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dump.c
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dump.c
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/*
* QEMU dump
*
* Copyright Fujitsu, Corp. 2011, 2012
*
* Authors:
* Wen Congyang <[email protected]>
*
* This work is licensed under the terms of the GNU GPL, version 2 or later.
* See the COPYING file in the top-level directory.
*
*/
#include "qemu/osdep.h"
#include "qemu/cutils.h"
#include "elf.h"
#include "qemu/bswap.h"
#include "exec/target_page.h"
#include "monitor/monitor.h"
#include "sysemu/dump.h"
#include "sysemu/runstate.h"
#include "sysemu/cpus.h"
#include "qapi/error.h"
#include "qapi/qapi-commands-dump.h"
#include "qapi/qapi-events-dump.h"
#include "qapi/qmp/qerror.h"
#include "qemu/error-report.h"
#include "qemu/main-loop.h"
#include "hw/misc/vmcoreinfo.h"
#include "migration/blocker.h"
#include "hw/core/cpu.h"
#include "win_dump.h"
#include "qemu/range.h"
#include <zlib.h>
#ifdef CONFIG_LZO
#include <lzo/lzo1x.h>
#endif
#ifdef CONFIG_SNAPPY
#include <snappy-c.h>
#endif
#ifndef ELF_MACHINE_UNAME
#define ELF_MACHINE_UNAME "Unknown"
#endif
#define MAX_GUEST_NOTE_SIZE (1 << 20) /* 1MB should be enough */
static Error *dump_migration_blocker;
#define ELF_NOTE_SIZE(hdr_size, name_size, desc_size) \
((DIV_ROUND_UP((hdr_size), 4) + \
DIV_ROUND_UP((name_size), 4) + \
DIV_ROUND_UP((desc_size), 4)) * 4)
static inline bool dump_is_64bit(DumpState *s)
{
return s->dump_info.d_class == ELFCLASS64;
}
static inline bool dump_has_filter(DumpState *s)
{
return s->filter_area_length > 0;
}
uint16_t cpu_to_dump16(DumpState *s, uint16_t val)
{
if (s->dump_info.d_endian == ELFDATA2LSB) {
val = cpu_to_le16(val);
} else {
val = cpu_to_be16(val);
}
return val;
}
uint32_t cpu_to_dump32(DumpState *s, uint32_t val)
{
if (s->dump_info.d_endian == ELFDATA2LSB) {
val = cpu_to_le32(val);
} else {
val = cpu_to_be32(val);
}
return val;
}
uint64_t cpu_to_dump64(DumpState *s, uint64_t val)
{
if (s->dump_info.d_endian == ELFDATA2LSB) {
val = cpu_to_le64(val);
} else {
val = cpu_to_be64(val);
}
return val;
}
static int dump_cleanup(DumpState *s)
{
if (s->dump_info.arch_cleanup_fn) {
s->dump_info.arch_cleanup_fn(s);
}
guest_phys_blocks_free(&s->guest_phys_blocks);
memory_mapping_list_free(&s->list);
close(s->fd);
g_free(s->guest_note);
g_clear_pointer(&s->string_table_buf, g_array_unref);
s->guest_note = NULL;
if (s->resume) {
if (s->detached) {
bql_lock();
}
vm_start();
if (s->detached) {
bql_unlock();
}
}
migrate_del_blocker(&dump_migration_blocker);
return 0;
}
static int fd_write_vmcore(const void *buf, size_t size, void *opaque)
{
DumpState *s = opaque;
size_t written_size;
written_size = qemu_write_full(s->fd, buf, size);
if (written_size != size) {
return -errno;
}
return 0;
}
static void prepare_elf64_header(DumpState *s, Elf64_Ehdr *elf_header)
{
/*
* phnum in the elf header is 16 bit, if we have more segments we
* set phnum to PN_XNUM and write the real number of segments to a
* special section.
*/
uint16_t phnum = MIN(s->phdr_num, PN_XNUM);
memset(elf_header, 0, sizeof(Elf64_Ehdr));
memcpy(elf_header, ELFMAG, SELFMAG);
elf_header->e_ident[EI_CLASS] = ELFCLASS64;
elf_header->e_ident[EI_DATA] = s->dump_info.d_endian;
elf_header->e_ident[EI_VERSION] = EV_CURRENT;
elf_header->e_type = cpu_to_dump16(s, ET_CORE);
elf_header->e_machine = cpu_to_dump16(s, s->dump_info.d_machine);
elf_header->e_version = cpu_to_dump32(s, EV_CURRENT);
elf_header->e_ehsize = cpu_to_dump16(s, sizeof(elf_header));
elf_header->e_phoff = cpu_to_dump64(s, s->phdr_offset);
elf_header->e_phentsize = cpu_to_dump16(s, sizeof(Elf64_Phdr));
elf_header->e_phnum = cpu_to_dump16(s, phnum);
elf_header->e_shoff = cpu_to_dump64(s, s->shdr_offset);
elf_header->e_shentsize = cpu_to_dump16(s, sizeof(Elf64_Shdr));
elf_header->e_shnum = cpu_to_dump16(s, s->shdr_num);
elf_header->e_shstrndx = cpu_to_dump16(s, s->shdr_num - 1);
}
static void prepare_elf32_header(DumpState *s, Elf32_Ehdr *elf_header)
{
/*
* phnum in the elf header is 16 bit, if we have more segments we
* set phnum to PN_XNUM and write the real number of segments to a
* special section.
*/
uint16_t phnum = MIN(s->phdr_num, PN_XNUM);
memset(elf_header, 0, sizeof(Elf32_Ehdr));
memcpy(elf_header, ELFMAG, SELFMAG);
elf_header->e_ident[EI_CLASS] = ELFCLASS32;
elf_header->e_ident[EI_DATA] = s->dump_info.d_endian;
elf_header->e_ident[EI_VERSION] = EV_CURRENT;
elf_header->e_type = cpu_to_dump16(s, ET_CORE);
elf_header->e_machine = cpu_to_dump16(s, s->dump_info.d_machine);
elf_header->e_version = cpu_to_dump32(s, EV_CURRENT);
elf_header->e_ehsize = cpu_to_dump16(s, sizeof(elf_header));
elf_header->e_phoff = cpu_to_dump32(s, s->phdr_offset);
elf_header->e_phentsize = cpu_to_dump16(s, sizeof(Elf32_Phdr));
elf_header->e_phnum = cpu_to_dump16(s, phnum);
elf_header->e_shoff = cpu_to_dump32(s, s->shdr_offset);
elf_header->e_shentsize = cpu_to_dump16(s, sizeof(Elf32_Shdr));
elf_header->e_shnum = cpu_to_dump16(s, s->shdr_num);
elf_header->e_shstrndx = cpu_to_dump16(s, s->shdr_num - 1);
}
static void write_elf_header(DumpState *s, Error **errp)
{
Elf32_Ehdr elf32_header;
Elf64_Ehdr elf64_header;
size_t header_size;
void *header_ptr;
int ret;
/* The NULL header and the shstrtab are always defined */
assert(s->shdr_num >= 2);
if (dump_is_64bit(s)) {
prepare_elf64_header(s, &elf64_header);
header_size = sizeof(elf64_header);
header_ptr = &elf64_header;
} else {
prepare_elf32_header(s, &elf32_header);
header_size = sizeof(elf32_header);
header_ptr = &elf32_header;
}
ret = fd_write_vmcore(header_ptr, header_size, s);
if (ret < 0) {
error_setg_errno(errp, -ret, "dump: failed to write elf header");
}
}
static void write_elf64_load(DumpState *s, MemoryMapping *memory_mapping,
int phdr_index, hwaddr offset,
hwaddr filesz, Error **errp)
{
Elf64_Phdr phdr;
int ret;
memset(&phdr, 0, sizeof(Elf64_Phdr));
phdr.p_type = cpu_to_dump32(s, PT_LOAD);
phdr.p_offset = cpu_to_dump64(s, offset);
phdr.p_paddr = cpu_to_dump64(s, memory_mapping->phys_addr);
phdr.p_filesz = cpu_to_dump64(s, filesz);
phdr.p_memsz = cpu_to_dump64(s, memory_mapping->length);
phdr.p_vaddr = cpu_to_dump64(s, memory_mapping->virt_addr) ?: phdr.p_paddr;
assert(memory_mapping->length >= filesz);
ret = fd_write_vmcore(&phdr, sizeof(Elf64_Phdr), s);
if (ret < 0) {
error_setg_errno(errp, -ret,
"dump: failed to write program header table");
}
}
static void write_elf32_load(DumpState *s, MemoryMapping *memory_mapping,
int phdr_index, hwaddr offset,
hwaddr filesz, Error **errp)
{
Elf32_Phdr phdr;
int ret;
memset(&phdr, 0, sizeof(Elf32_Phdr));
phdr.p_type = cpu_to_dump32(s, PT_LOAD);
phdr.p_offset = cpu_to_dump32(s, offset);
phdr.p_paddr = cpu_to_dump32(s, memory_mapping->phys_addr);
phdr.p_filesz = cpu_to_dump32(s, filesz);
phdr.p_memsz = cpu_to_dump32(s, memory_mapping->length);
phdr.p_vaddr =
cpu_to_dump32(s, memory_mapping->virt_addr) ?: phdr.p_paddr;
assert(memory_mapping->length >= filesz);
ret = fd_write_vmcore(&phdr, sizeof(Elf32_Phdr), s);
if (ret < 0) {
error_setg_errno(errp, -ret,
"dump: failed to write program header table");
}
}
static void prepare_elf64_phdr_note(DumpState *s, Elf64_Phdr *phdr)
{
memset(phdr, 0, sizeof(*phdr));
phdr->p_type = cpu_to_dump32(s, PT_NOTE);
phdr->p_offset = cpu_to_dump64(s, s->note_offset);
phdr->p_paddr = 0;
phdr->p_filesz = cpu_to_dump64(s, s->note_size);
phdr->p_memsz = cpu_to_dump64(s, s->note_size);
phdr->p_vaddr = 0;
}
static inline int cpu_index(CPUState *cpu)
{
return cpu->cpu_index + 1;
}
static void write_guest_note(WriteCoreDumpFunction f, DumpState *s,
Error **errp)
{
int ret;
if (s->guest_note) {
ret = f(s->guest_note, s->guest_note_size, s);
if (ret < 0) {
error_setg(errp, "dump: failed to write guest note");
}
}
}
static void write_elf64_notes(WriteCoreDumpFunction f, DumpState *s,
Error **errp)
{
CPUState *cpu;
int ret;
int id;
CPU_FOREACH(cpu) {
id = cpu_index(cpu);
ret = cpu_write_elf64_note(f, cpu, id, s);
if (ret < 0) {
error_setg(errp, "dump: failed to write elf notes");
return;
}
}
CPU_FOREACH(cpu) {
ret = cpu_write_elf64_qemunote(f, cpu, s);
if (ret < 0) {
error_setg(errp, "dump: failed to write CPU status");
return;
}
}
write_guest_note(f, s, errp);
}
static void prepare_elf32_phdr_note(DumpState *s, Elf32_Phdr *phdr)
{
memset(phdr, 0, sizeof(*phdr));
phdr->p_type = cpu_to_dump32(s, PT_NOTE);
phdr->p_offset = cpu_to_dump32(s, s->note_offset);
phdr->p_paddr = 0;
phdr->p_filesz = cpu_to_dump32(s, s->note_size);
phdr->p_memsz = cpu_to_dump32(s, s->note_size);
phdr->p_vaddr = 0;
}
static void write_elf32_notes(WriteCoreDumpFunction f, DumpState *s,
Error **errp)
{
CPUState *cpu;
int ret;
int id;
CPU_FOREACH(cpu) {
id = cpu_index(cpu);
ret = cpu_write_elf32_note(f, cpu, id, s);
if (ret < 0) {
error_setg(errp, "dump: failed to write elf notes");
return;
}
}
CPU_FOREACH(cpu) {
ret = cpu_write_elf32_qemunote(f, cpu, s);
if (ret < 0) {
error_setg(errp, "dump: failed to write CPU status");
return;
}
}
write_guest_note(f, s, errp);
}
static void write_elf_phdr_note(DumpState *s, Error **errp)
{
Elf32_Phdr phdr32;
Elf64_Phdr phdr64;
void *phdr;
size_t size;
int ret;
if (dump_is_64bit(s)) {
prepare_elf64_phdr_note(s, &phdr64);
size = sizeof(phdr64);
phdr = &phdr64;
} else {
prepare_elf32_phdr_note(s, &phdr32);
size = sizeof(phdr32);
phdr = &phdr32;
}
ret = fd_write_vmcore(phdr, size, s);
if (ret < 0) {
error_setg_errno(errp, -ret,
"dump: failed to write program header table");
}
}
static void prepare_elf_section_hdr_zero(DumpState *s)
{
if (dump_is_64bit(s)) {
Elf64_Shdr *shdr64 = s->elf_section_hdrs;
shdr64->sh_info = cpu_to_dump32(s, s->phdr_num);
} else {
Elf32_Shdr *shdr32 = s->elf_section_hdrs;
shdr32->sh_info = cpu_to_dump32(s, s->phdr_num);
}
}
static void prepare_elf_section_hdr_string(DumpState *s, void *buff)
{
uint64_t index = s->string_table_buf->len;
const char strtab[] = ".shstrtab";
Elf32_Shdr shdr32 = {};
Elf64_Shdr shdr64 = {};
int shdr_size;
void *shdr;
g_array_append_vals(s->string_table_buf, strtab, sizeof(strtab));
if (dump_is_64bit(s)) {
shdr_size = sizeof(Elf64_Shdr);
shdr64.sh_type = SHT_STRTAB;
shdr64.sh_offset = s->section_offset + s->elf_section_data_size;
shdr64.sh_name = index;
shdr64.sh_size = s->string_table_buf->len;
shdr = &shdr64;
} else {
shdr_size = sizeof(Elf32_Shdr);
shdr32.sh_type = SHT_STRTAB;
shdr32.sh_offset = s->section_offset + s->elf_section_data_size;
shdr32.sh_name = index;
shdr32.sh_size = s->string_table_buf->len;
shdr = &shdr32;
}
memcpy(buff, shdr, shdr_size);
}
static bool prepare_elf_section_hdrs(DumpState *s, Error **errp)
{
size_t len, sizeof_shdr;
void *buff_hdr;
/*
* Section ordering:
* - HDR zero
* - Arch section hdrs
* - String table hdr
*/
sizeof_shdr = dump_is_64bit(s) ? sizeof(Elf64_Shdr) : sizeof(Elf32_Shdr);
len = sizeof_shdr * s->shdr_num;
s->elf_section_hdrs = g_malloc0(len);
buff_hdr = s->elf_section_hdrs;
/*
* The first section header is ALWAYS a special initial section
* header.
*
* The header should be 0 with one exception being that if
* phdr_num is PN_XNUM then the sh_info field contains the real
* number of segment entries.
*
* As we zero allocate the buffer we will only need to modify
* sh_info for the PN_XNUM case.
*/
if (s->phdr_num >= PN_XNUM) {
prepare_elf_section_hdr_zero(s);
}
buff_hdr += sizeof_shdr;
/* Add architecture defined section headers */
if (s->dump_info.arch_sections_write_hdr_fn
&& s->shdr_num > 2) {
buff_hdr += s->dump_info.arch_sections_write_hdr_fn(s, buff_hdr);
if (s->shdr_num >= SHN_LORESERVE) {
error_setg_errno(errp, EINVAL,
"dump: too many architecture defined sections");
return false;
}
}
/*
* String table is the last section since strings are added via
* arch_sections_write_hdr().
*/
prepare_elf_section_hdr_string(s, buff_hdr);
return true;
}
static void write_elf_section_headers(DumpState *s, Error **errp)
{
size_t sizeof_shdr = dump_is_64bit(s) ? sizeof(Elf64_Shdr) : sizeof(Elf32_Shdr);
int ret;
if (!prepare_elf_section_hdrs(s, errp)) {
return;
}
ret = fd_write_vmcore(s->elf_section_hdrs, s->shdr_num * sizeof_shdr, s);
if (ret < 0) {
error_setg_errno(errp, -ret, "dump: failed to write section headers");
}
g_free(s->elf_section_hdrs);
}
static void write_elf_sections(DumpState *s, Error **errp)
{
int ret;
if (s->elf_section_data_size) {
/* Write architecture section data */
ret = fd_write_vmcore(s->elf_section_data,
s->elf_section_data_size, s);
if (ret < 0) {
error_setg_errno(errp, -ret,
"dump: failed to write architecture section data");
return;
}
}
/* Write string table */
ret = fd_write_vmcore(s->string_table_buf->data,
s->string_table_buf->len, s);
if (ret < 0) {
error_setg_errno(errp, -ret, "dump: failed to write string table data");
}
}
static void write_data(DumpState *s, void *buf, int length, Error **errp)
{
int ret;
ret = fd_write_vmcore(buf, length, s);
if (ret < 0) {
error_setg_errno(errp, -ret, "dump: failed to save memory");
} else {
s->written_size += length;
}
}
/* write the memory to vmcore. 1 page per I/O. */
static void write_memory(DumpState *s, GuestPhysBlock *block, ram_addr_t start,
int64_t size, Error **errp)
{
ERRP_GUARD();
int64_t i;
for (i = 0; i < size / s->dump_info.page_size; i++) {
write_data(s, block->host_addr + start + i * s->dump_info.page_size,
s->dump_info.page_size, errp);
if (*errp) {
return;
}
}
if ((size % s->dump_info.page_size) != 0) {
write_data(s, block->host_addr + start + i * s->dump_info.page_size,
size % s->dump_info.page_size, errp);
if (*errp) {
return;
}
}
}
/* get the memory's offset and size in the vmcore */
static void get_offset_range(hwaddr phys_addr,
ram_addr_t mapping_length,
DumpState *s,
hwaddr *p_offset,
hwaddr *p_filesz)
{
GuestPhysBlock *block;
hwaddr offset = s->memory_offset;
int64_t size_in_block, start;
/* When the memory is not stored into vmcore, offset will be -1 */
*p_offset = -1;
*p_filesz = 0;
if (dump_has_filter(s)) {
if (phys_addr < s->filter_area_begin ||
phys_addr >= s->filter_area_begin + s->filter_area_length) {
return;
}
}
QTAILQ_FOREACH(block, &s->guest_phys_blocks.head, next) {
if (dump_has_filter(s)) {
if (!ranges_overlap(block->target_start,
block->target_end - block->target_start,
s->filter_area_begin,
s->filter_area_length)) {
/* This block is out of the range */
continue;
}
if (s->filter_area_begin <= block->target_start) {
start = block->target_start;
} else {
start = s->filter_area_begin;
}
size_in_block = block->target_end - start;
if (s->filter_area_begin + s->filter_area_length < block->target_end) {
size_in_block -= block->target_end - (s->filter_area_begin + s->filter_area_length);
}
} else {
start = block->target_start;
size_in_block = block->target_end - block->target_start;
}
if (phys_addr >= start && phys_addr < start + size_in_block) {
*p_offset = phys_addr - start + offset;
/* The offset range mapped from the vmcore file must not spill over
* the GuestPhysBlock, clamp it. The rest of the mapping will be
* zero-filled in memory at load time; see
* <http://refspecs.linuxbase.org/elf/gabi4+/ch5.pheader.html>.
*/
*p_filesz = phys_addr + mapping_length <= start + size_in_block ?
mapping_length :
size_in_block - (phys_addr - start);
return;
}
offset += size_in_block;
}
}
static void write_elf_phdr_loads(DumpState *s, Error **errp)
{
ERRP_GUARD();
hwaddr offset, filesz;
MemoryMapping *memory_mapping;
uint32_t phdr_index = 1;
QTAILQ_FOREACH(memory_mapping, &s->list.head, next) {
get_offset_range(memory_mapping->phys_addr,
memory_mapping->length,
s, &offset, &filesz);
if (dump_is_64bit(s)) {
write_elf64_load(s, memory_mapping, phdr_index++, offset,
filesz, errp);
} else {
write_elf32_load(s, memory_mapping, phdr_index++, offset,
filesz, errp);
}
if (*errp) {
return;
}
if (phdr_index >= s->phdr_num) {
break;
}
}
}
static void write_elf_notes(DumpState *s, Error **errp)
{
if (dump_is_64bit(s)) {
write_elf64_notes(fd_write_vmcore, s, errp);
} else {
write_elf32_notes(fd_write_vmcore, s, errp);
}
}
/* write elf header, PT_NOTE and elf note to vmcore. */
static void dump_begin(DumpState *s, Error **errp)
{
ERRP_GUARD();
/*
* the vmcore's format is:
* --------------
* | elf header |
* --------------
* | sctn_hdr |
* --------------
* | PT_NOTE |
* --------------
* | PT_LOAD |
* --------------
* | ...... |
* --------------
* | PT_LOAD |
* --------------
* | elf note |
* --------------
* | memory |
* --------------
*
* we only know where the memory is saved after we write elf note into
* vmcore.
*/
/* write elf header to vmcore */
write_elf_header(s, errp);
if (*errp) {
return;
}
/* write section headers to vmcore */
write_elf_section_headers(s, errp);
if (*errp) {
return;
}
/* write PT_NOTE to vmcore */
write_elf_phdr_note(s, errp);
if (*errp) {
return;
}
/* write all PT_LOADs to vmcore */
write_elf_phdr_loads(s, errp);
if (*errp) {
return;
}
/* write notes to vmcore */
write_elf_notes(s, errp);
}
int64_t dump_filtered_memblock_size(GuestPhysBlock *block,
int64_t filter_area_start,
int64_t filter_area_length)
{
int64_t size, left, right;
/* No filter, return full size */
if (!filter_area_length) {
return block->target_end - block->target_start;
}
/* calculate the overlapped region. */
left = MAX(filter_area_start, block->target_start);
right = MIN(filter_area_start + filter_area_length, block->target_end);
size = right - left;
size = size > 0 ? size : 0;
return size;
}
int64_t dump_filtered_memblock_start(GuestPhysBlock *block,
int64_t filter_area_start,
int64_t filter_area_length)
{
if (filter_area_length) {
/* return -1 if the block is not within filter area */
if (!ranges_overlap(block->target_start,
block->target_end - block->target_start,
filter_area_start, filter_area_length)) {
return -1;
}
if (filter_area_start > block->target_start) {
return filter_area_start - block->target_start;
}
}
return 0;
}
/* write all memory to vmcore */
static void dump_iterate(DumpState *s, Error **errp)
{
ERRP_GUARD();
GuestPhysBlock *block;
int64_t memblock_size, memblock_start;
QTAILQ_FOREACH(block, &s->guest_phys_blocks.head, next) {
memblock_start = dump_filtered_memblock_start(block, s->filter_area_begin, s->filter_area_length);
if (memblock_start == -1) {
continue;
}
memblock_size = dump_filtered_memblock_size(block, s->filter_area_begin, s->filter_area_length);
/* Write the memory to file */
write_memory(s, block, memblock_start, memblock_size, errp);
if (*errp) {
return;
}
}
}
static void dump_end(DumpState *s, Error **errp)
{
int rc;
if (s->elf_section_data_size) {
s->elf_section_data = g_malloc0(s->elf_section_data_size);
}
/* Adds the architecture defined section data to s->elf_section_data */
if (s->dump_info.arch_sections_write_fn &&
s->elf_section_data_size) {
rc = s->dump_info.arch_sections_write_fn(s, s->elf_section_data);
if (rc) {
error_setg_errno(errp, rc,
"dump: failed to get arch section data");
g_free(s->elf_section_data);
return;
}
}
/* write sections to vmcore */
write_elf_sections(s, errp);
}
static void create_vmcore(DumpState *s, Error **errp)
{
ERRP_GUARD();
dump_begin(s, errp);
if (*errp) {
return;
}
/* Iterate over memory and dump it to file */
dump_iterate(s, errp);
if (*errp) {
return;
}
/* Write the section data */
dump_end(s, errp);
}
static int write_start_flat_header(DumpState *s)
{
MakedumpfileHeader *mh;
int ret = 0;
if (s->kdump_raw) {
return 0;
}
QEMU_BUILD_BUG_ON(sizeof *mh > MAX_SIZE_MDF_HEADER);
mh = g_malloc0(MAX_SIZE_MDF_HEADER);
memcpy(mh->signature, MAKEDUMPFILE_SIGNATURE,
MIN(sizeof mh->signature, sizeof MAKEDUMPFILE_SIGNATURE));
mh->type = cpu_to_be64(TYPE_FLAT_HEADER);
mh->version = cpu_to_be64(VERSION_FLAT_HEADER);
size_t written_size;
written_size = qemu_write_full(s->fd, mh, MAX_SIZE_MDF_HEADER);
if (written_size != MAX_SIZE_MDF_HEADER) {
ret = -1;
}
g_free(mh);
return ret;
}
static int write_end_flat_header(DumpState *s)
{
MakedumpfileDataHeader mdh;
if (s->kdump_raw) {
return 0;
}
mdh.offset = END_FLAG_FLAT_HEADER;
mdh.buf_size = END_FLAG_FLAT_HEADER;
size_t written_size;
written_size = qemu_write_full(s->fd, &mdh, sizeof(mdh));
if (written_size != sizeof(mdh)) {
return -1;
}
return 0;
}
static int write_buffer(DumpState *s, off_t offset, const void *buf, size_t size)
{
size_t written_size;
MakedumpfileDataHeader mdh;
off_t seek_loc;
if (s->kdump_raw) {
seek_loc = lseek(s->fd, offset, SEEK_SET);
if (seek_loc == (off_t) -1) {
return -1;
}
} else {
mdh.offset = cpu_to_be64(offset);
mdh.buf_size = cpu_to_be64(size);
written_size = qemu_write_full(s->fd, &mdh, sizeof(mdh));
if (written_size != sizeof(mdh)) {
return -1;
}
}
written_size = qemu_write_full(s->fd, buf, size);
if (written_size != size) {
return -1;
}
return 0;
}
static int buf_write_note(const void *buf, size_t size, void *opaque)
{
DumpState *s = opaque;
/* note_buf is not enough */
if (s->note_buf_offset + size > s->note_size) {
return -1;
}
memcpy(s->note_buf + s->note_buf_offset, buf, size);
s->note_buf_offset += size;
return 0;
}
/*
* This function retrieves various sizes from an elf header.
*
* @note has to be a valid ELF note. The return sizes are unmodified
* (not padded or rounded up to be multiple of 4).
*/
static void get_note_sizes(DumpState *s, const void *note,
uint64_t *note_head_size,
uint64_t *name_size,
uint64_t *desc_size)
{
uint64_t note_head_sz;
uint64_t name_sz;
uint64_t desc_sz;
if (dump_is_64bit(s)) {
const Elf64_Nhdr *hdr = note;
note_head_sz = sizeof(Elf64_Nhdr);
name_sz = cpu_to_dump64(s, hdr->n_namesz);
desc_sz = cpu_to_dump64(s, hdr->n_descsz);
} else {
const Elf32_Nhdr *hdr = note;
note_head_sz = sizeof(Elf32_Nhdr);
name_sz = cpu_to_dump32(s, hdr->n_namesz);
desc_sz = cpu_to_dump32(s, hdr->n_descsz);
}
if (note_head_size) {
*note_head_size = note_head_sz;
}
if (name_size) {
*name_size = name_sz;
}
if (desc_size) {
*desc_size = desc_sz;
}
}
static bool note_name_equal(DumpState *s,
const uint8_t *note, const char *name)
{
int len = strlen(name) + 1;
uint64_t head_size, name_size;
get_note_sizes(s, note, &head_size, &name_size, NULL);
head_size = ROUND_UP(head_size, 4);
return name_size == len && memcmp(note + head_size, name, len) == 0;
}
/* write common header, sub header and elf note to vmcore */
static void create_header32(DumpState *s, Error **errp)
{
ERRP_GUARD();
DiskDumpHeader32 *dh = NULL;
KdumpSubHeader32 *kh = NULL;
size_t size;
uint32_t block_size;
uint32_t sub_hdr_size;
uint32_t bitmap_blocks;
uint32_t status = 0;
uint64_t offset_note;
/* write common header, the version of kdump-compressed format is 6th */
size = sizeof(DiskDumpHeader32);
dh = g_malloc0(size);
memcpy(dh->signature, KDUMP_SIGNATURE, SIG_LEN);
dh->header_version = cpu_to_dump32(s, 6);
block_size = s->dump_info.page_size;
dh->block_size = cpu_to_dump32(s, block_size);
sub_hdr_size = sizeof(struct KdumpSubHeader32) + s->note_size;
sub_hdr_size = DIV_ROUND_UP(sub_hdr_size, block_size);
dh->sub_hdr_size = cpu_to_dump32(s, sub_hdr_size);
/* dh->max_mapnr may be truncated, full 64bit is in kh.max_mapnr_64 */
dh->max_mapnr = cpu_to_dump32(s, MIN(s->max_mapnr, UINT_MAX));
dh->nr_cpus = cpu_to_dump32(s, s->nr_cpus);
bitmap_blocks = DIV_ROUND_UP(s->len_dump_bitmap, block_size) * 2;
dh->bitmap_blocks = cpu_to_dump32(s, bitmap_blocks);
strncpy(dh->utsname.machine, ELF_MACHINE_UNAME, sizeof(dh->utsname.machine));
if (s->flag_compress & DUMP_DH_COMPRESSED_ZLIB) {
status |= DUMP_DH_COMPRESSED_ZLIB;
}
#ifdef CONFIG_LZO
if (s->flag_compress & DUMP_DH_COMPRESSED_LZO) {
status |= DUMP_DH_COMPRESSED_LZO;
}