1 /* 2 * (C) Copyright 2008 Semihalf 3 * 4 * (C) Copyright 2000-2006 5 * Wolfgang Denk, DENX Software Engineering, wd@denx.de. 6 * 7 * See file CREDITS for list of people who contributed to this 8 * project. 9 * 10 * This program is free software; you can redistribute it and/or 11 * modify it under the terms of the GNU General Public License as 12 * published by the Free Software Foundation; either version 2 of 13 * the License, or (at your option) any later version. 14 * 15 * This program is distributed in the hope that it will be useful, 16 * but WITHOUT ANY WARRANTY; without even the implied warranty of 17 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the 18 * GNU General Public License for more details. 19 * 20 * You should have received a copy of the GNU General Public License 21 * along with this program; if not, write to the Free Software 22 * Foundation, Inc., 59 Temple Place, Suite 330, Boston, 23 * MA 02111-1307 USA 24 */ 25 26 #define DEBUG 27 28 #ifndef USE_HOSTCC 29 #include <common.h> 30 #include <watchdog.h> 31 32 #ifdef CONFIG_SHOW_BOOT_PROGRESS 33 #include <status_led.h> 34 #endif 35 36 #ifdef CONFIG_HAS_DATAFLASH 37 #include <dataflash.h> 38 #endif 39 40 #ifdef CONFIG_LOGBUFFER 41 #include <logbuff.h> 42 #endif 43 44 #if defined(CONFIG_TIMESTAMP) || defined(CONFIG_CMD_DATE) 45 #include <rtc.h> 46 #endif 47 48 #if defined(CONFIG_FIT) 49 #include <fdt.h> 50 #include <libfdt.h> 51 #include <fdt_support.h> 52 #endif 53 54 extern int do_reset (cmd_tbl_t *cmdtp, int flag, int argc, char *argv[]); 55 56 #ifdef CONFIG_CMD_BDI 57 extern int do_bdinfo(cmd_tbl_t *cmdtp, int flag, int argc, char *argv[]); 58 #endif 59 60 DECLARE_GLOBAL_DATA_PTR; 61 #else 62 #include "mkimage.h" 63 #endif /* USE_HOSTCC*/ 64 65 #include <image.h> 66 67 unsigned long crc32 (unsigned long, const unsigned char *, unsigned int); 68 69 int image_check_hcrc (image_header_t *hdr) 70 { 71 ulong hcrc; 72 ulong len = image_get_header_size (); 73 image_header_t header; 74 75 /* Copy header so we can blank CRC field for re-calculation */ 76 memmove (&header, (char *)hdr, image_get_header_size ()); 77 image_set_hcrc (&header, 0); 78 79 hcrc = crc32 (0, (unsigned char *)&header, len); 80 81 return (hcrc == image_get_hcrc (hdr)); 82 } 83 84 int image_check_dcrc (image_header_t *hdr) 85 { 86 ulong data = image_get_data (hdr); 87 ulong len = image_get_data_size (hdr); 88 ulong dcrc = crc32 (0, (unsigned char *)data, len); 89 90 return (dcrc == image_get_dcrc (hdr)); 91 } 92 93 #ifndef USE_HOSTCC 94 int image_check_dcrc_wd (image_header_t *hdr, ulong chunksz) 95 { 96 ulong dcrc = 0; 97 ulong len = image_get_data_size (hdr); 98 ulong data = image_get_data (hdr); 99 100 #if defined(CONFIG_HW_WATCHDOG) || defined(CONFIG_WATCHDOG) 101 ulong cdata = data; 102 ulong edata = cdata + len; 103 104 while (cdata < edata) { 105 ulong chunk = edata - cdata; 106 107 if (chunk > chunksz) 108 chunk = chunksz; 109 dcrc = crc32 (dcrc, (unsigned char *)cdata, chunk); 110 cdata += chunk; 111 112 WATCHDOG_RESET (); 113 } 114 #else 115 dcrc = crc32 (0, (unsigned char *)data, len); 116 #endif 117 118 return (dcrc == image_get_dcrc (hdr)); 119 } 120 121 int getenv_verify (void) 122 { 123 char *s = getenv ("verify"); 124 return (s && (*s == 'n')) ? 0 : 1; 125 } 126 127 void memmove_wd (void *to, void *from, size_t len, ulong chunksz) 128 { 129 #if defined(CONFIG_HW_WATCHDOG) || defined(CONFIG_WATCHDOG) 130 while (len > 0) { 131 size_t tail = (len > chunksz) ? chunksz : len; 132 WATCHDOG_RESET (); 133 memmove (to, from, tail); 134 to += tail; 135 from += tail; 136 len -= tail; 137 } 138 #else /* !(CONFIG_HW_WATCHDOG || CONFIG_WATCHDOG) */ 139 memmove (to, from, len); 140 #endif /* CONFIG_HW_WATCHDOG || CONFIG_WATCHDOG */ 141 } 142 #endif /* USE_HOSTCC */ 143 144 /** 145 * image_multi_count - get component (sub-image) count 146 * @hdr: pointer to the header of the multi component image 147 * 148 * image_multi_count() returns number of components in a multi 149 * component image. 150 * 151 * Note: no checking of the image type is done, caller must pass 152 * a valid multi component image. 153 * 154 * returns: 155 * number of components 156 */ 157 ulong image_multi_count (image_header_t *hdr) 158 { 159 ulong i, count = 0; 160 ulong *size; 161 162 /* get start of the image payload, which in case of multi 163 * component images that points to a table of component sizes */ 164 size = (ulong *)image_get_data (hdr); 165 166 /* count non empty slots */ 167 for (i = 0; size[i]; ++i) 168 count++; 169 170 return count; 171 } 172 173 /** 174 * image_multi_getimg - get component data address and size 175 * @hdr: pointer to the header of the multi component image 176 * @idx: index of the requested component 177 * @data: pointer to a ulong variable, will hold component data address 178 * @len: pointer to a ulong variable, will hold component size 179 * 180 * image_multi_getimg() returns size and data address for the requested 181 * component in a multi component image. 182 * 183 * Note: no checking of the image type is done, caller must pass 184 * a valid multi component image. 185 * 186 * returns: 187 * data address and size of the component, if idx is valid 188 * 0 in data and len, if idx is out of range 189 */ 190 void image_multi_getimg (image_header_t *hdr, ulong idx, 191 ulong *data, ulong *len) 192 { 193 int i; 194 ulong *size; 195 ulong offset, tail, count, img_data; 196 197 /* get number of component */ 198 count = image_multi_count (hdr); 199 200 /* get start of the image payload, which in case of multi 201 * component images that points to a table of component sizes */ 202 size = (ulong *)image_get_data (hdr); 203 204 /* get address of the proper component data start, which means 205 * skipping sizes table (add 1 for last, null entry) */ 206 img_data = image_get_data (hdr) + (count + 1) * sizeof (ulong); 207 208 if (idx < count) { 209 *len = size[idx]; 210 offset = 0; 211 tail = 0; 212 213 /* go over all indices preceding requested component idx */ 214 for (i = 0; i < idx; i++) { 215 /* add up i-th component size */ 216 offset += size[i]; 217 218 /* add up alignment for i-th component */ 219 tail += (4 - size[i] % 4); 220 } 221 222 /* calculate idx-th component data address */ 223 *data = img_data + offset + tail; 224 } else { 225 *len = 0; 226 *data = 0; 227 } 228 } 229 230 #ifndef USE_HOSTCC 231 const char* image_get_os_name (uint8_t os) 232 { 233 const char *name; 234 235 switch (os) { 236 case IH_OS_INVALID: name = "Invalid OS"; break; 237 case IH_OS_NETBSD: name = "NetBSD"; break; 238 case IH_OS_LINUX: name = "Linux"; break; 239 case IH_OS_VXWORKS: name = "VxWorks"; break; 240 case IH_OS_QNX: name = "QNX"; break; 241 case IH_OS_U_BOOT: name = "U-Boot"; break; 242 case IH_OS_RTEMS: name = "RTEMS"; break; 243 #ifdef CONFIG_ARTOS 244 case IH_OS_ARTOS: name = "ARTOS"; break; 245 #endif 246 #ifdef CONFIG_LYNXKDI 247 case IH_OS_LYNXOS: name = "LynxOS"; break; 248 #endif 249 default: name = "Unknown OS"; break; 250 } 251 252 return name; 253 } 254 255 const char* image_get_arch_name (uint8_t arch) 256 { 257 const char *name; 258 259 switch (arch) { 260 case IH_ARCH_INVALID: name = "Invalid Architecture"; break; 261 case IH_ARCH_ALPHA: name = "Alpha"; break; 262 case IH_ARCH_ARM: name = "ARM"; break; 263 case IH_ARCH_AVR32: name = "AVR32"; break; 264 case IH_ARCH_BLACKFIN: name = "Blackfin"; break; 265 case IH_ARCH_I386: name = "Intel x86"; break; 266 case IH_ARCH_IA64: name = "IA64"; break; 267 case IH_ARCH_M68K: name = "M68K"; break; 268 case IH_ARCH_MICROBLAZE:name = "Microblaze"; break; 269 case IH_ARCH_MIPS64: name = "MIPS 64 Bit"; break; 270 case IH_ARCH_MIPS: name = "MIPS"; break; 271 case IH_ARCH_NIOS2: name = "Nios-II"; break; 272 case IH_ARCH_NIOS: name = "Nios"; break; 273 case IH_ARCH_PPC: name = "PowerPC"; break; 274 case IH_ARCH_S390: name = "IBM S390"; break; 275 case IH_ARCH_SH: name = "SuperH"; break; 276 case IH_ARCH_SPARC64: name = "SPARC 64 Bit"; break; 277 case IH_ARCH_SPARC: name = "SPARC"; break; 278 default: name = "Unknown Architecture"; break; 279 } 280 281 return name; 282 } 283 284 const char* image_get_type_name (uint8_t type) 285 { 286 const char *name; 287 288 switch (type) { 289 case IH_TYPE_INVALID: name = "Invalid Image"; break; 290 case IH_TYPE_STANDALONE:name = "Standalone Program"; break; 291 case IH_TYPE_KERNEL: name = "Kernel Image"; break; 292 case IH_TYPE_RAMDISK: name = "RAMDisk Image"; break; 293 case IH_TYPE_MULTI: name = "Multi-File Image"; break; 294 case IH_TYPE_FIRMWARE: name = "Firmware"; break; 295 case IH_TYPE_SCRIPT: name = "Script"; break; 296 case IH_TYPE_FLATDT: name = "Flat Device Tree"; break; 297 default: name = "Unknown Image"; break; 298 } 299 300 return name; 301 } 302 303 const char* image_get_comp_name (uint8_t comp) 304 { 305 const char *name; 306 307 switch (comp) { 308 case IH_COMP_NONE: name = "uncompressed"; break; 309 case IH_COMP_GZIP: name = "gzip compressed"; break; 310 case IH_COMP_BZIP2: name = "bzip2 compressed"; break; 311 default: name = "unknown compression"; break; 312 } 313 314 return name; 315 } 316 317 static void image_print_type (image_header_t *hdr) 318 { 319 const char *os, *arch, *type, *comp; 320 321 os = image_get_os_name (image_get_os (hdr)); 322 arch = image_get_arch_name (image_get_arch (hdr)); 323 type = image_get_type_name (image_get_type (hdr)); 324 comp = image_get_comp_name (image_get_comp (hdr)); 325 326 printf ("%s %s %s (%s)", arch, os, type, comp); 327 } 328 329 void image_print_contents (image_header_t *hdr) 330 { 331 #if defined(CONFIG_TIMESTAMP) || defined(CONFIG_CMD_DATE) 332 time_t timestamp = (time_t)image_get_time (hdr); 333 struct rtc_time tm; 334 #endif 335 336 printf (" Image Name: %.*s\n", IH_NMLEN, image_get_name (hdr)); 337 338 #if defined(CONFIG_TIMESTAMP) || defined(CONFIG_CMD_DATE) 339 to_tm (timestamp, &tm); 340 printf (" Created: %4d-%02d-%02d %2d:%02d:%02d UTC\n", 341 tm.tm_year, tm.tm_mon, tm.tm_mday, 342 tm.tm_hour, tm.tm_min, tm.tm_sec); 343 #endif 344 puts (" Image Type: "); 345 image_print_type (hdr); 346 347 printf ("\n Data Size: %d Bytes = ", image_get_data_size (hdr)); 348 print_size (image_get_data_size (hdr), "\n"); 349 printf (" Load Address: %08x\n" 350 " Entry Point: %08x\n", 351 image_get_load (hdr), image_get_ep (hdr)); 352 353 if (image_check_type (hdr, IH_TYPE_MULTI)) { 354 int i; 355 ulong data, len; 356 ulong count = image_multi_count (hdr); 357 358 puts (" Contents:\n"); 359 for (i = 0; i < count; i++) { 360 image_multi_getimg (hdr, i, &data, &len); 361 printf (" Image %d: %8ld Bytes = ", i, len); 362 print_size (len, "\n"); 363 } 364 } 365 } 366 367 /** 368 * gen_image_get_format - get image format type 369 * @img_addr: image start address 370 * 371 * gen_image_get_format() checks whether provided address points to a valid 372 * legacy or FIT image. 373 * 374 * returns: 375 * image format type or IMAGE_FORMAT_INVALID if no image is present 376 */ 377 int gen_image_get_format (void *img_addr) 378 { 379 ulong format = IMAGE_FORMAT_INVALID; 380 image_header_t *hdr; 381 #if defined(CONFIG_FIT) 382 char *fit_hdr; 383 #endif 384 385 hdr = (image_header_t *)img_addr; 386 if (image_check_magic(hdr)) 387 format = IMAGE_FORMAT_LEGACY; 388 #if defined(CONFIG_FIT) 389 else { 390 fit_hdr = (char *)img_addr; 391 if (fdt_check_header (fit_hdr) == 0) 392 format = IMAGE_FORMAT_FIT; 393 } 394 #endif 395 396 return format; 397 } 398 399 /** 400 * gen_get_image - get image from special storage (if necessary) 401 * @img_addr: image start address 402 * 403 * gen_get_image() checks if provided image start adddress is located 404 * in a dataflash storage. If so, image is moved to a system RAM memory. 405 * 406 * returns: 407 * image start address after possible relocation from special storage 408 */ 409 ulong gen_get_image (ulong img_addr) 410 { 411 ulong ram_addr, h_size, d_size; 412 413 h_size = image_get_header_size (); 414 #if defined(CONFIG_FIT) 415 if (sizeof(struct fdt_header) > h_size) 416 h_size = sizeof(struct fdt_header); 417 #endif 418 419 #ifdef CONFIG_HAS_DATAFLASH 420 if (addr_dataflash (img_addr)){ 421 ram_addr = CFG_LOAD_ADDR; 422 debug (" Reading image header from dataflash address " 423 "%08lx to RAM address %08lx\n", img_addr, ram_addr); 424 read_dataflash (img_addr, h_size, (char *)ram_addr); 425 } else 426 #endif 427 return img_addr; 428 429 ram_addr = img_addr; 430 431 switch (gen_image_get_format ((void *)ram_addr)) { 432 case IMAGE_FORMAT_LEGACY: 433 d_size = image_get_data_size ((image_header_t *)ram_addr); 434 debug (" Legacy format image found at 0x%08lx, size 0x%08lx\n", 435 ram_addr, d_size); 436 break; 437 #if defined(CONFIG_FIT) 438 case IMAGE_FORMAT_FIT: 439 d_size = fdt_totalsize((void *)ram_addr) - h_size; 440 debug (" FIT/FDT format image found at 0x%08lx, size 0x%08lx\n", 441 ram_addr, d_size); 442 443 break; 444 #endif 445 default: 446 printf (" No valid image found at 0x%08lx\n", img_addr); 447 return ram_addr; 448 } 449 450 #ifdef CONFIG_HAS_DATAFLASH 451 if (addr_dataflash (img_addr)) { 452 debug (" Reading image remaining data from dataflash address " 453 "%08lx to RAM address %08lx\n", img_addr + h_size, 454 ram_addr + h_size); 455 456 read_dataflash (img_addr + h_size, d_size, 457 (char *)(ram_addr + h_size)); 458 } 459 #endif 460 461 return ram_addr; 462 } 463 464 /** 465 * image_get_ramdisk - get and verify ramdisk image 466 * @cmdtp: command table pointer 467 * @flag: command flag 468 * @argc: command argument count 469 * @argv: command argument list 470 * @rd_addr: ramdisk image start address 471 * @arch: expected ramdisk architecture 472 * @verify: checksum verification flag 473 * 474 * image_get_ramdisk() returns a pointer to the verified ramdisk image 475 * header. Routine receives image start address and expected architecture 476 * flag. Verification done covers data and header integrity and os/type/arch 477 * fields checking. 478 * 479 * If dataflash support is enabled routine checks for dataflash addresses 480 * and handles required dataflash reads. 481 * 482 * returns: 483 * pointer to a ramdisk image header, if image was found and valid 484 * otherwise, board is reset 485 */ 486 image_header_t* image_get_ramdisk (cmd_tbl_t *cmdtp, int flag, 487 int argc, char *argv[], 488 ulong rd_addr, uint8_t arch, int verify) 489 { 490 image_header_t *rd_hdr; 491 492 show_boot_progress (9); 493 rd_hdr = (image_header_t *)rd_addr; 494 495 if (!image_check_magic (rd_hdr)) { 496 puts ("Bad Magic Number\n"); 497 show_boot_progress (-10); 498 do_reset (cmdtp, flag, argc, argv); 499 } 500 501 if (!image_check_hcrc (rd_hdr)) { 502 puts ("Bad Header Checksum\n"); 503 show_boot_progress (-11); 504 do_reset (cmdtp, flag, argc, argv); 505 } 506 507 show_boot_progress (10); 508 image_print_contents (rd_hdr); 509 510 if (verify) { 511 puts(" Verifying Checksum ... "); 512 if (!image_check_dcrc_wd (rd_hdr, CHUNKSZ)) { 513 puts ("Bad Data CRC\n"); 514 show_boot_progress (-12); 515 do_reset (cmdtp, flag, argc, argv); 516 } 517 puts("OK\n"); 518 } 519 520 show_boot_progress (11); 521 522 if (!image_check_os (rd_hdr, IH_OS_LINUX) || 523 !image_check_arch (rd_hdr, arch) || 524 !image_check_type (rd_hdr, IH_TYPE_RAMDISK)) { 525 printf ("No Linux %s Ramdisk Image\n", 526 image_get_arch_name(arch)); 527 show_boot_progress (-13); 528 do_reset (cmdtp, flag, argc, argv); 529 } 530 531 return rd_hdr; 532 } 533 534 /** 535 * get_ramdisk - main ramdisk handling routine 536 * @cmdtp: command table pointer 537 * @flag: command flag 538 * @argc: command argument count 539 * @argv: command argument list 540 * @images: pointer to the bootm images strcture 541 * @verify: checksum verification flag 542 * @arch: expected ramdisk architecture 543 * @rd_start: pointer to a ulong variable, will hold ramdisk start address 544 * @rd_end: pointer to a ulong variable, will hold ramdisk end 545 * 546 * get_ramdisk() is responsible for finding a valid ramdisk image. 547 * Curently supported are the following ramdisk sources: 548 * - multicomponent kernel/ramdisk image, 549 * - commandline provided address of decicated ramdisk image. 550 * 551 * returns: 552 * rd_start and rd_end are set to ramdisk start/end addresses if 553 * ramdisk image is found and valid 554 * rd_start and rd_end are set to 0 if no ramdisk exists 555 * board is reset if ramdisk image is found but corrupted 556 */ 557 void get_ramdisk (cmd_tbl_t *cmdtp, int flag, int argc, char *argv[], 558 bootm_headers_t *images, int verify, uint8_t arch, 559 ulong *rd_start, ulong *rd_end) 560 { 561 ulong rd_addr, rd_load; 562 ulong rd_data, rd_len; 563 image_header_t *rd_hdr; 564 #if defined(CONFIG_FIT) 565 void *fit_hdr; 566 const char *fit_uname_config = NULL; 567 const char *fit_uname_ramdisk = NULL; 568 ulong default_addr; 569 #endif 570 571 /* 572 * Look for a '-' which indicates to ignore the 573 * ramdisk argument 574 */ 575 if ((argc >= 3) && (strcmp(argv[2], "-") == 0)) { 576 debug ("## Skipping init Ramdisk\n"); 577 rd_len = rd_data = 0; 578 } else if (argc >= 3) { 579 #if defined(CONFIG_FIT) 580 /* 581 * If the init ramdisk comes from the FIT image and the FIT image 582 * address is omitted in the command line argument, try to use 583 * os FIT image address or default load address. 584 */ 585 if (images->fit_uname_os) 586 default_addr = (ulong)images->fit_hdr_os; 587 else 588 default_addr = load_addr; 589 590 if (fit_parse_conf (argv[2], default_addr, 591 &rd_addr, &fit_uname_config)) { 592 debug ("* ramdisk: config '%s' from image at 0x%08lx\n", 593 fit_uname_config, rd_addr); 594 } else if (fit_parse_subimage (argv[2], default_addr, 595 &rd_addr, &fit_uname_ramdisk)) { 596 debug ("* ramdisk: subimage '%s' from image at 0x%08lx\n", 597 fit_uname_ramdisk, rd_addr); 598 } else 599 #endif 600 { 601 rd_addr = simple_strtoul(argv[2], NULL, 16); 602 debug ("* ramdisk: cmdline image address = 0x%08lx\n", 603 rd_addr); 604 } 605 606 /* copy from dataflash if needed */ 607 printf ("## Loading init Ramdisk Image at %08lx ...\n", 608 rd_addr); 609 rd_addr = gen_get_image (rd_addr); 610 611 /* 612 * Check if there is an initrd image at the 613 * address provided in the second bootm argument 614 * check image type, for FIT images get FIT node. 615 */ 616 switch (gen_image_get_format ((void *)rd_addr)) { 617 case IMAGE_FORMAT_LEGACY: 618 619 debug ("* ramdisk: legacy format image\n"); 620 621 rd_hdr = image_get_ramdisk (cmdtp, flag, argc, argv, 622 rd_addr, arch, verify); 623 624 rd_data = image_get_data (rd_hdr); 625 rd_len = image_get_data_size (rd_hdr); 626 rd_load = image_get_load (rd_hdr); 627 break; 628 #if defined(CONFIG_FIT) 629 case IMAGE_FORMAT_FIT: 630 fit_hdr = (void *)rd_addr; 631 debug ("* ramdisk: FIT format image\n"); 632 fit_unsupported_reset ("ramdisk"); 633 do_reset (cmdtp, flag, argc, argv); 634 #endif 635 default: 636 printf ("Wrong Image Format for %s command\n", 637 cmdtp->name); 638 rd_data = rd_len = 0; 639 } 640 641 #if defined(CONFIG_B2) || defined(CONFIG_EVB4510) || defined(CONFIG_ARMADILLO) 642 /* 643 * We need to copy the ramdisk to SRAM to let Linux boot 644 */ 645 if (rd_data) { 646 memmove ((void *)rd_load, (uchar *)rd_data, rd_len); 647 rd_data = rd_load; 648 } 649 #endif /* CONFIG_B2 || CONFIG_EVB4510 || CONFIG_ARMADILLO */ 650 651 } else if (images->legacy_hdr_valid && 652 image_check_type (images->legacy_hdr_os, IH_TYPE_MULTI)) { 653 /* 654 * Now check if we have a legacy mult-component image, 655 * get second entry data start address and len. 656 */ 657 show_boot_progress (13); 658 printf ("## Loading init Ramdisk from multi component " 659 "Image at %08lx ...\n", 660 (ulong)images->legacy_hdr_os); 661 662 image_multi_getimg (images->legacy_hdr_os, 1, &rd_data, &rd_len); 663 } else { 664 /* 665 * no initrd image 666 */ 667 show_boot_progress (14); 668 rd_len = rd_data = 0; 669 } 670 671 if (!rd_data) { 672 debug ("## No init Ramdisk\n"); 673 *rd_start = 0; 674 *rd_end = 0; 675 } else { 676 *rd_start = rd_data; 677 *rd_end = rd_data + rd_len; 678 } 679 debug (" ramdisk start = 0x%08lx, ramdisk end = 0x%08lx\n", 680 *rd_start, *rd_end); 681 } 682 683 #if defined(CONFIG_PPC) || defined(CONFIG_M68K) 684 /** 685 * ramdisk_high - relocate init ramdisk 686 * @rd_data: ramdisk data start address 687 * @rd_len: ramdisk data length 688 * @kbd: kernel board info copy (within BOOTMAPSZ boundary) 689 * @sp_limit: stack pointer limit (including BOOTMAPSZ) 690 * @sp: current stack pointer 691 * @initrd_start: pointer to a ulong variable, will hold final init ramdisk 692 * start address (after possible relocation) 693 * @initrd_end: pointer to a ulong variable, will hold final init ramdisk 694 * end address (after possible relocation) 695 * 696 * ramdisk_high() takes a relocation hint from "initrd_high" environement 697 * variable and if requested ramdisk data is moved to a specified location. 698 * 699 * returns: 700 * - initrd_start and initrd_end are set to final (after relocation) ramdisk 701 * start/end addresses if ramdisk image start and len were provided 702 * otherwise set initrd_start and initrd_end set to zeros 703 * - returns new allc_current, next free address below BOOTMAPSZ 704 */ 705 ulong ramdisk_high (ulong alloc_current, ulong rd_data, ulong rd_len, 706 bd_t *kbd, ulong sp_limit, ulong sp, 707 ulong *initrd_start, ulong *initrd_end) 708 { 709 char *s; 710 ulong initrd_high; 711 int initrd_copy_to_ram = 1; 712 ulong new_alloc_current = alloc_current; 713 714 if ((s = getenv ("initrd_high")) != NULL) { 715 /* a value of "no" or a similar string will act like 0, 716 * turning the "load high" feature off. This is intentional. 717 */ 718 initrd_high = simple_strtoul (s, NULL, 16); 719 if (initrd_high == ~0) 720 initrd_copy_to_ram = 0; 721 } else { 722 /* not set, no restrictions to load high */ 723 initrd_high = ~0; 724 } 725 726 #ifdef CONFIG_LOGBUFFER 727 /* Prevent initrd from overwriting logbuffer */ 728 if (initrd_high < (kbd->bi_memsize - LOGBUFF_LEN - LOGBUFF_OVERHEAD)) 729 initrd_high = kbd->bi_memsize - LOGBUFF_LEN - LOGBUFF_OVERHEAD; 730 debug ("## Logbuffer at 0x%08lx ", kbd->bi_memsize - LOGBUFF_LEN); 731 #endif 732 debug ("## initrd_high = 0x%08lx, copy_to_ram = %d\n", 733 initrd_high, initrd_copy_to_ram); 734 735 if (rd_data) { 736 if (!initrd_copy_to_ram) { /* zero-copy ramdisk support */ 737 debug (" in-place initrd\n"); 738 *initrd_start = rd_data; 739 *initrd_end = rd_data + rd_len; 740 } else { 741 new_alloc_current = alloc_current - rd_len; 742 *initrd_start = new_alloc_current; 743 *initrd_start &= ~(4096 - 1); /* align on page */ 744 745 if (initrd_high) { 746 ulong nsp; 747 748 /* 749 * the inital ramdisk does not need to be within 750 * CFG_BOOTMAPSZ as it is not accessed until after 751 * the mm system is initialised. 752 * 753 * do the stack bottom calculation again and see if 754 * the initrd will fit just below the monitor stack 755 * bottom without overwriting the area allocated 756 * for command line args and board info. 757 */ 758 nsp = sp; 759 nsp -= 2048; /* just to be sure */ 760 nsp &= ~0xF; 761 762 if (nsp > initrd_high) /* limit as specified */ 763 nsp = initrd_high; 764 765 nsp -= rd_len; 766 nsp &= ~(4096 - 1); /* align on page */ 767 768 if (nsp >= sp_limit) { 769 *initrd_start = nsp; 770 new_alloc_current = alloc_current; 771 } 772 } 773 774 show_boot_progress (12); 775 776 *initrd_end = *initrd_start + rd_len; 777 printf (" Loading Ramdisk to %08lx, end %08lx ... ", 778 *initrd_start, *initrd_end); 779 780 memmove_wd((void *)*initrd_start, 781 (void *)rd_data, rd_len, CHUNKSZ); 782 783 puts ("OK\n"); 784 } 785 } else { 786 *initrd_start = 0; 787 *initrd_end = 0; 788 } 789 debug (" ramdisk load start = 0x%08lx, ramdisk load end = 0x%08lx\n", 790 *initrd_start, *initrd_end); 791 792 return new_alloc_current; 793 } 794 795 /** 796 * get_boot_sp_limit - calculate stack pointer limit 797 * @sp: current stack pointer 798 * 799 * get_boot_sp_limit() takes current stack pointer adrress and calculates 800 * stack pointer limit, below which kernel boot data (cmdline, board info, 801 * etc.) will be allocated. 802 * 803 * returns: 804 * stack pointer limit 805 */ 806 ulong get_boot_sp_limit(ulong sp) 807 { 808 ulong sp_limit = sp; 809 810 sp_limit -= 2048; /* just to be sure */ 811 812 /* make sure sp_limit is within kernel mapped space */ 813 if (sp_limit > CFG_BOOTMAPSZ) 814 sp_limit = CFG_BOOTMAPSZ; 815 sp_limit &= ~0xF; 816 817 return sp_limit; 818 } 819 820 /** 821 * get_boot_cmdline - allocate and initialize kernel cmdline 822 * @alloc_current: current boot allocation address (counting down 823 * from sp_limit) 824 * @cmd_start: pointer to a ulong variable, will hold cmdline start 825 * @cmd_end: pointer to a ulong variable, will hold cmdline end 826 * 827 * get_boot_cmdline() allocates space for kernel command line below 828 * provided alloc_current address. If "bootargs" U-boot environemnt 829 * variable is present its contents is copied to allocated kernel 830 * command line. 831 * 832 * returns: 833 * alloc_current after cmdline allocation 834 */ 835 ulong get_boot_cmdline (ulong alloc_current, ulong *cmd_start, ulong *cmd_end) 836 { 837 char *cmdline; 838 char *s; 839 840 cmdline = (char *)((alloc_current - CFG_BARGSIZE) & ~0xF); 841 842 if ((s = getenv("bootargs")) == NULL) 843 s = ""; 844 845 strcpy(cmdline, s); 846 847 *cmd_start = (ulong) & cmdline[0]; 848 *cmd_end = *cmd_start + strlen(cmdline); 849 850 debug ("## cmdline at 0x%08lx ... 0x%08lx\n", *cmd_start, *cmd_end); 851 852 return (ulong)cmdline; 853 } 854 855 /** 856 * get_boot_kbd - allocate and initialize kernel copy of board info 857 * @alloc_current: current boot allocation address (counting down 858 * from sp_limit) 859 * @kbd: double pointer to board info data 860 * 861 * get_boot_kbd() - allocates space for kernel copy of board info data. 862 * Space is allocated below provided alloc_current address and kernel 863 * board info is initialized with the current u-boot board info data. 864 * 865 * returns: 866 * alloc_current after kbd allocation 867 */ 868 ulong get_boot_kbd (ulong alloc_current, bd_t **kbd) 869 { 870 *kbd = (bd_t *) (((ulong)alloc_current - sizeof(bd_t)) & ~0xF); 871 **kbd = *(gd->bd); 872 873 debug ("## kernel board info at 0x%08lx\n", (ulong)*kbd); 874 875 #if defined(DEBUG) && defined(CONFIG_CMD_BDI) 876 do_bdinfo(NULL, 0, 0, NULL); 877 #endif 878 879 return (ulong)*kbd; 880 } 881 #endif /* CONFIG_PPC || CONFIG_M68K */ 882 883 #if defined(CONFIG_FIT) 884 /*****************************************************************************/ 885 /* New uImage format routines */ 886 /*****************************************************************************/ 887 static int fit_parse_spec (const char *spec, char sepc, ulong addr_curr, 888 ulong *addr, const char **name) 889 { 890 const char *sep; 891 892 *addr = addr_curr; 893 *name = NULL; 894 895 sep = strchr (spec, sepc); 896 if (sep) { 897 if (sep - spec > 0) 898 *addr = simple_strtoul (spec, NULL, 16); 899 900 *name = sep + 1; 901 return 1; 902 } 903 904 return 0; 905 } 906 907 /** 908 * fit_parse_conf - parse FIT configuration spec 909 * @spec: input string, containing configuration spec 910 * @add_curr: current image address (to be used as a possible default) 911 * @addr: pointer to a ulong variable, will hold FIT image address of a given 912 * configuration 913 * @conf_name double pointer to a char, will hold pointer to a configuration 914 * unit name 915 * 916 * fit_parse_conf() expects configuration spec in the for of [<addr>]#<conf>, 917 * where <addr> is a FIT image address that contains configuration 918 * with a <conf> unit name. 919 * 920 * Address part is optional, and if omitted default add_curr will 921 * be used instead. 922 * 923 * returns: 924 * 1 if spec is a valid configuration string, 925 * addr and conf_name are set accordingly 926 * 0 otherwise 927 */ 928 inline int fit_parse_conf (const char *spec, ulong addr_curr, 929 ulong *addr, const char **conf_name) 930 { 931 return fit_parse_spec (spec, '#', addr_curr, addr, conf_name); 932 } 933 934 /** 935 * fit_parse_subimage - parse FIT subimage spec 936 * @spec: input string, containing subimage spec 937 * @add_curr: current image address (to be used as a possible default) 938 * @addr: pointer to a ulong variable, will hold FIT image address of a given 939 * subimage 940 * @image_name: double pointer to a char, will hold pointer to a subimage name 941 * 942 * fit_parse_subimage() expects subimage spec in the for of 943 * [<addr>]:<subimage>, where <addr> is a FIT image address that contains 944 * subimage with a <subimg> unit name. 945 * 946 * Address part is optional, and if omitted default add_curr will 947 * be used instead. 948 * 949 * returns: 950 * 1 if spec is a valid subimage string, 951 * addr and image_name are set accordingly 952 * 0 otherwise 953 */ 954 inline int fit_parse_subimage (const char *spec, ulong addr_curr, 955 ulong *addr, const char **image_name) 956 { 957 return fit_parse_spec (spec, ':', addr_curr, addr, image_name); 958 } 959 960 #endif /* CONFIG_FIT */ 961 962 #endif /* USE_HOSTCC */ 963