return 1;
  131. }
  132. if (!bin || !(binfile = fopen(bin, "wb+"))) {
  133. fprintf(stderr, "Unable to open output file \"%s\"\n", bin);
  134. return 1;
  135. }
  136. if ((args->cfe_given) && (args->cfe_arg)) {
  137. if (!(cfefile = fopen(args->cfe_arg, "rb"))) {
  138. fprintf(stderr, "Unable to open CFE file \"%s\"\n", args->cfe_arg);
  139. }
  140. }
  141. fwaddr = flash_start + image_offset;
  142. if (cfefile) {
  143. cfeoff = flash_start;
  144. cfelen = getlen(cfefile);
  145. /* Seek to the start of the file after tag */
  146. fseek(binfile, sizeof(tag), SEEK_SET);
  147. /* Write the cfe */
  148. while (cfefile && !feof(cfefile) && !ferror(cfefile)) {
  149. read = fread(readbuf, sizeof(uint8_t), sizeof(readbuf), cfefile);
  150. fwrite(readbuf, sizeof(uint8_t), read, binfile);
  151. }
  152. } else {
  153. cfeoff = 0;
  154. cfelen = 0;
  155. }
  156. if (!args->root_first_flag) {
  157. /* Build the kernel address and length (doesn't need to be aligned, read only) */
  158. kerneloff = fwaddr + sizeof(tag);
  159. kernellen = getlen(kernelfile);
  160. if (!args->kernel_file_has_header_flag) {
  161. /* Build the kernel header */
  162. khdr.loadaddr = htonl(load_address);
  163. khdr.entry = htonl(entry);
  164. khdr.lzmalen = htonl(kernellen);
  165. /* Increase the kernel size by the header size */
  166. kernellen += sizeof(khdr);
  167. }
  168. /* Build the rootfs address and length (start and end do need to be aligned on flash erase block boundaries */
  169. rootfsoff = kerneloff + kernellen;
  170. rootfsoff = (rootfsoff % block_size) > 0 ? (((rootfsoff / block_size) + 1) * block_size) : rootfsoff;
  171. rootfslen = getlen(rootfsfile);
  172. rootfslen = ( (rootfslen % block_size) > 0 ? (((rootfslen / block_size) + 1) * block_size) : rootfslen );
  173. imagelen = rootfsoff + rootfslen - kerneloff + sizeof(deadcode);
  174. rootfsoffpadlen = rootfsoff - (kerneloff + kernellen);
  175. /* Seek to the start of the kernel */
  176. fseek(binfile, kerneloff - fwaddr + cfelen, SEEK_SET);
  177. /* Write the kernel header */
  178. fwrite(&khdr, sizeof(khdr), 1, binfile);
  179. /* Write the kernel */
  180. while (kernelfile && !feof(kernelfile) && !ferror(kernelfile)) {
  181. read = fread(readbuf, sizeof(uint8_t), sizeof(readbuf), kernelfile);
  182. fwrite(readbuf, sizeof(uint8_t), read, binfile);
  183. }
  184. /* Write the RootFS */
  185. fseek(binfile, rootfsoff - fwaddr + cfelen, SEEK_SET);
  186. while (rootfsfile && !feof(rootfsfile) && !ferror(rootfsfile)) {
  187. read = fread(readbuf, sizeof(uint8_t), sizeof(readbuf), rootfsfile);
  188. fwrite(readbuf, sizeof(uint8_t), read, binfile);
  189. }
  190. /* Align image to specified erase block size and append deadc0de */
  191. printf("Data alignment to %dk with 'deadc0de' appended\n", block_size/1024);
  192. fseek(binfile, rootfsoff + rootfslen - fwaddr + cfelen, SEEK_SET);
  193. fwrite(&deadcode, sizeof(uint32_t), 1, binfile);
  194. oldrootfslen = rootfslen;
  195. if (args->pad_given) {
  196. uint32_t allfs = 0xffffffff;
  197. uint32_t pad_size = args->pad_arg * 1024 * 1024;
  198. printf("Padding image to %d bytes ...\n", pad_size);
  199. while (imagelen < pad_size) {
  200. fwrite(&allfs, sizeof(uint32_t), 1, binfile);
  201. imagelen += 4;
  202. rootfslen += 4;
  203. }
  204. }
  205. /* Flush the binfile buffer so that when we read from file, it contains
  206. * everything in the buffer
  207. */
  208. fflush(binfile);
  209. /* Compute the crc32 of the entire image (deadC0de included) */
  210. imagecrc = compute_crc32(imagecrc, binfile, kerneloff - fwaddr + cfelen, imagelen);
  211. /* Compute the crc32 of the kernel and padding between kernel and rootfs) */
  212. kernelcrc = compute_crc32(kernelcrc, binfile, kerneloff - fwaddr + cfelen, kernellen + rootfsoffpadlen);
  213. /* Compute the crc32 of the kernel and padding between kernel and rootfs) */
  214. kernelfscrc = compute_crc32(kernelfscrc, binfile, kerneloff - fwaddr + cfelen, kernellen + rootfsoffpadlen + rootfslen + sizeof(deadcode));
  215. /* Compute the crc32 of the flashImageStart to rootLength.
  216. * The broadcom firmware assumes the rootfs starts the image,
  217. * therefore uses the rootfs start to determine where to flash
  218. * the image. Since we have the kernel first we have to give
  219. * it the kernel address, but the crc uses the length
  220. * associated with this address, which is added to the kernel
  221. * length to determine the length of image to flash and thus
  222. * needs to be rootfs + deadcode
  223. */
  224. rootfscrc = compute_crc32(rootfscrc, binfile, kerneloff - fwaddr + cfelen, rootfslen + sizeof(deadcode));
  225. } else {
  226. /* Build the kernel address and length (doesn't need to be aligned, read only) */
  227. rootfsoff = fwaddr + sizeof(tag);
  228. oldrootfslen = getlen(rootfsfile);
  229. rootfslen = oldrootfslen;
  230. rootfslen = ( (rootfslen % block_size) > 0 ? (((rootfslen / block_size) + 1) * block_size) : rootfslen );
  231. kerneloffpadlen = rootfslen - oldrootfslen;
  232. oldrootfslen = rootfslen;
  233. kerneloff = rootfsoff + rootfslen;
  234. kernellen = getlen(kernelfile);
  235. imagelen = cfelen + rootfslen + kernellen;
  236. /* Seek to the start of the kernel */
  237. fseek(binfile, kerneloff - fwaddr + cfelen, SEEK_SET);
  238. if (!args->kernel_file_has_header_flag) {
  239. /* Build the kernel header */
  240. khdr.loadaddr = htonl(load_address);
  241. khdr.entry = htonl(entry);
  242. khdr.lzmalen = htonl(kernellen);
  243. /* Write the kernel header */
  244. fwrite(&khdr, sizeof(khdr), 1, binfile);
  245. /* Increase the kernel size by the header size */
  246. kernellen += sizeof(khdr);
  247. }
  248. /* Write the kernel */
  249. while (kernelfile && !feof(kernelfile) && !ferror(kernelfile)) {
  250. read = fread(readbuf, sizeof(uint8_t), sizeof(readbuf), kernelfile);
  251. fwrite(readbuf, sizeof(uint8_t), read, binfile);
  252. }
  253. /* Write the RootFS */
  254. fseek(binfile, rootfsoff - fwaddr + cfelen, SEEK_SET);
  255. while (rootfsfile && !feof(rootfsfile) && !ferror(rootfsfile)) {
  256. read = fread(readbuf, sizeof(uint8_t), sizeof(readbuf), rootfsfile);
  257. fwrite(readbuf, sizeof(uint8_t), read, binfile);
  258. }
  259. /* Flush the binfile buffer so that when we read from file, it contains
  260. * everything in the buffer
  261. */
  262. fflush(binfile);
  263. /* Compute the crc32 of the entire image (deadC0de included) */
  264. imagecrc = compute_crc32(imagecrc, binfile, sizeof(tag), imagelen);
  265. /* Compute the crc32 of the kernel and padding between kernel and rootfs) */
  266. kernelcrc = compute_crc32(kernelcrc, binfile, kerneloff - fwaddr + cfelen, kernellen + rootfsoffpadlen);
  267. kernelfscrc = compute_crc32(kernelfscrc, binfile, rootfsoff - fwaddr + cfelen, kernellen + rootfslen);
  268. rootfscrc = compute_crc32(rootfscrc, binfile, rootfsoff - fwaddr + cfelen, rootfslen);
  269. }
  270. /* Close the files */
  271. if (cfefile) {
  272. fclose(cfefile);
  273. }
  274. fclose(kernelfile);
  275. fclose(rootfsfile);
  276. /* Build the tag */
  277. strncpy(tag.tagVersion, args->tag_version_arg, sizeof(tag.tagVersion) - 1);
  278. strncpy(tag.sig_1, args->signature_arg, sizeof(tag.sig_1) - 1);
  279. strncpy(tag.sig_2, args->signature2_arg, sizeof(tag.sig_2) - 1);
  280. strncpy(tag.chipid, args->chipid_arg, sizeof(tag.chipid) - 1);
  281. strncpy(tag.boardid, args->boardid_arg, sizeof(tag.boardid) - 1);
  282. strcpy(tag.big_endian, "1");
  283. sprintf(tag.totalLength, "%lu", imagelen);
  284. if (args->cfe_given) {
  285. sprintf(tag.cfeAddress, "%lu", flash_start);
  286. sprintf(tag.cfeLength, "%lu", cfelen);
  287. } else {
  288. /* We don't include CFE */
  289. strcpy(tag.cfeAddress, "0");
  290. strcpy(tag.cfeLength, "0");
  291. }
  292. sprintf(tag.kernelAddress, "%lu", kerneloff);
  293. sprintf(tag.kernelLength, "%lu", kernellen + rootfsoffpadlen);
  294. if (args->root_first_flag) {
  295. sprintf(tag.flashImageStart, "%lu", rootfsoff);
  296. sprintf(tag.flashRootLength, "%lu", rootfslen);
  297. } else {
  298. sprintf(tag.flashImageStart, "%lu", kerneloff);
  299. sprintf(tag.flashRootLength, "%lu", rootfslen + sizeof(deadcode));
  300. }
  301. int2tag(tag.rootLength, oldrootfslen + sizeof(deadcode));
  302. if (args->rsa_signature_given) {
  303. strncpy(tag.rsa_signature, args->rsa_signature_arg, RSASIG_LEN);
  304. }
  305. if (args->layoutver_given) {
  306. strncpy(tag.flashLayoutVer, args->layoutver_arg, TAGLAYOUT_LEN);
  307. }
  308. if (args->info1_given) {
  309. strncpy(tag.information1, args->info1_arg, TAGINFO1_LEN);
  310. }
  311. if (args->info2_given) {
  312. strncpy(tag.information2, args->info2_arg, TAGINFO2_LEN);
  313. }
  314. if (args->reserved2_given) {
  315. strncpy(tag.reserved2, args->reserved2_arg, 16);
  316. }
  317. if (args->altinfo_given) {
  318. strncpy(&tag.information1[0], args->altinfo_arg, ALTTAGINFO_LEN);
  319. }
  320. if (args->second_image_flag_given) {
  321. if (strncmp(args->second_image_flag_arg, "2", DUALFLAG_LEN) != 0) {
  322. strncpy(tag.dualImage, args->second_image_flag_arg, DUALFLAG_LEN);
  323. }
  324. }
  325. if (args->inactive_given) {
  326. if (strncmp(args->inactive_arg, "2", INACTIVEFLAG_LEN) != 0) {
  327. strncpy(tag.inactiveFlag, args->second_image_flag_arg, INACTIVEFLAG_LEN);
  328. }
  329. }
  330. for (i = 0; i < NUM_PIRELLI; i++) {
  331. if (strncmp(args->boardid_arg, pirellitab[i], BOARDID_LEN) == 0) {
  332. is_pirelli = 1;
  333. break;
  334. }
  335. }
  336. if ( !is_pirelli ) {
  337. int2tag(tag.imageCRC, kernelfscrc);
  338. } else {
  339. int2tag(tag.imageCRC, kernelcrc);
  340. }
  341. int2tag(&(tag.rootfsCRC[0]), rootfscrc);
  342. int2tag(tag.kernelCRC, kernelcrc);
  343. int2tag(tag.fskernelCRC, kernelfscrc);
  344. int2tag(tag.headerCRC, crc32(IMAGETAG_CRC_START, (uint8_t*)&tag, sizeof(tag) - 20));
  345. fseek(binfile, 0L, SEEK_SET);
  346. fwrite(&tag, sizeof(uint8_t), sizeof(tag), binfile);
  347. fflush(binfile);
  348. fclose(binfile);
  349. return 0;
  350. }
  351. int main(int argc, char **argv)
  352. {
  353. int c, i;
  354. char *kernel, *rootfs, *bin;
  355. uint32_t flash_start, image_offset, block_size, load_address, entry;
  356. flash_start = image_offset = block_size = load_address = entry = 0;
  357. struct gengetopt_args_info parsed_args;
  358. kernel = rootfs = bin = NULL;
  359. if (cmdline_parser(argc, argv, &parsed_args)) {
  360. exit(1);
  361. }
  362. printf("Broadcom 63xx image tagger - v2.0.0\n");
  363. printf("Copyright (C) 2008 Axel Gembe\n");
  364. printf("Copyright (C) 2009-2010 Daniel Dickinson\n");
  365. printf("Licensed under the terms of the Gnu General Public License\n");
  366. kernel = parsed_args.kernel_arg;
  367. rootfs = parsed_args.rootfs_arg;
  368. bin = parsed_args.output_arg;
  369. if (strlen(parsed_args.tag_version_arg) >= TAGVER_LEN) {
  370. fprintf(stderr, "Error: Tag Version (tag_version,v) too long.\n");
  371. exit(1);
  372. }
  373. if (strlen(parsed_args.boardid_arg) >= BOARDID_LEN) {
  374. fprintf(stderr, "Error: Board ID (boardid,b) too long.\n");
  375. exit(1);
  376. }
  377. if (strlen(parsed_args.chipid_arg) >= CHIPID_LEN) {
  378. fprintf(stderr, "Error: Chip ID (chipid,c) too long.\n");
  379. exit(1);
  380. }
  381. if (strlen(parsed_args.signature_arg) >= SIG1_LEN) {
  382. fprintf(stderr, "Error: Magic string (signature,a) too long.\n");
  383. exit(1);
  384. }
  385. if (strlen(parsed_args.signature2_arg) >= SIG2_LEN) {
  386. fprintf(stderr, "Error: Second magic string (signature2,m) too long.\n");
  387. exit(1);
  388. }
  389. if (parsed_args.layoutver_given) {
  390. if (strlen(parsed_args.layoutver_arg) > FLASHLAYOUTVER_LEN) {
  391. fprintf(stderr, "Error: Flash layout version (layoutver,y) too long.\n");
  392. exit(1);
  393. }
  394. }
  395. if (parsed_args.rsa_signature_given) {
  396. if (strlen(parsed_args.rsa_signature_arg) > RSASIG_LEN) {
  397. fprintf(stderr, "Error: RSA Signature (rsa_signature,r) too long.\n");
  398. exit(1);
  399. }
  400. }
  401. if (parsed_args.info1_given) {
  402. if (strlen(parsed_args.info1_arg) >= TAGINFO1_LEN) {
  403. fprintf(stderr, "Error: Vendor Information 1 (info1) too long.\n");
  404. exit(1);
  405. }
  406. }
  407. if (parsed_args.info2_given) {
  408. if (strlen(parsed_args.info2_arg) >= TAGINFO2_LEN) {
  409. fprintf(stderr, "Error: Vendor Information 2 (info2) too long.\n");
  410. exit(1);
  411. }
  412. }
  413. if (parsed_args.altinfo_given) {
  414. if (strlen(parsed_args.altinfo_arg) >= ALTTAGINFO_LEN) {
  415. fprintf(stderr, "Error: Vendor Information 1 (info1) too long.\n");
  416. exit(1);
  417. }
  418. }
  419. if (parsed_args.pad_given) {
  420. if (parsed_args.pad_arg < 0) {
  421. fprintf(stderr, "Error: pad size must be positive.\r");
  422. exit(1);
  423. }
  424. }
  425. flash_start = strtoul(parsed_args.flash_start_arg, NULL, 16);
  426. image_offset = strtoul(parsed_args.image_offset_arg, NULL, 16);
  427. block_size = strtoul(parsed_args.block_size_arg, NULL, 16);
  428. if (!parsed_args.kernel_file_has_header_flag) {
  429. load_address = strtoul(parsed_args.load_addr_arg, NULL, 16);
  430. entry = strtoul(parsed_args.entry_arg, NULL, 16);
  431. if (load_address == 0) {
  432. fprintf(stderr, "Error: Invalid value for load address\n");
  433. }
  434. if (entry == 0) {
  435. fprintf(stderr, "Error: Invalid value for entry\n");
  436. }
  437. }
  438. return tagfile(kernel, rootfs, bin, &parsed_args, flash_start, image_offset, block_size, load_address, entry);
  439. }