Files
pstrace/framework/common.cpp
T
2020-01-16 16:22:17 +04:00

297 lines
8.0 KiB
C++

/*
* common.cpp
*
* Created on: Jan 8, 2020
* Author: nnosov
*/
#include <inttypes.h>
#include <stddef.h>
#include <dwarf.h>
#include <stdarg.h>
#include <stdio.h>
#include <limits.h>
#include <elfutils/libdwfl.h>
#include <libunwind.h>
#include "logger/log.h"
#include "common.h"
#include "dwarf_operations.h"
extern SC_LogBase* logger;
bool dwarf_value::get_int(int64_t& v)
{
switch (size) {
case 1:
v = *((int8_t*)value);
break;
case 2:
v = *((int16_t*)value);
break;
case 4:
v = *((int32_t*)value);
break;
case 8:
v = *((int64_t*)value);
break;
default:
return false;
break;
}
return true;
}
bool dwarf_value::get_uint(uint64_t& v)
{
if(type & DWARF_TYPE_SIGNED) {
int64_t sig;
if(!get_int(sig)) {
return false;
}
v = llabs(sig);
} else {
return get_generic(v);
}
return true;
}
bool dwarf_value::get_generic(uint64_t& v)
{
switch (size) {
case 1:
v = *((uint8_t*)value);
break;
case 2:
v = *((uint16_t*)value);
break;
case 4:
v = *((uint32_t*)value);
break;
case 8:
v = *((uint64_t*)value);
break;
default:
return false;
break;
}
return true;
}
bool __pst_context::print(const char* fmt, ...)
{
bool nret = true;
va_list args;
va_start(args, fmt);
int size = sizeof(buff) - offset;
int ret = vsnprintf(buff + offset, size, fmt, args);
if(ret >= size || ret < 0) {
nret = false;
}
offset += ret;
va_end(args);
return nret;
}
void __pst_context::log(SC_LogSeverity severity, const char* fmt, ...)
{
uint32_t str_len = 0;
char str[PATH_MAX]; str[0] = 0;
va_list args;
va_start(args, fmt);
str_len += vsnprintf(str + str_len, sizeof(str) - str_len, fmt, args);
va_end(args);
logger->Log(severity, "%s", str);
}
uint32_t __pst_context::print_expr_block (Dwarf_Op *exprs, int len, char* buff, uint32_t buff_size, Dwarf_Attribute* attr)
{
uint32_t offset = 0;
for (int i = 0; i < len; i++) {
//printf ("%s", (i + 1 < len ? ", " : ""));
const dwarf_op_map* map = find_op_map(exprs[i].atom);
if(map) {
if(map->op_num >= DW_OP_breg0 && map->op_num <= DW_OP_breg16) {
int32_t off = decode_sleb128((unsigned char*)&exprs[i].number);
int regno = map->op_num - DW_OP_breg0;
unw_word_t ptr = 0;
unw_get_reg(&curr_frame, regno, &ptr);
//ptr += off;
offset += snprintf(buff + offset, buff_size - offset, "%s(*%s%s%d) reg_value: 0x%lX", map->op_name, unw_regname(regno), off >=0 ? "+" : "", off, ptr);
} else if(map->op_num >= DW_OP_reg0 && map->op_num <= DW_OP_reg16) {
unw_word_t value = 0;
int regno = map->op_num - DW_OP_reg0;
unw_get_reg(&curr_frame, regno, &value);
offset += snprintf(buff + offset, buff_size - offset, "%s(*%s) value: 0x%lX", map->op_name, unw_regname(regno), value);
} else if(map->op_num == DW_OP_GNU_entry_value) {
uint32_t value = decode_uleb128((unsigned char*)&exprs[i].number);
offset += snprintf(buff + offset, buff_size - offset, "%s(%u, ", map->op_name, value);
Dwarf_Attribute attr_mem;
if(!dwarf_getlocation_attr(attr, exprs, &attr_mem)) {
Dwarf_Op *expr;
size_t exprlen;
if (dwarf_getlocation(&attr_mem, &expr, &exprlen) == 0) {
offset += print_expr_block (expr, exprlen, buff + offset, buff_size - offset, &attr_mem);
offset += snprintf(buff + offset, buff_size - offset, ") ");
} else {
log(SEVERITY_ERROR, "Failed to get DW_OP_GNU_entry_value attr location");
}
} else {
log(SEVERITY_ERROR, "Failed to get DW_OP_GNU_entry_value attr expression");
}
} else if(map->op_num == DW_OP_stack_value) {
offset += snprintf(buff + offset, buff_size - offset, "%s", map->op_name);
} else if(map->op_num == DW_OP_plus_uconst) {
uint32_t value = decode_uleb128((unsigned char*)&exprs[i].number);
offset += snprintf(buff + offset, buff_size - offset, "%s(+%u) ", map->op_name, value);
} else if(map->op_num == DW_OP_bregx) {
uint32_t regno = decode_uleb128((unsigned char*)&exprs[i].number);
int32_t off = decode_sleb128((unsigned char*)&exprs[i].number2);
unw_word_t ptr = 0;
unw_get_reg(&curr_frame, regno, &ptr);
//ptr += off;
offset += snprintf(buff + offset, buff_size - offset, "%s(%s%s%d) reg_value = 0x%lX", map->op_name, unw_regname(regno), off >= 0 ? "+" : "", off, ptr);
} else if(map->op_num == DW_OP_regx) {
int32_t reg = decode_sleb128((unsigned char*)&exprs[i].number);
unw_word_t value = 0;
unw_get_reg(&curr_frame, reg, &value);
offset += snprintf(buff + offset, buff_size - offset, "%s(%s) value = 0x%lX", map->op_name, unw_regname(reg), value);
} else if(map->op_num == DW_OP_addr) {
offset += snprintf(buff + offset, buff_size - offset, "%s value = %p", map->op_name, (void*)exprs[i].number);
} else {
offset += snprintf(buff + offset, buff_size - offset, "%s(0x%lX, 0x%lx)", map->op_name, exprs[i].number, exprs[i].number2);
}
} else {
offset += snprintf(buff + offset, buff_size - offset, "0x%hhX(0x%lX, 0x%lx)", exprs[i].atom, exprs[i].number, exprs[i].number2);
}
}
return offset;
}
bool is_location_form(int form)
{
if (form == DW_FORM_block1 || form == DW_FORM_block2 || form == DW_FORM_block4 || form == DW_FORM_block ||
form == DW_FORM_data4 || form == DW_FORM_data8 || form == DW_FORM_sec_offset) {
return true;
}
return false;
}
int32_t decode_sleb128(uint8_t *sleb128)
{
int32_t num = 0, shift = 0, size = 0;
do {
num |= ((*sleb128 & 0x7f) << shift);
shift += 7;
size += 8;
} while(*sleb128++ & 0x80);
if((shift < size) && (*(--sleb128) & 0x40)) {
num |= - (1 << shift);
}
return num;
}
uint32_t decode_uleb128(uint8_t *uleb128)
{
uint32_t num = 0, shift = 0;
do {
num |= ((*uleb128 & 0x7f) << shift);
shift += 7;
} while(*uleb128++ & 0x80);
return num;
}
// Utility function to encode a ULEB128 value to a buffer. Returns
// the length in bytes of the encoded value.
inline unsigned encode_uleb128(uint64_t value, uint8_t *p, unsigned PadTo = 0)
{
uint8_t *orig_p = p;
unsigned count = 0;
do {
uint8_t Byte = value & 0x7f;
value >>= 7;
count++;
if (value != 0 || count < PadTo)
Byte |= 0x80; // Mark this byte to show that more bytes will follow.
*p++ = Byte;
} while (value != 0);
// Pad with 0x80 and emit a null byte at the end.
if (count < PadTo) {
for (; count < PadTo - 1; ++count)
*p++ = '\x80';
*p++ = '\x00';
}
return (unsigned)(p - orig_p);
}
// Utility function to encode a SLEB128 value to a buffer. Returns
// the length in bytes of the encoded value.
inline unsigned encode_sleb128(int64_t value, uint8_t *p, unsigned PadTo = 0)
{
uint8_t *orig_p = p;
unsigned count = 0;
bool More;
do {
uint8_t Byte = value & 0x7f;
// NOTE: this assumes that this signed shift is an arithmetic right shift.
value >>= 7;
More = !((((value == 0 ) && ((Byte & 0x40) == 0)) ||
((value == -1) && ((Byte & 0x40) != 0))));
count++;
if (More || count < PadTo)
Byte |= 0x80; // Mark this byte to show that more bytes will follow.
*p++ = Byte;
} while (More);
// Pad with 0x80 and emit a terminating byte at the end.
if (count < PadTo) {
uint8_t PadValue = value < 0 ? 0x7f : 0x00;
for (; count < PadTo - 1; ++count)
*p++ = (PadValue | 0x80);
*p++ = PadValue;
}
return (unsigned)(p - orig_p);
}
// Utility function to get the size of the ULEB128-encoded value.
unsigned getULEB128Size(uint64_t Value)
{
unsigned Size = 0;
do {
Value >>= 7;
Size += sizeof(int8_t);
} while (Value);
return Size;
}
// Utility function to get the size of the SLEB128-encoded value.
unsigned getSLEB128Size(int64_t Value)
{
unsigned Size = 0;
int Sign = Value >> (8 * sizeof(Value) - 1);
bool IsMore;
do {
unsigned Byte = Value & 0x7f;
Value >>= 7;
IsMore = Value != Sign || ((Byte ^ Sign) & 0x40) != 0;
Size += sizeof(int8_t);
} while (IsMore);
return Size;
}