Merge branch '2019-10-28-azure-ci-support'
[oweals/u-boot.git] / common / image.c
1 // SPDX-License-Identifier: GPL-2.0+
2 /*
3  * (C) Copyright 2008 Semihalf
4  *
5  * (C) Copyright 2000-2006
6  * Wolfgang Denk, DENX Software Engineering, wd@denx.de.
7  */
8
9 #ifndef USE_HOSTCC
10 #include <common.h>
11 #include <env.h>
12 #include <watchdog.h>
13
14 #ifdef CONFIG_SHOW_BOOT_PROGRESS
15 #include <status_led.h>
16 #endif
17
18 #include <rtc.h>
19
20 #include <gzip.h>
21 #include <image.h>
22 #include <mapmem.h>
23
24 #if IMAGE_ENABLE_FIT || IMAGE_ENABLE_OF_LIBFDT
25 #include <linux/libfdt.h>
26 #include <fdt_support.h>
27 #include <fpga.h>
28 #include <xilinx.h>
29 #endif
30
31 #include <u-boot/md5.h>
32 #include <u-boot/sha1.h>
33 #include <linux/errno.h>
34 #include <asm/io.h>
35
36 #include <bzlib.h>
37 #include <linux/lzo.h>
38 #include <lzma/LzmaTypes.h>
39 #include <lzma/LzmaDec.h>
40 #include <lzma/LzmaTools.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 CONFIG_IS_ENABLED(LEGACY_IMAGE_FORMAT)
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 #include <imximage.h>
65
66 #ifndef CONFIG_SYS_BARGSIZE
67 #define CONFIG_SYS_BARGSIZE 512
68 #endif
69
70 static const table_entry_t uimage_arch[] = {
71         {       IH_ARCH_INVALID,        "invalid",      "Invalid ARCH", },
72         {       IH_ARCH_ALPHA,          "alpha",        "Alpha",        },
73         {       IH_ARCH_ARM,            "arm",          "ARM",          },
74         {       IH_ARCH_I386,           "x86",          "Intel x86",    },
75         {       IH_ARCH_IA64,           "ia64",         "IA64",         },
76         {       IH_ARCH_M68K,           "m68k",         "M68K",         },
77         {       IH_ARCH_MICROBLAZE,     "microblaze",   "MicroBlaze",   },
78         {       IH_ARCH_MIPS,           "mips",         "MIPS",         },
79         {       IH_ARCH_MIPS64,         "mips64",       "MIPS 64 Bit",  },
80         {       IH_ARCH_NIOS2,          "nios2",        "NIOS II",      },
81         {       IH_ARCH_PPC,            "powerpc",      "PowerPC",      },
82         {       IH_ARCH_PPC,            "ppc",          "PowerPC",      },
83         {       IH_ARCH_S390,           "s390",         "IBM S390",     },
84         {       IH_ARCH_SH,             "sh",           "SuperH",       },
85         {       IH_ARCH_SPARC,          "sparc",        "SPARC",        },
86         {       IH_ARCH_SPARC64,        "sparc64",      "SPARC 64 Bit", },
87         {       IH_ARCH_BLACKFIN,       "blackfin",     "Blackfin",     },
88         {       IH_ARCH_AVR32,          "avr32",        "AVR32",        },
89         {       IH_ARCH_NDS32,          "nds32",        "NDS32",        },
90         {       IH_ARCH_OPENRISC,       "or1k",         "OpenRISC 1000",},
91         {       IH_ARCH_SANDBOX,        "sandbox",      "Sandbox",      },
92         {       IH_ARCH_ARM64,          "arm64",        "AArch64",      },
93         {       IH_ARCH_ARC,            "arc",          "ARC",          },
94         {       IH_ARCH_X86_64,         "x86_64",       "AMD x86_64",   },
95         {       IH_ARCH_XTENSA,         "xtensa",       "Xtensa",       },
96         {       IH_ARCH_RISCV,          "riscv",        "RISC-V",       },
97         {       -1,                     "",             "",             },
98 };
99
100 static const table_entry_t uimage_os[] = {
101         {       IH_OS_INVALID,  "invalid",      "Invalid OS",           },
102         {       IH_OS_ARM_TRUSTED_FIRMWARE, "arm-trusted-firmware", "ARM Trusted Firmware"  },
103         {       IH_OS_LINUX,    "linux",        "Linux",                },
104 #if defined(CONFIG_LYNXKDI) || defined(USE_HOSTCC)
105         {       IH_OS_LYNXOS,   "lynxos",       "LynxOS",               },
106 #endif
107         {       IH_OS_NETBSD,   "netbsd",       "NetBSD",               },
108         {       IH_OS_OSE,      "ose",          "Enea OSE",             },
109         {       IH_OS_PLAN9,    "plan9",        "Plan 9",               },
110         {       IH_OS_RTEMS,    "rtems",        "RTEMS",                },
111         {       IH_OS_TEE,      "tee",          "Trusted Execution Environment" },
112         {       IH_OS_U_BOOT,   "u-boot",       "U-Boot",               },
113         {       IH_OS_VXWORKS,  "vxworks",      "VxWorks",              },
114 #if defined(CONFIG_CMD_ELF) || defined(USE_HOSTCC)
115         {       IH_OS_QNX,      "qnx",          "QNX",                  },
116 #endif
117 #if defined(CONFIG_INTEGRITY) || defined(USE_HOSTCC)
118         {       IH_OS_INTEGRITY,"integrity",    "INTEGRITY",            },
119 #endif
120 #ifdef USE_HOSTCC
121         {       IH_OS_4_4BSD,   "4_4bsd",       "4_4BSD",               },
122         {       IH_OS_DELL,     "dell",         "Dell",                 },
123         {       IH_OS_ESIX,     "esix",         "Esix",                 },
124         {       IH_OS_FREEBSD,  "freebsd",      "FreeBSD",              },
125         {       IH_OS_IRIX,     "irix",         "Irix",                 },
126         {       IH_OS_NCR,      "ncr",          "NCR",                  },
127         {       IH_OS_OPENBSD,  "openbsd",      "OpenBSD",              },
128         {       IH_OS_PSOS,     "psos",         "pSOS",                 },
129         {       IH_OS_SCO,      "sco",          "SCO",                  },
130         {       IH_OS_SOLARIS,  "solaris",      "Solaris",              },
131         {       IH_OS_SVR4,     "svr4",         "SVR4",                 },
132 #endif
133 #if defined(CONFIG_BOOTM_OPENRTOS) || defined(USE_HOSTCC)
134         {       IH_OS_OPENRTOS, "openrtos",     "OpenRTOS",             },
135 #endif
136         {       IH_OS_OPENSBI,  "opensbi",      "RISC-V OpenSBI",       },
137
138         {       -1,             "",             "",                     },
139 };
140
141 static const table_entry_t uimage_type[] = {
142         {       IH_TYPE_AISIMAGE,   "aisimage",   "Davinci AIS image",},
143         {       IH_TYPE_FILESYSTEM, "filesystem", "Filesystem Image",   },
144         {       IH_TYPE_FIRMWARE,   "firmware",   "Firmware",           },
145         {       IH_TYPE_FLATDT,     "flat_dt",    "Flat Device Tree",   },
146         {       IH_TYPE_GPIMAGE,    "gpimage",    "TI Keystone SPL Image",},
147         {       IH_TYPE_KERNEL,     "kernel",     "Kernel Image",       },
148         {       IH_TYPE_KERNEL_NOLOAD, "kernel_noload",  "Kernel Image (no loading done)", },
149         {       IH_TYPE_KWBIMAGE,   "kwbimage",   "Kirkwood Boot Image",},
150         {       IH_TYPE_IMXIMAGE,   "imximage",   "Freescale i.MX Boot Image",},
151         {       IH_TYPE_IMX8IMAGE,  "imx8image",  "NXP i.MX8 Boot Image",},
152         {       IH_TYPE_IMX8MIMAGE, "imx8mimage", "NXP i.MX8M Boot Image",},
153         {       IH_TYPE_INVALID,    "invalid",    "Invalid Image",      },
154         {       IH_TYPE_MULTI,      "multi",      "Multi-File Image",   },
155         {       IH_TYPE_OMAPIMAGE,  "omapimage",  "TI OMAP SPL With GP CH",},
156         {       IH_TYPE_PBLIMAGE,   "pblimage",   "Freescale PBL Boot Image",},
157         {       IH_TYPE_RAMDISK,    "ramdisk",    "RAMDisk Image",      },
158         {       IH_TYPE_SCRIPT,     "script",     "Script",             },
159         {       IH_TYPE_SOCFPGAIMAGE, "socfpgaimage", "Altera SoCFPGA CV/AV preloader",},
160         {       IH_TYPE_SOCFPGAIMAGE_V1, "socfpgaimage_v1", "Altera SoCFPGA A10 preloader",},
161         {       IH_TYPE_STANDALONE, "standalone", "Standalone Program", },
162         {       IH_TYPE_UBLIMAGE,   "ublimage",   "Davinci UBL image",},
163         {       IH_TYPE_MXSIMAGE,   "mxsimage",   "Freescale MXS Boot Image",},
164         {       IH_TYPE_ATMELIMAGE, "atmelimage", "ATMEL ROM-Boot Image",},
165         {       IH_TYPE_X86_SETUP,  "x86_setup",  "x86 setup.bin",    },
166         {       IH_TYPE_LPC32XXIMAGE, "lpc32xximage",  "LPC32XX Boot Image", },
167         {       IH_TYPE_RKIMAGE,    "rkimage",    "Rockchip Boot Image" },
168         {       IH_TYPE_RKSD,       "rksd",       "Rockchip SD Boot Image" },
169         {       IH_TYPE_RKSPI,      "rkspi",      "Rockchip SPI Boot Image" },
170         {       IH_TYPE_VYBRIDIMAGE, "vybridimage",  "Vybrid Boot Image", },
171         {       IH_TYPE_ZYNQIMAGE,  "zynqimage",  "Xilinx Zynq Boot Image" },
172         {       IH_TYPE_ZYNQMPIMAGE, "zynqmpimage", "Xilinx ZynqMP Boot Image" },
173         {       IH_TYPE_ZYNQMPBIF,  "zynqmpbif",  "Xilinx ZynqMP Boot Image (bif)" },
174         {       IH_TYPE_FPGA,       "fpga",       "FPGA Image" },
175         {       IH_TYPE_TEE,        "tee",        "Trusted Execution Environment Image",},
176         {       IH_TYPE_FIRMWARE_IVT, "firmware_ivt", "Firmware with HABv4 IVT" },
177         {       IH_TYPE_PMMC,        "pmmc",        "TI Power Management Micro-Controller Firmware",},
178         {       IH_TYPE_STM32IMAGE, "stm32image", "STMicroelectronics STM32 Image" },
179         {       IH_TYPE_MTKIMAGE,   "mtk_image",   "MediaTek BootROM loadable Image" },
180         {       IH_TYPE_COPRO, "copro", "Coprocessor Image"},
181         {       -1,                 "",           "",                   },
182 };
183
184 static const table_entry_t uimage_comp[] = {
185         {       IH_COMP_NONE,   "none",         "uncompressed",         },
186         {       IH_COMP_BZIP2,  "bzip2",        "bzip2 compressed",     },
187         {       IH_COMP_GZIP,   "gzip",         "gzip compressed",      },
188         {       IH_COMP_LZMA,   "lzma",         "lzma compressed",      },
189         {       IH_COMP_LZO,    "lzo",          "lzo compressed",       },
190         {       IH_COMP_LZ4,    "lz4",          "lz4 compressed",       },
191         {       -1,             "",             "",                     },
192 };
193
194 struct table_info {
195         const char *desc;
196         int count;
197         const table_entry_t *table;
198 };
199
200 static const struct table_info table_info[IH_COUNT] = {
201         { "architecture", IH_ARCH_COUNT, uimage_arch },
202         { "compression", IH_COMP_COUNT, uimage_comp },
203         { "operating system", IH_OS_COUNT, uimage_os },
204         { "image type", IH_TYPE_COUNT, uimage_type },
205 };
206
207 /*****************************************************************************/
208 /* Legacy format routines */
209 /*****************************************************************************/
210 int image_check_hcrc(const image_header_t *hdr)
211 {
212         ulong hcrc;
213         ulong len = image_get_header_size();
214         image_header_t header;
215
216         /* Copy header so we can blank CRC field for re-calculation */
217         memmove(&header, (char *)hdr, image_get_header_size());
218         image_set_hcrc(&header, 0);
219
220         hcrc = crc32(0, (unsigned char *)&header, len);
221
222         return (hcrc == image_get_hcrc(hdr));
223 }
224
225 int image_check_dcrc(const image_header_t *hdr)
226 {
227         ulong data = image_get_data(hdr);
228         ulong len = image_get_data_size(hdr);
229         ulong dcrc = crc32_wd(0, (unsigned char *)data, len, CHUNKSZ_CRC32);
230
231         return (dcrc == image_get_dcrc(hdr));
232 }
233
234 /**
235  * image_multi_count - get component (sub-image) count
236  * @hdr: pointer to the header of the multi component image
237  *
238  * image_multi_count() returns number of components in a multi
239  * component image.
240  *
241  * Note: no checking of the image type is done, caller must pass
242  * a valid multi component image.
243  *
244  * returns:
245  *     number of components
246  */
247 ulong image_multi_count(const image_header_t *hdr)
248 {
249         ulong i, count = 0;
250         uint32_t *size;
251
252         /* get start of the image payload, which in case of multi
253          * component images that points to a table of component sizes */
254         size = (uint32_t *)image_get_data(hdr);
255
256         /* count non empty slots */
257         for (i = 0; size[i]; ++i)
258                 count++;
259
260         return count;
261 }
262
263 /**
264  * image_multi_getimg - get component data address and size
265  * @hdr: pointer to the header of the multi component image
266  * @idx: index of the requested component
267  * @data: pointer to a ulong variable, will hold component data address
268  * @len: pointer to a ulong variable, will hold component size
269  *
270  * image_multi_getimg() returns size and data address for the requested
271  * component in a multi component image.
272  *
273  * Note: no checking of the image type is done, caller must pass
274  * a valid multi component image.
275  *
276  * returns:
277  *     data address and size of the component, if idx is valid
278  *     0 in data and len, if idx is out of range
279  */
280 void image_multi_getimg(const image_header_t *hdr, ulong idx,
281                         ulong *data, ulong *len)
282 {
283         int i;
284         uint32_t *size;
285         ulong offset, count, img_data;
286
287         /* get number of component */
288         count = image_multi_count(hdr);
289
290         /* get start of the image payload, which in case of multi
291          * component images that points to a table of component sizes */
292         size = (uint32_t *)image_get_data(hdr);
293
294         /* get address of the proper component data start, which means
295          * skipping sizes table (add 1 for last, null entry) */
296         img_data = image_get_data(hdr) + (count + 1) * sizeof(uint32_t);
297
298         if (idx < count) {
299                 *len = uimage_to_cpu(size[idx]);
300                 offset = 0;
301
302                 /* go over all indices preceding requested component idx */
303                 for (i = 0; i < idx; i++) {
304                         /* add up i-th component size, rounding up to 4 bytes */
305                         offset += (uimage_to_cpu(size[i]) + 3) & ~3 ;
306                 }
307
308                 /* calculate idx-th component data address */
309                 *data = img_data + offset;
310         } else {
311                 *len = 0;
312                 *data = 0;
313         }
314 }
315
316 static void image_print_type(const image_header_t *hdr)
317 {
318         const char __maybe_unused *os, *arch, *type, *comp;
319
320         os = genimg_get_os_name(image_get_os(hdr));
321         arch = genimg_get_arch_name(image_get_arch(hdr));
322         type = genimg_get_type_name(image_get_type(hdr));
323         comp = genimg_get_comp_name(image_get_comp(hdr));
324
325         printf("%s %s %s (%s)\n", arch, os, type, comp);
326 }
327
328 /**
329  * image_print_contents - prints out the contents of the legacy format image
330  * @ptr: pointer to the legacy format image header
331  * @p: pointer to prefix string
332  *
333  * image_print_contents() formats a multi line legacy image contents description.
334  * The routine prints out all header fields followed by the size/offset data
335  * for MULTI/SCRIPT images.
336  *
337  * returns:
338  *     no returned results
339  */
340 void image_print_contents(const void *ptr)
341 {
342         const image_header_t *hdr = (const image_header_t *)ptr;
343         const char __maybe_unused *p;
344
345         p = IMAGE_INDENT_STRING;
346         printf("%sImage Name:   %.*s\n", p, IH_NMLEN, image_get_name(hdr));
347         if (IMAGE_ENABLE_TIMESTAMP) {
348                 printf("%sCreated:      ", p);
349                 genimg_print_time((time_t)image_get_time(hdr));
350         }
351         printf("%sImage Type:   ", p);
352         image_print_type(hdr);
353         printf("%sData Size:    ", p);
354         genimg_print_size(image_get_data_size(hdr));
355         printf("%sLoad Address: %08x\n", p, image_get_load(hdr));
356         printf("%sEntry Point:  %08x\n", p, image_get_ep(hdr));
357
358         if (image_check_type(hdr, IH_TYPE_MULTI) ||
359                         image_check_type(hdr, IH_TYPE_SCRIPT)) {
360                 int i;
361                 ulong data, len;
362                 ulong count = image_multi_count(hdr);
363
364                 printf("%sContents:\n", p);
365                 for (i = 0; i < count; i++) {
366                         image_multi_getimg(hdr, i, &data, &len);
367
368                         printf("%s   Image %d: ", p, i);
369                         genimg_print_size(len);
370
371                         if (image_check_type(hdr, IH_TYPE_SCRIPT) && i > 0) {
372                                 /*
373                                  * the user may need to know offsets
374                                  * if planning to do something with
375                                  * multiple files
376                                  */
377                                 printf("%s    Offset = 0x%08lx\n", p, data);
378                         }
379                 }
380         } else if (image_check_type(hdr, IH_TYPE_FIRMWARE_IVT)) {
381                 printf("HAB Blocks:   0x%08x   0x0000   0x%08x\n",
382                         image_get_load(hdr) - image_get_header_size(),
383                         (int)(image_get_size(hdr) + image_get_header_size()
384                         + sizeof(flash_header_v2_t) - 0x2060));
385         }
386 }
387
388 /**
389  * print_decomp_msg() - Print a suitable decompression/loading message
390  *
391  * @type:       OS type (IH_OS_...)
392  * @comp_type:  Compression type being used (IH_COMP_...)
393  * @is_xip:     true if the load address matches the image start
394  */
395 static void print_decomp_msg(int comp_type, int type, bool is_xip)
396 {
397         const char *name = genimg_get_type_name(type);
398
399         if (comp_type == IH_COMP_NONE)
400                 printf("   %s %s\n", is_xip ? "XIP" : "Loading", name);
401         else
402                 printf("   Uncompressing %s\n", name);
403 }
404
405 int image_decomp(int comp, ulong load, ulong image_start, int type,
406                  void *load_buf, void *image_buf, ulong image_len,
407                  uint unc_len, ulong *load_end)
408 {
409         int ret = 0;
410
411         *load_end = load;
412         print_decomp_msg(comp, type, load == image_start);
413
414         /*
415          * Load the image to the right place, decompressing if needed. After
416          * this, image_len will be set to the number of uncompressed bytes
417          * loaded, ret will be non-zero on error.
418          */
419         switch (comp) {
420         case IH_COMP_NONE:
421                 if (load == image_start)
422                         break;
423                 if (image_len <= unc_len)
424                         memmove_wd(load_buf, image_buf, image_len, CHUNKSZ);
425                 else
426                         ret = -ENOSPC;
427                 break;
428 #ifdef CONFIG_GZIP
429         case IH_COMP_GZIP: {
430                 ret = gunzip(load_buf, unc_len, image_buf, &image_len);
431                 break;
432         }
433 #endif /* CONFIG_GZIP */
434 #ifdef CONFIG_BZIP2
435         case IH_COMP_BZIP2: {
436                 uint size = unc_len;
437
438                 /*
439                  * If we've got less than 4 MB of malloc() space,
440                  * use slower decompression algorithm which requires
441                  * at most 2300 KB of memory.
442                  */
443                 ret = BZ2_bzBuffToBuffDecompress(load_buf, &size,
444                         image_buf, image_len,
445                         CONFIG_SYS_MALLOC_LEN < (4096 * 1024), 0);
446                 image_len = size;
447                 break;
448         }
449 #endif /* CONFIG_BZIP2 */
450 #ifdef CONFIG_LZMA
451         case IH_COMP_LZMA: {
452                 SizeT lzma_len = unc_len;
453
454                 ret = lzmaBuffToBuffDecompress(load_buf, &lzma_len,
455                                                image_buf, image_len);
456                 image_len = lzma_len;
457                 break;
458         }
459 #endif /* CONFIG_LZMA */
460 #ifdef CONFIG_LZO
461         case IH_COMP_LZO: {
462                 size_t size = unc_len;
463
464                 ret = lzop_decompress(image_buf, image_len, load_buf, &size);
465                 image_len = size;
466                 break;
467         }
468 #endif /* CONFIG_LZO */
469 #ifdef CONFIG_LZ4
470         case IH_COMP_LZ4: {
471                 size_t size = unc_len;
472
473                 ret = ulz4fn(image_buf, image_len, load_buf, &size);
474                 image_len = size;
475                 break;
476         }
477 #endif /* CONFIG_LZ4 */
478         default:
479                 printf("Unimplemented compression type %d\n", comp);
480                 return -ENOSYS;
481         }
482
483         *load_end = load + image_len;
484
485         return ret;
486 }
487
488
489 #ifndef USE_HOSTCC
490 #if CONFIG_IS_ENABLED(LEGACY_IMAGE_FORMAT)
491 /**
492  * image_get_ramdisk - get and verify ramdisk image
493  * @rd_addr: ramdisk image start address
494  * @arch: expected ramdisk architecture
495  * @verify: checksum verification flag
496  *
497  * image_get_ramdisk() returns a pointer to the verified ramdisk image
498  * header. Routine receives image start address and expected architecture
499  * flag. Verification done covers data and header integrity and os/type/arch
500  * fields checking.
501  *
502  * returns:
503  *     pointer to a ramdisk image header, if image was found and valid
504  *     otherwise, return NULL
505  */
506 static const image_header_t *image_get_ramdisk(ulong rd_addr, uint8_t arch,
507                                                 int verify)
508 {
509         const image_header_t *rd_hdr = (const image_header_t *)rd_addr;
510
511         if (!image_check_magic(rd_hdr)) {
512                 puts("Bad Magic Number\n");
513                 bootstage_error(BOOTSTAGE_ID_RD_MAGIC);
514                 return NULL;
515         }
516
517         if (!image_check_hcrc(rd_hdr)) {
518                 puts("Bad Header Checksum\n");
519                 bootstage_error(BOOTSTAGE_ID_RD_HDR_CHECKSUM);
520                 return NULL;
521         }
522
523         bootstage_mark(BOOTSTAGE_ID_RD_MAGIC);
524         image_print_contents(rd_hdr);
525
526         if (verify) {
527                 puts("   Verifying Checksum ... ");
528                 if (!image_check_dcrc(rd_hdr)) {
529                         puts("Bad Data CRC\n");
530                         bootstage_error(BOOTSTAGE_ID_RD_CHECKSUM);
531                         return NULL;
532                 }
533                 puts("OK\n");
534         }
535
536         bootstage_mark(BOOTSTAGE_ID_RD_HDR_CHECKSUM);
537
538         if (!image_check_os(rd_hdr, IH_OS_LINUX) ||
539             !image_check_arch(rd_hdr, arch) ||
540             !image_check_type(rd_hdr, IH_TYPE_RAMDISK)) {
541                 printf("No Linux %s Ramdisk Image\n",
542                                 genimg_get_arch_name(arch));
543                 bootstage_error(BOOTSTAGE_ID_RAMDISK);
544                 return NULL;
545         }
546
547         return rd_hdr;
548 }
549 #endif
550 #endif /* !USE_HOSTCC */
551
552 /*****************************************************************************/
553 /* Shared dual-format routines */
554 /*****************************************************************************/
555 #ifndef USE_HOSTCC
556 ulong load_addr = CONFIG_SYS_LOAD_ADDR; /* Default Load Address */
557 ulong save_addr;                        /* Default Save Address */
558 ulong save_size;                        /* Default Save Size (in bytes) */
559
560 static int on_loadaddr(const char *name, const char *value, enum env_op op,
561         int flags)
562 {
563         switch (op) {
564         case env_op_create:
565         case env_op_overwrite:
566                 load_addr = simple_strtoul(value, NULL, 16);
567                 break;
568         default:
569                 break;
570         }
571
572         return 0;
573 }
574 U_BOOT_ENV_CALLBACK(loadaddr, on_loadaddr);
575
576 ulong env_get_bootm_low(void)
577 {
578         char *s = env_get("bootm_low");
579         if (s) {
580                 ulong tmp = simple_strtoul(s, NULL, 16);
581                 return tmp;
582         }
583
584 #if defined(CONFIG_SYS_SDRAM_BASE)
585         return CONFIG_SYS_SDRAM_BASE;
586 #elif defined(CONFIG_ARM) || defined(CONFIG_MICROBLAZE)
587         return gd->bd->bi_dram[0].start;
588 #else
589         return 0;
590 #endif
591 }
592
593 phys_size_t env_get_bootm_size(void)
594 {
595         phys_size_t tmp, size;
596         phys_addr_t start;
597         char *s = env_get("bootm_size");
598         if (s) {
599                 tmp = (phys_size_t)simple_strtoull(s, NULL, 16);
600                 return tmp;
601         }
602
603 #if (defined(CONFIG_ARM) || defined(CONFIG_MICROBLAZE)) && \
604      defined(CONFIG_NR_DRAM_BANKS)
605         start = gd->bd->bi_dram[0].start;
606         size = gd->bd->bi_dram[0].size;
607 #else
608         start = gd->bd->bi_memstart;
609         size = gd->bd->bi_memsize;
610 #endif
611
612         s = env_get("bootm_low");
613         if (s)
614                 tmp = (phys_size_t)simple_strtoull(s, NULL, 16);
615         else
616                 tmp = start;
617
618         return size - (tmp - start);
619 }
620
621 phys_size_t env_get_bootm_mapsize(void)
622 {
623         phys_size_t tmp;
624         char *s = env_get("bootm_mapsize");
625         if (s) {
626                 tmp = (phys_size_t)simple_strtoull(s, NULL, 16);
627                 return tmp;
628         }
629
630 #if defined(CONFIG_SYS_BOOTMAPSZ)
631         return CONFIG_SYS_BOOTMAPSZ;
632 #else
633         return env_get_bootm_size();
634 #endif
635 }
636
637 void memmove_wd(void *to, void *from, size_t len, ulong chunksz)
638 {
639         if (to == from)
640                 return;
641
642 #if defined(CONFIG_HW_WATCHDOG) || defined(CONFIG_WATCHDOG)
643         if (to > from) {
644                 from += len;
645                 to += len;
646         }
647         while (len > 0) {
648                 size_t tail = (len > chunksz) ? chunksz : len;
649                 WATCHDOG_RESET();
650                 if (to > from) {
651                         to -= tail;
652                         from -= tail;
653                 }
654                 memmove(to, from, tail);
655                 if (to < from) {
656                         to += tail;
657                         from += tail;
658                 }
659                 len -= tail;
660         }
661 #else   /* !(CONFIG_HW_WATCHDOG || CONFIG_WATCHDOG) */
662         memmove(to, from, len);
663 #endif  /* CONFIG_HW_WATCHDOG || CONFIG_WATCHDOG */
664 }
665 #else   /* USE_HOSTCC */
666 void memmove_wd(void *to, void *from, size_t len, ulong chunksz)
667 {
668         memmove(to, from, len);
669 }
670 #endif /* !USE_HOSTCC */
671
672 void genimg_print_size(uint32_t size)
673 {
674 #ifndef USE_HOSTCC
675         printf("%d Bytes = ", size);
676         print_size(size, "\n");
677 #else
678         printf("%d Bytes = %.2f KiB = %.2f MiB\n",
679                         size, (double)size / 1.024e3,
680                         (double)size / 1.048576e6);
681 #endif
682 }
683
684 #if IMAGE_ENABLE_TIMESTAMP
685 void genimg_print_time(time_t timestamp)
686 {
687 #ifndef USE_HOSTCC
688         struct rtc_time tm;
689
690         rtc_to_tm(timestamp, &tm);
691         printf("%4d-%02d-%02d  %2d:%02d:%02d UTC\n",
692                         tm.tm_year, tm.tm_mon, tm.tm_mday,
693                         tm.tm_hour, tm.tm_min, tm.tm_sec);
694 #else
695         printf("%s", ctime(&timestamp));
696 #endif
697 }
698 #endif
699
700 const table_entry_t *get_table_entry(const table_entry_t *table, int id)
701 {
702         for (; table->id >= 0; ++table) {
703                 if (table->id == id)
704                         return table;
705         }
706         return NULL;
707 }
708
709 static const char *unknown_msg(enum ih_category category)
710 {
711         static const char unknown_str[] = "Unknown ";
712         static char msg[30];
713
714         strcpy(msg, unknown_str);
715         strncat(msg, table_info[category].desc,
716                 sizeof(msg) - sizeof(unknown_str));
717
718         return msg;
719 }
720
721 /**
722  * get_cat_table_entry_name - translate entry id to long name
723  * @category: category to look up (enum ih_category)
724  * @id: entry id to be translated
725  *
726  * This will scan the translation table trying to find the entry that matches
727  * the given id.
728  *
729  * @retur long entry name if translation succeeds; error string on failure
730  */
731 const char *genimg_get_cat_name(enum ih_category category, uint id)
732 {
733         const table_entry_t *entry;
734
735         entry = get_table_entry(table_info[category].table, id);
736         if (!entry)
737                 return unknown_msg(category);
738 #if defined(USE_HOSTCC) || !defined(CONFIG_NEEDS_MANUAL_RELOC)
739         return entry->lname;
740 #else
741         return entry->lname + gd->reloc_off;
742 #endif
743 }
744
745 /**
746  * get_cat_table_entry_short_name - translate entry id to short name
747  * @category: category to look up (enum ih_category)
748  * @id: entry id to be translated
749  *
750  * This will scan the translation table trying to find the entry that matches
751  * the given id.
752  *
753  * @retur short entry name if translation succeeds; error string on failure
754  */
755 const char *genimg_get_cat_short_name(enum ih_category category, uint id)
756 {
757         const table_entry_t *entry;
758
759         entry = get_table_entry(table_info[category].table, id);
760         if (!entry)
761                 return unknown_msg(category);
762 #if defined(USE_HOSTCC) || !defined(CONFIG_NEEDS_MANUAL_RELOC)
763         return entry->sname;
764 #else
765         return entry->sname + gd->reloc_off;
766 #endif
767 }
768
769 int genimg_get_cat_count(enum ih_category category)
770 {
771         return table_info[category].count;
772 }
773
774 const char *genimg_get_cat_desc(enum ih_category category)
775 {
776         return table_info[category].desc;
777 }
778
779 /**
780  * get_table_entry_name - translate entry id to long name
781  * @table: pointer to a translation table for entries of a specific type
782  * @msg: message to be returned when translation fails
783  * @id: entry id to be translated
784  *
785  * get_table_entry_name() will go over translation table trying to find
786  * entry that matches given id. If matching entry is found, its long
787  * name is returned to the caller.
788  *
789  * returns:
790  *     long entry name if translation succeeds
791  *     msg otherwise
792  */
793 char *get_table_entry_name(const table_entry_t *table, char *msg, int id)
794 {
795         table = get_table_entry(table, id);
796         if (!table)
797                 return msg;
798 #if defined(USE_HOSTCC) || !defined(CONFIG_NEEDS_MANUAL_RELOC)
799         return table->lname;
800 #else
801         return table->lname + gd->reloc_off;
802 #endif
803 }
804
805 const char *genimg_get_os_name(uint8_t os)
806 {
807         return (get_table_entry_name(uimage_os, "Unknown OS", os));
808 }
809
810 const char *genimg_get_arch_name(uint8_t arch)
811 {
812         return (get_table_entry_name(uimage_arch, "Unknown Architecture",
813                                         arch));
814 }
815
816 const char *genimg_get_type_name(uint8_t type)
817 {
818         return (get_table_entry_name(uimage_type, "Unknown Image", type));
819 }
820
821 static const char *genimg_get_short_name(const table_entry_t *table, int val)
822 {
823         table = get_table_entry(table, val);
824         if (!table)
825                 return "unknown";
826 #if defined(USE_HOSTCC) || !defined(CONFIG_NEEDS_MANUAL_RELOC)
827         return table->sname;
828 #else
829         return table->sname + gd->reloc_off;
830 #endif
831 }
832
833 const char *genimg_get_type_short_name(uint8_t type)
834 {
835         return genimg_get_short_name(uimage_type, type);
836 }
837
838 const char *genimg_get_comp_name(uint8_t comp)
839 {
840         return (get_table_entry_name(uimage_comp, "Unknown Compression",
841                                         comp));
842 }
843
844 const char *genimg_get_comp_short_name(uint8_t comp)
845 {
846         return genimg_get_short_name(uimage_comp, comp);
847 }
848
849 const char *genimg_get_os_short_name(uint8_t os)
850 {
851         return genimg_get_short_name(uimage_os, os);
852 }
853
854 const char *genimg_get_arch_short_name(uint8_t arch)
855 {
856         return genimg_get_short_name(uimage_arch, arch);
857 }
858
859 /**
860  * get_table_entry_id - translate short entry name to id
861  * @table: pointer to a translation table for entries of a specific type
862  * @table_name: to be used in case of error
863  * @name: entry short name to be translated
864  *
865  * get_table_entry_id() will go over translation table trying to find
866  * entry that matches given short name. If matching entry is found,
867  * its id returned to the caller.
868  *
869  * returns:
870  *     entry id if translation succeeds
871  *     -1 otherwise
872  */
873 int get_table_entry_id(const table_entry_t *table,
874                 const char *table_name, const char *name)
875 {
876         const table_entry_t *t;
877
878         for (t = table; t->id >= 0; ++t) {
879 #ifdef CONFIG_NEEDS_MANUAL_RELOC
880                 if (t->sname && strcasecmp(t->sname + gd->reloc_off, name) == 0)
881 #else
882                 if (t->sname && strcasecmp(t->sname, name) == 0)
883 #endif
884                         return (t->id);
885         }
886         debug("Invalid %s Type: %s\n", table_name, name);
887
888         return -1;
889 }
890
891 int genimg_get_os_id(const char *name)
892 {
893         return (get_table_entry_id(uimage_os, "OS", name));
894 }
895
896 int genimg_get_arch_id(const char *name)
897 {
898         return (get_table_entry_id(uimage_arch, "CPU", name));
899 }
900
901 int genimg_get_type_id(const char *name)
902 {
903         return (get_table_entry_id(uimage_type, "Image", name));
904 }
905
906 int genimg_get_comp_id(const char *name)
907 {
908         return (get_table_entry_id(uimage_comp, "Compression", name));
909 }
910
911 #ifndef USE_HOSTCC
912 /**
913  * genimg_get_kernel_addr_fit - get the real kernel address and return 2
914  *                              FIT strings
915  * @img_addr: a string might contain real image address
916  * @fit_uname_config: double pointer to a char, will hold pointer to a
917  *                    configuration unit name
918  * @fit_uname_kernel: double pointer to a char, will hold pointer to a subimage
919  *                    name
920  *
921  * genimg_get_kernel_addr_fit get the real kernel start address from a string
922  * which is normally the first argv of bootm/bootz
923  *
924  * returns:
925  *     kernel start address
926  */
927 ulong genimg_get_kernel_addr_fit(char * const img_addr,
928                              const char **fit_uname_config,
929                              const char **fit_uname_kernel)
930 {
931         ulong kernel_addr;
932
933         /* find out kernel image address */
934         if (!img_addr) {
935                 kernel_addr = load_addr;
936                 debug("*  kernel: default image load address = 0x%08lx\n",
937                       load_addr);
938 #if CONFIG_IS_ENABLED(FIT)
939         } else if (fit_parse_conf(img_addr, load_addr, &kernel_addr,
940                                   fit_uname_config)) {
941                 debug("*  kernel: config '%s' from image at 0x%08lx\n",
942                       *fit_uname_config, kernel_addr);
943         } else if (fit_parse_subimage(img_addr, load_addr, &kernel_addr,
944                                      fit_uname_kernel)) {
945                 debug("*  kernel: subimage '%s' from image at 0x%08lx\n",
946                       *fit_uname_kernel, kernel_addr);
947 #endif
948         } else {
949                 kernel_addr = simple_strtoul(img_addr, NULL, 16);
950                 debug("*  kernel: cmdline image address = 0x%08lx\n",
951                       kernel_addr);
952         }
953
954         return kernel_addr;
955 }
956
957 /**
958  * genimg_get_kernel_addr() is the simple version of
959  * genimg_get_kernel_addr_fit(). It ignores those return FIT strings
960  */
961 ulong genimg_get_kernel_addr(char * const img_addr)
962 {
963         const char *fit_uname_config = NULL;
964         const char *fit_uname_kernel = NULL;
965
966         return genimg_get_kernel_addr_fit(img_addr, &fit_uname_config,
967                                           &fit_uname_kernel);
968 }
969
970 /**
971  * genimg_get_format - get image format type
972  * @img_addr: image start address
973  *
974  * genimg_get_format() checks whether provided address points to a valid
975  * legacy or FIT image.
976  *
977  * New uImage format and FDT blob are based on a libfdt. FDT blob
978  * may be passed directly or embedded in a FIT image. In both situations
979  * genimg_get_format() must be able to dectect libfdt header.
980  *
981  * returns:
982  *     image format type or IMAGE_FORMAT_INVALID if no image is present
983  */
984 int genimg_get_format(const void *img_addr)
985 {
986 #if CONFIG_IS_ENABLED(LEGACY_IMAGE_FORMAT)
987         const image_header_t *hdr;
988
989         hdr = (const image_header_t *)img_addr;
990         if (image_check_magic(hdr))
991                 return IMAGE_FORMAT_LEGACY;
992 #endif
993 #if IMAGE_ENABLE_FIT || IMAGE_ENABLE_OF_LIBFDT
994         if (fdt_check_header(img_addr) == 0)
995                 return IMAGE_FORMAT_FIT;
996 #endif
997 #ifdef CONFIG_ANDROID_BOOT_IMAGE
998         if (android_image_check_header(img_addr) == 0)
999                 return IMAGE_FORMAT_ANDROID;
1000 #endif
1001
1002         return IMAGE_FORMAT_INVALID;
1003 }
1004
1005 /**
1006  * fit_has_config - check if there is a valid FIT configuration
1007  * @images: pointer to the bootm command headers structure
1008  *
1009  * fit_has_config() checks if there is a FIT configuration in use
1010  * (if FTI support is present).
1011  *
1012  * returns:
1013  *     0, no FIT support or no configuration found
1014  *     1, configuration found
1015  */
1016 int genimg_has_config(bootm_headers_t *images)
1017 {
1018 #if IMAGE_ENABLE_FIT
1019         if (images->fit_uname_cfg)
1020                 return 1;
1021 #endif
1022         return 0;
1023 }
1024
1025 /**
1026  * boot_get_ramdisk - main ramdisk handling routine
1027  * @argc: command argument count
1028  * @argv: command argument list
1029  * @images: pointer to the bootm images structure
1030  * @arch: expected ramdisk architecture
1031  * @rd_start: pointer to a ulong variable, will hold ramdisk start address
1032  * @rd_end: pointer to a ulong variable, will hold ramdisk end
1033  *
1034  * boot_get_ramdisk() is responsible for finding a valid ramdisk image.
1035  * Curently supported are the following ramdisk sources:
1036  *      - multicomponent kernel/ramdisk image,
1037  *      - commandline provided address of decicated ramdisk image.
1038  *
1039  * returns:
1040  *     0, if ramdisk image was found and valid, or skiped
1041  *     rd_start and rd_end are set to ramdisk start/end addresses if
1042  *     ramdisk image is found and valid
1043  *
1044  *     1, if ramdisk image is found but corrupted, or invalid
1045  *     rd_start and rd_end are set to 0 if no ramdisk exists
1046  */
1047 int boot_get_ramdisk(int argc, char * const argv[], bootm_headers_t *images,
1048                 uint8_t arch, ulong *rd_start, ulong *rd_end)
1049 {
1050         ulong rd_addr, rd_load;
1051         ulong rd_data, rd_len;
1052 #if CONFIG_IS_ENABLED(LEGACY_IMAGE_FORMAT)
1053         const image_header_t *rd_hdr;
1054 #endif
1055         void *buf;
1056 #ifdef CONFIG_SUPPORT_RAW_INITRD
1057         char *end;
1058 #endif
1059 #if IMAGE_ENABLE_FIT
1060         const char      *fit_uname_config = images->fit_uname_cfg;
1061         const char      *fit_uname_ramdisk = NULL;
1062         ulong           default_addr;
1063         int             rd_noffset;
1064 #endif
1065         const char *select = NULL;
1066
1067         *rd_start = 0;
1068         *rd_end = 0;
1069
1070 #ifdef CONFIG_ANDROID_BOOT_IMAGE
1071         /*
1072          * Look for an Android boot image.
1073          */
1074         buf = map_sysmem(images->os.start, 0);
1075         if (buf && genimg_get_format(buf) == IMAGE_FORMAT_ANDROID)
1076                 select = (argc == 0) ? env_get("loadaddr") : argv[0];
1077 #endif
1078
1079         if (argc >= 2)
1080                 select = argv[1];
1081
1082         /*
1083          * Look for a '-' which indicates to ignore the
1084          * ramdisk argument
1085          */
1086         if (select && strcmp(select, "-") ==  0) {
1087                 debug("## Skipping init Ramdisk\n");
1088                 rd_len = rd_data = 0;
1089         } else if (select || genimg_has_config(images)) {
1090 #if IMAGE_ENABLE_FIT
1091                 if (select) {
1092                         /*
1093                          * If the init ramdisk comes from the FIT image and
1094                          * the FIT image address is omitted in the command
1095                          * line argument, try to use os FIT image address or
1096                          * default load address.
1097                          */
1098                         if (images->fit_uname_os)
1099                                 default_addr = (ulong)images->fit_hdr_os;
1100                         else
1101                                 default_addr = load_addr;
1102
1103                         if (fit_parse_conf(select, default_addr,
1104                                            &rd_addr, &fit_uname_config)) {
1105                                 debug("*  ramdisk: config '%s' from image at "
1106                                                 "0x%08lx\n",
1107                                                 fit_uname_config, rd_addr);
1108                         } else if (fit_parse_subimage(select, default_addr,
1109                                                 &rd_addr, &fit_uname_ramdisk)) {
1110                                 debug("*  ramdisk: subimage '%s' from image at "
1111                                                 "0x%08lx\n",
1112                                                 fit_uname_ramdisk, rd_addr);
1113                         } else
1114 #endif
1115                         {
1116                                 rd_addr = simple_strtoul(select, NULL, 16);
1117                                 debug("*  ramdisk: cmdline image address = "
1118                                                 "0x%08lx\n",
1119                                                 rd_addr);
1120                         }
1121 #if IMAGE_ENABLE_FIT
1122                 } else {
1123                         /* use FIT configuration provided in first bootm
1124                          * command argument. If the property is not defined,
1125                          * quit silently.
1126                          */
1127                         rd_addr = map_to_sysmem(images->fit_hdr_os);
1128                         rd_noffset = fit_get_node_from_config(images,
1129                                         FIT_RAMDISK_PROP, rd_addr);
1130                         if (rd_noffset == -ENOENT)
1131                                 return 0;
1132                         else if (rd_noffset < 0)
1133                                 return 1;
1134                 }
1135 #endif
1136
1137                 /*
1138                  * Check if there is an initrd image at the
1139                  * address provided in the second bootm argument
1140                  * check image type, for FIT images get FIT node.
1141                  */
1142                 buf = map_sysmem(rd_addr, 0);
1143                 switch (genimg_get_format(buf)) {
1144 #if CONFIG_IS_ENABLED(LEGACY_IMAGE_FORMAT)
1145                 case IMAGE_FORMAT_LEGACY:
1146                         printf("## Loading init Ramdisk from Legacy "
1147                                         "Image at %08lx ...\n", rd_addr);
1148
1149                         bootstage_mark(BOOTSTAGE_ID_CHECK_RAMDISK);
1150                         rd_hdr = image_get_ramdisk(rd_addr, arch,
1151                                                         images->verify);
1152
1153                         if (rd_hdr == NULL)
1154                                 return 1;
1155
1156                         rd_data = image_get_data(rd_hdr);
1157                         rd_len = image_get_data_size(rd_hdr);
1158                         rd_load = image_get_load(rd_hdr);
1159                         break;
1160 #endif
1161 #if IMAGE_ENABLE_FIT
1162                 case IMAGE_FORMAT_FIT:
1163                         rd_noffset = fit_image_load(images,
1164                                         rd_addr, &fit_uname_ramdisk,
1165                                         &fit_uname_config, arch,
1166                                         IH_TYPE_RAMDISK,
1167                                         BOOTSTAGE_ID_FIT_RD_START,
1168                                         FIT_LOAD_OPTIONAL_NON_ZERO,
1169                                         &rd_data, &rd_len);
1170                         if (rd_noffset < 0)
1171                                 return 1;
1172
1173                         images->fit_hdr_rd = map_sysmem(rd_addr, 0);
1174                         images->fit_uname_rd = fit_uname_ramdisk;
1175                         images->fit_noffset_rd = rd_noffset;
1176                         break;
1177 #endif
1178 #ifdef CONFIG_ANDROID_BOOT_IMAGE
1179                 case IMAGE_FORMAT_ANDROID:
1180                         android_image_get_ramdisk((void *)images->os.start,
1181                                 &rd_data, &rd_len);
1182                         break;
1183 #endif
1184                 default:
1185 #ifdef CONFIG_SUPPORT_RAW_INITRD
1186                         end = NULL;
1187                         if (select)
1188                                 end = strchr(select, ':');
1189                         if (end) {
1190                                 rd_len = simple_strtoul(++end, NULL, 16);
1191                                 rd_data = rd_addr;
1192                         } else
1193 #endif
1194                         {
1195                                 puts("Wrong Ramdisk Image Format\n");
1196                                 rd_data = rd_len = rd_load = 0;
1197                                 return 1;
1198                         }
1199                 }
1200         } else if (images->legacy_hdr_valid &&
1201                         image_check_type(&images->legacy_hdr_os_copy,
1202                                                 IH_TYPE_MULTI)) {
1203
1204                 /*
1205                  * Now check if we have a legacy mult-component image,
1206                  * get second entry data start address and len.
1207                  */
1208                 bootstage_mark(BOOTSTAGE_ID_RAMDISK);
1209                 printf("## Loading init Ramdisk from multi component "
1210                                 "Legacy Image at %08lx ...\n",
1211                                 (ulong)images->legacy_hdr_os);
1212
1213                 image_multi_getimg(images->legacy_hdr_os, 1, &rd_data, &rd_len);
1214         } else {
1215                 /*
1216                  * no initrd image
1217                  */
1218                 bootstage_mark(BOOTSTAGE_ID_NO_RAMDISK);
1219                 rd_len = rd_data = 0;
1220         }
1221
1222         if (!rd_data) {
1223                 debug("## No init Ramdisk\n");
1224         } else {
1225                 *rd_start = rd_data;
1226                 *rd_end = rd_data + rd_len;
1227         }
1228         debug("   ramdisk start = 0x%08lx, ramdisk end = 0x%08lx\n",
1229                         *rd_start, *rd_end);
1230
1231         return 0;
1232 }
1233
1234 #ifdef CONFIG_SYS_BOOT_RAMDISK_HIGH
1235 /**
1236  * boot_ramdisk_high - relocate init ramdisk
1237  * @lmb: pointer to lmb handle, will be used for memory mgmt
1238  * @rd_data: ramdisk data start address
1239  * @rd_len: ramdisk data length
1240  * @initrd_start: pointer to a ulong variable, will hold final init ramdisk
1241  *      start address (after possible relocation)
1242  * @initrd_end: pointer to a ulong variable, will hold final init ramdisk
1243  *      end address (after possible relocation)
1244  *
1245  * boot_ramdisk_high() takes a relocation hint from "initrd_high" environment
1246  * variable and if requested ramdisk data is moved to a specified location.
1247  *
1248  * Initrd_start and initrd_end are set to final (after relocation) ramdisk
1249  * start/end addresses if ramdisk image start and len were provided,
1250  * otherwise set initrd_start and initrd_end set to zeros.
1251  *
1252  * returns:
1253  *      0 - success
1254  *     -1 - failure
1255  */
1256 int boot_ramdisk_high(struct lmb *lmb, ulong rd_data, ulong rd_len,
1257                   ulong *initrd_start, ulong *initrd_end)
1258 {
1259         char    *s;
1260         ulong   initrd_high;
1261         int     initrd_copy_to_ram = 1;
1262
1263         s = env_get("initrd_high");
1264         if (s) {
1265                 /* a value of "no" or a similar string will act like 0,
1266                  * turning the "load high" feature off. This is intentional.
1267                  */
1268                 initrd_high = simple_strtoul(s, NULL, 16);
1269                 if (initrd_high == ~0)
1270                         initrd_copy_to_ram = 0;
1271         } else {
1272                 initrd_high = env_get_bootm_mapsize() + env_get_bootm_low();
1273         }
1274
1275
1276         debug("## initrd_high = 0x%08lx, copy_to_ram = %d\n",
1277                         initrd_high, initrd_copy_to_ram);
1278
1279         if (rd_data) {
1280                 if (!initrd_copy_to_ram) {      /* zero-copy ramdisk support */
1281                         debug("   in-place initrd\n");
1282                         *initrd_start = rd_data;
1283                         *initrd_end = rd_data + rd_len;
1284                         lmb_reserve(lmb, rd_data, rd_len);
1285                 } else {
1286                         if (initrd_high)
1287                                 *initrd_start = (ulong)lmb_alloc_base(lmb,
1288                                                 rd_len, 0x1000, initrd_high);
1289                         else
1290                                 *initrd_start = (ulong)lmb_alloc(lmb, rd_len,
1291                                                                  0x1000);
1292
1293                         if (*initrd_start == 0) {
1294                                 puts("ramdisk - allocation error\n");
1295                                 goto error;
1296                         }
1297                         bootstage_mark(BOOTSTAGE_ID_COPY_RAMDISK);
1298
1299                         *initrd_end = *initrd_start + rd_len;
1300                         printf("   Loading Ramdisk to %08lx, end %08lx ... ",
1301                                         *initrd_start, *initrd_end);
1302
1303                         memmove_wd((void *)*initrd_start,
1304                                         (void *)rd_data, rd_len, CHUNKSZ);
1305
1306 #ifdef CONFIG_MP
1307                         /*
1308                          * Ensure the image is flushed to memory to handle
1309                          * AMP boot scenarios in which we might not be
1310                          * HW cache coherent
1311                          */
1312                         flush_cache((unsigned long)*initrd_start,
1313                                     ALIGN(rd_len, ARCH_DMA_MINALIGN));
1314 #endif
1315                         puts("OK\n");
1316                 }
1317         } else {
1318                 *initrd_start = 0;
1319                 *initrd_end = 0;
1320         }
1321         debug("   ramdisk load start = 0x%08lx, ramdisk load end = 0x%08lx\n",
1322                         *initrd_start, *initrd_end);
1323
1324         return 0;
1325
1326 error:
1327         return -1;
1328 }
1329 #endif /* CONFIG_SYS_BOOT_RAMDISK_HIGH */
1330
1331 int boot_get_setup(bootm_headers_t *images, uint8_t arch,
1332                    ulong *setup_start, ulong *setup_len)
1333 {
1334 #if IMAGE_ENABLE_FIT
1335         return boot_get_setup_fit(images, arch, setup_start, setup_len);
1336 #else
1337         return -ENOENT;
1338 #endif
1339 }
1340
1341 #if IMAGE_ENABLE_FIT
1342 #if defined(CONFIG_FPGA)
1343 int boot_get_fpga(int argc, char * const argv[], bootm_headers_t *images,
1344                   uint8_t arch, const ulong *ld_start, ulong * const ld_len)
1345 {
1346         ulong tmp_img_addr, img_data, img_len;
1347         void *buf;
1348         int conf_noffset;
1349         int fit_img_result;
1350         const char *uname, *name;
1351         int err;
1352         int devnum = 0; /* TODO support multi fpga platforms */
1353
1354         /* Check to see if the images struct has a FIT configuration */
1355         if (!genimg_has_config(images)) {
1356                 debug("## FIT configuration was not specified\n");
1357                 return 0;
1358         }
1359
1360         /*
1361          * Obtain the os FIT header from the images struct
1362          */
1363         tmp_img_addr = map_to_sysmem(images->fit_hdr_os);
1364         buf = map_sysmem(tmp_img_addr, 0);
1365         /*
1366          * Check image type. For FIT images get FIT node
1367          * and attempt to locate a generic binary.
1368          */
1369         switch (genimg_get_format(buf)) {
1370         case IMAGE_FORMAT_FIT:
1371                 conf_noffset = fit_conf_get_node(buf, images->fit_uname_cfg);
1372
1373                 uname = fdt_stringlist_get(buf, conf_noffset, FIT_FPGA_PROP, 0,
1374                                            NULL);
1375                 if (!uname) {
1376                         debug("## FPGA image is not specified\n");
1377                         return 0;
1378                 }
1379                 fit_img_result = fit_image_load(images,
1380                                                 tmp_img_addr,
1381                                                 (const char **)&uname,
1382                                                 &(images->fit_uname_cfg),
1383                                                 arch,
1384                                                 IH_TYPE_FPGA,
1385                                                 BOOTSTAGE_ID_FPGA_INIT,
1386                                                 FIT_LOAD_OPTIONAL_NON_ZERO,
1387                                                 &img_data, &img_len);
1388
1389                 debug("FPGA image (%s) loaded to 0x%lx/size 0x%lx\n",
1390                       uname, img_data, img_len);
1391
1392                 if (fit_img_result < 0) {
1393                         /* Something went wrong! */
1394                         return fit_img_result;
1395                 }
1396
1397                 if (!fpga_is_partial_data(devnum, img_len)) {
1398                         name = "full";
1399                         err = fpga_loadbitstream(devnum, (char *)img_data,
1400                                                  img_len, BIT_FULL);
1401                         if (err)
1402                                 err = fpga_load(devnum, (const void *)img_data,
1403                                                 img_len, BIT_FULL);
1404                 } else {
1405                         name = "partial";
1406                         err = fpga_loadbitstream(devnum, (char *)img_data,
1407                                                  img_len, BIT_PARTIAL);
1408                         if (err)
1409                                 err = fpga_load(devnum, (const void *)img_data,
1410                                                 img_len, BIT_PARTIAL);
1411                 }
1412
1413                 if (err)
1414                         return err;
1415
1416                 printf("   Programming %s bitstream... OK\n", name);
1417                 break;
1418         default:
1419                 printf("The given image format is not supported (corrupt?)\n");
1420                 return 1;
1421         }
1422
1423         return 0;
1424 }
1425 #endif
1426
1427 static void fit_loadable_process(uint8_t img_type,
1428                                  ulong img_data,
1429                                  ulong img_len)
1430 {
1431         int i;
1432         const unsigned int count =
1433                         ll_entry_count(struct fit_loadable_tbl, fit_loadable);
1434         struct fit_loadable_tbl *fit_loadable_handler =
1435                         ll_entry_start(struct fit_loadable_tbl, fit_loadable);
1436         /* For each loadable handler */
1437         for (i = 0; i < count; i++, fit_loadable_handler++)
1438                 /* matching this type */
1439                 if (fit_loadable_handler->type == img_type)
1440                         /* call that handler with this image data */
1441                         fit_loadable_handler->handler(img_data, img_len);
1442 }
1443
1444 int boot_get_loadable(int argc, char * const argv[], bootm_headers_t *images,
1445                 uint8_t arch, const ulong *ld_start, ulong * const ld_len)
1446 {
1447         /*
1448          * These variables are used to hold the current image location
1449          * in system memory.
1450          */
1451         ulong tmp_img_addr;
1452         /*
1453          * These two variables are requirements for fit_image_load, but
1454          * their values are not used
1455          */
1456         ulong img_data, img_len;
1457         void *buf;
1458         int loadables_index;
1459         int conf_noffset;
1460         int fit_img_result;
1461         const char *uname;
1462         uint8_t img_type;
1463
1464         /* Check to see if the images struct has a FIT configuration */
1465         if (!genimg_has_config(images)) {
1466                 debug("## FIT configuration was not specified\n");
1467                 return 0;
1468         }
1469
1470         /*
1471          * Obtain the os FIT header from the images struct
1472          */
1473         tmp_img_addr = map_to_sysmem(images->fit_hdr_os);
1474         buf = map_sysmem(tmp_img_addr, 0);
1475         /*
1476          * Check image type. For FIT images get FIT node
1477          * and attempt to locate a generic binary.
1478          */
1479         switch (genimg_get_format(buf)) {
1480         case IMAGE_FORMAT_FIT:
1481                 conf_noffset = fit_conf_get_node(buf, images->fit_uname_cfg);
1482
1483                 for (loadables_index = 0;
1484                      uname = fdt_stringlist_get(buf, conf_noffset,
1485                                         FIT_LOADABLE_PROP, loadables_index,
1486                                         NULL), uname;
1487                      loadables_index++)
1488                 {
1489                         fit_img_result = fit_image_load(images,
1490                                 tmp_img_addr,
1491                                 &uname,
1492                                 &(images->fit_uname_cfg), arch,
1493                                 IH_TYPE_LOADABLE,
1494                                 BOOTSTAGE_ID_FIT_LOADABLE_START,
1495                                 FIT_LOAD_OPTIONAL_NON_ZERO,
1496                                 &img_data, &img_len);
1497                         if (fit_img_result < 0) {
1498                                 /* Something went wrong! */
1499                                 return fit_img_result;
1500                         }
1501
1502                         fit_img_result = fit_image_get_node(buf, uname);
1503                         if (fit_img_result < 0) {
1504                                 /* Something went wrong! */
1505                                 return fit_img_result;
1506                         }
1507                         fit_img_result = fit_image_get_type(buf,
1508                                                             fit_img_result,
1509                                                             &img_type);
1510                         if (fit_img_result < 0) {
1511                                 /* Something went wrong! */
1512                                 return fit_img_result;
1513                         }
1514
1515                         fit_loadable_process(img_type, img_data, img_len);
1516                 }
1517                 break;
1518         default:
1519                 printf("The given image format is not supported (corrupt?)\n");
1520                 return 1;
1521         }
1522
1523         return 0;
1524 }
1525 #endif
1526
1527 #ifdef CONFIG_SYS_BOOT_GET_CMDLINE
1528 /**
1529  * boot_get_cmdline - allocate and initialize kernel cmdline
1530  * @lmb: pointer to lmb handle, will be used for memory mgmt
1531  * @cmd_start: pointer to a ulong variable, will hold cmdline start
1532  * @cmd_end: pointer to a ulong variable, will hold cmdline end
1533  *
1534  * boot_get_cmdline() allocates space for kernel command line below
1535  * BOOTMAPSZ + env_get_bootm_low() address. If "bootargs" U-Boot environment
1536  * variable is present its contents is copied to allocated kernel
1537  * command line.
1538  *
1539  * returns:
1540  *      0 - success
1541  *     -1 - failure
1542  */
1543 int boot_get_cmdline(struct lmb *lmb, ulong *cmd_start, ulong *cmd_end)
1544 {
1545         char *cmdline;
1546         char *s;
1547
1548         cmdline = (char *)(ulong)lmb_alloc_base(lmb, CONFIG_SYS_BARGSIZE, 0xf,
1549                                 env_get_bootm_mapsize() + env_get_bootm_low());
1550
1551         if (cmdline == NULL)
1552                 return -1;
1553
1554         s = env_get("bootargs");
1555         if (!s)
1556                 s = "";
1557
1558         strcpy(cmdline, s);
1559
1560         *cmd_start = (ulong) & cmdline[0];
1561         *cmd_end = *cmd_start + strlen(cmdline);
1562
1563         debug("## cmdline at 0x%08lx ... 0x%08lx\n", *cmd_start, *cmd_end);
1564
1565         return 0;
1566 }
1567 #endif /* CONFIG_SYS_BOOT_GET_CMDLINE */
1568
1569 #ifdef CONFIG_SYS_BOOT_GET_KBD
1570 /**
1571  * boot_get_kbd - allocate and initialize kernel copy of board info
1572  * @lmb: pointer to lmb handle, will be used for memory mgmt
1573  * @kbd: double pointer to board info data
1574  *
1575  * boot_get_kbd() allocates space for kernel copy of board info data below
1576  * BOOTMAPSZ + env_get_bootm_low() address and kernel board info is initialized
1577  * with the current u-boot board info data.
1578  *
1579  * returns:
1580  *      0 - success
1581  *     -1 - failure
1582  */
1583 int boot_get_kbd(struct lmb *lmb, bd_t **kbd)
1584 {
1585         *kbd = (bd_t *)(ulong)lmb_alloc_base(lmb, sizeof(bd_t), 0xf,
1586                                 env_get_bootm_mapsize() + env_get_bootm_low());
1587         if (*kbd == NULL)
1588                 return -1;
1589
1590         **kbd = *(gd->bd);
1591
1592         debug("## kernel board info at 0x%08lx\n", (ulong)*kbd);
1593
1594 #if defined(DEBUG) && defined(CONFIG_CMD_BDI)
1595         do_bdinfo(NULL, 0, 0, NULL);
1596 #endif
1597
1598         return 0;
1599 }
1600 #endif /* CONFIG_SYS_BOOT_GET_KBD */
1601
1602 #ifdef CONFIG_LMB
1603 int image_setup_linux(bootm_headers_t *images)
1604 {
1605         ulong of_size = images->ft_len;
1606         char **of_flat_tree = &images->ft_addr;
1607         struct lmb *lmb = &images->lmb;
1608         int ret;
1609
1610         if (IMAGE_ENABLE_OF_LIBFDT)
1611                 boot_fdt_add_mem_rsv_regions(lmb, *of_flat_tree);
1612
1613         if (IMAGE_BOOT_GET_CMDLINE) {
1614                 ret = boot_get_cmdline(lmb, &images->cmdline_start,
1615                                 &images->cmdline_end);
1616                 if (ret) {
1617                         puts("ERROR with allocation of cmdline\n");
1618                         return ret;
1619                 }
1620         }
1621
1622         if (IMAGE_ENABLE_OF_LIBFDT) {
1623                 ret = boot_relocate_fdt(lmb, of_flat_tree, &of_size);
1624                 if (ret)
1625                         return ret;
1626         }
1627
1628         if (IMAGE_ENABLE_OF_LIBFDT && of_size) {
1629                 ret = image_setup_libfdt(images, *of_flat_tree, of_size, lmb);
1630                 if (ret)
1631                         return ret;
1632         }
1633
1634         return 0;
1635 }
1636 #endif /* CONFIG_LMB */
1637 #endif /* !USE_HOSTCC */