1 //===-- DumpDataExtractor.cpp -----------------------------------*- C++ -*-===//
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 "lldb/Core/DumpDataExtractor.h"
11
12 #include "lldb/lldb-defines.h"
13 #include "lldb/lldb-forward.h"
14
15 #include "lldb/Core/Address.h"
16 #include "lldb/Core/Disassembler.h"
17 #include "lldb/Core/ModuleList.h"
18 #include "lldb/Symbol/ClangASTContext.h"
19 #include "lldb/Target/ExecutionContext.h"
20 #include "lldb/Target/ExecutionContextScope.h"
21 #include "lldb/Target/SectionLoadList.h"
22 #include "lldb/Target/Target.h"
23 #include "lldb/Utility/DataExtractor.h"
24 #include "lldb/Utility/Stream.h"
25
26 #include "clang/AST/ASTContext.h"
27 #include "clang/AST/CanonicalType.h"
28
29 #include "llvm/ADT/APFloat.h"
30 #include "llvm/ADT/APInt.h"
31 #include "llvm/ADT/ArrayRef.h"
32 #include "llvm/ADT/SmallVector.h"
33
34 #include <limits>
35 #include <memory>
36 #include <string>
37
38 #include <assert.h>
39 #include <ctype.h>
40 #include <inttypes.h>
41 #include <math.h>
42
43 #include <bitset>
44 #include <sstream>
45
46 using namespace lldb_private;
47 using namespace lldb;
48
49 #define NON_PRINTABLE_CHAR '.'
50
half2float(uint16_t half)51 static float half2float(uint16_t half) {
52 union {
53 float f;
54 uint32_t u;
55 } u;
56 int32_t v = (int16_t)half;
57
58 if (0 == (v & 0x7c00)) {
59 u.u = v & 0x80007FFFU;
60 return u.f * ldexpf(1, 125);
61 }
62
63 v <<= 13;
64 u.u = v | 0x70000000U;
65 return u.f * ldexpf(1, -112);
66 }
67
GetAPInt(const DataExtractor & data,lldb::offset_t * offset_ptr,lldb::offset_t byte_size,llvm::APInt & result)68 static bool GetAPInt(const DataExtractor &data, lldb::offset_t *offset_ptr,
69 lldb::offset_t byte_size, llvm::APInt &result) {
70 llvm::SmallVector<uint64_t, 2> uint64_array;
71 lldb::offset_t bytes_left = byte_size;
72 uint64_t u64;
73 const lldb::ByteOrder byte_order = data.GetByteOrder();
74 if (byte_order == lldb::eByteOrderLittle) {
75 while (bytes_left > 0) {
76 if (bytes_left >= 8) {
77 u64 = data.GetU64(offset_ptr);
78 bytes_left -= 8;
79 } else {
80 u64 = data.GetMaxU64(offset_ptr, (uint32_t)bytes_left);
81 bytes_left = 0;
82 }
83 uint64_array.push_back(u64);
84 }
85 result = llvm::APInt(byte_size * 8, llvm::ArrayRef<uint64_t>(uint64_array));
86 return true;
87 } else if (byte_order == lldb::eByteOrderBig) {
88 lldb::offset_t be_offset = *offset_ptr + byte_size;
89 lldb::offset_t temp_offset;
90 while (bytes_left > 0) {
91 if (bytes_left >= 8) {
92 be_offset -= 8;
93 temp_offset = be_offset;
94 u64 = data.GetU64(&temp_offset);
95 bytes_left -= 8;
96 } else {
97 be_offset -= bytes_left;
98 temp_offset = be_offset;
99 u64 = data.GetMaxU64(&temp_offset, (uint32_t)bytes_left);
100 bytes_left = 0;
101 }
102 uint64_array.push_back(u64);
103 }
104 *offset_ptr += byte_size;
105 result = llvm::APInt(byte_size * 8, llvm::ArrayRef<uint64_t>(uint64_array));
106 return true;
107 }
108 return false;
109 }
110
DumpAPInt(Stream * s,const DataExtractor & data,lldb::offset_t offset,lldb::offset_t byte_size,bool is_signed,unsigned radix)111 static lldb::offset_t DumpAPInt(Stream *s, const DataExtractor &data,
112 lldb::offset_t offset, lldb::offset_t byte_size,
113 bool is_signed, unsigned radix) {
114 llvm::APInt apint;
115 if (GetAPInt(data, &offset, byte_size, apint)) {
116 std::string apint_str(apint.toString(radix, is_signed));
117 switch (radix) {
118 case 2:
119 s->Write("0b", 2);
120 break;
121 case 8:
122 s->Write("0", 1);
123 break;
124 case 10:
125 break;
126 }
127 s->Write(apint_str.c_str(), apint_str.size());
128 }
129 return offset;
130 }
131
DumpDataExtractor(const DataExtractor & DE,Stream * s,offset_t start_offset,lldb::Format item_format,size_t item_byte_size,size_t item_count,size_t num_per_line,uint64_t base_addr,uint32_t item_bit_size,uint32_t item_bit_offset,ExecutionContextScope * exe_scope)132 lldb::offset_t lldb_private::DumpDataExtractor(
133 const DataExtractor &DE, Stream *s, offset_t start_offset,
134 lldb::Format item_format, size_t item_byte_size, size_t item_count,
135 size_t num_per_line, uint64_t base_addr,
136 uint32_t item_bit_size, // If zero, this is not a bitfield value, if
137 // non-zero, the value is a bitfield
138 uint32_t item_bit_offset, // If "item_bit_size" is non-zero, this is the
139 // shift amount to apply to a bitfield
140 ExecutionContextScope *exe_scope) {
141 if (s == nullptr)
142 return start_offset;
143
144 if (item_format == eFormatPointer) {
145 if (item_byte_size != 4 && item_byte_size != 8)
146 item_byte_size = s->GetAddressByteSize();
147 }
148
149 offset_t offset = start_offset;
150
151 if (item_format == eFormatInstruction) {
152 TargetSP target_sp;
153 if (exe_scope)
154 target_sp = exe_scope->CalculateTarget();
155 if (target_sp) {
156 DisassemblerSP disassembler_sp(Disassembler::FindPlugin(
157 target_sp->GetArchitecture(),
158 target_sp->GetDisassemblyFlavor(), nullptr));
159 if (disassembler_sp) {
160 lldb::addr_t addr = base_addr + start_offset;
161 lldb_private::Address so_addr;
162 bool data_from_file = true;
163 if (target_sp->GetSectionLoadList().ResolveLoadAddress(addr, so_addr)) {
164 data_from_file = false;
165 } else {
166 if (target_sp->GetSectionLoadList().IsEmpty() ||
167 !target_sp->GetImages().ResolveFileAddress(addr, so_addr))
168 so_addr.SetRawAddress(addr);
169 }
170
171 size_t bytes_consumed = disassembler_sp->DecodeInstructions(
172 so_addr, DE, start_offset, item_count, false, data_from_file);
173
174 if (bytes_consumed) {
175 offset += bytes_consumed;
176 const bool show_address = base_addr != LLDB_INVALID_ADDRESS;
177 const bool show_bytes = true;
178 ExecutionContext exe_ctx;
179 exe_scope->CalculateExecutionContext(exe_ctx);
180 disassembler_sp->GetInstructionList().Dump(s, show_address,
181 show_bytes, &exe_ctx);
182 }
183 }
184 } else
185 s->Printf("invalid target");
186
187 return offset;
188 }
189
190 if ((item_format == eFormatOSType || item_format == eFormatAddressInfo) &&
191 item_byte_size > 8)
192 item_format = eFormatHex;
193
194 lldb::offset_t line_start_offset = start_offset;
195 for (uint32_t count = 0; DE.ValidOffset(offset) && count < item_count;
196 ++count) {
197 if ((count % num_per_line) == 0) {
198 if (count > 0) {
199 if (item_format == eFormatBytesWithASCII &&
200 offset > line_start_offset) {
201 s->Printf("%*s",
202 static_cast<int>(
203 (num_per_line - (offset - line_start_offset)) * 3 + 2),
204 "");
205 DumpDataExtractor(DE, s, line_start_offset, eFormatCharPrintable, 1,
206 offset - line_start_offset, SIZE_MAX,
207 LLDB_INVALID_ADDRESS, 0, 0);
208 }
209 s->EOL();
210 }
211 if (base_addr != LLDB_INVALID_ADDRESS)
212 s->Printf("0x%8.8" PRIx64 ": ",
213 (uint64_t)(base_addr +
214 (offset - start_offset) / DE.getTargetByteSize()));
215
216 line_start_offset = offset;
217 } else if (item_format != eFormatChar &&
218 item_format != eFormatCharPrintable &&
219 item_format != eFormatCharArray && count > 0) {
220 s->PutChar(' ');
221 }
222
223 switch (item_format) {
224 case eFormatBoolean:
225 if (item_byte_size <= 8)
226 s->Printf("%s", DE.GetMaxU64Bitfield(&offset, item_byte_size,
227 item_bit_size, item_bit_offset)
228 ? "true"
229 : "false");
230 else {
231 s->Printf("error: unsupported byte size (%" PRIu64
232 ") for boolean format",
233 (uint64_t)item_byte_size);
234 return offset;
235 }
236 break;
237
238 case eFormatBinary:
239 if (item_byte_size <= 8) {
240 uint64_t uval64 = DE.GetMaxU64Bitfield(&offset, item_byte_size,
241 item_bit_size, item_bit_offset);
242 // Avoid std::bitset<64>::to_string() since it is missing in earlier
243 // C++ libraries
244 std::string binary_value(64, '0');
245 std::bitset<64> bits(uval64);
246 for (uint32_t i = 0; i < 64; ++i)
247 if (bits[i])
248 binary_value[64 - 1 - i] = '1';
249 if (item_bit_size > 0)
250 s->Printf("0b%s", binary_value.c_str() + 64 - item_bit_size);
251 else if (item_byte_size > 0 && item_byte_size <= 8)
252 s->Printf("0b%s", binary_value.c_str() + 64 - item_byte_size * 8);
253 } else {
254 const bool is_signed = false;
255 const unsigned radix = 2;
256 offset = DumpAPInt(s, DE, offset, item_byte_size, is_signed, radix);
257 }
258 break;
259
260 case eFormatBytes:
261 case eFormatBytesWithASCII:
262 for (uint32_t i = 0; i < item_byte_size; ++i) {
263 s->Printf("%2.2x", DE.GetU8(&offset));
264 }
265
266 // Put an extra space between the groups of bytes if more than one is
267 // being dumped in a group (item_byte_size is more than 1).
268 if (item_byte_size > 1)
269 s->PutChar(' ');
270 break;
271
272 case eFormatChar:
273 case eFormatCharPrintable:
274 case eFormatCharArray: {
275 // Reject invalid item_byte_size.
276 if (item_byte_size > 8) {
277 s->Printf("error: unsupported byte size (%" PRIu64 ") for char format",
278 (uint64_t)item_byte_size);
279 return offset;
280 }
281
282 // If we are only printing one character surround it with single quotes
283 if (item_count == 1 && item_format == eFormatChar)
284 s->PutChar('\'');
285
286 const uint64_t ch = DE.GetMaxU64Bitfield(&offset, item_byte_size,
287 item_bit_size, item_bit_offset);
288 if (isprint(ch))
289 s->Printf("%c", (char)ch);
290 else if (item_format != eFormatCharPrintable) {
291 switch (ch) {
292 case '\033':
293 s->Printf("\\e");
294 break;
295 case '\a':
296 s->Printf("\\a");
297 break;
298 case '\b':
299 s->Printf("\\b");
300 break;
301 case '\f':
302 s->Printf("\\f");
303 break;
304 case '\n':
305 s->Printf("\\n");
306 break;
307 case '\r':
308 s->Printf("\\r");
309 break;
310 case '\t':
311 s->Printf("\\t");
312 break;
313 case '\v':
314 s->Printf("\\v");
315 break;
316 case '\0':
317 s->Printf("\\0");
318 break;
319 default:
320 if (item_byte_size == 1)
321 s->Printf("\\x%2.2x", (uint8_t)ch);
322 else
323 s->Printf("%" PRIu64, ch);
324 break;
325 }
326 } else {
327 s->PutChar(NON_PRINTABLE_CHAR);
328 }
329
330 // If we are only printing one character surround it with single quotes
331 if (item_count == 1 && item_format == eFormatChar)
332 s->PutChar('\'');
333 } break;
334
335 case eFormatEnum: // Print enum value as a signed integer when we don't get
336 // the enum type
337 case eFormatDecimal:
338 if (item_byte_size <= 8)
339 s->Printf("%" PRId64,
340 DE.GetMaxS64Bitfield(&offset, item_byte_size, item_bit_size,
341 item_bit_offset));
342 else {
343 const bool is_signed = true;
344 const unsigned radix = 10;
345 offset = DumpAPInt(s, DE, offset, item_byte_size, is_signed, radix);
346 }
347 break;
348
349 case eFormatUnsigned:
350 if (item_byte_size <= 8)
351 s->Printf("%" PRIu64,
352 DE.GetMaxU64Bitfield(&offset, item_byte_size, item_bit_size,
353 item_bit_offset));
354 else {
355 const bool is_signed = false;
356 const unsigned radix = 10;
357 offset = DumpAPInt(s, DE, offset, item_byte_size, is_signed, radix);
358 }
359 break;
360
361 case eFormatOctal:
362 if (item_byte_size <= 8)
363 s->Printf("0%" PRIo64,
364 DE.GetMaxS64Bitfield(&offset, item_byte_size, item_bit_size,
365 item_bit_offset));
366 else {
367 const bool is_signed = false;
368 const unsigned radix = 8;
369 offset = DumpAPInt(s, DE, offset, item_byte_size, is_signed, radix);
370 }
371 break;
372
373 case eFormatOSType: {
374 uint64_t uval64 = DE.GetMaxU64Bitfield(&offset, item_byte_size,
375 item_bit_size, item_bit_offset);
376 s->PutChar('\'');
377 for (uint32_t i = 0; i < item_byte_size; ++i) {
378 uint8_t ch = (uint8_t)(uval64 >> ((item_byte_size - i - 1) * 8));
379 if (isprint(ch))
380 s->Printf("%c", ch);
381 else {
382 switch (ch) {
383 case '\033':
384 s->Printf("\\e");
385 break;
386 case '\a':
387 s->Printf("\\a");
388 break;
389 case '\b':
390 s->Printf("\\b");
391 break;
392 case '\f':
393 s->Printf("\\f");
394 break;
395 case '\n':
396 s->Printf("\\n");
397 break;
398 case '\r':
399 s->Printf("\\r");
400 break;
401 case '\t':
402 s->Printf("\\t");
403 break;
404 case '\v':
405 s->Printf("\\v");
406 break;
407 case '\0':
408 s->Printf("\\0");
409 break;
410 default:
411 s->Printf("\\x%2.2x", ch);
412 break;
413 }
414 }
415 }
416 s->PutChar('\'');
417 } break;
418
419 case eFormatCString: {
420 const char *cstr = DE.GetCStr(&offset);
421
422 if (!cstr) {
423 s->Printf("NULL");
424 offset = LLDB_INVALID_OFFSET;
425 } else {
426 s->PutChar('\"');
427
428 while (const char c = *cstr) {
429 if (isprint(c)) {
430 s->PutChar(c);
431 } else {
432 switch (c) {
433 case '\033':
434 s->Printf("\\e");
435 break;
436 case '\a':
437 s->Printf("\\a");
438 break;
439 case '\b':
440 s->Printf("\\b");
441 break;
442 case '\f':
443 s->Printf("\\f");
444 break;
445 case '\n':
446 s->Printf("\\n");
447 break;
448 case '\r':
449 s->Printf("\\r");
450 break;
451 case '\t':
452 s->Printf("\\t");
453 break;
454 case '\v':
455 s->Printf("\\v");
456 break;
457 default:
458 s->Printf("\\x%2.2x", c);
459 break;
460 }
461 }
462
463 ++cstr;
464 }
465
466 s->PutChar('\"');
467 }
468 } break;
469
470 case eFormatPointer:
471 s->Address(DE.GetMaxU64Bitfield(&offset, item_byte_size, item_bit_size,
472 item_bit_offset),
473 sizeof(addr_t));
474 break;
475
476 case eFormatComplexInteger: {
477 size_t complex_int_byte_size = item_byte_size / 2;
478
479 if (complex_int_byte_size > 0 && complex_int_byte_size <= 8) {
480 s->Printf("%" PRIu64,
481 DE.GetMaxU64Bitfield(&offset, complex_int_byte_size, 0, 0));
482 s->Printf(" + %" PRIu64 "i",
483 DE.GetMaxU64Bitfield(&offset, complex_int_byte_size, 0, 0));
484 } else {
485 s->Printf("error: unsupported byte size (%" PRIu64
486 ") for complex integer format",
487 (uint64_t)item_byte_size);
488 return offset;
489 }
490 } break;
491
492 case eFormatComplex:
493 if (sizeof(float) * 2 == item_byte_size) {
494 float f32_1 = DE.GetFloat(&offset);
495 float f32_2 = DE.GetFloat(&offset);
496
497 s->Printf("%g + %gi", f32_1, f32_2);
498 break;
499 } else if (sizeof(double) * 2 == item_byte_size) {
500 double d64_1 = DE.GetDouble(&offset);
501 double d64_2 = DE.GetDouble(&offset);
502
503 s->Printf("%lg + %lgi", d64_1, d64_2);
504 break;
505 } else if (sizeof(long double) * 2 == item_byte_size) {
506 long double ld64_1 = DE.GetLongDouble(&offset);
507 long double ld64_2 = DE.GetLongDouble(&offset);
508 s->Printf("%Lg + %Lgi", ld64_1, ld64_2);
509 break;
510 } else {
511 s->Printf("error: unsupported byte size (%" PRIu64
512 ") for complex float format",
513 (uint64_t)item_byte_size);
514 return offset;
515 }
516 break;
517
518 default:
519 case eFormatDefault:
520 case eFormatHex:
521 case eFormatHexUppercase: {
522 bool wantsuppercase = (item_format == eFormatHexUppercase);
523 switch (item_byte_size) {
524 case 1:
525 case 2:
526 case 4:
527 case 8:
528 s->Printf(wantsuppercase ? "0x%*.*" PRIX64 : "0x%*.*" PRIx64,
529 (int)(2 * item_byte_size), (int)(2 * item_byte_size),
530 DE.GetMaxU64Bitfield(&offset, item_byte_size, item_bit_size,
531 item_bit_offset));
532 break;
533 default: {
534 assert(item_bit_size == 0 && item_bit_offset == 0);
535 const uint8_t *bytes =
536 (const uint8_t *)DE.GetData(&offset, item_byte_size);
537 if (bytes) {
538 s->PutCString("0x");
539 uint32_t idx;
540 if (DE.GetByteOrder() == eByteOrderBig) {
541 for (idx = 0; idx < item_byte_size; ++idx)
542 s->Printf(wantsuppercase ? "%2.2X" : "%2.2x", bytes[idx]);
543 } else {
544 for (idx = 0; idx < item_byte_size; ++idx)
545 s->Printf(wantsuppercase ? "%2.2X" : "%2.2x",
546 bytes[item_byte_size - 1 - idx]);
547 }
548 }
549 } break;
550 }
551 } break;
552
553 case eFormatFloat: {
554 TargetSP target_sp;
555 bool used_apfloat = false;
556 if (exe_scope)
557 target_sp = exe_scope->CalculateTarget();
558 if (target_sp) {
559 ClangASTContext *clang_ast = target_sp->GetScratchClangASTContext();
560 if (clang_ast) {
561 clang::ASTContext *ast = clang_ast->getASTContext();
562 if (ast) {
563 llvm::SmallVector<char, 256> sv;
564 // Show full precision when printing float values
565 const unsigned format_precision = 0;
566 const unsigned format_max_padding = 100;
567 size_t item_bit_size = item_byte_size * 8;
568
569 if (item_bit_size == ast->getTypeSize(ast->FloatTy)) {
570 llvm::APInt apint(item_bit_size,
571 DE.GetMaxU64(&offset, item_byte_size));
572 llvm::APFloat apfloat(ast->getFloatTypeSemantics(ast->FloatTy),
573 apint);
574 apfloat.toString(sv, format_precision, format_max_padding);
575 } else if (item_bit_size == ast->getTypeSize(ast->DoubleTy)) {
576 llvm::APInt apint;
577 if (GetAPInt(DE, &offset, item_byte_size, apint)) {
578 llvm::APFloat apfloat(ast->getFloatTypeSemantics(ast->DoubleTy),
579 apint);
580 apfloat.toString(sv, format_precision, format_max_padding);
581 }
582 } else if (item_bit_size == ast->getTypeSize(ast->LongDoubleTy)) {
583 const auto &semantics =
584 ast->getFloatTypeSemantics(ast->LongDoubleTy);
585
586 offset_t byte_size = item_byte_size;
587 if (&semantics == &llvm::APFloatBase::x87DoubleExtended())
588 byte_size = (llvm::APFloat::getSizeInBits(semantics) + 7) / 8;
589
590 llvm::APInt apint;
591 if (GetAPInt(DE, &offset, byte_size, apint)) {
592 llvm::APFloat apfloat(semantics, apint);
593 apfloat.toString(sv, format_precision, format_max_padding);
594 }
595 } else if (item_bit_size == ast->getTypeSize(ast->HalfTy)) {
596 llvm::APInt apint(item_bit_size, DE.GetU16(&offset));
597 llvm::APFloat apfloat(ast->getFloatTypeSemantics(ast->HalfTy),
598 apint);
599 apfloat.toString(sv, format_precision, format_max_padding);
600 }
601
602 if (!sv.empty()) {
603 s->Printf("%*.*s", (int)sv.size(), (int)sv.size(), sv.data());
604 used_apfloat = true;
605 }
606 }
607 }
608 }
609
610 if (!used_apfloat) {
611 std::ostringstream ss;
612 if (item_byte_size == sizeof(float) || item_byte_size == 2) {
613 float f;
614 if (item_byte_size == 2) {
615 uint16_t half = DE.GetU16(&offset);
616 f = half2float(half);
617 } else {
618 f = DE.GetFloat(&offset);
619 }
620 ss.precision(std::numeric_limits<float>::digits10);
621 ss << f;
622 } else if (item_byte_size == sizeof(double)) {
623 ss.precision(std::numeric_limits<double>::digits10);
624 ss << DE.GetDouble(&offset);
625 } else if (item_byte_size == sizeof(long double) ||
626 item_byte_size == 10) {
627 ss.precision(std::numeric_limits<long double>::digits10);
628 ss << DE.GetLongDouble(&offset);
629 } else {
630 s->Printf("error: unsupported byte size (%" PRIu64
631 ") for float format",
632 (uint64_t)item_byte_size);
633 return offset;
634 }
635 ss.flush();
636 s->Printf("%s", ss.str().c_str());
637 }
638 } break;
639
640 case eFormatUnicode16:
641 s->Printf("U+%4.4x", DE.GetU16(&offset));
642 break;
643
644 case eFormatUnicode32:
645 s->Printf("U+0x%8.8x", DE.GetU32(&offset));
646 break;
647
648 case eFormatAddressInfo: {
649 addr_t addr = DE.GetMaxU64Bitfield(&offset, item_byte_size, item_bit_size,
650 item_bit_offset);
651 s->Printf("0x%*.*" PRIx64, (int)(2 * item_byte_size),
652 (int)(2 * item_byte_size), addr);
653 if (exe_scope) {
654 TargetSP target_sp(exe_scope->CalculateTarget());
655 lldb_private::Address so_addr;
656 if (target_sp) {
657 if (target_sp->GetSectionLoadList().ResolveLoadAddress(addr,
658 so_addr)) {
659 s->PutChar(' ');
660 so_addr.Dump(s, exe_scope, Address::DumpStyleResolvedDescription,
661 Address::DumpStyleModuleWithFileAddress);
662 } else {
663 so_addr.SetOffset(addr);
664 so_addr.Dump(s, exe_scope,
665 Address::DumpStyleResolvedPointerDescription);
666 }
667 }
668 }
669 } break;
670
671 case eFormatHexFloat:
672 if (sizeof(float) == item_byte_size) {
673 char float_cstr[256];
674 llvm::APFloat ap_float(DE.GetFloat(&offset));
675 ap_float.convertToHexString(float_cstr, 0, false,
676 llvm::APFloat::rmNearestTiesToEven);
677 s->Printf("%s", float_cstr);
678 break;
679 } else if (sizeof(double) == item_byte_size) {
680 char float_cstr[256];
681 llvm::APFloat ap_float(DE.GetDouble(&offset));
682 ap_float.convertToHexString(float_cstr, 0, false,
683 llvm::APFloat::rmNearestTiesToEven);
684 s->Printf("%s", float_cstr);
685 break;
686 } else {
687 s->Printf("error: unsupported byte size (%" PRIu64
688 ") for hex float format",
689 (uint64_t)item_byte_size);
690 return offset;
691 }
692 break;
693
694 // please keep the single-item formats below in sync with
695 // FormatManager::GetSingleItemFormat if you fail to do so, users will
696 // start getting different outputs depending on internal implementation
697 // details they should not care about ||
698 case eFormatVectorOfChar: // ||
699 s->PutChar('{'); // \/
700 offset =
701 DumpDataExtractor(DE, s, offset, eFormatCharArray, 1, item_byte_size,
702 item_byte_size, LLDB_INVALID_ADDRESS, 0, 0);
703 s->PutChar('}');
704 break;
705
706 case eFormatVectorOfSInt8:
707 s->PutChar('{');
708 offset =
709 DumpDataExtractor(DE, s, offset, eFormatDecimal, 1, item_byte_size,
710 item_byte_size, LLDB_INVALID_ADDRESS, 0, 0);
711 s->PutChar('}');
712 break;
713
714 case eFormatVectorOfUInt8:
715 s->PutChar('{');
716 offset = DumpDataExtractor(DE, s, offset, eFormatHex, 1, item_byte_size,
717 item_byte_size, LLDB_INVALID_ADDRESS, 0, 0);
718 s->PutChar('}');
719 break;
720
721 case eFormatVectorOfSInt16:
722 s->PutChar('{');
723 offset = DumpDataExtractor(
724 DE, s, offset, eFormatDecimal, sizeof(uint16_t),
725 item_byte_size / sizeof(uint16_t), item_byte_size / sizeof(uint16_t),
726 LLDB_INVALID_ADDRESS, 0, 0);
727 s->PutChar('}');
728 break;
729
730 case eFormatVectorOfUInt16:
731 s->PutChar('{');
732 offset = DumpDataExtractor(DE, s, offset, eFormatHex, sizeof(uint16_t),
733 item_byte_size / sizeof(uint16_t),
734 item_byte_size / sizeof(uint16_t),
735 LLDB_INVALID_ADDRESS, 0, 0);
736 s->PutChar('}');
737 break;
738
739 case eFormatVectorOfSInt32:
740 s->PutChar('{');
741 offset = DumpDataExtractor(
742 DE, s, offset, eFormatDecimal, sizeof(uint32_t),
743 item_byte_size / sizeof(uint32_t), item_byte_size / sizeof(uint32_t),
744 LLDB_INVALID_ADDRESS, 0, 0);
745 s->PutChar('}');
746 break;
747
748 case eFormatVectorOfUInt32:
749 s->PutChar('{');
750 offset = DumpDataExtractor(DE, s, offset, eFormatHex, sizeof(uint32_t),
751 item_byte_size / sizeof(uint32_t),
752 item_byte_size / sizeof(uint32_t),
753 LLDB_INVALID_ADDRESS, 0, 0);
754 s->PutChar('}');
755 break;
756
757 case eFormatVectorOfSInt64:
758 s->PutChar('{');
759 offset = DumpDataExtractor(
760 DE, s, offset, eFormatDecimal, sizeof(uint64_t),
761 item_byte_size / sizeof(uint64_t), item_byte_size / sizeof(uint64_t),
762 LLDB_INVALID_ADDRESS, 0, 0);
763 s->PutChar('}');
764 break;
765
766 case eFormatVectorOfUInt64:
767 s->PutChar('{');
768 offset = DumpDataExtractor(DE, s, offset, eFormatHex, sizeof(uint64_t),
769 item_byte_size / sizeof(uint64_t),
770 item_byte_size / sizeof(uint64_t),
771 LLDB_INVALID_ADDRESS, 0, 0);
772 s->PutChar('}');
773 break;
774
775 case eFormatVectorOfFloat16:
776 s->PutChar('{');
777 offset =
778 DumpDataExtractor(DE, s, offset, eFormatFloat, 2, item_byte_size / 2,
779 item_byte_size / 2, LLDB_INVALID_ADDRESS, 0, 0);
780 s->PutChar('}');
781 break;
782
783 case eFormatVectorOfFloat32:
784 s->PutChar('{');
785 offset =
786 DumpDataExtractor(DE, s, offset, eFormatFloat, 4, item_byte_size / 4,
787 item_byte_size / 4, LLDB_INVALID_ADDRESS, 0, 0);
788 s->PutChar('}');
789 break;
790
791 case eFormatVectorOfFloat64:
792 s->PutChar('{');
793 offset =
794 DumpDataExtractor(DE, s, offset, eFormatFloat, 8, item_byte_size / 8,
795 item_byte_size / 8, LLDB_INVALID_ADDRESS, 0, 0);
796 s->PutChar('}');
797 break;
798
799 case eFormatVectorOfUInt128:
800 s->PutChar('{');
801 offset =
802 DumpDataExtractor(DE, s, offset, eFormatHex, 16, item_byte_size / 16,
803 item_byte_size / 16, LLDB_INVALID_ADDRESS, 0, 0);
804 s->PutChar('}');
805 break;
806 }
807 }
808
809 if (item_format == eFormatBytesWithASCII && offset > line_start_offset) {
810 s->Printf("%*s", static_cast<int>(
811 (num_per_line - (offset - line_start_offset)) * 3 + 2),
812 "");
813 DumpDataExtractor(DE, s, line_start_offset, eFormatCharPrintable, 1,
814 offset - line_start_offset, SIZE_MAX,
815 LLDB_INVALID_ADDRESS, 0, 0);
816 }
817 return offset; // Return the offset at which we ended up
818 }
819
DumpHexBytes(Stream * s,const void * src,size_t src_len,uint32_t bytes_per_line,lldb::addr_t base_addr)820 void lldb_private::DumpHexBytes(Stream *s, const void *src, size_t src_len,
821 uint32_t bytes_per_line,
822 lldb::addr_t base_addr) {
823 DataExtractor data(src, src_len, lldb::eByteOrderLittle, 4);
824 DumpDataExtractor(data, s,
825 0, // Offset into "src"
826 lldb::eFormatBytes, // Dump as hex bytes
827 1, // Size of each item is 1 for single bytes
828 src_len, // Number of bytes
829 bytes_per_line, // Num bytes per line
830 base_addr, // Base address
831 0, 0); // Bitfield info
832 }
833