2 * QEMU Executable loader
4 * Copyright (c) 2006 Fabrice Bellard
6 * Permission is hereby granted, free of charge, to any person obtaining a copy
7 * of this software and associated documentation files (the "Software"), to deal
8 * in the Software without restriction, including without limitation the rights
9 * to use, copy, modify, merge, publish, distribute, sublicense, and/or sell
10 * copies of the Software, and to permit persons to whom the Software is
11 * furnished to do so, subject to the following conditions:
13 * The above copyright notice and this permission notice shall be included in
14 * all copies or substantial portions of the Software.
16 * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
17 * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
18 * FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL
19 * THE AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER
20 * LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM,
21 * OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN
24 * Gunzip functionality in this file is derived from u-boot:
26 * (C) Copyright 2008 Semihalf
28 * (C) Copyright 2000-2005
29 * Wolfgang Denk, DENX Software Engineering, wd@denx.de.
31 * This program is free software; you can redistribute it and/or
32 * modify it under the terms of the GNU General Public License as
33 * published by the Free Software Foundation; either version 2 of
34 * the License, or (at your option) any later version.
36 * This program is distributed in the hope that it will be useful,
37 * but WITHOUT ANY WARRANTY; without even the implied warranty of
38 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
39 * GNU General Public License for more details.
41 * You should have received a copy of the GNU General Public License along
42 * with this program; if not, see <http://www.gnu.org/licenses/>.
45 #include "qemu/osdep.h"
46 #include "qapi/error.h"
48 #include "disas/disas.h"
49 #include "monitor/monitor.h"
50 #include "sysemu/sysemu.h"
51 #include "uboot_image.h"
52 #include "hw/loader.h"
53 #include "hw/nvram/fw_cfg.h"
54 #include "exec/memory.h"
55 #include "exec/address-spaces.h"
56 #include "hw/boards.h"
57 #include "qemu/cutils.h"
61 static int roms_loaded
;
63 /* return the size or -1 if error */
64 int get_image_size(const char *filename
)
67 fd
= open(filename
, O_RDONLY
| O_BINARY
);
70 size
= lseek(fd
, 0, SEEK_END
);
75 /* return the size or -1 if error */
76 /* deprecated, because caller does not specify buffer size! */
77 int load_image(const char *filename
, uint8_t *addr
)
80 fd
= open(filename
, O_RDONLY
| O_BINARY
);
83 size
= lseek(fd
, 0, SEEK_END
);
85 fprintf(stderr
, "file %-20s: get size error: %s\n",
86 filename
, strerror(errno
));
91 lseek(fd
, 0, SEEK_SET
);
92 if (read(fd
, addr
, size
) != size
) {
100 /* return the size or -1 if error */
101 ssize_t
load_image_size(const char *filename
, void *addr
, size_t size
)
106 fd
= open(filename
, O_RDONLY
| O_BINARY
);
111 actsize
= read(fd
, addr
, size
);
121 /* read()-like version */
122 ssize_t
read_targphys(const char *name
,
123 int fd
, hwaddr dst_addr
, size_t nbytes
)
128 buf
= g_malloc(nbytes
);
129 did
= read(fd
, buf
, nbytes
);
131 rom_add_blob_fixed("read", buf
, did
, dst_addr
);
136 int load_image_targphys(const char *filename
,
137 hwaddr addr
, uint64_t max_sz
)
139 return load_image_targphys_as(filename
, addr
, max_sz
, NULL
);
142 /* return the size or -1 if error */
143 int load_image_targphys_as(const char *filename
,
144 hwaddr addr
, uint64_t max_sz
, AddressSpace
*as
)
148 size
= get_image_size(filename
);
153 rom_add_file_fixed_as(filename
, addr
, -1, as
);
158 int load_image_mr(const char *filename
, MemoryRegion
*mr
)
162 if (!memory_access_is_direct(mr
, false)) {
163 /* Can only load an image into RAM or ROM */
167 size
= get_image_size(filename
);
169 if (size
> memory_region_size(mr
)) {
173 if (rom_add_file_mr(filename
, mr
, -1) < 0) {
180 void pstrcpy_targphys(const char *name
, hwaddr dest
, int buf_size
,
186 if (buf_size
<= 0) return;
187 nulp
= memchr(source
, 0, buf_size
);
189 rom_add_blob_fixed(name
, source
, (nulp
- source
) + 1, dest
);
191 rom_add_blob_fixed(name
, source
, buf_size
, dest
);
192 ptr
= rom_ptr(dest
+ buf_size
- 1);
201 uint32_t a_info
; /* Use macros N_MAGIC, etc for access */
202 uint32_t a_text
; /* length of text, in bytes */
203 uint32_t a_data
; /* length of data, in bytes */
204 uint32_t a_bss
; /* length of uninitialized data area, in bytes */
205 uint32_t a_syms
; /* length of symbol table data in file, in bytes */
206 uint32_t a_entry
; /* start address */
207 uint32_t a_trsize
; /* length of relocation info for text, in bytes */
208 uint32_t a_drsize
; /* length of relocation info for data, in bytes */
211 static void bswap_ahdr(struct exec
*e
)
213 bswap32s(&e
->a_info
);
214 bswap32s(&e
->a_text
);
215 bswap32s(&e
->a_data
);
217 bswap32s(&e
->a_syms
);
218 bswap32s(&e
->a_entry
);
219 bswap32s(&e
->a_trsize
);
220 bswap32s(&e
->a_drsize
);
223 #define N_MAGIC(exec) ((exec).a_info & 0xffff)
228 #define _N_HDROFF(x) (1024 - sizeof (struct exec))
229 #define N_TXTOFF(x) \
230 (N_MAGIC(x) == ZMAGIC ? _N_HDROFF((x)) + sizeof (struct exec) : \
231 (N_MAGIC(x) == QMAGIC ? 0 : sizeof (struct exec)))
232 #define N_TXTADDR(x, target_page_size) (N_MAGIC(x) == QMAGIC ? target_page_size : 0)
233 #define _N_SEGMENT_ROUND(x, target_page_size) (((x) + target_page_size - 1) & ~(target_page_size - 1))
235 #define _N_TXTENDADDR(x, target_page_size) (N_TXTADDR(x, target_page_size)+(x).a_text)
237 #define N_DATADDR(x, target_page_size) \
238 (N_MAGIC(x)==OMAGIC? (_N_TXTENDADDR(x, target_page_size)) \
239 : (_N_SEGMENT_ROUND (_N_TXTENDADDR(x, target_page_size), target_page_size)))
242 int load_aout(const char *filename
, hwaddr addr
, int max_sz
,
243 int bswap_needed
, hwaddr target_page_size
)
250 fd
= open(filename
, O_RDONLY
| O_BINARY
);
254 size
= read(fd
, &e
, sizeof(e
));
267 if (e
.a_text
+ e
.a_data
> max_sz
)
269 lseek(fd
, N_TXTOFF(e
), SEEK_SET
);
270 size
= read_targphys(filename
, fd
, addr
, e
.a_text
+ e
.a_data
);
275 if (N_DATADDR(e
, target_page_size
) + e
.a_data
> max_sz
)
277 lseek(fd
, N_TXTOFF(e
), SEEK_SET
);
278 size
= read_targphys(filename
, fd
, addr
, e
.a_text
);
281 ret
= read_targphys(filename
, fd
, addr
+ N_DATADDR(e
, target_page_size
),
299 static void *load_at(int fd
, off_t offset
, size_t size
)
302 if (lseek(fd
, offset
, SEEK_SET
) < 0)
304 ptr
= g_malloc(size
);
305 if (read(fd
, ptr
, size
) != size
) {
316 #define ELF_CLASS ELFCLASS32
320 #define elf_word uint32_t
321 #define elf_sword int32_t
322 #define bswapSZs bswap32s
323 #include "hw/elf_ops.h"
335 #define elfhdr elf64_hdr
336 #define elf_phdr elf64_phdr
337 #define elf_note elf64_note
338 #define elf_shdr elf64_shdr
339 #define elf_sym elf64_sym
340 #define elf_rela elf64_rela
341 #define elf_word uint64_t
342 #define elf_sword int64_t
343 #define bswapSZs bswap64s
345 #include "hw/elf_ops.h"
347 const char *load_elf_strerror(int error
)
352 case ELF_LOAD_FAILED
:
353 return "Failed to load ELF";
354 case ELF_LOAD_NOT_ELF
:
355 return "The image is not ELF";
356 case ELF_LOAD_WRONG_ARCH
:
357 return "The image is from incompatible architecture";
358 case ELF_LOAD_WRONG_ENDIAN
:
359 return "The image has incorrect endianness";
361 return "Unknown error";
365 void load_elf_hdr(const char *filename
, void *hdr
, bool *is64
, Error
**errp
)
368 uint8_t e_ident_local
[EI_NIDENT
];
370 size_t hdr_size
, off
;
378 fd
= open(filename
, O_RDONLY
| O_BINARY
);
380 error_setg_errno(errp
, errno
, "Failed to open file: %s", filename
);
383 if (read(fd
, hdr
, EI_NIDENT
) != EI_NIDENT
) {
384 error_setg_errno(errp
, errno
, "Failed to read file: %s", filename
);
387 if (e_ident
[0] != ELFMAG0
||
388 e_ident
[1] != ELFMAG1
||
389 e_ident
[2] != ELFMAG2
||
390 e_ident
[3] != ELFMAG3
) {
391 error_setg(errp
, "Bad ELF magic");
395 is64l
= e_ident
[EI_CLASS
] == ELFCLASS64
;
396 hdr_size
= is64l
? sizeof(Elf64_Ehdr
) : sizeof(Elf32_Ehdr
);
402 while (hdr
!= e_ident_local
&& off
< hdr_size
) {
403 size_t br
= read(fd
, hdr
+ off
, hdr_size
- off
);
406 error_setg(errp
, "File too short: %s", filename
);
409 error_setg_errno(errp
, errno
, "Failed to read file: %s",
420 /* return < 0 if error, otherwise the number of bytes loaded in memory */
421 int load_elf(const char *filename
, uint64_t (*translate_fn
)(void *, uint64_t),
422 void *translate_opaque
, uint64_t *pentry
, uint64_t *lowaddr
,
423 uint64_t *highaddr
, int big_endian
, int elf_machine
,
424 int clear_lsb
, int data_swab
)
426 return load_elf_as(filename
, translate_fn
, translate_opaque
, pentry
,
427 lowaddr
, highaddr
, big_endian
, elf_machine
, clear_lsb
,
431 /* return < 0 if error, otherwise the number of bytes loaded in memory */
432 int load_elf_as(const char *filename
,
433 uint64_t (*translate_fn
)(void *, uint64_t),
434 void *translate_opaque
, uint64_t *pentry
, uint64_t *lowaddr
,
435 uint64_t *highaddr
, int big_endian
, int elf_machine
,
436 int clear_lsb
, int data_swab
, AddressSpace
*as
)
438 int fd
, data_order
, target_data_order
, must_swab
, ret
= ELF_LOAD_FAILED
;
439 uint8_t e_ident
[EI_NIDENT
];
441 fd
= open(filename
, O_RDONLY
| O_BINARY
);
446 if (read(fd
, e_ident
, sizeof(e_ident
)) != sizeof(e_ident
))
448 if (e_ident
[0] != ELFMAG0
||
449 e_ident
[1] != ELFMAG1
||
450 e_ident
[2] != ELFMAG2
||
451 e_ident
[3] != ELFMAG3
) {
452 ret
= ELF_LOAD_NOT_ELF
;
455 #ifdef HOST_WORDS_BIGENDIAN
456 data_order
= ELFDATA2MSB
;
458 data_order
= ELFDATA2LSB
;
460 must_swab
= data_order
!= e_ident
[EI_DATA
];
462 target_data_order
= ELFDATA2MSB
;
464 target_data_order
= ELFDATA2LSB
;
467 if (target_data_order
!= e_ident
[EI_DATA
]) {
468 ret
= ELF_LOAD_WRONG_ENDIAN
;
472 lseek(fd
, 0, SEEK_SET
);
473 if (e_ident
[EI_CLASS
] == ELFCLASS64
) {
474 ret
= load_elf64(filename
, fd
, translate_fn
, translate_opaque
, must_swab
,
475 pentry
, lowaddr
, highaddr
, elf_machine
, clear_lsb
,
478 ret
= load_elf32(filename
, fd
, translate_fn
, translate_opaque
, must_swab
,
479 pentry
, lowaddr
, highaddr
, elf_machine
, clear_lsb
,
488 static void bswap_uboot_header(uboot_image_header_t
*hdr
)
490 #ifndef HOST_WORDS_BIGENDIAN
491 bswap32s(&hdr
->ih_magic
);
492 bswap32s(&hdr
->ih_hcrc
);
493 bswap32s(&hdr
->ih_time
);
494 bswap32s(&hdr
->ih_size
);
495 bswap32s(&hdr
->ih_load
);
496 bswap32s(&hdr
->ih_ep
);
497 bswap32s(&hdr
->ih_dcrc
);
502 #define ZALLOC_ALIGNMENT 16
504 static void *zalloc(void *x
, unsigned items
, unsigned size
)
509 size
= (size
+ ZALLOC_ALIGNMENT
- 1) & ~(ZALLOC_ALIGNMENT
- 1);
516 static void zfree(void *x
, void *addr
)
523 #define EXTRA_FIELD 4
526 #define RESERVED 0xe0
530 /* This is the usual maximum in uboot, so if a uImage overflows this, it would
531 * overflow on real hardware too. */
532 #define UBOOT_MAX_GUNZIP_BYTES (64 << 20)
534 static ssize_t
gunzip(void *dst
, size_t dstlen
, uint8_t *src
,
544 if (src
[2] != DEFLATED
|| (flags
& RESERVED
) != 0) {
545 puts ("Error: Bad gzipped data\n");
548 if ((flags
& EXTRA_FIELD
) != 0)
549 i
= 12 + src
[10] + (src
[11] << 8);
550 if ((flags
& ORIG_NAME
) != 0)
551 while (src
[i
++] != 0)
553 if ((flags
& COMMENT
) != 0)
554 while (src
[i
++] != 0)
556 if ((flags
& HEAD_CRC
) != 0)
559 puts ("Error: gunzip out of data in header\n");
566 r
= inflateInit2(&s
, -MAX_WBITS
);
568 printf ("Error: inflateInit2() returned %d\n", r
);
572 s
.avail_in
= srclen
- i
;
574 s
.avail_out
= dstlen
;
575 r
= inflate(&s
, Z_FINISH
);
576 if (r
!= Z_OK
&& r
!= Z_STREAM_END
) {
577 printf ("Error: inflate() returned %d\n", r
);
580 dstbytes
= s
.next_out
- (unsigned char *) dst
;
586 /* Load a U-Boot image. */
587 static int load_uboot_image(const char *filename
, hwaddr
*ep
, hwaddr
*loadaddr
,
588 int *is_linux
, uint8_t image_type
,
589 uint64_t (*translate_fn
)(void *, uint64_t),
590 void *translate_opaque
, AddressSpace
*as
)
595 uboot_image_header_t h
;
596 uboot_image_header_t
*hdr
= &h
;
597 uint8_t *data
= NULL
;
599 int do_uncompress
= 0;
601 fd
= open(filename
, O_RDONLY
| O_BINARY
);
605 size
= read(fd
, hdr
, sizeof(uboot_image_header_t
));
609 bswap_uboot_header(hdr
);
611 if (hdr
->ih_magic
!= IH_MAGIC
)
614 if (hdr
->ih_type
!= image_type
) {
615 fprintf(stderr
, "Wrong image type %d, expected %d\n", hdr
->ih_type
,
620 /* TODO: Implement other image types. */
621 switch (hdr
->ih_type
) {
623 address
= hdr
->ih_load
;
625 address
= translate_fn(translate_opaque
, address
);
628 *loadaddr
= hdr
->ih_load
;
631 switch (hdr
->ih_comp
) {
639 "Unable to load u-boot images with compression type %d\n",
648 /* TODO: Check CPU type. */
650 if (hdr
->ih_os
== IH_OS_LINUX
) {
658 case IH_TYPE_RAMDISK
:
662 fprintf(stderr
, "Unsupported u-boot image type %d\n", hdr
->ih_type
);
666 data
= g_malloc(hdr
->ih_size
);
668 if (read(fd
, data
, hdr
->ih_size
) != hdr
->ih_size
) {
669 fprintf(stderr
, "Error reading file\n");
674 uint8_t *compressed_data
;
678 compressed_data
= data
;
679 max_bytes
= UBOOT_MAX_GUNZIP_BYTES
;
680 data
= g_malloc(max_bytes
);
682 bytes
= gunzip(data
, max_bytes
, compressed_data
, hdr
->ih_size
);
683 g_free(compressed_data
);
685 fprintf(stderr
, "Unable to decompress gzipped image!\n");
688 hdr
->ih_size
= bytes
;
691 rom_add_blob_fixed_as(filename
, data
, hdr
->ih_size
, address
, as
);
701 int load_uimage(const char *filename
, hwaddr
*ep
, hwaddr
*loadaddr
,
703 uint64_t (*translate_fn
)(void *, uint64_t),
704 void *translate_opaque
)
706 return load_uboot_image(filename
, ep
, loadaddr
, is_linux
, IH_TYPE_KERNEL
,
707 translate_fn
, translate_opaque
, NULL
);
710 int load_uimage_as(const char *filename
, hwaddr
*ep
, hwaddr
*loadaddr
,
712 uint64_t (*translate_fn
)(void *, uint64_t),
713 void *translate_opaque
, AddressSpace
*as
)
715 return load_uboot_image(filename
, ep
, loadaddr
, is_linux
, IH_TYPE_KERNEL
,
716 translate_fn
, translate_opaque
, as
);
719 /* Load a ramdisk. */
720 int load_ramdisk(const char *filename
, hwaddr addr
, uint64_t max_sz
)
722 return load_uboot_image(filename
, NULL
, &addr
, NULL
, IH_TYPE_RAMDISK
,
726 /* Load a gzip-compressed kernel to a dynamically allocated buffer. */
727 int load_image_gzipped_buffer(const char *filename
, uint64_t max_sz
,
730 uint8_t *compressed_data
= NULL
;
731 uint8_t *data
= NULL
;
736 if (!g_file_get_contents(filename
, (char **) &compressed_data
, &len
,
741 /* Is it a gzip-compressed file? */
743 compressed_data
[0] != 0x1f ||
744 compressed_data
[1] != 0x8b) {
748 if (max_sz
> LOAD_IMAGE_MAX_GUNZIP_BYTES
) {
749 max_sz
= LOAD_IMAGE_MAX_GUNZIP_BYTES
;
752 data
= g_malloc(max_sz
);
753 bytes
= gunzip(data
, max_sz
, compressed_data
, len
);
755 fprintf(stderr
, "%s: unable to decompress gzipped kernel file\n",
760 /* trim to actual size and return to caller */
761 *buffer
= g_realloc(data
, bytes
);
763 /* ownership has been transferred to caller */
767 g_free(compressed_data
);
772 /* Load a gzip-compressed kernel. */
773 int load_image_gzipped(const char *filename
, hwaddr addr
, uint64_t max_sz
)
778 bytes
= load_image_gzipped_buffer(filename
, max_sz
, &data
);
780 rom_add_blob_fixed(filename
, data
, bytes
, addr
);
787 * Functions for reboot-persistent memory regions.
788 * - used for vga bios and option roms.
789 * - also linux kernel (-kernel / -initrd).
792 typedef struct Rom Rom
;
798 /* datasize is the amount of memory allocated in "data". If datasize is less
799 * than romsize, it means that the area from datasize to romsize is filled
813 QTAILQ_ENTRY(Rom
) next
;
816 static FWCfgState
*fw_cfg
;
817 static QTAILQ_HEAD(, Rom
) roms
= QTAILQ_HEAD_INITIALIZER(roms
);
819 static inline bool rom_order_compare(Rom
*rom
, Rom
*item
)
821 return (rom
->as
> item
->as
) ||
822 (rom
->as
== item
->as
&& rom
->addr
>= item
->addr
);
825 static void rom_insert(Rom
*rom
)
830 hw_error ("ROM images must be loaded at startup\n");
833 /* The user didn't specify an address space, this is the default */
835 rom
->as
= &address_space_memory
;
838 /* List is ordered by load address in the same address space */
839 QTAILQ_FOREACH(item
, &roms
, next
) {
840 if (rom_order_compare(rom
, item
)) {
843 QTAILQ_INSERT_BEFORE(item
, rom
, next
);
846 QTAILQ_INSERT_TAIL(&roms
, rom
, next
);
849 static void fw_cfg_resized(const char *id
, uint64_t length
, void *host
)
852 fw_cfg_modify_file(fw_cfg
, id
+ strlen("/rom@"), host
, length
);
856 static void *rom_set_mr(Rom
*rom
, Object
*owner
, const char *name
)
860 rom
->mr
= g_malloc(sizeof(*rom
->mr
));
861 memory_region_init_resizeable_ram(rom
->mr
, owner
, name
,
862 rom
->datasize
, rom
->romsize
,
865 memory_region_set_readonly(rom
->mr
, true);
866 vmstate_register_ram_global(rom
->mr
);
868 data
= memory_region_get_ram_ptr(rom
->mr
);
869 memcpy(data
, rom
->data
, rom
->datasize
);
874 int rom_add_file(const char *file
, const char *fw_dir
,
875 hwaddr addr
, int32_t bootindex
,
876 bool option_rom
, MemoryRegion
*mr
,
879 MachineClass
*mc
= MACHINE_GET_CLASS(qdev_get_machine());
885 fprintf(stderr
, "Specifying an Address Space and Memory Region is " \
886 "not valid when loading a rom\n");
887 /* We haven't allocated anything so we don't need any cleanup */
891 rom
= g_malloc0(sizeof(*rom
));
892 rom
->name
= g_strdup(file
);
893 rom
->path
= qemu_find_file(QEMU_FILE_TYPE_BIOS
, rom
->name
);
895 if (rom
->path
== NULL
) {
896 rom
->path
= g_strdup(file
);
899 fd
= open(rom
->path
, O_RDONLY
| O_BINARY
);
901 fprintf(stderr
, "Could not open option rom '%s': %s\n",
902 rom
->path
, strerror(errno
));
907 rom
->fw_dir
= g_strdup(fw_dir
);
908 rom
->fw_file
= g_strdup(file
);
911 rom
->romsize
= lseek(fd
, 0, SEEK_END
);
912 if (rom
->romsize
== -1) {
913 fprintf(stderr
, "rom: file %-20s: get size error: %s\n",
914 rom
->name
, strerror(errno
));
918 rom
->datasize
= rom
->romsize
;
919 rom
->data
= g_malloc0(rom
->datasize
);
920 lseek(fd
, 0, SEEK_SET
);
921 rc
= read(fd
, rom
->data
, rom
->datasize
);
922 if (rc
!= rom
->datasize
) {
923 fprintf(stderr
, "rom: file %-20s: read error: rc=%d (expected %zd)\n",
924 rom
->name
, rc
, rom
->datasize
);
929 if (rom
->fw_file
&& fw_cfg
) {
930 const char *basename
;
931 char fw_file_name
[FW_CFG_MAX_FILE_PATH
];
934 basename
= strrchr(rom
->fw_file
, '/');
938 basename
= rom
->fw_file
;
940 snprintf(fw_file_name
, sizeof(fw_file_name
), "%s/%s", rom
->fw_dir
,
942 snprintf(devpath
, sizeof(devpath
), "/rom@%s", fw_file_name
);
944 if ((!option_rom
|| mc
->option_rom_has_mr
) && mc
->rom_file_has_mr
) {
945 data
= rom_set_mr(rom
, OBJECT(fw_cfg
), devpath
);
950 fw_cfg_add_file(fw_cfg
, fw_file_name
, data
, rom
->romsize
);
954 snprintf(devpath
, sizeof(devpath
), "/rom@%s", file
);
956 snprintf(devpath
, sizeof(devpath
), "/rom@" TARGET_FMT_plx
, addr
);
960 add_boot_device_path(bootindex
, NULL
, devpath
);
972 g_free(rom
->fw_file
);
979 MemoryRegion
*rom_add_blob(const char *name
, const void *blob
, size_t len
,
980 size_t max_len
, hwaddr addr
, const char *fw_file_name
,
981 FWCfgReadCallback fw_callback
, void *callback_opaque
)
983 MachineClass
*mc
= MACHINE_GET_CLASS(qdev_get_machine());
985 MemoryRegion
*mr
= NULL
;
987 rom
= g_malloc0(sizeof(*rom
));
988 rom
->name
= g_strdup(name
);
990 rom
->romsize
= max_len
? max_len
: len
;
992 rom
->data
= g_malloc0(rom
->datasize
);
993 memcpy(rom
->data
, blob
, len
);
995 if (fw_file_name
&& fw_cfg
) {
999 snprintf(devpath
, sizeof(devpath
), "/rom@%s", fw_file_name
);
1001 if (mc
->rom_file_has_mr
) {
1002 data
= rom_set_mr(rom
, OBJECT(fw_cfg
), devpath
);
1008 fw_cfg_add_file_callback(fw_cfg
, fw_file_name
,
1009 fw_callback
, callback_opaque
,
1010 data
, rom
->datasize
);
1015 /* This function is specific for elf program because we don't need to allocate
1016 * all the rom. We just allocate the first part and the rest is just zeros. This
1017 * is why romsize and datasize are different. Also, this function seize the
1018 * memory ownership of "data", so we don't have to allocate and copy the buffer.
1020 int rom_add_elf_program(const char *name
, void *data
, size_t datasize
,
1021 size_t romsize
, hwaddr addr
, AddressSpace
*as
)
1025 rom
= g_malloc0(sizeof(*rom
));
1026 rom
->name
= g_strdup(name
);
1028 rom
->datasize
= datasize
;
1029 rom
->romsize
= romsize
;
1036 int rom_add_vga(const char *file
)
1038 return rom_add_file(file
, "vgaroms", 0, -1, true, NULL
, NULL
);
1041 int rom_add_option(const char *file
, int32_t bootindex
)
1043 return rom_add_file(file
, "genroms", 0, bootindex
, true, NULL
, NULL
);
1046 static void rom_reset(void *unused
)
1050 QTAILQ_FOREACH(rom
, &roms
, next
) {
1054 if (rom
->data
== NULL
) {
1058 void *host
= memory_region_get_ram_ptr(rom
->mr
);
1059 memcpy(host
, rom
->data
, rom
->datasize
);
1061 cpu_physical_memory_write_rom(rom
->as
, rom
->addr
, rom
->data
,
1065 /* rom needs to be written only once */
1070 * The rom loader is really on the same level as firmware in the guest
1071 * shadowing a ROM into RAM. Such a shadowing mechanism needs to ensure
1072 * that the instruction cache for that new region is clear, so that the
1073 * CPU definitely fetches its instructions from the just written data.
1075 cpu_flush_icache_range(rom
->addr
, rom
->datasize
);
1079 int rom_check_and_register_reset(void)
1082 MemoryRegionSection section
;
1084 AddressSpace
*as
= NULL
;
1086 QTAILQ_FOREACH(rom
, &roms
, next
) {
1090 if ((addr
> rom
->addr
) && (as
== rom
->as
)) {
1091 fprintf(stderr
, "rom: requested regions overlap "
1092 "(rom %s. free=0x" TARGET_FMT_plx
1093 ", addr=0x" TARGET_FMT_plx
")\n",
1094 rom
->name
, addr
, rom
->addr
);
1098 addr
+= rom
->romsize
;
1099 section
= memory_region_find(rom
->mr
? rom
->mr
: get_system_memory(),
1101 rom
->isrom
= int128_nz(section
.size
) && memory_region_is_rom(section
.mr
);
1102 memory_region_unref(section
.mr
);
1105 qemu_register_reset(rom_reset
, NULL
);
1110 void rom_set_fw(FWCfgState
*f
)
1115 void rom_set_order_override(int order
)
1119 fw_cfg_set_order_override(fw_cfg
, order
);
1122 void rom_reset_order_override(void)
1126 fw_cfg_reset_order_override(fw_cfg
);
1129 static Rom
*find_rom(hwaddr addr
)
1133 QTAILQ_FOREACH(rom
, &roms
, next
) {
1140 if (rom
->addr
> addr
) {
1143 if (rom
->addr
+ rom
->romsize
< addr
) {
1152 * Copies memory from registered ROMs to dest. Any memory that is contained in
1153 * a ROM between addr and addr + size is copied. Note that this can involve
1154 * multiple ROMs, which need not start at addr and need not end at addr + size.
1156 int rom_copy(uint8_t *dest
, hwaddr addr
, size_t size
)
1158 hwaddr end
= addr
+ size
;
1159 uint8_t *s
, *d
= dest
;
1163 QTAILQ_FOREACH(rom
, &roms
, next
) {
1170 if (rom
->addr
+ rom
->romsize
< addr
) {
1173 if (rom
->addr
> end
) {
1177 d
= dest
+ (rom
->addr
- addr
);
1181 if ((d
+ l
) > (dest
+ size
)) {
1189 if (rom
->romsize
> rom
->datasize
) {
1190 /* If datasize is less than romsize, it means that we didn't
1191 * allocate all the ROM because the trailing data are only zeros.
1195 l
= rom
->romsize
- rom
->datasize
;
1197 if ((d
+ l
) > (dest
+ size
)) {
1198 /* Rom size doesn't fit in the destination area. Adjust to avoid
1210 return (d
+ l
) - dest
;
1213 void *rom_ptr(hwaddr addr
)
1217 rom
= find_rom(addr
);
1218 if (!rom
|| !rom
->data
)
1220 return rom
->data
+ (addr
- rom
->addr
);
1223 void hmp_info_roms(Monitor
*mon
, const QDict
*qdict
)
1227 QTAILQ_FOREACH(rom
, &roms
, next
) {
1229 monitor_printf(mon
, "%s"
1230 " size=0x%06zx name=\"%s\"\n",
1231 memory_region_name(rom
->mr
),
1234 } else if (!rom
->fw_file
) {
1235 monitor_printf(mon
, "addr=" TARGET_FMT_plx
1236 " size=0x%06zx mem=%s name=\"%s\"\n",
1237 rom
->addr
, rom
->romsize
,
1238 rom
->isrom
? "rom" : "ram",
1241 monitor_printf(mon
, "fw=%s/%s"
1242 " size=0x%06zx name=\"%s\"\n",