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Benjamin Kramerb848e972011-09-15 02:12:05 +00001//===-- DWARFDebugLine.cpp ------------------------------------------------===//
2//
3// The LLVM Compiler Infrastructure
4//
5// This file is distributed under the University of Illinois Open Source
6// License. See LICENSE.TXT for details.
7//
8//===----------------------------------------------------------------------===//
9
10#include "DWARFDebugLine.h"
11#include "llvm/Support/Dwarf.h"
12#include "llvm/Support/Format.h"
13#include "llvm/Support/raw_ostream.h"
Benjamin Kramer7393c7f2011-09-15 02:19:33 +000014#include <algorithm>
Benjamin Kramerb848e972011-09-15 02:12:05 +000015using namespace llvm;
16using namespace dwarf;
17
18void DWARFDebugLine::Prologue::dump(raw_ostream &OS) const {
19 OS << "Line table prologue:\n"
20 << format(" total_length: 0x%8.8x\n", TotalLength)
21 << format(" version: %u\n", Version)
22 << format("prologue_length: 0x%8.8x\n", PrologueLength)
23 << format("min_inst_length: %u\n", MinInstLength)
24 << format("default_is_stmt: %u\n", DefaultIsStmt)
25 << format(" line_base: %i\n", LineBase)
26 << format(" line_range: %u\n", LineRange)
27 << format(" opcode_base: %u\n", OpcodeBase);
28
29 for (uint32_t i = 0; i < StandardOpcodeLengths.size(); ++i)
30 OS << format("standard_opcode_lengths[%s] = %u\n", LNStandardString(i+1),
31 StandardOpcodeLengths[i]);
32
33 if (!IncludeDirectories.empty())
34 for (uint32_t i = 0; i < IncludeDirectories.size(); ++i)
35 OS << format("include_directories[%3u] = '", i+1)
36 << IncludeDirectories[i] << "'\n";
37
38 if (!FileNames.empty()) {
39 OS << " Dir Mod Time File Len File Name\n"
40 << " ---- ---------- ---------- -----------"
41 "----------------\n";
42 for (uint32_t i = 0; i < FileNames.size(); ++i) {
43 const FileNameEntry& fileEntry = FileNames[i];
44 OS << format("file_names[%3u] %4u ", i+1, fileEntry.DirIdx)
45 << format("0x%8.8x 0x%8.8x ", fileEntry.ModTime, fileEntry.Length)
46 << fileEntry.Name << '\n';
47 }
48 }
49}
50
51void DWARFDebugLine::Row::postAppend() {
52 BasicBlock = false;
53 PrologueEnd = false;
54 EpilogueBegin = false;
55}
56
57void DWARFDebugLine::Row::reset(bool default_is_stmt) {
58 Address = 0;
59 Line = 1;
60 Column = 0;
61 File = 1;
62 Isa = 0;
63 IsStmt = default_is_stmt;
64 BasicBlock = false;
65 EndSequence = false;
66 PrologueEnd = false;
67 EpilogueBegin = false;
68}
69
70void DWARFDebugLine::Row::dump(raw_ostream &OS) const {
71 OS << format("0x%16.16llx %6u %6u", Address, Line, Column)
72 << format(" %6u %3u ", File, Isa)
73 << (IsStmt ? " is_stmt" : "")
74 << (BasicBlock ? " basic_block" : "")
75 << (PrologueEnd ? " prologue_end" : "")
76 << (EpilogueBegin ? " epilogue_begin" : "")
77 << (EndSequence ? " end_sequence" : "")
78 << '\n';
79}
80
81void DWARFDebugLine::LineTable::dump(raw_ostream &OS) const {
82 Prologue.dump(OS);
83 OS << '\n';
84
85 if (!Rows.empty()) {
86 OS << "Address Line Column File ISA Flags\n"
87 << "------------------ ------ ------ ------ --- -------------\n";
88 for (std::vector<Row>::const_iterator pos = Rows.begin(),
89 end = Rows.end(); pos != end; ++pos)
90 pos->dump(OS);
91 }
92}
93
Nick Lewycky6bc4e712011-09-15 03:41:51 +000094DWARFDebugLine::State::~State() {}
95
Benjamin Kramerb848e972011-09-15 02:12:05 +000096void DWARFDebugLine::State::appendRowToMatrix(uint32_t offset) {
97 ++row; // Increase the row number.
98 LineTable::appendRow(*this);
99 Row::postAppend();
100}
101
Nick Lewycky6bc4e712011-09-15 03:41:51 +0000102DWARFDebugLine::DumpingState::~DumpingState() {}
103
Benjamin Kramerb848e972011-09-15 02:12:05 +0000104void DWARFDebugLine::DumpingState::finalize(uint32_t offset) {
105 LineTable::dump(OS);
106}
107
Benjamin Kramerb848e972011-09-15 02:12:05 +0000108const DWARFDebugLine::LineTable *
109DWARFDebugLine::getLineTable(uint32_t offset) const {
110 LineTableConstIter pos = LineTableMap.find(offset);
111 if (pos != LineTableMap.end())
112 return &pos->second;
113 return 0;
114}
115
Benjamin Kramerc26ed9b2011-09-15 20:43:18 +0000116const DWARFDebugLine::LineTable *
117DWARFDebugLine::getOrParseLineTable(DataExtractor debug_line_data,
118 uint32_t offset) {
119 LineTableIter pos = LineTableMap.find(offset);
120 if (pos == LineTableMap.end()) {
121 // Parse and cache the line table for at this offset.
122 State state;
123 if (!parseStatementTable(debug_line_data, &offset, state))
124 return 0;
125 pos->second = state;
126 }
127 return &pos->second;
128}
129
Benjamin Kramerb848e972011-09-15 02:12:05 +0000130bool
131DWARFDebugLine::parsePrologue(DataExtractor debug_line_data,
132 uint32_t *offset_ptr, Prologue *prologue) {
133 const uint32_t prologue_offset = *offset_ptr;
134
135 prologue->clear();
136 prologue->TotalLength = debug_line_data.getU32(offset_ptr);
137 prologue->Version = debug_line_data.getU16(offset_ptr);
138 if (prologue->Version != 2)
139 return false;
140
141 prologue->PrologueLength = debug_line_data.getU32(offset_ptr);
142 const uint32_t end_prologue_offset = prologue->PrologueLength + *offset_ptr;
143 prologue->MinInstLength = debug_line_data.getU8(offset_ptr);
144 prologue->DefaultIsStmt = debug_line_data.getU8(offset_ptr);
145 prologue->LineBase = debug_line_data.getU8(offset_ptr);
146 prologue->LineRange = debug_line_data.getU8(offset_ptr);
147 prologue->OpcodeBase = debug_line_data.getU8(offset_ptr);
148
149 prologue->StandardOpcodeLengths.reserve(prologue->OpcodeBase-1);
150 for (uint32_t i = 1; i < prologue->OpcodeBase; ++i) {
151 uint8_t op_len = debug_line_data.getU8(offset_ptr);
152 prologue->StandardOpcodeLengths.push_back(op_len);
153 }
154
155 while (*offset_ptr < end_prologue_offset) {
156 const char *s = debug_line_data.getCStr(offset_ptr);
157 if (s && s[0])
158 prologue->IncludeDirectories.push_back(s);
159 else
160 break;
161 }
162
163 while (*offset_ptr < end_prologue_offset) {
164 const char *name = debug_line_data.getCStr(offset_ptr);
165 if (name && name[0]) {
166 FileNameEntry fileEntry;
167 fileEntry.Name = name;
168 fileEntry.DirIdx = debug_line_data.getULEB128(offset_ptr);
169 fileEntry.ModTime = debug_line_data.getULEB128(offset_ptr);
170 fileEntry.Length = debug_line_data.getULEB128(offset_ptr);
171 prologue->FileNames.push_back(fileEntry);
172 } else {
173 break;
174 }
175 }
176
177 if (*offset_ptr != end_prologue_offset) {
178 fprintf(stderr, "warning: parsing line table prologue at 0x%8.8x should"
179 " have ended at 0x%8.8x but it ended ad 0x%8.8x\n",
180 prologue_offset, end_prologue_offset, *offset_ptr);
181 }
182 return end_prologue_offset;
183}
184
185bool
186DWARFDebugLine::parseStatementTable(DataExtractor debug_line_data,
187 uint32_t *offset_ptr, State &state) {
188 const uint32_t debug_line_offset = *offset_ptr;
189
190 Prologue *prologue = &state.Prologue;
191
192 if (!parsePrologue(debug_line_data, offset_ptr, prologue)) {
193 // Restore our offset and return false to indicate failure!
194 *offset_ptr = debug_line_offset;
195 return false;
196 }
197
198 const uint32_t end_offset = debug_line_offset + prologue->TotalLength +
199 sizeof(prologue->TotalLength);
200
201 while (*offset_ptr < end_offset) {
202 uint8_t opcode = debug_line_data.getU8(offset_ptr);
203
204 if (opcode == 0) {
205 // Extended Opcodes always start with a zero opcode followed by
206 // a uleb128 length so you can skip ones you don't know about
207 uint32_t ext_offset = *offset_ptr;
208 uint64_t len = debug_line_data.getULEB128(offset_ptr);
209 uint32_t arg_size = len - (*offset_ptr - ext_offset);
210
211 uint8_t sub_opcode = debug_line_data.getU8(offset_ptr);
212 switch (sub_opcode) {
213 case DW_LNE_end_sequence:
214 // Set the end_sequence register of the state machine to true and
215 // append a row to the matrix using the current values of the
216 // state-machine registers. Then reset the registers to the initial
217 // values specified above. Every statement program sequence must end
218 // with a DW_LNE_end_sequence instruction which creates a row whose
219 // address is that of the byte after the last target machine instruction
220 // of the sequence.
221 state.EndSequence = true;
222 state.appendRowToMatrix(*offset_ptr);
223 state.reset();
224 break;
225
226 case DW_LNE_set_address:
227 // Takes a single relocatable address as an operand. The size of the
228 // operand is the size appropriate to hold an address on the target
229 // machine. Set the address register to the value given by the
230 // relocatable address. All of the other statement program opcodes
231 // that affect the address register add a delta to it. This instruction
232 // stores a relocatable value into it instead.
233 state.Address = debug_line_data.getAddress(offset_ptr);
234 break;
235
236 case DW_LNE_define_file:
237 // Takes 4 arguments. The first is a null terminated string containing
238 // a source file name. The second is an unsigned LEB128 number
239 // representing the directory index of the directory in which the file
240 // was found. The third is an unsigned LEB128 number representing the
241 // time of last modification of the file. The fourth is an unsigned
242 // LEB128 number representing the length in bytes of the file. The time
243 // and length fields may contain LEB128(0) if the information is not
244 // available.
245 //
246 // The directory index represents an entry in the include_directories
247 // section of the statement program prologue. The index is LEB128(0)
248 // if the file was found in the current directory of the compilation,
249 // LEB128(1) if it was found in the first directory in the
250 // include_directories section, and so on. The directory index is
251 // ignored for file names that represent full path names.
252 //
253 // The files are numbered, starting at 1, in the order in which they
254 // appear; the names in the prologue come before names defined by
255 // the DW_LNE_define_file instruction. These numbers are used in the
256 // the file register of the state machine.
257 {
258 FileNameEntry fileEntry;
259 fileEntry.Name = debug_line_data.getCStr(offset_ptr);
260 fileEntry.DirIdx = debug_line_data.getULEB128(offset_ptr);
261 fileEntry.ModTime = debug_line_data.getULEB128(offset_ptr);
262 fileEntry.Length = debug_line_data.getULEB128(offset_ptr);
263 prologue->FileNames.push_back(fileEntry);
264 }
265 break;
266
267 default:
268 // Length doesn't include the zero opcode byte or the length itself, but
269 // it does include the sub_opcode, so we have to adjust for that below
270 (*offset_ptr) += arg_size;
271 break;
272 }
273 } else if (opcode < prologue->OpcodeBase) {
274 switch (opcode) {
275 // Standard Opcodes
276 case DW_LNS_copy:
277 // Takes no arguments. Append a row to the matrix using the
278 // current values of the state-machine registers. Then set
279 // the basic_block register to false.
280 state.appendRowToMatrix(*offset_ptr);
281 break;
282
283 case DW_LNS_advance_pc:
284 // Takes a single unsigned LEB128 operand, multiplies it by the
285 // min_inst_length field of the prologue, and adds the
286 // result to the address register of the state machine.
287 state.Address += debug_line_data.getULEB128(offset_ptr) *
288 prologue->MinInstLength;
289 break;
290
291 case DW_LNS_advance_line:
292 // Takes a single signed LEB128 operand and adds that value to
293 // the line register of the state machine.
294 state.Line += debug_line_data.getSLEB128(offset_ptr);
295 break;
296
297 case DW_LNS_set_file:
298 // Takes a single unsigned LEB128 operand and stores it in the file
299 // register of the state machine.
300 state.File = debug_line_data.getULEB128(offset_ptr);
301 break;
302
303 case DW_LNS_set_column:
304 // Takes a single unsigned LEB128 operand and stores it in the
305 // column register of the state machine.
306 state.Column = debug_line_data.getULEB128(offset_ptr);
307 break;
308
309 case DW_LNS_negate_stmt:
310 // Takes no arguments. Set the is_stmt register of the state
311 // machine to the logical negation of its current value.
312 state.IsStmt = !state.IsStmt;
313 break;
314
315 case DW_LNS_set_basic_block:
316 // Takes no arguments. Set the basic_block register of the
317 // state machine to true
318 state.BasicBlock = true;
319 break;
320
321 case DW_LNS_const_add_pc:
322 // Takes no arguments. Add to the address register of the state
323 // machine the address increment value corresponding to special
324 // opcode 255. The motivation for DW_LNS_const_add_pc is this:
325 // when the statement program needs to advance the address by a
326 // small amount, it can use a single special opcode, which occupies
327 // a single byte. When it needs to advance the address by up to
328 // twice the range of the last special opcode, it can use
329 // DW_LNS_const_add_pc followed by a special opcode, for a total
330 // of two bytes. Only if it needs to advance the address by more
331 // than twice that range will it need to use both DW_LNS_advance_pc
332 // and a special opcode, requiring three or more bytes.
333 {
334 uint8_t adjust_opcode = 255 - prologue->OpcodeBase;
335 uint64_t addr_offset = (adjust_opcode / prologue->LineRange) *
336 prologue->MinInstLength;
337 state.Address += addr_offset;
338 }
339 break;
340
341 case DW_LNS_fixed_advance_pc:
342 // Takes a single uhalf operand. Add to the address register of
343 // the state machine the value of the (unencoded) operand. This
344 // is the only extended opcode that takes an argument that is not
345 // a variable length number. The motivation for DW_LNS_fixed_advance_pc
346 // is this: existing assemblers cannot emit DW_LNS_advance_pc or
347 // special opcodes because they cannot encode LEB128 numbers or
348 // judge when the computation of a special opcode overflows and
349 // requires the use of DW_LNS_advance_pc. Such assemblers, however,
350 // can use DW_LNS_fixed_advance_pc instead, sacrificing compression.
351 state.Address += debug_line_data.getU16(offset_ptr);
352 break;
353
354 case DW_LNS_set_prologue_end:
355 // Takes no arguments. Set the prologue_end register of the
356 // state machine to true
357 state.PrologueEnd = true;
358 break;
359
360 case DW_LNS_set_epilogue_begin:
361 // Takes no arguments. Set the basic_block register of the
362 // state machine to true
363 state.EpilogueBegin = true;
364 break;
365
366 case DW_LNS_set_isa:
367 // Takes a single unsigned LEB128 operand and stores it in the
368 // column register of the state machine.
369 state.Isa = debug_line_data.getULEB128(offset_ptr);
370 break;
371
372 default:
373 // Handle any unknown standard opcodes here. We know the lengths
374 // of such opcodes because they are specified in the prologue
375 // as a multiple of LEB128 operands for each opcode.
376 {
Benjamin Kramer068d9a52011-09-15 03:20:04 +0000377 assert(opcode - 1U < prologue->StandardOpcodeLengths.size());
Benjamin Kramerb848e972011-09-15 02:12:05 +0000378 uint8_t opcode_length = prologue->StandardOpcodeLengths[opcode - 1];
379 for (uint8_t i=0; i<opcode_length; ++i)
380 debug_line_data.getULEB128(offset_ptr);
381 }
382 break;
383 }
384 } else {
385 // Special Opcodes
386
387 // A special opcode value is chosen based on the amount that needs
388 // to be added to the line and address registers. The maximum line
389 // increment for a special opcode is the value of the line_base
390 // field in the header, plus the value of the line_range field,
391 // minus 1 (line base + line range - 1). If the desired line
392 // increment is greater than the maximum line increment, a standard
393 // opcode must be used instead of a special opcode. The “address
394 // advance” is calculated by dividing the desired address increment
395 // by the minimum_instruction_length field from the header. The
396 // special opcode is then calculated using the following formula:
397 //
398 // opcode = (desired line increment - line_base) +
399 // (line_range * address advance) + opcode_base
400 //
401 // If the resulting opcode is greater than 255, a standard opcode
402 // must be used instead.
403 //
404 // To decode a special opcode, subtract the opcode_base from the
405 // opcode itself to give the adjusted opcode. The amount to
406 // increment the address register is the result of the adjusted
407 // opcode divided by the line_range multiplied by the
408 // minimum_instruction_length field from the header. That is:
409 //
410 // address increment = (adjusted opcode / line_range) *
411 // minimum_instruction_length
412 //
413 // The amount to increment the line register is the line_base plus
414 // the result of the adjusted opcode modulo the line_range. That is:
415 //
416 // line increment = line_base + (adjusted opcode % line_range)
417
418 uint8_t adjust_opcode = opcode - prologue->OpcodeBase;
419 uint64_t addr_offset = (adjust_opcode / prologue->LineRange) *
420 prologue->MinInstLength;
421 int32_t line_offset = prologue->LineBase +
422 (adjust_opcode % prologue->LineRange);
423 state.Line += line_offset;
424 state.Address += addr_offset;
425 state.appendRowToMatrix(*offset_ptr);
426 }
427 }
428
429 state.finalize(*offset_ptr);
430
431 return end_offset;
432}
433
434static bool findMatchingAddress(const DWARFDebugLine::Row& row1,
435 const DWARFDebugLine::Row& row2) {
436 return row1.Address < row2.Address;
437}
438
439uint32_t
440DWARFDebugLine::LineTable::lookupAddress(uint64_t address,
441 uint64_t cu_high_pc) const {
442 uint32_t index = UINT32_MAX;
443 if (!Rows.empty()) {
444 // Use the lower_bound algorithm to perform a binary search since we know
445 // that our line table data is ordered by address.
446 DWARFDebugLine::Row row;
447 row.Address = address;
448 typedef std::vector<Row>::const_iterator iterator;
449 iterator begin_pos = Rows.begin();
450 iterator end_pos = Rows.end();
451 iterator pos = std::lower_bound(begin_pos, end_pos, row,
452 findMatchingAddress);
453 if (pos == end_pos) {
454 if (address < cu_high_pc)
455 return Rows.size()-1;
456 } else {
457 // Rely on fact that we are using a std::vector and we can do
458 // pointer arithmetic to find the row index (which will be one less
459 // that what we found since it will find the first position after
460 // the current address) since std::vector iterators are just
461 // pointers to the container type.
462 index = pos - begin_pos;
463 if (pos->Address > address) {
464 if (index > 0)
465 --index;
466 else
467 index = UINT32_MAX;
468 }
469 }
470 }
471 return index; // Failed to find address.
472}