2019-09-21 17:38:52 +02:00
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#include <array>
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2019-09-17 13:22:17 +02:00
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#include <iomanip>
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#include "aco_ir.h"
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#include "llvm-c/Disassembler.h"
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#include "ac_llvm_util.h"
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#include <llvm/ADT/StringRef.h>
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2020-05-15 21:31:35 +01:00
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#if LLVM_VERSION_MAJOR >= 11
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#include <llvm/MC/MCDisassembler/MCDisassembler.h>
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#endif
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2019-09-17 13:22:17 +02:00
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namespace aco {
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2020-01-17 09:49:44 +01:00
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/* LLVM disassembler only supports GFX8+, try to disassemble with CLRXdisasm
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* for GFX6-GFX7 if found on the system, this is better than nothing.
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*/
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void print_asm_gfx6_gfx7(Program *program, std::vector<uint32_t>& binary,
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std::ostream& out)
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{
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char path[] = "/tmp/fileXXXXXX";
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char line[2048], command[128];
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2020-01-20 18:41:00 +01:00
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const char *gpu_type;
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2020-01-17 09:49:44 +01:00
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FILE *p;
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int fd;
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/* Dump the binary into a temporary file. */
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fd = mkstemp(path);
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if (fd < 0)
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return;
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for (uint32_t w : binary)
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{
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if (write(fd, &w, sizeof(w)) == -1)
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goto fail;
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}
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2020-01-20 18:41:00 +01:00
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/* Determine the GPU type for CLRXdisasm. Use the family for GFX6 chips
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* because it doesn't allow to use gfx600 directly.
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*/
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switch (program->chip_class) {
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case GFX6:
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switch (program->family) {
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case CHIP_TAHITI:
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gpu_type = "tahiti";
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break;
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case CHIP_PITCAIRN:
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gpu_type = "pitcairn";
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break;
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case CHIP_VERDE:
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gpu_type = "capeverde";
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break;
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case CHIP_OLAND:
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gpu_type = "oland";
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break;
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case CHIP_HAINAN:
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gpu_type = "hainan";
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break;
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default:
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unreachable("Invalid GFX6 family!");
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}
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break;
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case GFX7:
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gpu_type = "gfx700";
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break;
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default:
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unreachable("Invalid chip class!");
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}
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sprintf(command, "clrxdisasm --gpuType=%s -r %s", gpu_type, path);
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2020-01-17 09:49:44 +01:00
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p = popen(command, "r");
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2020-06-22 13:33:21 +02:00
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if (p) {
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if (!fgets(line, sizeof(line), p)) {
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out << "clrxdisasm not found\n";
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pclose(p);
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goto fail;
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}
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do {
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2020-01-17 09:49:44 +01:00
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out << line;
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2020-06-22 13:33:21 +02:00
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} while (fgets(line, sizeof(line), p));
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2020-01-17 09:49:44 +01:00
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pclose(p);
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}
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fail:
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close(fd);
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unlink(path);
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}
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2019-09-17 13:22:17 +02:00
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void print_asm(Program *program, std::vector<uint32_t>& binary,
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2019-09-21 17:58:08 +02:00
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unsigned exec_size, std::ostream& out)
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2019-09-17 13:22:17 +02:00
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{
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2019-11-15 16:29:32 +01:00
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if (program->chip_class <= GFX7) {
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2020-01-17 09:49:44 +01:00
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print_asm_gfx6_gfx7(program, binary, out);
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2019-11-15 16:29:32 +01:00
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return;
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}
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2020-01-17 09:49:44 +01:00
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2019-09-17 13:22:17 +02:00
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std::vector<bool> referenced_blocks(program->blocks.size());
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referenced_blocks[0] = true;
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for (Block& block : program->blocks) {
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for (unsigned succ : block.linear_succs)
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referenced_blocks[succ] = true;
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}
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2020-05-15 21:31:35 +01:00
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#if LLVM_VERSION_MAJOR >= 11
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std::vector<llvm::SymbolInfoTy> symbols;
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#else
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2019-09-17 13:22:17 +02:00
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std::vector<std::tuple<uint64_t, llvm::StringRef, uint8_t>> symbols;
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2020-05-15 21:31:35 +01:00
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#endif
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2019-09-17 13:22:17 +02:00
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std::vector<std::array<char,16>> block_names;
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block_names.reserve(program->blocks.size());
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for (Block& block : program->blocks) {
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if (!referenced_blocks[block.index])
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continue;
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std::array<char, 16> name;
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sprintf(name.data(), "BB%u", block.index);
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block_names.push_back(name);
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symbols.emplace_back(block.offset * 4, llvm::StringRef(block_names[block_names.size() - 1].data()), 0);
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}
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2019-09-21 17:58:08 +02:00
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const char *features = "";
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if (program->chip_class >= GFX10 && program->wave_size == 64) {
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features = "+wavefrontsize64";
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}
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LLVMDisasmContextRef disasm = LLVMCreateDisasmCPUFeatures("amdgcn-mesa-mesa3d",
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ac_get_llvm_processor_name(program->family),
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features,
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&symbols, 0, NULL, NULL);
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2019-09-17 13:22:17 +02:00
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char outline[1024];
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size_t pos = 0;
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bool invalid = false;
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unsigned next_block = 0;
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while (pos < exec_size) {
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while (next_block < program->blocks.size() && pos == program->blocks[next_block].offset) {
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if (referenced_blocks[next_block])
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out << "BB" << std::dec << next_block << ":" << std::endl;
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next_block++;
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}
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2019-12-04 10:43:14 +01:00
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/* mask out src2 on v_writelane_b32 */
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if (((program->chip_class == GFX8 || program->chip_class == GFX9) && (binary[pos] & 0xffff8000) == 0xd28a0000) ||
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2020-06-08 18:45:35 +02:00
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(program->chip_class >= GFX10 && (binary[pos] & 0xffff8000) == 0xd7610000)) {
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2019-12-04 10:43:14 +01:00
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binary[pos+1] = binary[pos+1] & 0xF803FFFF;
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}
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2020-08-05 14:59:01 +01:00
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const int align_width = 60;
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out << std::left << std::setw(align_width) << std::setfill(' ');
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2019-09-17 13:22:17 +02:00
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size_t l = LLVMDisasmInstruction(disasm, (uint8_t *) &binary[pos],
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(exec_size - pos) * sizeof(uint32_t), pos * 4,
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outline, sizeof(outline));
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size_t new_pos;
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2020-04-27 21:16:15 +01:00
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if (!l &&
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((program->chip_class >= GFX9 && (binary[pos] & 0xffff8000) == 0xd1348000) || /* v_add_u32_e64 + clamp */
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(program->chip_class >= GFX10 && (binary[pos] & 0xffff8000) == 0xd7038000) || /* v_add_u16_e64 + clamp */
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(program->chip_class <= GFX9 && (binary[pos] & 0xffff8000) == 0xd1268000)) /* v_add_u16_e64 + clamp */) {
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2020-08-05 14:59:01 +01:00
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out << "\tinteger addition + clamp";
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2020-04-27 21:16:15 +01:00
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bool has_literal = program->chip_class >= GFX10 &&
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(((binary[pos+1] & 0x1ff) == 0xff) || (((binary[pos+1] >> 9) & 0x1ff) == 0xff));
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new_pos = pos + 2 + has_literal;
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2020-06-08 18:45:35 +02:00
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} else if (program->chip_class >= GFX10 && l == 4 && ((binary[pos] & 0xfe0001ff) == 0x020000f9)) {
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2020-08-05 14:59:01 +01:00
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out << "\tv_cndmask_b32 + sdwa";
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2019-12-04 20:18:05 +00:00
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new_pos = pos + 2;
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2019-09-17 13:22:17 +02:00
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} else if (!l) {
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2020-08-05 14:59:01 +01:00
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out << "(invalid instruction)";
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2019-09-17 13:22:17 +02:00
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new_pos = pos + 1;
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invalid = true;
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} else {
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2020-08-05 14:59:01 +01:00
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out << outline;
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2019-09-17 13:22:17 +02:00
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assert(l % 4 == 0);
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new_pos = pos + l / 4;
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}
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2020-08-05 14:59:01 +01:00
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size_t size = new_pos - pos;
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2019-09-17 13:22:17 +02:00
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out << std::right;
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out << " ;";
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2020-08-05 14:59:01 +01:00
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for (unsigned i = 0; i < size; i++)
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out << " " << std::setfill('0') << std::setw(8) << std::hex << binary[pos + i];
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2019-09-17 13:22:17 +02:00
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out << std::endl;
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2020-08-05 14:59:01 +01:00
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size_t original_pos = pos;
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pos += size;
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unsigned repeat_count = 0;
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while (pos + size <= exec_size && memcmp(&binary[pos], &binary[original_pos], size * 4) == 0) {
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repeat_count++;
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pos += size;
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}
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if (repeat_count)
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out << std::left << std::setw(0) << std::dec << std::setfill(' ') << "\t(then repeated " << repeat_count << " times)" << std::endl;
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2019-09-17 13:22:17 +02:00
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}
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out << std::setfill(' ') << std::setw(0) << std::dec;
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assert(next_block == program->blocks.size());
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LLVMDisasmDispose(disasm);
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if (program->constant_data.size()) {
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out << std::endl << "/* constant data */" << std::endl;
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for (unsigned i = 0; i < program->constant_data.size(); i += 32) {
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out << '[' << std::setw(6) << std::setfill('0') << std::dec << i << ']';
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unsigned line_size = std::min<size_t>(program->constant_data.size() - i, 32);
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for (unsigned j = 0; j < line_size; j += 4) {
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unsigned size = std::min<size_t>(program->constant_data.size() - (i + j), 4);
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uint32_t v = 0;
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memcpy(&v, &program->constant_data[i + j], size);
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out << " " << std::setw(8) << std::setfill('0') << std::hex << v;
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}
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out << std::endl;
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}
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}
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out << std::setfill(' ') << std::setw(0) << std::dec;
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if (invalid) {
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/* Invalid instructions usually lead to GPU hangs, which can make
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* getting the actual invalid instruction hard. Abort here so that we
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* can find the problem.
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*/
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abort();
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}
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}
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}
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