4 * Copyright Fujitsu, Corp. 2011, 2012
7 * Wen Congyang <wency@cn.fujitsu.com>
9 * This work is licensed under the terms of the GNU GPL, version 2 or later.
10 * See the COPYING file in the top-level directory.
14 #include "qemu-common.h"
17 #include "exec/cpu-all.h"
18 #include "exec/hwaddr.h"
19 #include "monitor/monitor.h"
20 #include "sysemu/kvm.h"
21 #include "sysemu/dump.h"
22 #include "sysemu/sysemu.h"
23 #include "sysemu/memory_mapping.h"
24 #include "sysemu/cpus.h"
25 #include "qapi/error.h"
26 #include "qmp-commands.h"
30 #include <lzo/lzo1x.h>
35 #ifndef ELF_MACHINE_UNAME
36 #define ELF_MACHINE_UNAME "Unknown"
39 uint16_t cpu_to_dump16(DumpState
*s
, uint16_t val
)
41 if (s
->dump_info
.d_endian
== ELFDATA2LSB
) {
42 val
= cpu_to_le16(val
);
44 val
= cpu_to_be16(val
);
50 uint32_t cpu_to_dump32(DumpState
*s
, uint32_t val
)
52 if (s
->dump_info
.d_endian
== ELFDATA2LSB
) {
53 val
= cpu_to_le32(val
);
55 val
= cpu_to_be32(val
);
61 uint64_t cpu_to_dump64(DumpState
*s
, uint64_t val
)
63 if (s
->dump_info
.d_endian
== ELFDATA2LSB
) {
64 val
= cpu_to_le64(val
);
66 val
= cpu_to_be64(val
);
72 static int dump_cleanup(DumpState
*s
)
74 guest_phys_blocks_free(&s
->guest_phys_blocks
);
75 memory_mapping_list_free(&s
->list
);
84 static void dump_error(DumpState
*s
, const char *reason
)
89 static int fd_write_vmcore(const void *buf
, size_t size
, void *opaque
)
91 DumpState
*s
= opaque
;
94 written_size
= qemu_write_full(s
->fd
, buf
, size
);
95 if (written_size
!= size
) {
102 static int write_elf64_header(DumpState
*s
)
104 Elf64_Ehdr elf_header
;
107 memset(&elf_header
, 0, sizeof(Elf64_Ehdr
));
108 memcpy(&elf_header
, ELFMAG
, SELFMAG
);
109 elf_header
.e_ident
[EI_CLASS
] = ELFCLASS64
;
110 elf_header
.e_ident
[EI_DATA
] = s
->dump_info
.d_endian
;
111 elf_header
.e_ident
[EI_VERSION
] = EV_CURRENT
;
112 elf_header
.e_type
= cpu_to_dump16(s
, ET_CORE
);
113 elf_header
.e_machine
= cpu_to_dump16(s
, s
->dump_info
.d_machine
);
114 elf_header
.e_version
= cpu_to_dump32(s
, EV_CURRENT
);
115 elf_header
.e_ehsize
= cpu_to_dump16(s
, sizeof(elf_header
));
116 elf_header
.e_phoff
= cpu_to_dump64(s
, sizeof(Elf64_Ehdr
));
117 elf_header
.e_phentsize
= cpu_to_dump16(s
, sizeof(Elf64_Phdr
));
118 elf_header
.e_phnum
= cpu_to_dump16(s
, s
->phdr_num
);
119 if (s
->have_section
) {
120 uint64_t shoff
= sizeof(Elf64_Ehdr
) + sizeof(Elf64_Phdr
) * s
->sh_info
;
122 elf_header
.e_shoff
= cpu_to_dump64(s
, shoff
);
123 elf_header
.e_shentsize
= cpu_to_dump16(s
, sizeof(Elf64_Shdr
));
124 elf_header
.e_shnum
= cpu_to_dump16(s
, 1);
127 ret
= fd_write_vmcore(&elf_header
, sizeof(elf_header
), s
);
129 dump_error(s
, "dump: failed to write elf header.\n");
136 static int write_elf32_header(DumpState
*s
)
138 Elf32_Ehdr elf_header
;
141 memset(&elf_header
, 0, sizeof(Elf32_Ehdr
));
142 memcpy(&elf_header
, ELFMAG
, SELFMAG
);
143 elf_header
.e_ident
[EI_CLASS
] = ELFCLASS32
;
144 elf_header
.e_ident
[EI_DATA
] = s
->dump_info
.d_endian
;
145 elf_header
.e_ident
[EI_VERSION
] = EV_CURRENT
;
146 elf_header
.e_type
= cpu_to_dump16(s
, ET_CORE
);
147 elf_header
.e_machine
= cpu_to_dump16(s
, s
->dump_info
.d_machine
);
148 elf_header
.e_version
= cpu_to_dump32(s
, EV_CURRENT
);
149 elf_header
.e_ehsize
= cpu_to_dump16(s
, sizeof(elf_header
));
150 elf_header
.e_phoff
= cpu_to_dump32(s
, sizeof(Elf32_Ehdr
));
151 elf_header
.e_phentsize
= cpu_to_dump16(s
, sizeof(Elf32_Phdr
));
152 elf_header
.e_phnum
= cpu_to_dump16(s
, s
->phdr_num
);
153 if (s
->have_section
) {
154 uint32_t shoff
= sizeof(Elf32_Ehdr
) + sizeof(Elf32_Phdr
) * s
->sh_info
;
156 elf_header
.e_shoff
= cpu_to_dump32(s
, shoff
);
157 elf_header
.e_shentsize
= cpu_to_dump16(s
, sizeof(Elf32_Shdr
));
158 elf_header
.e_shnum
= cpu_to_dump16(s
, 1);
161 ret
= fd_write_vmcore(&elf_header
, sizeof(elf_header
), s
);
163 dump_error(s
, "dump: failed to write elf header.\n");
170 static int write_elf64_load(DumpState
*s
, MemoryMapping
*memory_mapping
,
171 int phdr_index
, hwaddr offset
,
177 memset(&phdr
, 0, sizeof(Elf64_Phdr
));
178 phdr
.p_type
= cpu_to_dump32(s
, PT_LOAD
);
179 phdr
.p_offset
= cpu_to_dump64(s
, offset
);
180 phdr
.p_paddr
= cpu_to_dump64(s
, memory_mapping
->phys_addr
);
181 phdr
.p_filesz
= cpu_to_dump64(s
, filesz
);
182 phdr
.p_memsz
= cpu_to_dump64(s
, memory_mapping
->length
);
183 phdr
.p_vaddr
= cpu_to_dump64(s
, memory_mapping
->virt_addr
);
185 assert(memory_mapping
->length
>= filesz
);
187 ret
= fd_write_vmcore(&phdr
, sizeof(Elf64_Phdr
), s
);
189 dump_error(s
, "dump: failed to write program header table.\n");
196 static int write_elf32_load(DumpState
*s
, MemoryMapping
*memory_mapping
,
197 int phdr_index
, hwaddr offset
,
203 memset(&phdr
, 0, sizeof(Elf32_Phdr
));
204 phdr
.p_type
= cpu_to_dump32(s
, PT_LOAD
);
205 phdr
.p_offset
= cpu_to_dump32(s
, offset
);
206 phdr
.p_paddr
= cpu_to_dump32(s
, memory_mapping
->phys_addr
);
207 phdr
.p_filesz
= cpu_to_dump32(s
, filesz
);
208 phdr
.p_memsz
= cpu_to_dump32(s
, memory_mapping
->length
);
209 phdr
.p_vaddr
= cpu_to_dump32(s
, memory_mapping
->virt_addr
);
211 assert(memory_mapping
->length
>= filesz
);
213 ret
= fd_write_vmcore(&phdr
, sizeof(Elf32_Phdr
), s
);
215 dump_error(s
, "dump: failed to write program header table.\n");
222 static int write_elf64_note(DumpState
*s
)
225 hwaddr begin
= s
->memory_offset
- s
->note_size
;
228 memset(&phdr
, 0, sizeof(Elf64_Phdr
));
229 phdr
.p_type
= cpu_to_dump32(s
, PT_NOTE
);
230 phdr
.p_offset
= cpu_to_dump64(s
, begin
);
232 phdr
.p_filesz
= cpu_to_dump64(s
, s
->note_size
);
233 phdr
.p_memsz
= cpu_to_dump64(s
, s
->note_size
);
236 ret
= fd_write_vmcore(&phdr
, sizeof(Elf64_Phdr
), s
);
238 dump_error(s
, "dump: failed to write program header table.\n");
245 static inline int cpu_index(CPUState
*cpu
)
247 return cpu
->cpu_index
+ 1;
250 static int write_elf64_notes(WriteCoreDumpFunction f
, DumpState
*s
)
258 ret
= cpu_write_elf64_note(f
, cpu
, id
, s
);
260 dump_error(s
, "dump: failed to write elf notes.\n");
266 ret
= cpu_write_elf64_qemunote(f
, cpu
, s
);
268 dump_error(s
, "dump: failed to write CPU status.\n");
276 static int write_elf32_note(DumpState
*s
)
278 hwaddr begin
= s
->memory_offset
- s
->note_size
;
282 memset(&phdr
, 0, sizeof(Elf32_Phdr
));
283 phdr
.p_type
= cpu_to_dump32(s
, PT_NOTE
);
284 phdr
.p_offset
= cpu_to_dump32(s
, begin
);
286 phdr
.p_filesz
= cpu_to_dump32(s
, s
->note_size
);
287 phdr
.p_memsz
= cpu_to_dump32(s
, s
->note_size
);
290 ret
= fd_write_vmcore(&phdr
, sizeof(Elf32_Phdr
), s
);
292 dump_error(s
, "dump: failed to write program header table.\n");
299 static int write_elf32_notes(WriteCoreDumpFunction f
, DumpState
*s
)
307 ret
= cpu_write_elf32_note(f
, cpu
, id
, s
);
309 dump_error(s
, "dump: failed to write elf notes.\n");
315 ret
= cpu_write_elf32_qemunote(f
, cpu
, s
);
317 dump_error(s
, "dump: failed to write CPU status.\n");
325 static int write_elf_section(DumpState
*s
, int type
)
334 shdr_size
= sizeof(Elf32_Shdr
);
335 memset(&shdr32
, 0, shdr_size
);
336 shdr32
.sh_info
= cpu_to_dump32(s
, s
->sh_info
);
339 shdr_size
= sizeof(Elf64_Shdr
);
340 memset(&shdr64
, 0, shdr_size
);
341 shdr64
.sh_info
= cpu_to_dump32(s
, s
->sh_info
);
345 ret
= fd_write_vmcore(&shdr
, shdr_size
, s
);
347 dump_error(s
, "dump: failed to write section header table.\n");
354 static int write_data(DumpState
*s
, void *buf
, int length
)
358 ret
= fd_write_vmcore(buf
, length
, s
);
360 dump_error(s
, "dump: failed to save memory.\n");
367 /* write the memroy to vmcore. 1 page per I/O. */
368 static int write_memory(DumpState
*s
, GuestPhysBlock
*block
, ram_addr_t start
,
374 for (i
= 0; i
< size
/ TARGET_PAGE_SIZE
; i
++) {
375 ret
= write_data(s
, block
->host_addr
+ start
+ i
* TARGET_PAGE_SIZE
,
382 if ((size
% TARGET_PAGE_SIZE
) != 0) {
383 ret
= write_data(s
, block
->host_addr
+ start
+ i
* TARGET_PAGE_SIZE
,
384 size
% TARGET_PAGE_SIZE
);
393 /* get the memory's offset and size in the vmcore */
394 static void get_offset_range(hwaddr phys_addr
,
395 ram_addr_t mapping_length
,
400 GuestPhysBlock
*block
;
401 hwaddr offset
= s
->memory_offset
;
402 int64_t size_in_block
, start
;
404 /* When the memory is not stored into vmcore, offset will be -1 */
409 if (phys_addr
< s
->begin
|| phys_addr
>= s
->begin
+ s
->length
) {
414 QTAILQ_FOREACH(block
, &s
->guest_phys_blocks
.head
, next
) {
416 if (block
->target_start
>= s
->begin
+ s
->length
||
417 block
->target_end
<= s
->begin
) {
418 /* This block is out of the range */
422 if (s
->begin
<= block
->target_start
) {
423 start
= block
->target_start
;
428 size_in_block
= block
->target_end
- start
;
429 if (s
->begin
+ s
->length
< block
->target_end
) {
430 size_in_block
-= block
->target_end
- (s
->begin
+ s
->length
);
433 start
= block
->target_start
;
434 size_in_block
= block
->target_end
- block
->target_start
;
437 if (phys_addr
>= start
&& phys_addr
< start
+ size_in_block
) {
438 *p_offset
= phys_addr
- start
+ offset
;
440 /* The offset range mapped from the vmcore file must not spill over
441 * the GuestPhysBlock, clamp it. The rest of the mapping will be
442 * zero-filled in memory at load time; see
443 * <http://refspecs.linuxbase.org/elf/gabi4+/ch5.pheader.html>.
445 *p_filesz
= phys_addr
+ mapping_length
<= start
+ size_in_block
?
447 size_in_block
- (phys_addr
- start
);
451 offset
+= size_in_block
;
455 static int write_elf_loads(DumpState
*s
)
457 hwaddr offset
, filesz
;
458 MemoryMapping
*memory_mapping
;
459 uint32_t phdr_index
= 1;
463 if (s
->have_section
) {
464 max_index
= s
->sh_info
;
466 max_index
= s
->phdr_num
;
469 QTAILQ_FOREACH(memory_mapping
, &s
->list
.head
, next
) {
470 get_offset_range(memory_mapping
->phys_addr
,
471 memory_mapping
->length
,
472 s
, &offset
, &filesz
);
473 if (s
->dump_info
.d_class
== ELFCLASS64
) {
474 ret
= write_elf64_load(s
, memory_mapping
, phdr_index
++, offset
,
477 ret
= write_elf32_load(s
, memory_mapping
, phdr_index
++, offset
,
485 if (phdr_index
>= max_index
) {
493 /* write elf header, PT_NOTE and elf note to vmcore. */
494 static int dump_begin(DumpState
*s
)
499 * the vmcore's format is:
518 * we only know where the memory is saved after we write elf note into
522 /* write elf header to vmcore */
523 if (s
->dump_info
.d_class
== ELFCLASS64
) {
524 ret
= write_elf64_header(s
);
526 ret
= write_elf32_header(s
);
532 if (s
->dump_info
.d_class
== ELFCLASS64
) {
533 /* write PT_NOTE to vmcore */
534 if (write_elf64_note(s
) < 0) {
538 /* write all PT_LOAD to vmcore */
539 if (write_elf_loads(s
) < 0) {
543 /* write section to vmcore */
544 if (s
->have_section
) {
545 if (write_elf_section(s
, 1) < 0) {
550 /* write notes to vmcore */
551 if (write_elf64_notes(fd_write_vmcore
, s
) < 0) {
556 /* write PT_NOTE to vmcore */
557 if (write_elf32_note(s
) < 0) {
561 /* write all PT_LOAD to vmcore */
562 if (write_elf_loads(s
) < 0) {
566 /* write section to vmcore */
567 if (s
->have_section
) {
568 if (write_elf_section(s
, 0) < 0) {
573 /* write notes to vmcore */
574 if (write_elf32_notes(fd_write_vmcore
, s
) < 0) {
582 /* write PT_LOAD to vmcore */
583 static int dump_completed(DumpState
*s
)
589 static int get_next_block(DumpState
*s
, GuestPhysBlock
*block
)
592 block
= QTAILQ_NEXT(block
, next
);
599 s
->next_block
= block
;
601 if (block
->target_start
>= s
->begin
+ s
->length
||
602 block
->target_end
<= s
->begin
) {
603 /* This block is out of the range */
607 if (s
->begin
> block
->target_start
) {
608 s
->start
= s
->begin
- block
->target_start
;
616 /* write all memory to vmcore */
617 static int dump_iterate(DumpState
*s
)
619 GuestPhysBlock
*block
;
624 block
= s
->next_block
;
626 size
= block
->target_end
- block
->target_start
;
629 if (s
->begin
+ s
->length
< block
->target_end
) {
630 size
-= block
->target_end
- (s
->begin
+ s
->length
);
633 ret
= write_memory(s
, block
, s
->start
, size
);
638 ret
= get_next_block(s
, block
);
646 static int create_vmcore(DumpState
*s
)
655 ret
= dump_iterate(s
);
663 static int write_start_flat_header(int fd
)
665 MakedumpfileHeader
*mh
;
668 QEMU_BUILD_BUG_ON(sizeof *mh
> MAX_SIZE_MDF_HEADER
);
669 mh
= g_malloc0(MAX_SIZE_MDF_HEADER
);
671 memcpy(mh
->signature
, MAKEDUMPFILE_SIGNATURE
,
672 MIN(sizeof mh
->signature
, sizeof MAKEDUMPFILE_SIGNATURE
));
674 mh
->type
= cpu_to_be64(TYPE_FLAT_HEADER
);
675 mh
->version
= cpu_to_be64(VERSION_FLAT_HEADER
);
678 written_size
= qemu_write_full(fd
, mh
, MAX_SIZE_MDF_HEADER
);
679 if (written_size
!= MAX_SIZE_MDF_HEADER
) {
687 static int write_end_flat_header(int fd
)
689 MakedumpfileDataHeader mdh
;
691 mdh
.offset
= END_FLAG_FLAT_HEADER
;
692 mdh
.buf_size
= END_FLAG_FLAT_HEADER
;
695 written_size
= qemu_write_full(fd
, &mdh
, sizeof(mdh
));
696 if (written_size
!= sizeof(mdh
)) {
703 static int write_buffer(int fd
, off_t offset
, const void *buf
, size_t size
)
706 MakedumpfileDataHeader mdh
;
708 mdh
.offset
= cpu_to_be64(offset
);
709 mdh
.buf_size
= cpu_to_be64(size
);
711 written_size
= qemu_write_full(fd
, &mdh
, sizeof(mdh
));
712 if (written_size
!= sizeof(mdh
)) {
716 written_size
= qemu_write_full(fd
, buf
, size
);
717 if (written_size
!= size
) {
724 static int buf_write_note(const void *buf
, size_t size
, void *opaque
)
726 DumpState
*s
= opaque
;
728 /* note_buf is not enough */
729 if (s
->note_buf_offset
+ size
> s
->note_size
) {
733 memcpy(s
->note_buf
+ s
->note_buf_offset
, buf
, size
);
735 s
->note_buf_offset
+= size
;
740 /* write common header, sub header and elf note to vmcore */
741 static int create_header32(DumpState
*s
)
744 DiskDumpHeader32
*dh
= NULL
;
745 KdumpSubHeader32
*kh
= NULL
;
748 uint32_t sub_hdr_size
;
749 uint32_t bitmap_blocks
;
751 uint64_t offset_note
;
753 /* write common header, the version of kdump-compressed format is 6th */
754 size
= sizeof(DiskDumpHeader32
);
755 dh
= g_malloc0(size
);
757 strncpy(dh
->signature
, KDUMP_SIGNATURE
, strlen(KDUMP_SIGNATURE
));
758 dh
->header_version
= cpu_to_dump32(s
, 6);
759 block_size
= TARGET_PAGE_SIZE
;
760 dh
->block_size
= cpu_to_dump32(s
, block_size
);
761 sub_hdr_size
= sizeof(struct KdumpSubHeader32
) + s
->note_size
;
762 sub_hdr_size
= DIV_ROUND_UP(sub_hdr_size
, block_size
);
763 dh
->sub_hdr_size
= cpu_to_dump32(s
, sub_hdr_size
);
764 /* dh->max_mapnr may be truncated, full 64bit is in kh.max_mapnr_64 */
765 dh
->max_mapnr
= cpu_to_dump32(s
, MIN(s
->max_mapnr
, UINT_MAX
));
766 dh
->nr_cpus
= cpu_to_dump32(s
, s
->nr_cpus
);
767 bitmap_blocks
= DIV_ROUND_UP(s
->len_dump_bitmap
, block_size
) * 2;
768 dh
->bitmap_blocks
= cpu_to_dump32(s
, bitmap_blocks
);
769 strncpy(dh
->utsname
.machine
, ELF_MACHINE_UNAME
, sizeof(dh
->utsname
.machine
));
771 if (s
->flag_compress
& DUMP_DH_COMPRESSED_ZLIB
) {
772 status
|= DUMP_DH_COMPRESSED_ZLIB
;
775 if (s
->flag_compress
& DUMP_DH_COMPRESSED_LZO
) {
776 status
|= DUMP_DH_COMPRESSED_LZO
;
780 if (s
->flag_compress
& DUMP_DH_COMPRESSED_SNAPPY
) {
781 status
|= DUMP_DH_COMPRESSED_SNAPPY
;
784 dh
->status
= cpu_to_dump32(s
, status
);
786 if (write_buffer(s
->fd
, 0, dh
, size
) < 0) {
787 dump_error(s
, "dump: failed to write disk dump header.\n");
792 /* write sub header */
793 size
= sizeof(KdumpSubHeader32
);
794 kh
= g_malloc0(size
);
796 /* 64bit max_mapnr_64 */
797 kh
->max_mapnr_64
= cpu_to_dump64(s
, s
->max_mapnr
);
798 kh
->phys_base
= cpu_to_dump32(s
, PHYS_BASE
);
799 kh
->dump_level
= cpu_to_dump32(s
, DUMP_LEVEL
);
801 offset_note
= DISKDUMP_HEADER_BLOCKS
* block_size
+ size
;
802 kh
->offset_note
= cpu_to_dump64(s
, offset_note
);
803 kh
->note_size
= cpu_to_dump32(s
, s
->note_size
);
805 if (write_buffer(s
->fd
, DISKDUMP_HEADER_BLOCKS
*
806 block_size
, kh
, size
) < 0) {
807 dump_error(s
, "dump: failed to write kdump sub header.\n");
813 s
->note_buf
= g_malloc0(s
->note_size
);
814 s
->note_buf_offset
= 0;
816 /* use s->note_buf to store notes temporarily */
817 if (write_elf32_notes(buf_write_note
, s
) < 0) {
822 if (write_buffer(s
->fd
, offset_note
, s
->note_buf
,
824 dump_error(s
, "dump: failed to write notes");
829 /* get offset of dump_bitmap */
830 s
->offset_dump_bitmap
= (DISKDUMP_HEADER_BLOCKS
+ sub_hdr_size
) *
833 /* get offset of page */
834 s
->offset_page
= (DISKDUMP_HEADER_BLOCKS
+ sub_hdr_size
+ bitmap_blocks
) *
845 /* write common header, sub header and elf note to vmcore */
846 static int create_header64(DumpState
*s
)
849 DiskDumpHeader64
*dh
= NULL
;
850 KdumpSubHeader64
*kh
= NULL
;
853 uint32_t sub_hdr_size
;
854 uint32_t bitmap_blocks
;
856 uint64_t offset_note
;
858 /* write common header, the version of kdump-compressed format is 6th */
859 size
= sizeof(DiskDumpHeader64
);
860 dh
= g_malloc0(size
);
862 strncpy(dh
->signature
, KDUMP_SIGNATURE
, strlen(KDUMP_SIGNATURE
));
863 dh
->header_version
= cpu_to_dump32(s
, 6);
864 block_size
= TARGET_PAGE_SIZE
;
865 dh
->block_size
= cpu_to_dump32(s
, block_size
);
866 sub_hdr_size
= sizeof(struct KdumpSubHeader64
) + s
->note_size
;
867 sub_hdr_size
= DIV_ROUND_UP(sub_hdr_size
, block_size
);
868 dh
->sub_hdr_size
= cpu_to_dump32(s
, sub_hdr_size
);
869 /* dh->max_mapnr may be truncated, full 64bit is in kh.max_mapnr_64 */
870 dh
->max_mapnr
= cpu_to_dump32(s
, MIN(s
->max_mapnr
, UINT_MAX
));
871 dh
->nr_cpus
= cpu_to_dump32(s
, s
->nr_cpus
);
872 bitmap_blocks
= DIV_ROUND_UP(s
->len_dump_bitmap
, block_size
) * 2;
873 dh
->bitmap_blocks
= cpu_to_dump32(s
, bitmap_blocks
);
874 strncpy(dh
->utsname
.machine
, ELF_MACHINE_UNAME
, sizeof(dh
->utsname
.machine
));
876 if (s
->flag_compress
& DUMP_DH_COMPRESSED_ZLIB
) {
877 status
|= DUMP_DH_COMPRESSED_ZLIB
;
880 if (s
->flag_compress
& DUMP_DH_COMPRESSED_LZO
) {
881 status
|= DUMP_DH_COMPRESSED_LZO
;
885 if (s
->flag_compress
& DUMP_DH_COMPRESSED_SNAPPY
) {
886 status
|= DUMP_DH_COMPRESSED_SNAPPY
;
889 dh
->status
= cpu_to_dump32(s
, status
);
891 if (write_buffer(s
->fd
, 0, dh
, size
) < 0) {
892 dump_error(s
, "dump: failed to write disk dump header.\n");
897 /* write sub header */
898 size
= sizeof(KdumpSubHeader64
);
899 kh
= g_malloc0(size
);
901 /* 64bit max_mapnr_64 */
902 kh
->max_mapnr_64
= cpu_to_dump64(s
, s
->max_mapnr
);
903 kh
->phys_base
= cpu_to_dump64(s
, PHYS_BASE
);
904 kh
->dump_level
= cpu_to_dump32(s
, DUMP_LEVEL
);
906 offset_note
= DISKDUMP_HEADER_BLOCKS
* block_size
+ size
;
907 kh
->offset_note
= cpu_to_dump64(s
, offset_note
);
908 kh
->note_size
= cpu_to_dump64(s
, s
->note_size
);
910 if (write_buffer(s
->fd
, DISKDUMP_HEADER_BLOCKS
*
911 block_size
, kh
, size
) < 0) {
912 dump_error(s
, "dump: failed to write kdump sub header.\n");
918 s
->note_buf
= g_malloc0(s
->note_size
);
919 s
->note_buf_offset
= 0;
921 /* use s->note_buf to store notes temporarily */
922 if (write_elf64_notes(buf_write_note
, s
) < 0) {
927 if (write_buffer(s
->fd
, offset_note
, s
->note_buf
,
929 dump_error(s
, "dump: failed to write notes");
934 /* get offset of dump_bitmap */
935 s
->offset_dump_bitmap
= (DISKDUMP_HEADER_BLOCKS
+ sub_hdr_size
) *
938 /* get offset of page */
939 s
->offset_page
= (DISKDUMP_HEADER_BLOCKS
+ sub_hdr_size
+ bitmap_blocks
) *
950 static int write_dump_header(DumpState
*s
)
952 if (s
->dump_info
.d_class
== ELFCLASS32
) {
953 return create_header32(s
);
955 return create_header64(s
);
960 * set dump_bitmap sequencely. the bit before last_pfn is not allowed to be
961 * rewritten, so if need to set the first bit, set last_pfn and pfn to 0.
962 * set_dump_bitmap will always leave the recently set bit un-sync. And setting
963 * (last bit + sizeof(buf) * 8) to 0 will do flushing the content in buf into
964 * vmcore, ie. synchronizing un-sync bit into vmcore.
966 static int set_dump_bitmap(uint64_t last_pfn
, uint64_t pfn
, bool value
,
967 uint8_t *buf
, DumpState
*s
)
969 off_t old_offset
, new_offset
;
970 off_t offset_bitmap1
, offset_bitmap2
;
973 /* should not set the previous place */
974 assert(last_pfn
<= pfn
);
977 * if the bit needed to be set is not cached in buf, flush the data in buf
979 * making new_offset be bigger than old_offset can also sync remained data
982 old_offset
= BUFSIZE_BITMAP
* (last_pfn
/ PFN_BUFBITMAP
);
983 new_offset
= BUFSIZE_BITMAP
* (pfn
/ PFN_BUFBITMAP
);
985 while (old_offset
< new_offset
) {
986 /* calculate the offset and write dump_bitmap */
987 offset_bitmap1
= s
->offset_dump_bitmap
+ old_offset
;
988 if (write_buffer(s
->fd
, offset_bitmap1
, buf
,
989 BUFSIZE_BITMAP
) < 0) {
993 /* dump level 1 is chosen, so 1st and 2nd bitmap are same */
994 offset_bitmap2
= s
->offset_dump_bitmap
+ s
->len_dump_bitmap
+
996 if (write_buffer(s
->fd
, offset_bitmap2
, buf
,
997 BUFSIZE_BITMAP
) < 0) {
1001 memset(buf
, 0, BUFSIZE_BITMAP
);
1002 old_offset
+= BUFSIZE_BITMAP
;
1005 /* get the exact place of the bit in the buf, and set it */
1006 byte
= (pfn
% PFN_BUFBITMAP
) / CHAR_BIT
;
1007 bit
= (pfn
% PFN_BUFBITMAP
) % CHAR_BIT
;
1009 buf
[byte
] |= 1u << bit
;
1011 buf
[byte
] &= ~(1u << bit
);
1018 * exam every page and return the page frame number and the address of the page.
1019 * bufptr can be NULL. note: the blocks here is supposed to reflect guest-phys
1020 * blocks, so block->target_start and block->target_end should be interal
1021 * multiples of the target page size.
1023 static bool get_next_page(GuestPhysBlock
**blockptr
, uint64_t *pfnptr
,
1024 uint8_t **bufptr
, DumpState
*s
)
1026 GuestPhysBlock
*block
= *blockptr
;
1030 /* block == NULL means the start of the iteration */
1032 block
= QTAILQ_FIRST(&s
->guest_phys_blocks
.head
);
1034 assert((block
->target_start
& ~TARGET_PAGE_MASK
) == 0);
1035 assert((block
->target_end
& ~TARGET_PAGE_MASK
) == 0);
1036 *pfnptr
= paddr_to_pfn(block
->target_start
);
1038 *bufptr
= block
->host_addr
;
1043 *pfnptr
= *pfnptr
+ 1;
1044 addr
= pfn_to_paddr(*pfnptr
);
1046 if ((addr
>= block
->target_start
) &&
1047 (addr
+ TARGET_PAGE_SIZE
<= block
->target_end
)) {
1048 buf
= block
->host_addr
+ (addr
- block
->target_start
);
1050 /* the next page is in the next block */
1051 block
= QTAILQ_NEXT(block
, next
);
1056 assert((block
->target_start
& ~TARGET_PAGE_MASK
) == 0);
1057 assert((block
->target_end
& ~TARGET_PAGE_MASK
) == 0);
1058 *pfnptr
= paddr_to_pfn(block
->target_start
);
1059 buf
= block
->host_addr
;
1069 static int write_dump_bitmap(DumpState
*s
)
1072 uint64_t last_pfn
, pfn
;
1073 void *dump_bitmap_buf
;
1074 size_t num_dumpable
;
1075 GuestPhysBlock
*block_iter
= NULL
;
1077 /* dump_bitmap_buf is used to store dump_bitmap temporarily */
1078 dump_bitmap_buf
= g_malloc0(BUFSIZE_BITMAP
);
1084 * exam memory page by page, and set the bit in dump_bitmap corresponded
1085 * to the existing page.
1087 while (get_next_page(&block_iter
, &pfn
, NULL
, s
)) {
1088 ret
= set_dump_bitmap(last_pfn
, pfn
, true, dump_bitmap_buf
, s
);
1090 dump_error(s
, "dump: failed to set dump_bitmap.\n");
1100 * set_dump_bitmap will always leave the recently set bit un-sync. Here we
1101 * set last_pfn + PFN_BUFBITMAP to 0 and those set but un-sync bit will be
1102 * synchronized into vmcore.
1104 if (num_dumpable
> 0) {
1105 ret
= set_dump_bitmap(last_pfn
, last_pfn
+ PFN_BUFBITMAP
, false,
1106 dump_bitmap_buf
, s
);
1108 dump_error(s
, "dump: failed to sync dump_bitmap.\n");
1114 /* number of dumpable pages that will be dumped later */
1115 s
->num_dumpable
= num_dumpable
;
1118 g_free(dump_bitmap_buf
);
1123 static void prepare_data_cache(DataCache
*data_cache
, DumpState
*s
,
1126 data_cache
->fd
= s
->fd
;
1127 data_cache
->data_size
= 0;
1128 data_cache
->buf_size
= BUFSIZE_DATA_CACHE
;
1129 data_cache
->buf
= g_malloc0(BUFSIZE_DATA_CACHE
);
1130 data_cache
->offset
= offset
;
1133 static int write_cache(DataCache
*dc
, const void *buf
, size_t size
,
1137 * dc->buf_size should not be less than size, otherwise dc will never be
1140 assert(size
<= dc
->buf_size
);
1143 * if flag_sync is set, synchronize data in dc->buf into vmcore.
1144 * otherwise check if the space is enough for caching data in buf, if not,
1145 * write the data in dc->buf to dc->fd and reset dc->buf
1147 if ((!flag_sync
&& dc
->data_size
+ size
> dc
->buf_size
) ||
1148 (flag_sync
&& dc
->data_size
> 0)) {
1149 if (write_buffer(dc
->fd
, dc
->offset
, dc
->buf
, dc
->data_size
) < 0) {
1153 dc
->offset
+= dc
->data_size
;
1158 memcpy(dc
->buf
+ dc
->data_size
, buf
, size
);
1159 dc
->data_size
+= size
;
1165 static void free_data_cache(DataCache
*data_cache
)
1167 g_free(data_cache
->buf
);
1170 static size_t get_len_buf_out(size_t page_size
, uint32_t flag_compress
)
1172 switch (flag_compress
) {
1173 case DUMP_DH_COMPRESSED_ZLIB
:
1174 return compressBound(page_size
);
1176 case DUMP_DH_COMPRESSED_LZO
:
1178 * LZO will expand incompressible data by a little amount. Please check
1179 * the following URL to see the expansion calculation:
1180 * http://www.oberhumer.com/opensource/lzo/lzofaq.php
1182 return page_size
+ page_size
/ 16 + 64 + 3;
1184 #ifdef CONFIG_SNAPPY
1185 case DUMP_DH_COMPRESSED_SNAPPY
:
1186 return snappy_max_compressed_length(page_size
);
1193 * check if the page is all 0
1195 static inline bool is_zero_page(const uint8_t *buf
, size_t page_size
)
1197 return buffer_is_zero(buf
, page_size
);
1200 static int write_dump_pages(DumpState
*s
)
1203 DataCache page_desc
, page_data
;
1204 size_t len_buf_out
, size_out
;
1206 lzo_bytep wrkmem
= NULL
;
1208 uint8_t *buf_out
= NULL
;
1209 off_t offset_desc
, offset_data
;
1210 PageDescriptor pd
, pd_zero
;
1212 GuestPhysBlock
*block_iter
= NULL
;
1215 /* get offset of page_desc and page_data in dump file */
1216 offset_desc
= s
->offset_page
;
1217 offset_data
= offset_desc
+ sizeof(PageDescriptor
) * s
->num_dumpable
;
1219 prepare_data_cache(&page_desc
, s
, offset_desc
);
1220 prepare_data_cache(&page_data
, s
, offset_data
);
1222 /* prepare buffer to store compressed data */
1223 len_buf_out
= get_len_buf_out(TARGET_PAGE_SIZE
, s
->flag_compress
);
1224 assert(len_buf_out
!= 0);
1227 wrkmem
= g_malloc(LZO1X_1_MEM_COMPRESS
);
1230 buf_out
= g_malloc(len_buf_out
);
1233 * init zero page's page_desc and page_data, because every zero page
1234 * uses the same page_data
1236 pd_zero
.size
= cpu_to_dump32(s
, TARGET_PAGE_SIZE
);
1237 pd_zero
.flags
= cpu_to_dump32(s
, 0);
1238 pd_zero
.offset
= cpu_to_dump64(s
, offset_data
);
1239 pd_zero
.page_flags
= cpu_to_dump64(s
, 0);
1240 buf
= g_malloc0(TARGET_PAGE_SIZE
);
1241 ret
= write_cache(&page_data
, buf
, TARGET_PAGE_SIZE
, false);
1244 dump_error(s
, "dump: failed to write page data(zero page).\n");
1248 offset_data
+= TARGET_PAGE_SIZE
;
1251 * dump memory to vmcore page by page. zero page will all be resided in the
1252 * first page of page section
1254 while (get_next_page(&block_iter
, &pfn_iter
, &buf
, s
)) {
1255 /* check zero page */
1256 if (is_zero_page(buf
, TARGET_PAGE_SIZE
)) {
1257 ret
= write_cache(&page_desc
, &pd_zero
, sizeof(PageDescriptor
),
1260 dump_error(s
, "dump: failed to write page desc.\n");
1265 * not zero page, then:
1266 * 1. compress the page
1267 * 2. write the compressed page into the cache of page_data
1268 * 3. get page desc of the compressed page and write it into the
1269 * cache of page_desc
1271 * only one compression format will be used here, for
1272 * s->flag_compress is set. But when compression fails to work,
1273 * we fall back to save in plaintext.
1275 size_out
= len_buf_out
;
1276 if ((s
->flag_compress
& DUMP_DH_COMPRESSED_ZLIB
) &&
1277 (compress2(buf_out
, (uLongf
*)&size_out
, buf
,
1278 TARGET_PAGE_SIZE
, Z_BEST_SPEED
) == Z_OK
) &&
1279 (size_out
< TARGET_PAGE_SIZE
)) {
1280 pd
.flags
= cpu_to_dump32(s
, DUMP_DH_COMPRESSED_ZLIB
);
1281 pd
.size
= cpu_to_dump32(s
, size_out
);
1283 ret
= write_cache(&page_data
, buf_out
, size_out
, false);
1285 dump_error(s
, "dump: failed to write page data.\n");
1289 } else if ((s
->flag_compress
& DUMP_DH_COMPRESSED_LZO
) &&
1290 (lzo1x_1_compress(buf
, TARGET_PAGE_SIZE
, buf_out
,
1291 (lzo_uint
*)&size_out
, wrkmem
) == LZO_E_OK
) &&
1292 (size_out
< TARGET_PAGE_SIZE
)) {
1293 pd
.flags
= cpu_to_dump32(s
, DUMP_DH_COMPRESSED_LZO
);
1294 pd
.size
= cpu_to_dump32(s
, size_out
);
1296 ret
= write_cache(&page_data
, buf_out
, size_out
, false);
1298 dump_error(s
, "dump: failed to write page data.\n");
1302 #ifdef CONFIG_SNAPPY
1303 } else if ((s
->flag_compress
& DUMP_DH_COMPRESSED_SNAPPY
) &&
1304 (snappy_compress((char *)buf
, TARGET_PAGE_SIZE
,
1305 (char *)buf_out
, &size_out
) == SNAPPY_OK
) &&
1306 (size_out
< TARGET_PAGE_SIZE
)) {
1307 pd
.flags
= cpu_to_dump32(s
, DUMP_DH_COMPRESSED_SNAPPY
);
1308 pd
.size
= cpu_to_dump32(s
, size_out
);
1310 ret
= write_cache(&page_data
, buf_out
, size_out
, false);
1312 dump_error(s
, "dump: failed to write page data.\n");
1318 * fall back to save in plaintext, size_out should be
1319 * assigned TARGET_PAGE_SIZE
1321 pd
.flags
= cpu_to_dump32(s
, 0);
1322 size_out
= TARGET_PAGE_SIZE
;
1323 pd
.size
= cpu_to_dump32(s
, size_out
);
1325 ret
= write_cache(&page_data
, buf
, TARGET_PAGE_SIZE
, false);
1327 dump_error(s
, "dump: failed to write page data.\n");
1332 /* get and write page desc here */
1333 pd
.page_flags
= cpu_to_dump64(s
, 0);
1334 pd
.offset
= cpu_to_dump64(s
, offset_data
);
1335 offset_data
+= size_out
;
1337 ret
= write_cache(&page_desc
, &pd
, sizeof(PageDescriptor
), false);
1339 dump_error(s
, "dump: failed to write page desc.\n");
1345 ret
= write_cache(&page_desc
, NULL
, 0, true);
1347 dump_error(s
, "dump: failed to sync cache for page_desc.\n");
1350 ret
= write_cache(&page_data
, NULL
, 0, true);
1352 dump_error(s
, "dump: failed to sync cache for page_data.\n");
1357 free_data_cache(&page_desc
);
1358 free_data_cache(&page_data
);
1369 static int create_kdump_vmcore(DumpState
*s
)
1374 * the kdump-compressed format is:
1376 * +------------------------------------------+ 0x0
1377 * | main header (struct disk_dump_header) |
1378 * |------------------------------------------+ block 1
1379 * | sub header (struct kdump_sub_header) |
1380 * |------------------------------------------+ block 2
1381 * | 1st-dump_bitmap |
1382 * |------------------------------------------+ block 2 + X blocks
1383 * | 2nd-dump_bitmap | (aligned by block)
1384 * |------------------------------------------+ block 2 + 2 * X blocks
1385 * | page desc for pfn 0 (struct page_desc) | (aligned by block)
1386 * | page desc for pfn 1 (struct page_desc) |
1388 * |------------------------------------------| (not aligned by block)
1389 * | page data (pfn 0) |
1390 * | page data (pfn 1) |
1392 * +------------------------------------------+
1395 ret
= write_start_flat_header(s
->fd
);
1397 dump_error(s
, "dump: failed to write start flat header.\n");
1401 ret
= write_dump_header(s
);
1406 ret
= write_dump_bitmap(s
);
1411 ret
= write_dump_pages(s
);
1416 ret
= write_end_flat_header(s
->fd
);
1418 dump_error(s
, "dump: failed to write end flat header.\n");
1427 static ram_addr_t
get_start_block(DumpState
*s
)
1429 GuestPhysBlock
*block
;
1431 if (!s
->has_filter
) {
1432 s
->next_block
= QTAILQ_FIRST(&s
->guest_phys_blocks
.head
);
1436 QTAILQ_FOREACH(block
, &s
->guest_phys_blocks
.head
, next
) {
1437 if (block
->target_start
>= s
->begin
+ s
->length
||
1438 block
->target_end
<= s
->begin
) {
1439 /* This block is out of the range */
1443 s
->next_block
= block
;
1444 if (s
->begin
> block
->target_start
) {
1445 s
->start
= s
->begin
- block
->target_start
;
1455 static void get_max_mapnr(DumpState
*s
)
1457 GuestPhysBlock
*last_block
;
1459 last_block
= QTAILQ_LAST(&s
->guest_phys_blocks
.head
, GuestPhysBlockHead
);
1460 s
->max_mapnr
= paddr_to_pfn(last_block
->target_end
);
1463 static int dump_init(DumpState
*s
, int fd
, bool has_format
,
1464 DumpGuestMemoryFormat format
, bool paging
, bool has_filter
,
1465 int64_t begin
, int64_t length
, Error
**errp
)
1472 /* kdump-compressed is conflict with paging and filter */
1473 if (has_format
&& format
!= DUMP_GUEST_MEMORY_FORMAT_ELF
) {
1474 assert(!paging
&& !has_filter
);
1477 if (runstate_is_running()) {
1478 vm_stop(RUN_STATE_SAVE_VM
);
1484 /* If we use KVM, we should synchronize the registers before we get dump
1485 * info or physmap info.
1487 cpu_synchronize_all_states();
1494 s
->has_filter
= has_filter
;
1498 memory_mapping_list_init(&s
->list
);
1500 guest_phys_blocks_init(&s
->guest_phys_blocks
);
1501 guest_phys_blocks_append(&s
->guest_phys_blocks
);
1503 s
->start
= get_start_block(s
);
1504 if (s
->start
== -1) {
1505 error_set(errp
, QERR_INVALID_PARAMETER
, "begin");
1509 /* get dump info: endian, class and architecture.
1510 * If the target architecture is not supported, cpu_get_dump_info() will
1513 ret
= cpu_get_dump_info(&s
->dump_info
, &s
->guest_phys_blocks
);
1515 error_set(errp
, QERR_UNSUPPORTED
);
1519 s
->note_size
= cpu_get_note_size(s
->dump_info
.d_class
,
1520 s
->dump_info
.d_machine
, nr_cpus
);
1521 if (s
->note_size
< 0) {
1522 error_set(errp
, QERR_UNSUPPORTED
);
1526 /* get memory mapping */
1528 qemu_get_guest_memory_mapping(&s
->list
, &s
->guest_phys_blocks
, &err
);
1530 error_propagate(errp
, err
);
1534 qemu_get_guest_simple_memory_mapping(&s
->list
, &s
->guest_phys_blocks
);
1537 s
->nr_cpus
= nr_cpus
;
1542 tmp
= DIV_ROUND_UP(DIV_ROUND_UP(s
->max_mapnr
, CHAR_BIT
), TARGET_PAGE_SIZE
);
1543 s
->len_dump_bitmap
= tmp
* TARGET_PAGE_SIZE
;
1545 /* init for kdump-compressed format */
1546 if (has_format
&& format
!= DUMP_GUEST_MEMORY_FORMAT_ELF
) {
1548 case DUMP_GUEST_MEMORY_FORMAT_KDUMP_ZLIB
:
1549 s
->flag_compress
= DUMP_DH_COMPRESSED_ZLIB
;
1552 case DUMP_GUEST_MEMORY_FORMAT_KDUMP_LZO
:
1554 if (lzo_init() != LZO_E_OK
) {
1555 error_setg(errp
, "failed to initialize the LZO library");
1559 s
->flag_compress
= DUMP_DH_COMPRESSED_LZO
;
1562 case DUMP_GUEST_MEMORY_FORMAT_KDUMP_SNAPPY
:
1563 s
->flag_compress
= DUMP_DH_COMPRESSED_SNAPPY
;
1567 s
->flag_compress
= 0;
1573 if (s
->has_filter
) {
1574 memory_mapping_filter(&s
->list
, s
->begin
, s
->length
);
1578 * calculate phdr_num
1580 * the type of ehdr->e_phnum is uint16_t, so we should avoid overflow
1582 s
->phdr_num
= 1; /* PT_NOTE */
1583 if (s
->list
.num
< UINT16_MAX
- 2) {
1584 s
->phdr_num
+= s
->list
.num
;
1585 s
->have_section
= false;
1587 s
->have_section
= true;
1588 s
->phdr_num
= PN_XNUM
;
1589 s
->sh_info
= 1; /* PT_NOTE */
1591 /* the type of shdr->sh_info is uint32_t, so we should avoid overflow */
1592 if (s
->list
.num
<= UINT32_MAX
- 1) {
1593 s
->sh_info
+= s
->list
.num
;
1595 s
->sh_info
= UINT32_MAX
;
1599 if (s
->dump_info
.d_class
== ELFCLASS64
) {
1600 if (s
->have_section
) {
1601 s
->memory_offset
= sizeof(Elf64_Ehdr
) +
1602 sizeof(Elf64_Phdr
) * s
->sh_info
+
1603 sizeof(Elf64_Shdr
) + s
->note_size
;
1605 s
->memory_offset
= sizeof(Elf64_Ehdr
) +
1606 sizeof(Elf64_Phdr
) * s
->phdr_num
+ s
->note_size
;
1609 if (s
->have_section
) {
1610 s
->memory_offset
= sizeof(Elf32_Ehdr
) +
1611 sizeof(Elf32_Phdr
) * s
->sh_info
+
1612 sizeof(Elf32_Shdr
) + s
->note_size
;
1614 s
->memory_offset
= sizeof(Elf32_Ehdr
) +
1615 sizeof(Elf32_Phdr
) * s
->phdr_num
+ s
->note_size
;
1626 void qmp_dump_guest_memory(bool paging
, const char *file
, bool has_begin
,
1627 int64_t begin
, bool has_length
,
1628 int64_t length
, bool has_format
,
1629 DumpGuestMemoryFormat format
, Error
**errp
)
1637 * kdump-compressed format need the whole memory dumped, so paging or
1638 * filter is not supported here.
1640 if ((has_format
&& format
!= DUMP_GUEST_MEMORY_FORMAT_ELF
) &&
1641 (paging
|| has_begin
|| has_length
)) {
1642 error_setg(errp
, "kdump-compressed format doesn't support paging or "
1646 if (has_begin
&& !has_length
) {
1647 error_set(errp
, QERR_MISSING_PARAMETER
, "length");
1650 if (!has_begin
&& has_length
) {
1651 error_set(errp
, QERR_MISSING_PARAMETER
, "begin");
1655 /* check whether lzo/snappy is supported */
1657 if (has_format
&& format
== DUMP_GUEST_MEMORY_FORMAT_KDUMP_LZO
) {
1658 error_setg(errp
, "kdump-lzo is not available now");
1663 #ifndef CONFIG_SNAPPY
1664 if (has_format
&& format
== DUMP_GUEST_MEMORY_FORMAT_KDUMP_SNAPPY
) {
1665 error_setg(errp
, "kdump-snappy is not available now");
1671 if (strstart(file
, "fd:", &p
)) {
1672 fd
= monitor_get_fd(cur_mon
, p
, errp
);
1679 if (strstart(file
, "file:", &p
)) {
1680 fd
= qemu_open(p
, O_WRONLY
| O_CREAT
| O_TRUNC
| O_BINARY
, S_IRUSR
);
1682 error_setg_file_open(errp
, errno
, p
);
1688 error_set(errp
, QERR_INVALID_PARAMETER
, "protocol");
1692 s
= g_malloc0(sizeof(DumpState
));
1694 ret
= dump_init(s
, fd
, has_format
, format
, paging
, has_begin
,
1695 begin
, length
, errp
);
1701 if (has_format
&& format
!= DUMP_GUEST_MEMORY_FORMAT_ELF
) {
1702 if (create_kdump_vmcore(s
) < 0) {
1703 error_set(errp
, QERR_IO_ERROR
);
1706 if (create_vmcore(s
) < 0) {
1707 error_set(errp
, QERR_IO_ERROR
);
1714 DumpGuestMemoryCapability
*qmp_query_dump_guest_memory_capability(Error
**errp
)
1716 DumpGuestMemoryFormatList
*item
;
1717 DumpGuestMemoryCapability
*cap
=
1718 g_malloc0(sizeof(DumpGuestMemoryCapability
));
1720 /* elf is always available */
1721 item
= g_malloc0(sizeof(DumpGuestMemoryFormatList
));
1722 cap
->formats
= item
;
1723 item
->value
= DUMP_GUEST_MEMORY_FORMAT_ELF
;
1725 /* kdump-zlib is always available */
1726 item
->next
= g_malloc0(sizeof(DumpGuestMemoryFormatList
));
1728 item
->value
= DUMP_GUEST_MEMORY_FORMAT_KDUMP_ZLIB
;
1730 /* add new item if kdump-lzo is available */
1732 item
->next
= g_malloc0(sizeof(DumpGuestMemoryFormatList
));
1734 item
->value
= DUMP_GUEST_MEMORY_FORMAT_KDUMP_LZO
;
1737 /* add new item if kdump-snappy is available */
1738 #ifdef CONFIG_SNAPPY
1739 item
->next
= g_malloc0(sizeof(DumpGuestMemoryFormatList
));
1741 item
->value
= DUMP_GUEST_MEMORY_FORMAT_KDUMP_SNAPPY
;