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1 /*
2 * (C) Copyright 2008 Semihalf
3 *
4 * (C) Copyright 2000-2006
5 * Wolfgang Denk, DENX Software Engineering, wd@denx.de.
6 *
7 * SPDX-License-Identifier: GPL-2.0+
8 */
9
10 #ifndef USE_HOSTCC
11 #include <common.h>
12 #include <watchdog.h>
13
14 #ifdef CONFIG_SHOW_BOOT_PROGRESS
15 #include <status_led.h>
16 #endif
17
18 #ifdef CONFIG_HAS_DATAFLASH
19 #include <dataflash.h>
20 #endif
21
22 #ifdef CONFIG_LOGBUFFER
23 #include <logbuff.h>
24 #endif
25
26 #include <rtc.h>
27
28 #include <environment.h>
29 #include <image.h>
30 #include <mapmem.h>
31
32 #if defined(CONFIG_FIT) || defined(CONFIG_OF_LIBFDT)
33 #include <libfdt.h>
34 #include <fdt_support.h>
35 #endif
36
37 #include <u-boot/md5.h>
38 #include <u-boot/sha1.h>
39 #include <asm/errno.h>
40 #include <asm/io.h>
41
42 #ifdef CONFIG_CMD_BDI
43 extern int do_bdinfo(cmd_tbl_t *cmdtp, int flag, int argc, char * const argv[]);
44 #endif
45
46 DECLARE_GLOBAL_DATA_PTR;
47
48 #if defined(CONFIG_IMAGE_FORMAT_LEGACY)
49 static const image_header_t *image_get_ramdisk(ulong rd_addr, uint8_t arch,
50 int verify);
51 #endif
52 #else
53 #include "mkimage.h"
54 #include <u-boot/md5.h>
55 #include <time.h>
56 #include <image.h>
57
58 #ifndef __maybe_unused
59 # define __maybe_unused /* unimplemented */
60 #endif
61 #endif /* !USE_HOSTCC*/
62
63 #include <u-boot/crc.h>
64
65 #ifndef CONFIG_SYS_BARGSIZE
66 #define CONFIG_SYS_BARGSIZE 512
67 #endif
68
69 static const table_entry_t uimage_arch[] = {
70 { IH_ARCH_INVALID, NULL, "Invalid ARCH", },
71 { IH_ARCH_ALPHA, "alpha", "Alpha", },
72 { IH_ARCH_ARM, "arm", "ARM", },
73 { IH_ARCH_I386, "x86", "Intel x86", },
74 { IH_ARCH_IA64, "ia64", "IA64", },
75 { IH_ARCH_M68K, "m68k", "M68K", },
76 { IH_ARCH_MICROBLAZE, "microblaze", "MicroBlaze", },
77 { IH_ARCH_MIPS, "mips", "MIPS", },
78 { IH_ARCH_MIPS64, "mips64", "MIPS 64 Bit", },
79 { IH_ARCH_NIOS2, "nios2", "NIOS II", },
80 { IH_ARCH_PPC, "powerpc", "PowerPC", },
81 { IH_ARCH_PPC, "ppc", "PowerPC", },
82 { IH_ARCH_S390, "s390", "IBM S390", },
83 { IH_ARCH_SH, "sh", "SuperH", },
84 { IH_ARCH_SPARC, "sparc", "SPARC", },
85 { IH_ARCH_SPARC64, "sparc64", "SPARC 64 Bit", },
86 { IH_ARCH_BLACKFIN, "blackfin", "Blackfin", },
87 { IH_ARCH_AVR32, "avr32", "AVR32", },
88 { IH_ARCH_NDS32, "nds32", "NDS32", },
89 { IH_ARCH_OPENRISC, "or1k", "OpenRISC 1000",},
90 { IH_ARCH_SANDBOX, "sandbox", "Sandbox", },
91 { IH_ARCH_ARM64, "arm64", "AArch64", },
92 { IH_ARCH_ARC, "arc", "ARC", },
93 { IH_ARCH_X86_64, "x86_64", "AMD x86_64", },
94 { -1, "", "", },
95 };
96
97 static const table_entry_t uimage_os[] = {
98 { IH_OS_INVALID, NULL, "Invalid OS", },
99 { IH_OS_LINUX, "linux", "Linux", },
100 #if defined(CONFIG_LYNXKDI) || defined(USE_HOSTCC)
101 { IH_OS_LYNXOS, "lynxos", "LynxOS", },
102 #endif
103 { IH_OS_NETBSD, "netbsd", "NetBSD", },
104 { IH_OS_OSE, "ose", "Enea OSE", },
105 { IH_OS_PLAN9, "plan9", "Plan 9", },
106 { IH_OS_RTEMS, "rtems", "RTEMS", },
107 { IH_OS_U_BOOT, "u-boot", "U-Boot", },
108 { IH_OS_VXWORKS, "vxworks", "VxWorks", },
109 #if defined(CONFIG_CMD_ELF) || defined(USE_HOSTCC)
110 { IH_OS_QNX, "qnx", "QNX", },
111 #endif
112 #if defined(CONFIG_INTEGRITY) || defined(USE_HOSTCC)
113 { IH_OS_INTEGRITY,"integrity", "INTEGRITY", },
114 #endif
115 #ifdef USE_HOSTCC
116 { IH_OS_4_4BSD, "4_4bsd", "4_4BSD", },
117 { IH_OS_DELL, "dell", "Dell", },
118 { IH_OS_ESIX, "esix", "Esix", },
119 { IH_OS_FREEBSD, "freebsd", "FreeBSD", },
120 { IH_OS_IRIX, "irix", "Irix", },
121 { IH_OS_NCR, "ncr", "NCR", },
122 { IH_OS_OPENBSD, "openbsd", "OpenBSD", },
123 { IH_OS_PSOS, "psos", "pSOS", },
124 { IH_OS_SCO, "sco", "SCO", },
125 { IH_OS_SOLARIS, "solaris", "Solaris", },
126 { IH_OS_SVR4, "svr4", "SVR4", },
127 #endif
128 #if defined(CONFIG_BOOTM_OPENRTOS) || defined(USE_HOSTCC)
129 { IH_OS_OPENRTOS, "openrtos", "OpenRTOS", },
130 #endif
131
132 { -1, "", "", },
133 };
134
135 static const table_entry_t uimage_type[] = {
136 { IH_TYPE_AISIMAGE, "aisimage", "Davinci AIS image",},
137 { IH_TYPE_FILESYSTEM, "filesystem", "Filesystem Image", },
138 { IH_TYPE_FIRMWARE, "firmware", "Firmware", },
139 { IH_TYPE_FLATDT, "flat_dt", "Flat Device Tree", },
140 { IH_TYPE_GPIMAGE, "gpimage", "TI Keystone SPL Image",},
141 { IH_TYPE_KERNEL, "kernel", "Kernel Image", },
142 { IH_TYPE_KERNEL_NOLOAD, "kernel_noload", "Kernel Image (no loading done)", },
143 { IH_TYPE_KWBIMAGE, "kwbimage", "Kirkwood Boot Image",},
144 { IH_TYPE_IMXIMAGE, "imximage", "Freescale i.MX Boot Image",},
145 { IH_TYPE_INVALID, NULL, "Invalid Image", },
146 { IH_TYPE_MULTI, "multi", "Multi-File Image", },
147 { IH_TYPE_OMAPIMAGE, "omapimage", "TI OMAP SPL With GP CH",},
148 { IH_TYPE_PBLIMAGE, "pblimage", "Freescale PBL Boot Image",},
149 { IH_TYPE_RAMDISK, "ramdisk", "RAMDisk Image", },
150 { IH_TYPE_SCRIPT, "script", "Script", },
151 { IH_TYPE_SOCFPGAIMAGE, "socfpgaimage", "Altera SOCFPGA preloader",},
152 { IH_TYPE_STANDALONE, "standalone", "Standalone Program", },
153 { IH_TYPE_UBLIMAGE, "ublimage", "Davinci UBL image",},
154 { IH_TYPE_MXSIMAGE, "mxsimage", "Freescale MXS Boot Image",},
155 { IH_TYPE_ATMELIMAGE, "atmelimage", "ATMEL ROM-Boot Image",},
156 { IH_TYPE_X86_SETUP, "x86_setup", "x86 setup.bin", },
157 { IH_TYPE_LPC32XXIMAGE, "lpc32xximage", "LPC32XX Boot Image", },
158 { IH_TYPE_RKIMAGE, "rkimage", "Rockchip Boot Image" },
159 { IH_TYPE_RKSD, "rksd", "Rockchip SD Boot Image" },
160 { -1, "", "", },
161 };
162
163 static const table_entry_t uimage_comp[] = {
164 { IH_COMP_NONE, "none", "uncompressed", },
165 { IH_COMP_BZIP2, "bzip2", "bzip2 compressed", },
166 { IH_COMP_GZIP, "gzip", "gzip compressed", },
167 { IH_COMP_LZMA, "lzma", "lzma compressed", },
168 { IH_COMP_LZO, "lzo", "lzo compressed", },
169 { -1, "", "", },
170 };
171
172 /*****************************************************************************/
173 /* Legacy format routines */
174 /*****************************************************************************/
175 int image_check_hcrc(const image_header_t *hdr)
176 {
177 ulong hcrc;
178 ulong len = image_get_header_size();
179 image_header_t header;
180
181 /* Copy header so we can blank CRC field for re-calculation */
182 memmove(&header, (char *)hdr, image_get_header_size());
183 image_set_hcrc(&header, 0);
184
185 hcrc = crc32(0, (unsigned char *)&header, len);
186
187 return (hcrc == image_get_hcrc(hdr));
188 }
189
190 int image_check_dcrc(const image_header_t *hdr)
191 {
192 ulong data = image_get_data(hdr);
193 ulong len = image_get_data_size(hdr);
194 ulong dcrc = crc32_wd(0, (unsigned char *)data, len, CHUNKSZ_CRC32);
195
196 return (dcrc == image_get_dcrc(hdr));
197 }
198
199 /**
200 * image_multi_count - get component (sub-image) count
201 * @hdr: pointer to the header of the multi component image
202 *
203 * image_multi_count() returns number of components in a multi
204 * component image.
205 *
206 * Note: no checking of the image type is done, caller must pass
207 * a valid multi component image.
208 *
209 * returns:
210 * number of components
211 */
212 ulong image_multi_count(const image_header_t *hdr)
213 {
214 ulong i, count = 0;
215 uint32_t *size;
216
217 /* get start of the image payload, which in case of multi
218 * component images that points to a table of component sizes */
219 size = (uint32_t *)image_get_data(hdr);
220
221 /* count non empty slots */
222 for (i = 0; size[i]; ++i)
223 count++;
224
225 return count;
226 }
227
228 /**
229 * image_multi_getimg - get component data address and size
230 * @hdr: pointer to the header of the multi component image
231 * @idx: index of the requested component
232 * @data: pointer to a ulong variable, will hold component data address
233 * @len: pointer to a ulong variable, will hold component size
234 *
235 * image_multi_getimg() returns size and data address for the requested
236 * component in a multi component image.
237 *
238 * Note: no checking of the image type is done, caller must pass
239 * a valid multi component image.
240 *
241 * returns:
242 * data address and size of the component, if idx is valid
243 * 0 in data and len, if idx is out of range
244 */
245 void image_multi_getimg(const image_header_t *hdr, ulong idx,
246 ulong *data, ulong *len)
247 {
248 int i;
249 uint32_t *size;
250 ulong offset, count, img_data;
251
252 /* get number of component */
253 count = image_multi_count(hdr);
254
255 /* get start of the image payload, which in case of multi
256 * component images that points to a table of component sizes */
257 size = (uint32_t *)image_get_data(hdr);
258
259 /* get address of the proper component data start, which means
260 * skipping sizes table (add 1 for last, null entry) */
261 img_data = image_get_data(hdr) + (count + 1) * sizeof(uint32_t);
262
263 if (idx < count) {
264 *len = uimage_to_cpu(size[idx]);
265 offset = 0;
266
267 /* go over all indices preceding requested component idx */
268 for (i = 0; i < idx; i++) {
269 /* add up i-th component size, rounding up to 4 bytes */
270 offset += (uimage_to_cpu(size[i]) + 3) & ~3 ;
271 }
272
273 /* calculate idx-th component data address */
274 *data = img_data + offset;
275 } else {
276 *len = 0;
277 *data = 0;
278 }
279 }
280
281 static void image_print_type(const image_header_t *hdr)
282 {
283 const char __maybe_unused *os, *arch, *type, *comp;
284
285 os = genimg_get_os_name(image_get_os(hdr));
286 arch = genimg_get_arch_name(image_get_arch(hdr));
287 type = genimg_get_type_name(image_get_type(hdr));
288 comp = genimg_get_comp_name(image_get_comp(hdr));
289
290 printf("%s %s %s (%s)\n", arch, os, type, comp);
291 }
292
293 /**
294 * image_print_contents - prints out the contents of the legacy format image
295 * @ptr: pointer to the legacy format image header
296 * @p: pointer to prefix string
297 *
298 * image_print_contents() formats a multi line legacy image contents description.
299 * The routine prints out all header fields followed by the size/offset data
300 * for MULTI/SCRIPT images.
301 *
302 * returns:
303 * no returned results
304 */
305 void image_print_contents(const void *ptr)
306 {
307 const image_header_t *hdr = (const image_header_t *)ptr;
308 const char __maybe_unused *p;
309
310 p = IMAGE_INDENT_STRING;
311 printf("%sImage Name: %.*s\n", p, IH_NMLEN, image_get_name(hdr));
312 if (IMAGE_ENABLE_TIMESTAMP) {
313 printf("%sCreated: ", p);
314 genimg_print_time((time_t)image_get_time(hdr));
315 }
316 printf("%sImage Type: ", p);
317 image_print_type(hdr);
318 printf("%sData Size: ", p);
319 genimg_print_size(image_get_data_size(hdr));
320 printf("%sLoad Address: %08x\n", p, image_get_load(hdr));
321 printf("%sEntry Point: %08x\n", p, image_get_ep(hdr));
322
323 if (image_check_type(hdr, IH_TYPE_MULTI) ||
324 image_check_type(hdr, IH_TYPE_SCRIPT)) {
325 int i;
326 ulong data, len;
327 ulong count = image_multi_count(hdr);
328
329 printf("%sContents:\n", p);
330 for (i = 0; i < count; i++) {
331 image_multi_getimg(hdr, i, &data, &len);
332
333 printf("%s Image %d: ", p, i);
334 genimg_print_size(len);
335
336 if (image_check_type(hdr, IH_TYPE_SCRIPT) && i > 0) {
337 /*
338 * the user may need to know offsets
339 * if planning to do something with
340 * multiple files
341 */
342 printf("%s Offset = 0x%08lx\n", p, data);
343 }
344 }
345 }
346 }
347
348
349 #ifndef USE_HOSTCC
350 #if defined(CONFIG_IMAGE_FORMAT_LEGACY)
351 /**
352 * image_get_ramdisk - get and verify ramdisk image
353 * @rd_addr: ramdisk image start address
354 * @arch: expected ramdisk architecture
355 * @verify: checksum verification flag
356 *
357 * image_get_ramdisk() returns a pointer to the verified ramdisk image
358 * header. Routine receives image start address and expected architecture
359 * flag. Verification done covers data and header integrity and os/type/arch
360 * fields checking.
361 *
362 * If dataflash support is enabled routine checks for dataflash addresses
363 * and handles required dataflash reads.
364 *
365 * returns:
366 * pointer to a ramdisk image header, if image was found and valid
367 * otherwise, return NULL
368 */
369 static const image_header_t *image_get_ramdisk(ulong rd_addr, uint8_t arch,
370 int verify)
371 {
372 const image_header_t *rd_hdr = (const image_header_t *)rd_addr;
373
374 if (!image_check_magic(rd_hdr)) {
375 puts("Bad Magic Number\n");
376 bootstage_error(BOOTSTAGE_ID_RD_MAGIC);
377 return NULL;
378 }
379
380 if (!image_check_hcrc(rd_hdr)) {
381 puts("Bad Header Checksum\n");
382 bootstage_error(BOOTSTAGE_ID_RD_HDR_CHECKSUM);
383 return NULL;
384 }
385
386 bootstage_mark(BOOTSTAGE_ID_RD_MAGIC);
387 image_print_contents(rd_hdr);
388
389 if (verify) {
390 puts(" Verifying Checksum ... ");
391 if (!image_check_dcrc(rd_hdr)) {
392 puts("Bad Data CRC\n");
393 bootstage_error(BOOTSTAGE_ID_RD_CHECKSUM);
394 return NULL;
395 }
396 puts("OK\n");
397 }
398
399 bootstage_mark(BOOTSTAGE_ID_RD_HDR_CHECKSUM);
400
401 if (!image_check_os(rd_hdr, IH_OS_LINUX) ||
402 !image_check_arch(rd_hdr, arch) ||
403 !image_check_type(rd_hdr, IH_TYPE_RAMDISK)) {
404 printf("No Linux %s Ramdisk Image\n",
405 genimg_get_arch_name(arch));
406 bootstage_error(BOOTSTAGE_ID_RAMDISK);
407 return NULL;
408 }
409
410 return rd_hdr;
411 }
412 #endif
413 #endif /* !USE_HOSTCC */
414
415 /*****************************************************************************/
416 /* Shared dual-format routines */
417 /*****************************************************************************/
418 #ifndef USE_HOSTCC
419 ulong load_addr = CONFIG_SYS_LOAD_ADDR; /* Default Load Address */
420 ulong save_addr; /* Default Save Address */
421 ulong save_size; /* Default Save Size (in bytes) */
422
423 static int on_loadaddr(const char *name, const char *value, enum env_op op,
424 int flags)
425 {
426 switch (op) {
427 case env_op_create:
428 case env_op_overwrite:
429 load_addr = simple_strtoul(value, NULL, 16);
430 break;
431 default:
432 break;
433 }
434
435 return 0;
436 }
437 U_BOOT_ENV_CALLBACK(loadaddr, on_loadaddr);
438
439 ulong getenv_bootm_low(void)
440 {
441 char *s = getenv("bootm_low");
442 if (s) {
443 ulong tmp = simple_strtoul(s, NULL, 16);
444 return tmp;
445 }
446
447 #if defined(CONFIG_SYS_SDRAM_BASE)
448 return CONFIG_SYS_SDRAM_BASE;
449 #elif defined(CONFIG_ARM)
450 return gd->bd->bi_dram[0].start;
451 #else
452 return 0;
453 #endif
454 }
455
456 phys_size_t getenv_bootm_size(void)
457 {
458 phys_size_t tmp;
459 char *s = getenv("bootm_size");
460 if (s) {
461 tmp = (phys_size_t)simple_strtoull(s, NULL, 16);
462 return tmp;
463 }
464 s = getenv("bootm_low");
465 if (s)
466 tmp = (phys_size_t)simple_strtoull(s, NULL, 16);
467 else
468 tmp = 0;
469
470
471 #if defined(CONFIG_ARM) && defined(CONFIG_NR_DRAM_BANKS)
472 return gd->bd->bi_dram[0].size - tmp;
473 #else
474 return gd->bd->bi_memsize - tmp;
475 #endif
476 }
477
478 phys_size_t getenv_bootm_mapsize(void)
479 {
480 phys_size_t tmp;
481 char *s = getenv("bootm_mapsize");
482 if (s) {
483 tmp = (phys_size_t)simple_strtoull(s, NULL, 16);
484 return tmp;
485 }
486
487 #if defined(CONFIG_SYS_BOOTMAPSZ)
488 return CONFIG_SYS_BOOTMAPSZ;
489 #else
490 return getenv_bootm_size();
491 #endif
492 }
493
494 void memmove_wd(void *to, void *from, size_t len, ulong chunksz)
495 {
496 if (to == from)
497 return;
498
499 #if defined(CONFIG_HW_WATCHDOG) || defined(CONFIG_WATCHDOG)
500 if (to > from) {
501 from += len;
502 to += len;
503 }
504 while (len > 0) {
505 size_t tail = (len > chunksz) ? chunksz : len;
506 WATCHDOG_RESET();
507 if (to > from) {
508 to -= tail;
509 from -= tail;
510 }
511 memmove(to, from, tail);
512 if (to < from) {
513 to += tail;
514 from += tail;
515 }
516 len -= tail;
517 }
518 #else /* !(CONFIG_HW_WATCHDOG || CONFIG_WATCHDOG) */
519 memmove(to, from, len);
520 #endif /* CONFIG_HW_WATCHDOG || CONFIG_WATCHDOG */
521 }
522 #endif /* !USE_HOSTCC */
523
524 void genimg_print_size(uint32_t size)
525 {
526 #ifndef USE_HOSTCC
527 printf("%d Bytes = ", size);
528 print_size(size, "\n");
529 #else
530 printf("%d Bytes = %.2f kB = %.2f MB\n",
531 size, (double)size / 1.024e3,
532 (double)size / 1.048576e6);
533 #endif
534 }
535
536 #if IMAGE_ENABLE_TIMESTAMP
537 void genimg_print_time(time_t timestamp)
538 {
539 #ifndef USE_HOSTCC
540 struct rtc_time tm;
541
542 rtc_to_tm(timestamp, &tm);
543 printf("%4d-%02d-%02d %2d:%02d:%02d UTC\n",
544 tm.tm_year, tm.tm_mon, tm.tm_mday,
545 tm.tm_hour, tm.tm_min, tm.tm_sec);
546 #else
547 printf("%s", ctime(&timestamp));
548 #endif
549 }
550 #endif
551
552 const table_entry_t *get_table_entry(const table_entry_t *table, int id)
553 {
554 for (; table->id >= 0; ++table) {
555 if (table->id == id)
556 return table;
557 }
558 return NULL;
559 }
560
561 /**
562 * get_table_entry_name - translate entry id to long name
563 * @table: pointer to a translation table for entries of a specific type
564 * @msg: message to be returned when translation fails
565 * @id: entry id to be translated
566 *
567 * get_table_entry_name() will go over translation table trying to find
568 * entry that matches given id. If matching entry is found, its long
569 * name is returned to the caller.
570 *
571 * returns:
572 * long entry name if translation succeeds
573 * msg otherwise
574 */
575 char *get_table_entry_name(const table_entry_t *table, char *msg, int id)
576 {
577 table = get_table_entry(table, id);
578 if (!table)
579 return msg;
580 #if defined(USE_HOSTCC) || !defined(CONFIG_NEEDS_MANUAL_RELOC)
581 return table->lname;
582 #else
583 return table->lname + gd->reloc_off;
584 #endif
585 }
586
587 const char *genimg_get_os_name(uint8_t os)
588 {
589 return (get_table_entry_name(uimage_os, "Unknown OS", os));
590 }
591
592 const char *genimg_get_arch_name(uint8_t arch)
593 {
594 return (get_table_entry_name(uimage_arch, "Unknown Architecture",
595 arch));
596 }
597
598 const char *genimg_get_type_name(uint8_t type)
599 {
600 return (get_table_entry_name(uimage_type, "Unknown Image", type));
601 }
602
603 const char *genimg_get_type_short_name(uint8_t type)
604 {
605 const table_entry_t *table;
606
607 table = get_table_entry(uimage_type, type);
608 if (!table)
609 return "unknown";
610 #if defined(USE_HOSTCC) || !defined(CONFIG_NEEDS_MANUAL_RELOC)
611 return table->sname;
612 #else
613 return table->sname + gd->reloc_off;
614 #endif
615 }
616
617 const char *genimg_get_comp_name(uint8_t comp)
618 {
619 return (get_table_entry_name(uimage_comp, "Unknown Compression",
620 comp));
621 }
622
623 /**
624 * get_table_entry_id - translate short entry name to id
625 * @table: pointer to a translation table for entries of a specific type
626 * @table_name: to be used in case of error
627 * @name: entry short name to be translated
628 *
629 * get_table_entry_id() will go over translation table trying to find
630 * entry that matches given short name. If matching entry is found,
631 * its id returned to the caller.
632 *
633 * returns:
634 * entry id if translation succeeds
635 * -1 otherwise
636 */
637 int get_table_entry_id(const table_entry_t *table,
638 const char *table_name, const char *name)
639 {
640 const table_entry_t *t;
641
642 for (t = table; t->id >= 0; ++t) {
643 #ifdef CONFIG_NEEDS_MANUAL_RELOC
644 if (t->sname && strcasecmp(t->sname + gd->reloc_off, name) == 0)
645 #else
646 if (t->sname && strcasecmp(t->sname, name) == 0)
647 #endif
648 return (t->id);
649 }
650 debug("Invalid %s Type: %s\n", table_name, name);
651
652 return -1;
653 }
654
655 int genimg_get_os_id(const char *name)
656 {
657 return (get_table_entry_id(uimage_os, "OS", name));
658 }
659
660 int genimg_get_arch_id(const char *name)
661 {
662 return (get_table_entry_id(uimage_arch, "CPU", name));
663 }
664
665 int genimg_get_type_id(const char *name)
666 {
667 return (get_table_entry_id(uimage_type, "Image", name));
668 }
669
670 int genimg_get_comp_id(const char *name)
671 {
672 return (get_table_entry_id(uimage_comp, "Compression", name));
673 }
674
675 #ifndef USE_HOSTCC
676 /**
677 * genimg_get_kernel_addr_fit - get the real kernel address and return 2
678 * FIT strings
679 * @img_addr: a string might contain real image address
680 * @fit_uname_config: double pointer to a char, will hold pointer to a
681 * configuration unit name
682 * @fit_uname_kernel: double pointer to a char, will hold pointer to a subimage
683 * name
684 *
685 * genimg_get_kernel_addr_fit get the real kernel start address from a string
686 * which is normally the first argv of bootm/bootz
687 *
688 * returns:
689 * kernel start address
690 */
691 ulong genimg_get_kernel_addr_fit(char * const img_addr,
692 const char **fit_uname_config,
693 const char **fit_uname_kernel)
694 {
695 ulong kernel_addr;
696
697 /* find out kernel image address */
698 if (!img_addr) {
699 kernel_addr = load_addr;
700 debug("* kernel: default image load address = 0x%08lx\n",
701 load_addr);
702 #if defined(CONFIG_FIT)
703 } else if (fit_parse_conf(img_addr, load_addr, &kernel_addr,
704 fit_uname_config)) {
705 debug("* kernel: config '%s' from image at 0x%08lx\n",
706 *fit_uname_config, kernel_addr);
707 } else if (fit_parse_subimage(img_addr, load_addr, &kernel_addr,
708 fit_uname_kernel)) {
709 debug("* kernel: subimage '%s' from image at 0x%08lx\n",
710 *fit_uname_kernel, kernel_addr);
711 #endif
712 } else {
713 kernel_addr = simple_strtoul(img_addr, NULL, 16);
714 debug("* kernel: cmdline image address = 0x%08lx\n",
715 kernel_addr);
716 }
717
718 return kernel_addr;
719 }
720
721 /**
722 * genimg_get_kernel_addr() is the simple version of
723 * genimg_get_kernel_addr_fit(). It ignores those return FIT strings
724 */
725 ulong genimg_get_kernel_addr(char * const img_addr)
726 {
727 const char *fit_uname_config = NULL;
728 const char *fit_uname_kernel = NULL;
729
730 return genimg_get_kernel_addr_fit(img_addr, &fit_uname_config,
731 &fit_uname_kernel);
732 }
733
734 /**
735 * genimg_get_format - get image format type
736 * @img_addr: image start address
737 *
738 * genimg_get_format() checks whether provided address points to a valid
739 * legacy or FIT image.
740 *
741 * New uImage format and FDT blob are based on a libfdt. FDT blob
742 * may be passed directly or embedded in a FIT image. In both situations
743 * genimg_get_format() must be able to dectect libfdt header.
744 *
745 * returns:
746 * image format type or IMAGE_FORMAT_INVALID if no image is present
747 */
748 int genimg_get_format(const void *img_addr)
749 {
750 #if defined(CONFIG_IMAGE_FORMAT_LEGACY)
751 const image_header_t *hdr;
752
753 hdr = (const image_header_t *)img_addr;
754 if (image_check_magic(hdr))
755 return IMAGE_FORMAT_LEGACY;
756 #endif
757 #if defined(CONFIG_FIT) || defined(CONFIG_OF_LIBFDT)
758 if (fdt_check_header(img_addr) == 0)
759 return IMAGE_FORMAT_FIT;
760 #endif
761 #ifdef CONFIG_ANDROID_BOOT_IMAGE
762 if (android_image_check_header(img_addr) == 0)
763 return IMAGE_FORMAT_ANDROID;
764 #endif
765
766 return IMAGE_FORMAT_INVALID;
767 }
768
769 /**
770 * genimg_get_image - get image from special storage (if necessary)
771 * @img_addr: image start address
772 *
773 * genimg_get_image() checks if provided image start address is located
774 * in a dataflash storage. If so, image is moved to a system RAM memory.
775 *
776 * returns:
777 * image start address after possible relocation from special storage
778 */
779 ulong genimg_get_image(ulong img_addr)
780 {
781 ulong ram_addr = img_addr;
782
783 #ifdef CONFIG_HAS_DATAFLASH
784 ulong h_size, d_size;
785
786 if (addr_dataflash(img_addr)) {
787 void *buf;
788
789 /* ger RAM address */
790 ram_addr = CONFIG_SYS_LOAD_ADDR;
791
792 /* get header size */
793 h_size = image_get_header_size();
794 #if defined(CONFIG_FIT)
795 if (sizeof(struct fdt_header) > h_size)
796 h_size = sizeof(struct fdt_header);
797 #endif
798
799 /* read in header */
800 debug(" Reading image header from dataflash address "
801 "%08lx to RAM address %08lx\n", img_addr, ram_addr);
802
803 buf = map_sysmem(ram_addr, 0);
804 read_dataflash(img_addr, h_size, buf);
805
806 /* get data size */
807 switch (genimg_get_format(buf)) {
808 #if defined(CONFIG_IMAGE_FORMAT_LEGACY)
809 case IMAGE_FORMAT_LEGACY:
810 d_size = image_get_data_size(buf);
811 debug(" Legacy format image found at 0x%08lx, "
812 "size 0x%08lx\n",
813 ram_addr, d_size);
814 break;
815 #endif
816 #if defined(CONFIG_FIT)
817 case IMAGE_FORMAT_FIT:
818 d_size = fit_get_size(buf) - h_size;
819 debug(" FIT/FDT format image found at 0x%08lx, "
820 "size 0x%08lx\n",
821 ram_addr, d_size);
822 break;
823 #endif
824 default:
825 printf(" No valid image found at 0x%08lx\n",
826 img_addr);
827 return ram_addr;
828 }
829
830 /* read in image data */
831 debug(" Reading image remaining data from dataflash address "
832 "%08lx to RAM address %08lx\n", img_addr + h_size,
833 ram_addr + h_size);
834
835 read_dataflash(img_addr + h_size, d_size,
836 (char *)(buf + h_size));
837
838 }
839 #endif /* CONFIG_HAS_DATAFLASH */
840
841 return ram_addr;
842 }
843
844 /**
845 * fit_has_config - check if there is a valid FIT configuration
846 * @images: pointer to the bootm command headers structure
847 *
848 * fit_has_config() checks if there is a FIT configuration in use
849 * (if FTI support is present).
850 *
851 * returns:
852 * 0, no FIT support or no configuration found
853 * 1, configuration found
854 */
855 int genimg_has_config(bootm_headers_t *images)
856 {
857 #if defined(CONFIG_FIT)
858 if (images->fit_uname_cfg)
859 return 1;
860 #endif
861 return 0;
862 }
863
864 /**
865 * boot_get_ramdisk - main ramdisk handling routine
866 * @argc: command argument count
867 * @argv: command argument list
868 * @images: pointer to the bootm images structure
869 * @arch: expected ramdisk architecture
870 * @rd_start: pointer to a ulong variable, will hold ramdisk start address
871 * @rd_end: pointer to a ulong variable, will hold ramdisk end
872 *
873 * boot_get_ramdisk() is responsible for finding a valid ramdisk image.
874 * Curently supported are the following ramdisk sources:
875 * - multicomponent kernel/ramdisk image,
876 * - commandline provided address of decicated ramdisk image.
877 *
878 * returns:
879 * 0, if ramdisk image was found and valid, or skiped
880 * rd_start and rd_end are set to ramdisk start/end addresses if
881 * ramdisk image is found and valid
882 *
883 * 1, if ramdisk image is found but corrupted, or invalid
884 * rd_start and rd_end are set to 0 if no ramdisk exists
885 */
886 int boot_get_ramdisk(int argc, char * const argv[], bootm_headers_t *images,
887 uint8_t arch, ulong *rd_start, ulong *rd_end)
888 {
889 ulong rd_addr, rd_load;
890 ulong rd_data, rd_len;
891 #if defined(CONFIG_IMAGE_FORMAT_LEGACY)
892 const image_header_t *rd_hdr;
893 #endif
894 void *buf;
895 #ifdef CONFIG_SUPPORT_RAW_INITRD
896 char *end;
897 #endif
898 #if defined(CONFIG_FIT)
899 const char *fit_uname_config = images->fit_uname_cfg;
900 const char *fit_uname_ramdisk = NULL;
901 ulong default_addr;
902 int rd_noffset;
903 #endif
904 const char *select = NULL;
905
906 *rd_start = 0;
907 *rd_end = 0;
908
909 if (argc >= 2)
910 select = argv[1];
911
912 /*
913 * Look for a '-' which indicates to ignore the
914 * ramdisk argument
915 */
916 if (select && strcmp(select, "-") == 0) {
917 debug("## Skipping init Ramdisk\n");
918 rd_len = rd_data = 0;
919 } else if (select || genimg_has_config(images)) {
920 #if defined(CONFIG_FIT)
921 if (select) {
922 /*
923 * If the init ramdisk comes from the FIT image and
924 * the FIT image address is omitted in the command
925 * line argument, try to use os FIT image address or
926 * default load address.
927 */
928 if (images->fit_uname_os)
929 default_addr = (ulong)images->fit_hdr_os;
930 else
931 default_addr = load_addr;
932
933 if (fit_parse_conf(select, default_addr,
934 &rd_addr, &fit_uname_config)) {
935 debug("* ramdisk: config '%s' from image at "
936 "0x%08lx\n",
937 fit_uname_config, rd_addr);
938 } else if (fit_parse_subimage(select, default_addr,
939 &rd_addr, &fit_uname_ramdisk)) {
940 debug("* ramdisk: subimage '%s' from image at "
941 "0x%08lx\n",
942 fit_uname_ramdisk, rd_addr);
943 } else
944 #endif
945 {
946 rd_addr = simple_strtoul(select, NULL, 16);
947 debug("* ramdisk: cmdline image address = "
948 "0x%08lx\n",
949 rd_addr);
950 }
951 #if defined(CONFIG_FIT)
952 } else {
953 /* use FIT configuration provided in first bootm
954 * command argument. If the property is not defined,
955 * quit silently.
956 */
957 rd_addr = map_to_sysmem(images->fit_hdr_os);
958 rd_noffset = fit_get_node_from_config(images,
959 FIT_RAMDISK_PROP, rd_addr);
960 if (rd_noffset == -ENOLINK)
961 return 0;
962 else if (rd_noffset < 0)
963 return 1;
964 }
965 #endif
966
967 /* copy from dataflash if needed */
968 rd_addr = genimg_get_image(rd_addr);
969
970 /*
971 * Check if there is an initrd image at the
972 * address provided in the second bootm argument
973 * check image type, for FIT images get FIT node.
974 */
975 buf = map_sysmem(rd_addr, 0);
976 switch (genimg_get_format(buf)) {
977 #if defined(CONFIG_IMAGE_FORMAT_LEGACY)
978 case IMAGE_FORMAT_LEGACY:
979 printf("## Loading init Ramdisk from Legacy "
980 "Image at %08lx ...\n", rd_addr);
981
982 bootstage_mark(BOOTSTAGE_ID_CHECK_RAMDISK);
983 rd_hdr = image_get_ramdisk(rd_addr, arch,
984 images->verify);
985
986 if (rd_hdr == NULL)
987 return 1;
988
989 rd_data = image_get_data(rd_hdr);
990 rd_len = image_get_data_size(rd_hdr);
991 rd_load = image_get_load(rd_hdr);
992 break;
993 #endif
994 #if defined(CONFIG_FIT)
995 case IMAGE_FORMAT_FIT:
996 rd_noffset = fit_image_load(images,
997 rd_addr, &fit_uname_ramdisk,
998 &fit_uname_config, arch,
999 IH_TYPE_RAMDISK,
1000 BOOTSTAGE_ID_FIT_RD_START,
1001 FIT_LOAD_OPTIONAL_NON_ZERO,
1002 &rd_data, &rd_len);
1003 if (rd_noffset < 0)
1004 return 1;
1005
1006 images->fit_hdr_rd = map_sysmem(rd_addr, 0);
1007 images->fit_uname_rd = fit_uname_ramdisk;
1008 images->fit_noffset_rd = rd_noffset;
1009 break;
1010 #endif
1011 #ifdef CONFIG_ANDROID_BOOT_IMAGE
1012 case IMAGE_FORMAT_ANDROID:
1013 android_image_get_ramdisk((void *)images->os.start,
1014 &rd_data, &rd_len);
1015 break;
1016 #endif
1017 default:
1018 #ifdef CONFIG_SUPPORT_RAW_INITRD
1019 end = NULL;
1020 if (select)
1021 end = strchr(select, ':');
1022 if (end) {
1023 rd_len = simple_strtoul(++end, NULL, 16);
1024 rd_data = rd_addr;
1025 } else
1026 #endif
1027 {
1028 puts("Wrong Ramdisk Image Format\n");
1029 rd_data = rd_len = rd_load = 0;
1030 return 1;
1031 }
1032 }
1033 } else if (images->legacy_hdr_valid &&
1034 image_check_type(&images->legacy_hdr_os_copy,
1035 IH_TYPE_MULTI)) {
1036
1037 /*
1038 * Now check if we have a legacy mult-component image,
1039 * get second entry data start address and len.
1040 */
1041 bootstage_mark(BOOTSTAGE_ID_RAMDISK);
1042 printf("## Loading init Ramdisk from multi component "
1043 "Legacy Image at %08lx ...\n",
1044 (ulong)images->legacy_hdr_os);
1045
1046 image_multi_getimg(images->legacy_hdr_os, 1, &rd_data, &rd_len);
1047 } else {
1048 /*
1049 * no initrd image
1050 */
1051 bootstage_mark(BOOTSTAGE_ID_NO_RAMDISK);
1052 rd_len = rd_data = 0;
1053 }
1054
1055 if (!rd_data) {
1056 debug("## No init Ramdisk\n");
1057 } else {
1058 *rd_start = rd_data;
1059 *rd_end = rd_data + rd_len;
1060 }
1061 debug(" ramdisk start = 0x%08lx, ramdisk end = 0x%08lx\n",
1062 *rd_start, *rd_end);
1063
1064 return 0;
1065 }
1066
1067 #ifdef CONFIG_SYS_BOOT_RAMDISK_HIGH
1068 /**
1069 * boot_ramdisk_high - relocate init ramdisk
1070 * @lmb: pointer to lmb handle, will be used for memory mgmt
1071 * @rd_data: ramdisk data start address
1072 * @rd_len: ramdisk data length
1073 * @initrd_start: pointer to a ulong variable, will hold final init ramdisk
1074 * start address (after possible relocation)
1075 * @initrd_end: pointer to a ulong variable, will hold final init ramdisk
1076 * end address (after possible relocation)
1077 *
1078 * boot_ramdisk_high() takes a relocation hint from "initrd_high" environment
1079 * variable and if requested ramdisk data is moved to a specified location.
1080 *
1081 * Initrd_start and initrd_end are set to final (after relocation) ramdisk
1082 * start/end addresses if ramdisk image start and len were provided,
1083 * otherwise set initrd_start and initrd_end set to zeros.
1084 *
1085 * returns:
1086 * 0 - success
1087 * -1 - failure
1088 */
1089 int boot_ramdisk_high(struct lmb *lmb, ulong rd_data, ulong rd_len,
1090 ulong *initrd_start, ulong *initrd_end)
1091 {
1092 char *s;
1093 ulong initrd_high;
1094 int initrd_copy_to_ram = 1;
1095
1096 if ((s = getenv("initrd_high")) != NULL) {
1097 /* a value of "no" or a similar string will act like 0,
1098 * turning the "load high" feature off. This is intentional.
1099 */
1100 initrd_high = simple_strtoul(s, NULL, 16);
1101 if (initrd_high == ~0)
1102 initrd_copy_to_ram = 0;
1103 } else {
1104 /* not set, no restrictions to load high */
1105 initrd_high = ~0;
1106 }
1107
1108
1109 #ifdef CONFIG_LOGBUFFER
1110 /* Prevent initrd from overwriting logbuffer */
1111 lmb_reserve(lmb, logbuffer_base() - LOGBUFF_OVERHEAD, LOGBUFF_RESERVE);
1112 #endif
1113
1114 debug("## initrd_high = 0x%08lx, copy_to_ram = %d\n",
1115 initrd_high, initrd_copy_to_ram);
1116
1117 if (rd_data) {
1118 if (!initrd_copy_to_ram) { /* zero-copy ramdisk support */
1119 debug(" in-place initrd\n");
1120 *initrd_start = rd_data;
1121 *initrd_end = rd_data + rd_len;
1122 lmb_reserve(lmb, rd_data, rd_len);
1123 } else {
1124 if (initrd_high)
1125 *initrd_start = (ulong)lmb_alloc_base(lmb,
1126 rd_len, 0x1000, initrd_high);
1127 else
1128 *initrd_start = (ulong)lmb_alloc(lmb, rd_len,
1129 0x1000);
1130
1131 if (*initrd_start == 0) {
1132 puts("ramdisk - allocation error\n");
1133 goto error;
1134 }
1135 bootstage_mark(BOOTSTAGE_ID_COPY_RAMDISK);
1136
1137 *initrd_end = *initrd_start + rd_len;
1138 printf(" Loading Ramdisk to %08lx, end %08lx ... ",
1139 *initrd_start, *initrd_end);
1140
1141 memmove_wd((void *)*initrd_start,
1142 (void *)rd_data, rd_len, CHUNKSZ);
1143
1144 #ifdef CONFIG_MP
1145 /*
1146 * Ensure the image is flushed to memory to handle
1147 * AMP boot scenarios in which we might not be
1148 * HW cache coherent
1149 */
1150 flush_cache((unsigned long)*initrd_start, rd_len);
1151 #endif
1152 puts("OK\n");
1153 }
1154 } else {
1155 *initrd_start = 0;
1156 *initrd_end = 0;
1157 }
1158 debug(" ramdisk load start = 0x%08lx, ramdisk load end = 0x%08lx\n",
1159 *initrd_start, *initrd_end);
1160
1161 return 0;
1162
1163 error:
1164 return -1;
1165 }
1166 #endif /* CONFIG_SYS_BOOT_RAMDISK_HIGH */
1167
1168 int boot_get_setup(bootm_headers_t *images, uint8_t arch,
1169 ulong *setup_start, ulong *setup_len)
1170 {
1171 #if defined(CONFIG_FIT)
1172 return boot_get_setup_fit(images, arch, setup_start, setup_len);
1173 #else
1174 return -ENOENT;
1175 #endif
1176 }
1177
1178 #if defined(CONFIG_FIT)
1179 int boot_get_loadable(int argc, char * const argv[], bootm_headers_t *images,
1180 uint8_t arch, const ulong *ld_start, ulong * const ld_len)
1181 {
1182 /*
1183 * These variables are used to hold the current image location
1184 * in system memory.
1185 */
1186 ulong tmp_img_addr;
1187 /*
1188 * These two variables are requirements for fit_image_load, but
1189 * their values are not used
1190 */
1191 ulong img_data, img_len;
1192 void *buf;
1193 int loadables_index;
1194 int conf_noffset;
1195 int fit_img_result;
1196 char *uname;
1197
1198 /* Check to see if the images struct has a FIT configuration */
1199 if (!genimg_has_config(images)) {
1200 debug("## FIT configuration was not specified\n");
1201 return 0;
1202 }
1203
1204 /*
1205 * Obtain the os FIT header from the images struct
1206 * copy from dataflash if needed
1207 */
1208 tmp_img_addr = map_to_sysmem(images->fit_hdr_os);
1209 tmp_img_addr = genimg_get_image(tmp_img_addr);
1210 buf = map_sysmem(tmp_img_addr, 0);
1211 /*
1212 * Check image type. For FIT images get FIT node
1213 * and attempt to locate a generic binary.
1214 */
1215 switch (genimg_get_format(buf)) {
1216 case IMAGE_FORMAT_FIT:
1217 conf_noffset = fit_conf_get_node(buf, images->fit_uname_cfg);
1218
1219 for (loadables_index = 0;
1220 fdt_get_string_index(buf, conf_noffset,
1221 FIT_LOADABLE_PROP,
1222 loadables_index,
1223 (const char **)&uname) == 0;
1224 loadables_index++)
1225 {
1226 fit_img_result = fit_image_load(images,
1227 tmp_img_addr,
1228 (const char **)&uname,
1229 &(images->fit_uname_cfg), arch,
1230 IH_TYPE_LOADABLE,
1231 BOOTSTAGE_ID_FIT_LOADABLE_START,
1232 FIT_LOAD_OPTIONAL_NON_ZERO,
1233 &img_data, &img_len);
1234 if (fit_img_result < 0) {
1235 /* Something went wrong! */
1236 return fit_img_result;
1237 }
1238 }
1239 break;
1240 default:
1241 printf("The given image format is not supported (corrupt?)\n");
1242 return 1;
1243 }
1244
1245 return 0;
1246 }
1247 #endif
1248
1249 #ifdef CONFIG_SYS_BOOT_GET_CMDLINE
1250 /**
1251 * boot_get_cmdline - allocate and initialize kernel cmdline
1252 * @lmb: pointer to lmb handle, will be used for memory mgmt
1253 * @cmd_start: pointer to a ulong variable, will hold cmdline start
1254 * @cmd_end: pointer to a ulong variable, will hold cmdline end
1255 *
1256 * boot_get_cmdline() allocates space for kernel command line below
1257 * BOOTMAPSZ + getenv_bootm_low() address. If "bootargs" U-boot environemnt
1258 * variable is present its contents is copied to allocated kernel
1259 * command line.
1260 *
1261 * returns:
1262 * 0 - success
1263 * -1 - failure
1264 */
1265 int boot_get_cmdline(struct lmb *lmb, ulong *cmd_start, ulong *cmd_end)
1266 {
1267 char *cmdline;
1268 char *s;
1269
1270 cmdline = (char *)(ulong)lmb_alloc_base(lmb, CONFIG_SYS_BARGSIZE, 0xf,
1271 getenv_bootm_mapsize() + getenv_bootm_low());
1272
1273 if (cmdline == NULL)
1274 return -1;
1275
1276 if ((s = getenv("bootargs")) == NULL)
1277 s = "";
1278
1279 strcpy(cmdline, s);
1280
1281 *cmd_start = (ulong) & cmdline[0];
1282 *cmd_end = *cmd_start + strlen(cmdline);
1283
1284 debug("## cmdline at 0x%08lx ... 0x%08lx\n", *cmd_start, *cmd_end);
1285
1286 return 0;
1287 }
1288 #endif /* CONFIG_SYS_BOOT_GET_CMDLINE */
1289
1290 #ifdef CONFIG_SYS_BOOT_GET_KBD
1291 /**
1292 * boot_get_kbd - allocate and initialize kernel copy of board info
1293 * @lmb: pointer to lmb handle, will be used for memory mgmt
1294 * @kbd: double pointer to board info data
1295 *
1296 * boot_get_kbd() allocates space for kernel copy of board info data below
1297 * BOOTMAPSZ + getenv_bootm_low() address and kernel board info is initialized
1298 * with the current u-boot board info data.
1299 *
1300 * returns:
1301 * 0 - success
1302 * -1 - failure
1303 */
1304 int boot_get_kbd(struct lmb *lmb, bd_t **kbd)
1305 {
1306 *kbd = (bd_t *)(ulong)lmb_alloc_base(lmb, sizeof(bd_t), 0xf,
1307 getenv_bootm_mapsize() + getenv_bootm_low());
1308 if (*kbd == NULL)
1309 return -1;
1310
1311 **kbd = *(gd->bd);
1312
1313 debug("## kernel board info at 0x%08lx\n", (ulong)*kbd);
1314
1315 #if defined(DEBUG) && defined(CONFIG_CMD_BDI)
1316 do_bdinfo(NULL, 0, 0, NULL);
1317 #endif
1318
1319 return 0;
1320 }
1321 #endif /* CONFIG_SYS_BOOT_GET_KBD */
1322
1323 #ifdef CONFIG_LMB
1324 int image_setup_linux(bootm_headers_t *images)
1325 {
1326 ulong of_size = images->ft_len;
1327 char **of_flat_tree = &images->ft_addr;
1328 ulong *initrd_start = &images->initrd_start;
1329 ulong *initrd_end = &images->initrd_end;
1330 struct lmb *lmb = &images->lmb;
1331 ulong rd_len;
1332 int ret;
1333
1334 if (IMAGE_ENABLE_OF_LIBFDT)
1335 boot_fdt_add_mem_rsv_regions(lmb, *of_flat_tree);
1336
1337 if (IMAGE_BOOT_GET_CMDLINE) {
1338 ret = boot_get_cmdline(lmb, &images->cmdline_start,
1339 &images->cmdline_end);
1340 if (ret) {
1341 puts("ERROR with allocation of cmdline\n");
1342 return ret;
1343 }
1344 }
1345 if (IMAGE_ENABLE_RAMDISK_HIGH) {
1346 rd_len = images->rd_end - images->rd_start;
1347 ret = boot_ramdisk_high(lmb, images->rd_start, rd_len,
1348 initrd_start, initrd_end);
1349 if (ret)
1350 return ret;
1351 }
1352
1353 if (IMAGE_ENABLE_OF_LIBFDT) {
1354 ret = boot_relocate_fdt(lmb, of_flat_tree, &of_size);
1355 if (ret)
1356 return ret;
1357 }
1358
1359 if (IMAGE_ENABLE_OF_LIBFDT && of_size) {
1360 ret = image_setup_libfdt(images, *of_flat_tree, of_size, lmb);
1361 if (ret)
1362 return ret;
1363 }
1364
1365 return 0;
1366 }
1367 #endif /* CONFIG_LMB */
1368 #endif /* !USE_HOSTCC */