1 //===-- StackFrame.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 // C Includes 11 // C++ Includes 12 // Other libraries and framework includes 13 // Project includes 14 #include "lldb/Target/StackFrame.h" 15 #include "lldb/Core/Debugger.h" 16 #include "lldb/Core/Disassembler.h" 17 #include "lldb/Core/FormatEntity.h" 18 #include "lldb/Core/Mangled.h" 19 #include "lldb/Core/Module.h" 20 #include "lldb/Core/Value.h" 21 #include "lldb/Core/ValueObjectConstResult.h" 22 #include "lldb/Core/ValueObjectMemory.h" 23 #include "lldb/Core/ValueObjectVariable.h" 24 #include "lldb/Symbol/CompileUnit.h" 25 #include "lldb/Symbol/Function.h" 26 #include "lldb/Symbol/Symbol.h" 27 #include "lldb/Symbol/SymbolContextScope.h" 28 #include "lldb/Symbol/Type.h" 29 #include "lldb/Symbol/VariableList.h" 30 #include "lldb/Target/ABI.h" 31 #include "lldb/Target/ExecutionContext.h" 32 #include "lldb/Target/Process.h" 33 #include "lldb/Target/RegisterContext.h" 34 #include "lldb/Target/Target.h" 35 #include "lldb/Target/Thread.h" 36 37 using namespace lldb; 38 using namespace lldb_private; 39 40 // The first bits in the flags are reserved for the SymbolContext::Scope bits 41 // so we know if we have tried to look up information in our internal symbol 42 // context (m_sc) already. 43 #define RESOLVED_FRAME_CODE_ADDR (uint32_t(eSymbolContextEverything + 1)) 44 #define RESOLVED_FRAME_ID_SYMBOL_SCOPE (RESOLVED_FRAME_CODE_ADDR << 1) 45 #define GOT_FRAME_BASE (RESOLVED_FRAME_ID_SYMBOL_SCOPE << 1) 46 #define RESOLVED_VARIABLES (GOT_FRAME_BASE << 1) 47 #define RESOLVED_GLOBAL_VARIABLES (RESOLVED_VARIABLES << 1) 48 49 StackFrame::StackFrame(const ThreadSP &thread_sp, user_id_t frame_idx, 50 user_id_t unwind_frame_index, addr_t cfa, 51 bool cfa_is_valid, addr_t pc, uint32_t stop_id, 52 bool stop_id_is_valid, bool is_history_frame, 53 const SymbolContext *sc_ptr) 54 : m_thread_wp(thread_sp), m_frame_index(frame_idx), 55 m_concrete_frame_index(unwind_frame_index), m_reg_context_sp(), 56 m_id(pc, cfa, nullptr), m_frame_code_addr(pc), m_sc(), m_flags(), 57 m_frame_base(), m_frame_base_error(), m_cfa_is_valid(cfa_is_valid), 58 m_stop_id(stop_id), m_stop_id_is_valid(stop_id_is_valid), 59 m_is_history_frame(is_history_frame), m_variable_list_sp(), 60 m_variable_list_value_objects(), m_disassembly(), m_mutex() { 61 // If we don't have a CFA value, use the frame index for our StackID so that 62 // recursive 63 // functions properly aren't confused with one another on a history stack. 64 if (m_is_history_frame && !m_cfa_is_valid) { 65 m_id.SetCFA(m_frame_index); 66 } 67 68 if (sc_ptr != nullptr) { 69 m_sc = *sc_ptr; 70 m_flags.Set(m_sc.GetResolvedMask()); 71 } 72 } 73 74 StackFrame::StackFrame(const ThreadSP &thread_sp, user_id_t frame_idx, 75 user_id_t unwind_frame_index, 76 const RegisterContextSP ®_context_sp, addr_t cfa, 77 addr_t pc, const SymbolContext *sc_ptr) 78 : m_thread_wp(thread_sp), m_frame_index(frame_idx), 79 m_concrete_frame_index(unwind_frame_index), 80 m_reg_context_sp(reg_context_sp), m_id(pc, cfa, nullptr), 81 m_frame_code_addr(pc), m_sc(), m_flags(), m_frame_base(), 82 m_frame_base_error(), m_cfa_is_valid(true), m_stop_id(0), 83 m_stop_id_is_valid(false), m_is_history_frame(false), 84 m_variable_list_sp(), m_variable_list_value_objects(), m_disassembly(), 85 m_mutex() { 86 if (sc_ptr != nullptr) { 87 m_sc = *sc_ptr; 88 m_flags.Set(m_sc.GetResolvedMask()); 89 } 90 91 if (reg_context_sp && !m_sc.target_sp) { 92 m_sc.target_sp = reg_context_sp->CalculateTarget(); 93 if (m_sc.target_sp) 94 m_flags.Set(eSymbolContextTarget); 95 } 96 } 97 98 StackFrame::StackFrame(const ThreadSP &thread_sp, user_id_t frame_idx, 99 user_id_t unwind_frame_index, 100 const RegisterContextSP ®_context_sp, addr_t cfa, 101 const Address &pc_addr, const SymbolContext *sc_ptr) 102 : m_thread_wp(thread_sp), m_frame_index(frame_idx), 103 m_concrete_frame_index(unwind_frame_index), 104 m_reg_context_sp(reg_context_sp), 105 m_id(pc_addr.GetLoadAddress(thread_sp->CalculateTarget().get()), cfa, 106 nullptr), 107 m_frame_code_addr(pc_addr), m_sc(), m_flags(), m_frame_base(), 108 m_frame_base_error(), m_cfa_is_valid(true), m_stop_id(0), 109 m_stop_id_is_valid(false), m_is_history_frame(false), 110 m_variable_list_sp(), m_variable_list_value_objects(), m_disassembly(), 111 m_mutex() { 112 if (sc_ptr != nullptr) { 113 m_sc = *sc_ptr; 114 m_flags.Set(m_sc.GetResolvedMask()); 115 } 116 117 if (!m_sc.target_sp && reg_context_sp) { 118 m_sc.target_sp = reg_context_sp->CalculateTarget(); 119 if (m_sc.target_sp) 120 m_flags.Set(eSymbolContextTarget); 121 } 122 123 ModuleSP pc_module_sp(pc_addr.GetModule()); 124 if (!m_sc.module_sp || m_sc.module_sp != pc_module_sp) { 125 if (pc_module_sp) { 126 m_sc.module_sp = pc_module_sp; 127 m_flags.Set(eSymbolContextModule); 128 } else { 129 m_sc.module_sp.reset(); 130 } 131 } 132 } 133 134 StackFrame::~StackFrame() = default; 135 136 StackID &StackFrame::GetStackID() { 137 std::lock_guard<std::recursive_mutex> guard(m_mutex); 138 // Make sure we have resolved the StackID object's symbol context scope if 139 // we already haven't looked it up. 140 141 if (m_flags.IsClear(RESOLVED_FRAME_ID_SYMBOL_SCOPE)) { 142 if (m_id.GetSymbolContextScope()) { 143 // We already have a symbol context scope, we just don't have our 144 // flag bit set. 145 m_flags.Set(RESOLVED_FRAME_ID_SYMBOL_SCOPE); 146 } else { 147 // Calculate the frame block and use this for the stack ID symbol 148 // context scope if we have one. 149 SymbolContextScope *scope = GetFrameBlock(); 150 if (scope == nullptr) { 151 // We don't have a block, so use the symbol 152 if (m_flags.IsClear(eSymbolContextSymbol)) 153 GetSymbolContext(eSymbolContextSymbol); 154 155 // It is ok if m_sc.symbol is nullptr here 156 scope = m_sc.symbol; 157 } 158 // Set the symbol context scope (the accessor will set the 159 // RESOLVED_FRAME_ID_SYMBOL_SCOPE bit in m_flags). 160 SetSymbolContextScope(scope); 161 } 162 } 163 return m_id; 164 } 165 166 uint32_t StackFrame::GetFrameIndex() const { 167 ThreadSP thread_sp = GetThread(); 168 if (thread_sp) 169 return thread_sp->GetStackFrameList()->GetVisibleStackFrameIndex( 170 m_frame_index); 171 else 172 return m_frame_index; 173 } 174 175 void StackFrame::SetSymbolContextScope(SymbolContextScope *symbol_scope) { 176 std::lock_guard<std::recursive_mutex> guard(m_mutex); 177 m_flags.Set(RESOLVED_FRAME_ID_SYMBOL_SCOPE); 178 m_id.SetSymbolContextScope(symbol_scope); 179 } 180 181 const Address &StackFrame::GetFrameCodeAddress() { 182 std::lock_guard<std::recursive_mutex> guard(m_mutex); 183 if (m_flags.IsClear(RESOLVED_FRAME_CODE_ADDR) && 184 !m_frame_code_addr.IsSectionOffset()) { 185 m_flags.Set(RESOLVED_FRAME_CODE_ADDR); 186 187 // Resolve the PC into a temporary address because if ResolveLoadAddress 188 // fails to resolve the address, it will clear the address object... 189 ThreadSP thread_sp(GetThread()); 190 if (thread_sp) { 191 TargetSP target_sp(thread_sp->CalculateTarget()); 192 if (target_sp) { 193 if (m_frame_code_addr.SetOpcodeLoadAddress( 194 m_frame_code_addr.GetOffset(), target_sp.get(), 195 eAddressClassCode)) { 196 ModuleSP module_sp(m_frame_code_addr.GetModule()); 197 if (module_sp) { 198 m_sc.module_sp = module_sp; 199 m_flags.Set(eSymbolContextModule); 200 } 201 } 202 } 203 } 204 } 205 return m_frame_code_addr; 206 } 207 208 bool StackFrame::ChangePC(addr_t pc) { 209 std::lock_guard<std::recursive_mutex> guard(m_mutex); 210 // We can't change the pc value of a history stack frame - it is immutable. 211 if (m_is_history_frame) 212 return false; 213 m_frame_code_addr.SetRawAddress(pc); 214 m_sc.Clear(false); 215 m_flags.Reset(0); 216 ThreadSP thread_sp(GetThread()); 217 if (thread_sp) 218 thread_sp->ClearStackFrames(); 219 return true; 220 } 221 222 const char *StackFrame::Disassemble() { 223 std::lock_guard<std::recursive_mutex> guard(m_mutex); 224 if (m_disassembly.Empty()) { 225 ExecutionContext exe_ctx(shared_from_this()); 226 Target *target = exe_ctx.GetTargetPtr(); 227 if (target) { 228 const char *plugin_name = nullptr; 229 const char *flavor = nullptr; 230 Disassembler::Disassemble(target->GetDebugger(), 231 target->GetArchitecture(), plugin_name, flavor, 232 exe_ctx, 0, false, 0, 0, m_disassembly); 233 } 234 if (m_disassembly.Empty()) 235 return nullptr; 236 } 237 238 return m_disassembly.GetData(); 239 } 240 241 Block *StackFrame::GetFrameBlock() { 242 if (m_sc.block == nullptr && m_flags.IsClear(eSymbolContextBlock)) 243 GetSymbolContext(eSymbolContextBlock); 244 245 if (m_sc.block) { 246 Block *inline_block = m_sc.block->GetContainingInlinedBlock(); 247 if (inline_block) { 248 // Use the block with the inlined function info 249 // as the frame block we want this frame to have only the variables 250 // for the inlined function and its non-inlined block child blocks. 251 return inline_block; 252 } else { 253 // This block is not contained within any inlined function blocks 254 // with so we want to use the top most function block. 255 return &m_sc.function->GetBlock(false); 256 } 257 } 258 return nullptr; 259 } 260 261 //---------------------------------------------------------------------- 262 // Get the symbol context if we already haven't done so by resolving the 263 // PC address as much as possible. This way when we pass around a 264 // StackFrame object, everyone will have as much information as 265 // possible and no one will ever have to look things up manually. 266 //---------------------------------------------------------------------- 267 const SymbolContext &StackFrame::GetSymbolContext(uint32_t resolve_scope) { 268 std::lock_guard<std::recursive_mutex> guard(m_mutex); 269 // Copy our internal symbol context into "sc". 270 if ((m_flags.Get() & resolve_scope) != resolve_scope) { 271 uint32_t resolved = 0; 272 273 // If the target was requested add that: 274 if (!m_sc.target_sp) { 275 m_sc.target_sp = CalculateTarget(); 276 if (m_sc.target_sp) 277 resolved |= eSymbolContextTarget; 278 } 279 280 // Resolve our PC to section offset if we haven't already done so 281 // and if we don't have a module. The resolved address section will 282 // contain the module to which it belongs 283 if (!m_sc.module_sp && m_flags.IsClear(RESOLVED_FRAME_CODE_ADDR)) 284 GetFrameCodeAddress(); 285 286 // If this is not frame zero, then we need to subtract 1 from the PC 287 // value when doing address lookups since the PC will be on the 288 // instruction following the function call instruction... 289 290 Address lookup_addr(GetFrameCodeAddress()); 291 if (m_frame_index > 0 && lookup_addr.IsValid()) { 292 addr_t offset = lookup_addr.GetOffset(); 293 if (offset > 0) { 294 lookup_addr.SetOffset(offset - 1); 295 296 } else { 297 // lookup_addr is the start of a section. We need 298 // do the math on the actual load address and re-compute 299 // the section. We're working with a 'noreturn' function 300 // at the end of a section. 301 ThreadSP thread_sp(GetThread()); 302 if (thread_sp) { 303 TargetSP target_sp(thread_sp->CalculateTarget()); 304 if (target_sp) { 305 addr_t addr_minus_one = 306 lookup_addr.GetLoadAddress(target_sp.get()) - 1; 307 lookup_addr.SetLoadAddress(addr_minus_one, target_sp.get()); 308 } else { 309 lookup_addr.SetOffset(offset - 1); 310 } 311 } 312 } 313 } 314 315 if (m_sc.module_sp) { 316 // We have something in our stack frame symbol context, lets check 317 // if we haven't already tried to lookup one of those things. If we 318 // haven't then we will do the query. 319 320 uint32_t actual_resolve_scope = 0; 321 322 if (resolve_scope & eSymbolContextCompUnit) { 323 if (m_flags.IsClear(eSymbolContextCompUnit)) { 324 if (m_sc.comp_unit) 325 resolved |= eSymbolContextCompUnit; 326 else 327 actual_resolve_scope |= eSymbolContextCompUnit; 328 } 329 } 330 331 if (resolve_scope & eSymbolContextFunction) { 332 if (m_flags.IsClear(eSymbolContextFunction)) { 333 if (m_sc.function) 334 resolved |= eSymbolContextFunction; 335 else 336 actual_resolve_scope |= eSymbolContextFunction; 337 } 338 } 339 340 if (resolve_scope & eSymbolContextBlock) { 341 if (m_flags.IsClear(eSymbolContextBlock)) { 342 if (m_sc.block) 343 resolved |= eSymbolContextBlock; 344 else 345 actual_resolve_scope |= eSymbolContextBlock; 346 } 347 } 348 349 if (resolve_scope & eSymbolContextSymbol) { 350 if (m_flags.IsClear(eSymbolContextSymbol)) { 351 if (m_sc.symbol) 352 resolved |= eSymbolContextSymbol; 353 else 354 actual_resolve_scope |= eSymbolContextSymbol; 355 } 356 } 357 358 if (resolve_scope & eSymbolContextLineEntry) { 359 if (m_flags.IsClear(eSymbolContextLineEntry)) { 360 if (m_sc.line_entry.IsValid()) 361 resolved |= eSymbolContextLineEntry; 362 else 363 actual_resolve_scope |= eSymbolContextLineEntry; 364 } 365 } 366 367 if (actual_resolve_scope) { 368 // We might be resolving less information than what is already 369 // in our current symbol context so resolve into a temporary 370 // symbol context "sc" so we don't clear out data we have 371 // already found in "m_sc" 372 SymbolContext sc; 373 // Set flags that indicate what we have tried to resolve 374 resolved |= m_sc.module_sp->ResolveSymbolContextForAddress( 375 lookup_addr, actual_resolve_scope, sc); 376 // Only replace what we didn't already have as we may have 377 // information for an inlined function scope that won't match 378 // what a standard lookup by address would match 379 if ((resolved & eSymbolContextCompUnit) && m_sc.comp_unit == nullptr) 380 m_sc.comp_unit = sc.comp_unit; 381 if ((resolved & eSymbolContextFunction) && m_sc.function == nullptr) 382 m_sc.function = sc.function; 383 if ((resolved & eSymbolContextBlock) && m_sc.block == nullptr) 384 m_sc.block = sc.block; 385 if ((resolved & eSymbolContextSymbol) && m_sc.symbol == nullptr) 386 m_sc.symbol = sc.symbol; 387 if ((resolved & eSymbolContextLineEntry) && 388 !m_sc.line_entry.IsValid()) { 389 m_sc.line_entry = sc.line_entry; 390 m_sc.line_entry.ApplyFileMappings(m_sc.target_sp); 391 } 392 } 393 } else { 394 // If we don't have a module, then we can't have the compile unit, 395 // function, block, line entry or symbol, so we can safely call 396 // ResolveSymbolContextForAddress with our symbol context member m_sc. 397 if (m_sc.target_sp) { 398 resolved |= m_sc.target_sp->GetImages().ResolveSymbolContextForAddress( 399 lookup_addr, resolve_scope, m_sc); 400 } 401 } 402 403 // Update our internal flags so we remember what we have tried to locate so 404 // we don't have to keep trying when more calls to this function are made. 405 // We might have dug up more information that was requested (for example 406 // if we were asked to only get the block, we will have gotten the 407 // compile unit, and function) so set any additional bits that we resolved 408 m_flags.Set(resolve_scope | resolved); 409 } 410 411 // Return the symbol context with everything that was possible to resolve 412 // resolved. 413 return m_sc; 414 } 415 416 VariableList *StackFrame::GetVariableList(bool get_file_globals) { 417 std::lock_guard<std::recursive_mutex> guard(m_mutex); 418 if (m_flags.IsClear(RESOLVED_VARIABLES)) { 419 m_flags.Set(RESOLVED_VARIABLES); 420 421 Block *frame_block = GetFrameBlock(); 422 423 if (frame_block) { 424 const bool get_child_variables = true; 425 const bool can_create = true; 426 const bool stop_if_child_block_is_inlined_function = true; 427 m_variable_list_sp.reset(new VariableList()); 428 frame_block->AppendBlockVariables(can_create, get_child_variables, 429 stop_if_child_block_is_inlined_function, 430 [](Variable *v) { return true; }, 431 m_variable_list_sp.get()); 432 } 433 } 434 435 if (m_flags.IsClear(RESOLVED_GLOBAL_VARIABLES) && get_file_globals) { 436 m_flags.Set(RESOLVED_GLOBAL_VARIABLES); 437 438 if (m_flags.IsClear(eSymbolContextCompUnit)) 439 GetSymbolContext(eSymbolContextCompUnit); 440 441 if (m_sc.comp_unit) { 442 VariableListSP global_variable_list_sp( 443 m_sc.comp_unit->GetVariableList(true)); 444 if (m_variable_list_sp) 445 m_variable_list_sp->AddVariables(global_variable_list_sp.get()); 446 else 447 m_variable_list_sp = global_variable_list_sp; 448 } 449 } 450 451 return m_variable_list_sp.get(); 452 } 453 454 VariableListSP 455 StackFrame::GetInScopeVariableList(bool get_file_globals, 456 bool must_have_valid_location) { 457 std::lock_guard<std::recursive_mutex> guard(m_mutex); 458 // We can't fetch variable information for a history stack frame. 459 if (m_is_history_frame) 460 return VariableListSP(); 461 462 VariableListSP var_list_sp(new VariableList); 463 GetSymbolContext(eSymbolContextCompUnit | eSymbolContextBlock); 464 465 if (m_sc.block) { 466 const bool can_create = true; 467 const bool get_parent_variables = true; 468 const bool stop_if_block_is_inlined_function = true; 469 m_sc.block->AppendVariables( 470 can_create, get_parent_variables, stop_if_block_is_inlined_function, 471 [this, must_have_valid_location](Variable *v) { 472 return v->IsInScope(this) && (!must_have_valid_location || 473 v->LocationIsValidForFrame(this)); 474 }, 475 var_list_sp.get()); 476 } 477 478 if (m_sc.comp_unit && get_file_globals) { 479 VariableListSP global_variable_list_sp( 480 m_sc.comp_unit->GetVariableList(true)); 481 if (global_variable_list_sp) 482 var_list_sp->AddVariables(global_variable_list_sp.get()); 483 } 484 485 return var_list_sp; 486 } 487 488 ValueObjectSP StackFrame::GetValueForVariableExpressionPath( 489 llvm::StringRef var_expr, DynamicValueType use_dynamic, uint32_t options, 490 VariableSP &var_sp, Error &error) { 491 llvm::StringRef original_var_expr = var_expr; 492 // We can't fetch variable information for a history stack frame. 493 if (m_is_history_frame) 494 return ValueObjectSP(); 495 496 if (var_expr.empty()) { 497 error.SetErrorStringWithFormat("invalid variable path '%s'", 498 var_expr.str().c_str()); 499 return ValueObjectSP(); 500 } 501 502 const bool check_ptr_vs_member = 503 (options & eExpressionPathOptionCheckPtrVsMember) != 0; 504 const bool no_fragile_ivar = 505 (options & eExpressionPathOptionsNoFragileObjcIvar) != 0; 506 const bool no_synth_child = 507 (options & eExpressionPathOptionsNoSyntheticChildren) != 0; 508 // const bool no_synth_array = (options & 509 // eExpressionPathOptionsNoSyntheticArrayRange) != 0; 510 error.Clear(); 511 bool deref = false; 512 bool address_of = false; 513 ValueObjectSP valobj_sp; 514 const bool get_file_globals = true; 515 // When looking up a variable for an expression, we need only consider the 516 // variables that are in scope. 517 VariableListSP var_list_sp(GetInScopeVariableList(get_file_globals)); 518 VariableList *variable_list = var_list_sp.get(); 519 520 if (!variable_list) 521 return ValueObjectSP(); 522 523 // If first character is a '*', then show pointer contents 524 std::string var_expr_storage; 525 if (var_expr[0] == '*') { 526 deref = true; 527 var_expr = var_expr.drop_front(); // Skip the '*' 528 } else if (var_expr[0] == '&') { 529 address_of = true; 530 var_expr = var_expr.drop_front(); // Skip the '&' 531 } 532 533 size_t separator_idx = var_expr.find_first_of(".-[=+~|&^%#@!/?,<>{}"); 534 StreamString var_expr_path_strm; 535 536 ConstString name_const_string(var_expr.substr(0, separator_idx)); 537 538 var_sp = variable_list->FindVariable(name_const_string, false); 539 540 bool synthetically_added_instance_object = false; 541 542 if (var_sp) { 543 var_expr = var_expr.drop_front(name_const_string.GetLength()); 544 } 545 546 if (!var_sp && (options & eExpressionPathOptionsAllowDirectIVarAccess)) { 547 // Check for direct ivars access which helps us with implicit 548 // access to ivars with the "this->" or "self->" 549 GetSymbolContext(eSymbolContextFunction | eSymbolContextBlock); 550 lldb::LanguageType method_language = eLanguageTypeUnknown; 551 bool is_instance_method = false; 552 ConstString method_object_name; 553 if (m_sc.GetFunctionMethodInfo(method_language, is_instance_method, 554 method_object_name)) { 555 if (is_instance_method && method_object_name) { 556 var_sp = variable_list->FindVariable(method_object_name); 557 if (var_sp) { 558 separator_idx = 0; 559 var_expr_storage = "->"; 560 var_expr_storage += var_expr; 561 var_expr = var_expr_storage; 562 synthetically_added_instance_object = true; 563 } 564 } 565 } 566 } 567 568 if (!var_sp && (options & eExpressionPathOptionsInspectAnonymousUnions)) { 569 // Check if any anonymous unions are there which contain a variable with 570 // the name we need 571 for (size_t i = 0; i < variable_list->GetSize(); i++) { 572 VariableSP variable_sp = variable_list->GetVariableAtIndex(i); 573 if (!variable_sp) 574 continue; 575 if (!variable_sp->GetName().IsEmpty()) 576 continue; 577 578 Type *var_type = variable_sp->GetType(); 579 if (!var_type) 580 continue; 581 582 if (!var_type->GetForwardCompilerType().IsAnonymousType()) 583 continue; 584 valobj_sp = GetValueObjectForFrameVariable(variable_sp, use_dynamic); 585 if (!valobj_sp) 586 return valobj_sp; 587 valobj_sp = valobj_sp->GetChildMemberWithName(name_const_string, true); 588 if (valobj_sp) 589 break; 590 } 591 } 592 593 if (var_sp && !valobj_sp) { 594 valobj_sp = GetValueObjectForFrameVariable(var_sp, use_dynamic); 595 if (!valobj_sp) 596 return valobj_sp; 597 } 598 if (!valobj_sp) { 599 error.SetErrorStringWithFormat("no variable named '%s' found in this frame", 600 name_const_string.GetCString()); 601 return ValueObjectSP(); 602 } 603 604 // We are dumping at least one child 605 while (separator_idx != std::string::npos) { 606 // Calculate the next separator index ahead of time 607 ValueObjectSP child_valobj_sp; 608 const char separator_type = var_expr[0]; 609 bool expr_is_ptr = false; 610 switch (separator_type) { 611 case '-': 612 expr_is_ptr = true; 613 if (var_expr.size() >= 2 && var_expr[1] != '>') 614 return ValueObjectSP(); 615 616 if (no_fragile_ivar) { 617 // Make sure we aren't trying to deref an objective 618 // C ivar if this is not allowed 619 const uint32_t pointer_type_flags = 620 valobj_sp->GetCompilerType().GetTypeInfo(nullptr); 621 if ((pointer_type_flags & eTypeIsObjC) && 622 (pointer_type_flags & eTypeIsPointer)) { 623 // This was an objective C object pointer and 624 // it was requested we skip any fragile ivars 625 // so return nothing here 626 return ValueObjectSP(); 627 } 628 } 629 630 // If we have a non pointer type with a sythetic value then lets check if 631 // we have an sythetic dereference specified. 632 if (!valobj_sp->IsPointerType() && valobj_sp->HasSyntheticValue()) { 633 Error deref_error; 634 if (valobj_sp->GetCompilerType().IsReferenceType()) { 635 valobj_sp = valobj_sp->GetSyntheticValue()->Dereference(deref_error); 636 if (error.Fail()) { 637 error.SetErrorStringWithFormatv( 638 "Failed to dereference reference type: %s", deref_error); 639 return ValueObjectSP(); 640 } 641 } 642 643 valobj_sp = valobj_sp->Dereference(deref_error); 644 if (error.Fail()) { 645 error.SetErrorStringWithFormatv( 646 "Failed to dereference sythetic value: %s", deref_error); 647 return ValueObjectSP(); 648 } 649 expr_is_ptr = false; 650 } 651 652 var_expr = var_expr.drop_front(); // Remove the '-' 653 LLVM_FALLTHROUGH; 654 case '.': { 655 var_expr = var_expr.drop_front(); // Remove the '.' or '>' 656 separator_idx = var_expr.find_first_of(".-["); 657 ConstString child_name(var_expr.substr(0, var_expr.find_first_of(".-["))); 658 659 if (check_ptr_vs_member) { 660 // We either have a pointer type and need to verify 661 // valobj_sp is a pointer, or we have a member of a 662 // class/union/struct being accessed with the . syntax 663 // and need to verify we don't have a pointer. 664 const bool actual_is_ptr = valobj_sp->IsPointerType(); 665 666 if (actual_is_ptr != expr_is_ptr) { 667 // Incorrect use of "." with a pointer, or "->" with 668 // a class/union/struct instance or reference. 669 valobj_sp->GetExpressionPath(var_expr_path_strm, false); 670 if (actual_is_ptr) 671 error.SetErrorStringWithFormat( 672 "\"%s\" is a pointer and . was used to attempt to access " 673 "\"%s\". Did you mean \"%s->%s\"?", 674 var_expr_path_strm.GetData(), child_name.GetCString(), 675 var_expr_path_strm.GetData(), var_expr.str().c_str()); 676 else 677 error.SetErrorStringWithFormat( 678 "\"%s\" is not a pointer and -> was used to attempt to " 679 "access \"%s\". Did you mean \"%s.%s\"?", 680 var_expr_path_strm.GetData(), child_name.GetCString(), 681 var_expr_path_strm.GetData(), var_expr.str().c_str()); 682 return ValueObjectSP(); 683 } 684 } 685 child_valobj_sp = valobj_sp->GetChildMemberWithName(child_name, true); 686 if (!child_valobj_sp) { 687 if (!no_synth_child) { 688 child_valobj_sp = valobj_sp->GetSyntheticValue(); 689 if (child_valobj_sp) 690 child_valobj_sp = 691 child_valobj_sp->GetChildMemberWithName(child_name, true); 692 } 693 694 if (no_synth_child || !child_valobj_sp) { 695 // No child member with name "child_name" 696 if (synthetically_added_instance_object) { 697 // We added a "this->" or "self->" to the beginning of the 698 // expression 699 // and this is the first pointer ivar access, so just return 700 // the normal 701 // error 702 error.SetErrorStringWithFormat( 703 "no variable or instance variable named '%s' found in " 704 "this frame", 705 name_const_string.GetCString()); 706 } else { 707 valobj_sp->GetExpressionPath(var_expr_path_strm, false); 708 if (child_name) { 709 error.SetErrorStringWithFormat( 710 "\"%s\" is not a member of \"(%s) %s\"", 711 child_name.GetCString(), 712 valobj_sp->GetTypeName().AsCString("<invalid type>"), 713 var_expr_path_strm.GetData()); 714 } else { 715 error.SetErrorStringWithFormat( 716 "incomplete expression path after \"%s\" in \"%s\"", 717 var_expr_path_strm.GetData(), 718 original_var_expr.str().c_str()); 719 } 720 } 721 return ValueObjectSP(); 722 } 723 } 724 synthetically_added_instance_object = false; 725 // Remove the child name from the path 726 var_expr = var_expr.drop_front(child_name.GetLength()); 727 if (use_dynamic != eNoDynamicValues) { 728 ValueObjectSP dynamic_value_sp( 729 child_valobj_sp->GetDynamicValue(use_dynamic)); 730 if (dynamic_value_sp) 731 child_valobj_sp = dynamic_value_sp; 732 } 733 } break; 734 735 case '[': { 736 // Array member access, or treating pointer as an array 737 // Need at least two brackets and a number 738 if (var_expr.size() <= 2) { 739 error.SetErrorStringWithFormat( 740 "invalid square bracket encountered after \"%s\" in \"%s\"", 741 var_expr_path_strm.GetData(), var_expr.str().c_str()); 742 return ValueObjectSP(); 743 } 744 745 // Drop the open brace. 746 var_expr = var_expr.drop_front(); 747 long child_index = 0; 748 749 // If there's no closing brace, this is an invalid expression. 750 size_t end_pos = var_expr.find_first_of(']'); 751 if (end_pos == llvm::StringRef::npos) { 752 error.SetErrorStringWithFormat( 753 "missing closing square bracket in expression \"%s\"", 754 var_expr_path_strm.GetData()); 755 return ValueObjectSP(); 756 } 757 llvm::StringRef index_expr = var_expr.take_front(end_pos); 758 llvm::StringRef original_index_expr = index_expr; 759 // Drop all of "[index_expr]" 760 var_expr = var_expr.drop_front(end_pos + 1); 761 762 if (index_expr.consumeInteger(0, child_index)) { 763 // If there was no integer anywhere in the index expression, this is 764 // erroneous expression. 765 error.SetErrorStringWithFormat("invalid index expression \"%s\"", 766 index_expr.str().c_str()); 767 return ValueObjectSP(); 768 } 769 770 if (index_expr.empty()) { 771 // The entire index expression was a single integer. 772 773 if (valobj_sp->GetCompilerType().IsPointerToScalarType() && deref) { 774 // what we have is *ptr[low]. the most similar C++ syntax is to deref 775 // ptr and extract bit low out of it. reading array item low would be 776 // done by saying ptr[low], without a deref * sign 777 Error error; 778 ValueObjectSP temp(valobj_sp->Dereference(error)); 779 if (error.Fail()) { 780 valobj_sp->GetExpressionPath(var_expr_path_strm, false); 781 error.SetErrorStringWithFormat( 782 "could not dereference \"(%s) %s\"", 783 valobj_sp->GetTypeName().AsCString("<invalid type>"), 784 var_expr_path_strm.GetData()); 785 return ValueObjectSP(); 786 } 787 valobj_sp = temp; 788 deref = false; 789 } else if (valobj_sp->GetCompilerType().IsArrayOfScalarType() && 790 deref) { 791 // what we have is *arr[low]. the most similar C++ syntax is 792 // to get arr[0] 793 // (an operation that is equivalent to deref-ing arr) 794 // and extract bit low out of it. reading array item low 795 // would be done by saying arr[low], without a deref * sign 796 Error error; 797 ValueObjectSP temp(valobj_sp->GetChildAtIndex(0, true)); 798 if (error.Fail()) { 799 valobj_sp->GetExpressionPath(var_expr_path_strm, false); 800 error.SetErrorStringWithFormat( 801 "could not get item 0 for \"(%s) %s\"", 802 valobj_sp->GetTypeName().AsCString("<invalid type>"), 803 var_expr_path_strm.GetData()); 804 return ValueObjectSP(); 805 } 806 valobj_sp = temp; 807 deref = false; 808 } 809 810 bool is_incomplete_array = false; 811 if (valobj_sp->IsPointerType()) { 812 bool is_objc_pointer = true; 813 814 if (valobj_sp->GetCompilerType().GetMinimumLanguage() != 815 eLanguageTypeObjC) 816 is_objc_pointer = false; 817 else if (!valobj_sp->GetCompilerType().IsPointerType()) 818 is_objc_pointer = false; 819 820 if (no_synth_child && is_objc_pointer) { 821 error.SetErrorStringWithFormat( 822 "\"(%s) %s\" is an Objective-C pointer, and cannot be " 823 "subscripted", 824 valobj_sp->GetTypeName().AsCString("<invalid type>"), 825 var_expr_path_strm.GetData()); 826 827 return ValueObjectSP(); 828 } else if (is_objc_pointer) { 829 // dereferencing ObjC variables is not valid.. so let's try 830 // and recur to synthetic children 831 ValueObjectSP synthetic = valobj_sp->GetSyntheticValue(); 832 if (!synthetic /* no synthetic */ 833 || synthetic == valobj_sp) /* synthetic is the same as 834 the original object */ 835 { 836 valobj_sp->GetExpressionPath(var_expr_path_strm, false); 837 error.SetErrorStringWithFormat( 838 "\"(%s) %s\" is not an array type", 839 valobj_sp->GetTypeName().AsCString("<invalid type>"), 840 var_expr_path_strm.GetData()); 841 } else if ( 842 static_cast<uint32_t>(child_index) >= 843 synthetic 844 ->GetNumChildren() /* synthetic does not have that many values */) { 845 valobj_sp->GetExpressionPath(var_expr_path_strm, false); 846 error.SetErrorStringWithFormat( 847 "array index %ld is not valid for \"(%s) %s\"", child_index, 848 valobj_sp->GetTypeName().AsCString("<invalid type>"), 849 var_expr_path_strm.GetData()); 850 } else { 851 child_valobj_sp = synthetic->GetChildAtIndex(child_index, true); 852 if (!child_valobj_sp) { 853 valobj_sp->GetExpressionPath(var_expr_path_strm, false); 854 error.SetErrorStringWithFormat( 855 "array index %ld is not valid for \"(%s) %s\"", child_index, 856 valobj_sp->GetTypeName().AsCString("<invalid type>"), 857 var_expr_path_strm.GetData()); 858 } 859 } 860 } else { 861 child_valobj_sp = 862 valobj_sp->GetSyntheticArrayMember(child_index, true); 863 if (!child_valobj_sp) { 864 valobj_sp->GetExpressionPath(var_expr_path_strm, false); 865 error.SetErrorStringWithFormat( 866 "failed to use pointer as array for index %ld for " 867 "\"(%s) %s\"", 868 child_index, 869 valobj_sp->GetTypeName().AsCString("<invalid type>"), 870 var_expr_path_strm.GetData()); 871 } 872 } 873 } else if (valobj_sp->GetCompilerType().IsArrayType( 874 nullptr, nullptr, &is_incomplete_array)) { 875 // Pass false to dynamic_value here so we can tell the 876 // difference between 877 // no dynamic value and no member of this type... 878 child_valobj_sp = valobj_sp->GetChildAtIndex(child_index, true); 879 if (!child_valobj_sp && (is_incomplete_array || !no_synth_child)) 880 child_valobj_sp = 881 valobj_sp->GetSyntheticArrayMember(child_index, true); 882 883 if (!child_valobj_sp) { 884 valobj_sp->GetExpressionPath(var_expr_path_strm, false); 885 error.SetErrorStringWithFormat( 886 "array index %ld is not valid for \"(%s) %s\"", child_index, 887 valobj_sp->GetTypeName().AsCString("<invalid type>"), 888 var_expr_path_strm.GetData()); 889 } 890 } else if (valobj_sp->GetCompilerType().IsScalarType()) { 891 // this is a bitfield asking to display just one bit 892 child_valobj_sp = valobj_sp->GetSyntheticBitFieldChild( 893 child_index, child_index, true); 894 if (!child_valobj_sp) { 895 valobj_sp->GetExpressionPath(var_expr_path_strm, false); 896 error.SetErrorStringWithFormat( 897 "bitfield range %ld-%ld is not valid for \"(%s) %s\"", 898 child_index, child_index, 899 valobj_sp->GetTypeName().AsCString("<invalid type>"), 900 var_expr_path_strm.GetData()); 901 } 902 } else { 903 ValueObjectSP synthetic = valobj_sp->GetSyntheticValue(); 904 if (no_synth_child /* synthetic is forbidden */ || 905 !synthetic /* no synthetic */ 906 || synthetic == valobj_sp) /* synthetic is the same as the 907 original object */ 908 { 909 valobj_sp->GetExpressionPath(var_expr_path_strm, false); 910 error.SetErrorStringWithFormat( 911 "\"(%s) %s\" is not an array type", 912 valobj_sp->GetTypeName().AsCString("<invalid type>"), 913 var_expr_path_strm.GetData()); 914 } else if ( 915 static_cast<uint32_t>(child_index) >= 916 synthetic 917 ->GetNumChildren() /* synthetic does not have that many values */) { 918 valobj_sp->GetExpressionPath(var_expr_path_strm, false); 919 error.SetErrorStringWithFormat( 920 "array index %ld is not valid for \"(%s) %s\"", child_index, 921 valobj_sp->GetTypeName().AsCString("<invalid type>"), 922 var_expr_path_strm.GetData()); 923 } else { 924 child_valobj_sp = synthetic->GetChildAtIndex(child_index, true); 925 if (!child_valobj_sp) { 926 valobj_sp->GetExpressionPath(var_expr_path_strm, false); 927 error.SetErrorStringWithFormat( 928 "array index %ld is not valid for \"(%s) %s\"", child_index, 929 valobj_sp->GetTypeName().AsCString("<invalid type>"), 930 var_expr_path_strm.GetData()); 931 } 932 } 933 } 934 935 if (!child_valobj_sp) { 936 // Invalid array index... 937 return ValueObjectSP(); 938 } 939 940 separator_idx = var_expr.find_first_of(".-["); 941 if (use_dynamic != eNoDynamicValues) { 942 ValueObjectSP dynamic_value_sp( 943 child_valobj_sp->GetDynamicValue(use_dynamic)); 944 if (dynamic_value_sp) 945 child_valobj_sp = dynamic_value_sp; 946 } 947 // Break out early from the switch since we were able to find the child 948 // member 949 break; 950 } 951 952 // this is most probably a BitField, let's take a look 953 if (index_expr.front() != '-') { 954 error.SetErrorStringWithFormat("invalid range expression \"'%s'\"", 955 original_index_expr.str().c_str()); 956 return ValueObjectSP(); 957 } 958 959 index_expr = index_expr.drop_front(); 960 long final_index = 0; 961 if (index_expr.getAsInteger(0, final_index)) { 962 error.SetErrorStringWithFormat("invalid range expression \"'%s'\"", 963 original_index_expr.str().c_str()); 964 return ValueObjectSP(); 965 } 966 967 // if the format given is [high-low], swap range 968 if (child_index > final_index) { 969 long temp = child_index; 970 child_index = final_index; 971 final_index = temp; 972 } 973 974 if (valobj_sp->GetCompilerType().IsPointerToScalarType() && deref) { 975 // what we have is *ptr[low-high]. the most similar C++ syntax is to 976 // deref ptr and extract bits low thru high out of it. reading array 977 // items low thru high would be done by saying ptr[low-high], without 978 // a deref * sign 979 Error error; 980 ValueObjectSP temp(valobj_sp->Dereference(error)); 981 if (error.Fail()) { 982 valobj_sp->GetExpressionPath(var_expr_path_strm, false); 983 error.SetErrorStringWithFormat( 984 "could not dereference \"(%s) %s\"", 985 valobj_sp->GetTypeName().AsCString("<invalid type>"), 986 var_expr_path_strm.GetData()); 987 return ValueObjectSP(); 988 } 989 valobj_sp = temp; 990 deref = false; 991 } else if (valobj_sp->GetCompilerType().IsArrayOfScalarType() && deref) { 992 // what we have is *arr[low-high]. the most similar C++ syntax is to get 993 // arr[0] (an operation that is equivalent to deref-ing arr) and extract 994 // bits low thru high out of it. reading array items low thru high would 995 // be done by saying arr[low-high], without a deref * sign 996 Error error; 997 ValueObjectSP temp(valobj_sp->GetChildAtIndex(0, true)); 998 if (error.Fail()) { 999 valobj_sp->GetExpressionPath(var_expr_path_strm, false); 1000 error.SetErrorStringWithFormat( 1001 "could not get item 0 for \"(%s) %s\"", 1002 valobj_sp->GetTypeName().AsCString("<invalid type>"), 1003 var_expr_path_strm.GetData()); 1004 return ValueObjectSP(); 1005 } 1006 valobj_sp = temp; 1007 deref = false; 1008 } 1009 1010 child_valobj_sp = 1011 valobj_sp->GetSyntheticBitFieldChild(child_index, final_index, true); 1012 if (!child_valobj_sp) { 1013 valobj_sp->GetExpressionPath(var_expr_path_strm, false); 1014 error.SetErrorStringWithFormat( 1015 "bitfield range %ld-%ld is not valid for \"(%s) %s\"", child_index, 1016 final_index, valobj_sp->GetTypeName().AsCString("<invalid type>"), 1017 var_expr_path_strm.GetData()); 1018 } 1019 1020 if (!child_valobj_sp) { 1021 // Invalid bitfield range... 1022 return ValueObjectSP(); 1023 } 1024 1025 separator_idx = var_expr.find_first_of(".-["); 1026 if (use_dynamic != eNoDynamicValues) { 1027 ValueObjectSP dynamic_value_sp( 1028 child_valobj_sp->GetDynamicValue(use_dynamic)); 1029 if (dynamic_value_sp) 1030 child_valobj_sp = dynamic_value_sp; 1031 } 1032 // Break out early from the switch since we were able to find the child 1033 // member 1034 break; 1035 } 1036 default: 1037 // Failure... 1038 { 1039 valobj_sp->GetExpressionPath(var_expr_path_strm, false); 1040 error.SetErrorStringWithFormat( 1041 "unexpected char '%c' encountered after \"%s\" in \"%s\"", 1042 separator_type, var_expr_path_strm.GetData(), 1043 var_expr.str().c_str()); 1044 1045 return ValueObjectSP(); 1046 } 1047 } 1048 1049 if (child_valobj_sp) 1050 valobj_sp = child_valobj_sp; 1051 1052 if (var_expr.empty()) 1053 break; 1054 } 1055 if (valobj_sp) { 1056 if (deref) { 1057 ValueObjectSP deref_valobj_sp(valobj_sp->Dereference(error)); 1058 valobj_sp = deref_valobj_sp; 1059 } else if (address_of) { 1060 ValueObjectSP address_of_valobj_sp(valobj_sp->AddressOf(error)); 1061 valobj_sp = address_of_valobj_sp; 1062 } 1063 } 1064 return valobj_sp; 1065 } 1066 1067 bool StackFrame::GetFrameBaseValue(Scalar &frame_base, Error *error_ptr) { 1068 std::lock_guard<std::recursive_mutex> guard(m_mutex); 1069 if (!m_cfa_is_valid) { 1070 m_frame_base_error.SetErrorString( 1071 "No frame base available for this historical stack frame."); 1072 return false; 1073 } 1074 1075 if (m_flags.IsClear(GOT_FRAME_BASE)) { 1076 if (m_sc.function) { 1077 m_frame_base.Clear(); 1078 m_frame_base_error.Clear(); 1079 1080 m_flags.Set(GOT_FRAME_BASE); 1081 ExecutionContext exe_ctx(shared_from_this()); 1082 Value expr_value; 1083 addr_t loclist_base_addr = LLDB_INVALID_ADDRESS; 1084 if (m_sc.function->GetFrameBaseExpression().IsLocationList()) 1085 loclist_base_addr = 1086 m_sc.function->GetAddressRange().GetBaseAddress().GetLoadAddress( 1087 exe_ctx.GetTargetPtr()); 1088 1089 if (m_sc.function->GetFrameBaseExpression().Evaluate( 1090 &exe_ctx, nullptr, nullptr, nullptr, loclist_base_addr, nullptr, 1091 nullptr, expr_value, &m_frame_base_error) == false) { 1092 // We should really have an error if evaluate returns, but in case 1093 // we don't, lets set the error to something at least. 1094 if (m_frame_base_error.Success()) 1095 m_frame_base_error.SetErrorString( 1096 "Evaluation of the frame base expression failed."); 1097 } else { 1098 m_frame_base = expr_value.ResolveValue(&exe_ctx); 1099 } 1100 } else { 1101 m_frame_base_error.SetErrorString("No function in symbol context."); 1102 } 1103 } 1104 1105 if (m_frame_base_error.Success()) 1106 frame_base = m_frame_base; 1107 1108 if (error_ptr) 1109 *error_ptr = m_frame_base_error; 1110 return m_frame_base_error.Success(); 1111 } 1112 1113 DWARFExpression *StackFrame::GetFrameBaseExpression(Error *error_ptr) { 1114 if (!m_sc.function) { 1115 if (error_ptr) { 1116 error_ptr->SetErrorString("No function in symbol context."); 1117 } 1118 return nullptr; 1119 } 1120 1121 return &m_sc.function->GetFrameBaseExpression(); 1122 } 1123 1124 RegisterContextSP StackFrame::GetRegisterContext() { 1125 std::lock_guard<std::recursive_mutex> guard(m_mutex); 1126 if (!m_reg_context_sp) { 1127 ThreadSP thread_sp(GetThread()); 1128 if (thread_sp) 1129 m_reg_context_sp = thread_sp->CreateRegisterContextForFrame(this); 1130 } 1131 return m_reg_context_sp; 1132 } 1133 1134 bool StackFrame::HasDebugInformation() { 1135 GetSymbolContext(eSymbolContextLineEntry); 1136 return m_sc.line_entry.IsValid(); 1137 } 1138 1139 ValueObjectSP 1140 StackFrame::GetValueObjectForFrameVariable(const VariableSP &variable_sp, 1141 DynamicValueType use_dynamic) { 1142 std::lock_guard<std::recursive_mutex> guard(m_mutex); 1143 ValueObjectSP valobj_sp; 1144 if (m_is_history_frame) { 1145 return valobj_sp; 1146 } 1147 VariableList *var_list = GetVariableList(true); 1148 if (var_list) { 1149 // Make sure the variable is a frame variable 1150 const uint32_t var_idx = var_list->FindIndexForVariable(variable_sp.get()); 1151 const uint32_t num_variables = var_list->GetSize(); 1152 if (var_idx < num_variables) { 1153 valobj_sp = m_variable_list_value_objects.GetValueObjectAtIndex(var_idx); 1154 if (!valobj_sp) { 1155 if (m_variable_list_value_objects.GetSize() < num_variables) 1156 m_variable_list_value_objects.Resize(num_variables); 1157 valobj_sp = ValueObjectVariable::Create(this, variable_sp); 1158 m_variable_list_value_objects.SetValueObjectAtIndex(var_idx, valobj_sp); 1159 } 1160 } 1161 } 1162 if (use_dynamic != eNoDynamicValues && valobj_sp) { 1163 ValueObjectSP dynamic_sp = valobj_sp->GetDynamicValue(use_dynamic); 1164 if (dynamic_sp) 1165 return dynamic_sp; 1166 } 1167 return valobj_sp; 1168 } 1169 1170 ValueObjectSP StackFrame::TrackGlobalVariable(const VariableSP &variable_sp, 1171 DynamicValueType use_dynamic) { 1172 std::lock_guard<std::recursive_mutex> guard(m_mutex); 1173 if (m_is_history_frame) 1174 return ValueObjectSP(); 1175 1176 // Check to make sure we aren't already tracking this variable? 1177 ValueObjectSP valobj_sp( 1178 GetValueObjectForFrameVariable(variable_sp, use_dynamic)); 1179 if (!valobj_sp) { 1180 // We aren't already tracking this global 1181 VariableList *var_list = GetVariableList(true); 1182 // If this frame has no variables, create a new list 1183 if (var_list == nullptr) 1184 m_variable_list_sp.reset(new VariableList()); 1185 1186 // Add the global/static variable to this frame 1187 m_variable_list_sp->AddVariable(variable_sp); 1188 1189 // Now make a value object for it so we can track its changes 1190 valobj_sp = GetValueObjectForFrameVariable(variable_sp, use_dynamic); 1191 } 1192 return valobj_sp; 1193 } 1194 1195 bool StackFrame::IsInlined() { 1196 if (m_sc.block == nullptr) 1197 GetSymbolContext(eSymbolContextBlock); 1198 if (m_sc.block) 1199 return m_sc.block->GetContainingInlinedBlock() != nullptr; 1200 return false; 1201 } 1202 1203 lldb::LanguageType StackFrame::GetLanguage() { 1204 CompileUnit *cu = GetSymbolContext(eSymbolContextCompUnit).comp_unit; 1205 if (cu) 1206 return cu->GetLanguage(); 1207 return lldb::eLanguageTypeUnknown; 1208 } 1209 1210 lldb::LanguageType StackFrame::GuessLanguage() { 1211 LanguageType lang_type = GetLanguage(); 1212 1213 if (lang_type == eLanguageTypeUnknown) { 1214 Function *f = GetSymbolContext(eSymbolContextFunction).function; 1215 if (f) { 1216 lang_type = f->GetMangled().GuessLanguage(); 1217 } 1218 } 1219 1220 return lang_type; 1221 } 1222 1223 namespace { 1224 std::pair<const Instruction::Operand *, int64_t> 1225 GetBaseExplainingValue(const Instruction::Operand &operand, 1226 RegisterContext ®ister_context, lldb::addr_t value) { 1227 switch (operand.m_type) { 1228 case Instruction::Operand::Type::Dereference: 1229 case Instruction::Operand::Type::Immediate: 1230 case Instruction::Operand::Type::Invalid: 1231 case Instruction::Operand::Type::Product: 1232 // These are not currently interesting 1233 return std::make_pair(nullptr, 0); 1234 case Instruction::Operand::Type::Sum: { 1235 const Instruction::Operand *immediate_child = nullptr; 1236 const Instruction::Operand *variable_child = nullptr; 1237 if (operand.m_children[0].m_type == Instruction::Operand::Type::Immediate) { 1238 immediate_child = &operand.m_children[0]; 1239 variable_child = &operand.m_children[1]; 1240 } else if (operand.m_children[1].m_type == 1241 Instruction::Operand::Type::Immediate) { 1242 immediate_child = &operand.m_children[1]; 1243 variable_child = &operand.m_children[0]; 1244 } 1245 if (!immediate_child) { 1246 return std::make_pair(nullptr, 0); 1247 } 1248 lldb::addr_t adjusted_value = value; 1249 if (immediate_child->m_negative) { 1250 adjusted_value += immediate_child->m_immediate; 1251 } else { 1252 adjusted_value -= immediate_child->m_immediate; 1253 } 1254 std::pair<const Instruction::Operand *, int64_t> base_and_offset = 1255 GetBaseExplainingValue(*variable_child, register_context, 1256 adjusted_value); 1257 if (!base_and_offset.first) { 1258 return std::make_pair(nullptr, 0); 1259 } 1260 if (immediate_child->m_negative) { 1261 base_and_offset.second -= immediate_child->m_immediate; 1262 } else { 1263 base_and_offset.second += immediate_child->m_immediate; 1264 } 1265 return base_and_offset; 1266 } 1267 case Instruction::Operand::Type::Register: { 1268 const RegisterInfo *info = 1269 register_context.GetRegisterInfoByName(operand.m_register.AsCString()); 1270 if (!info) { 1271 return std::make_pair(nullptr, 0); 1272 } 1273 RegisterValue reg_value; 1274 if (!register_context.ReadRegister(info, reg_value)) { 1275 return std::make_pair(nullptr, 0); 1276 } 1277 if (reg_value.GetAsUInt64() == value) { 1278 return std::make_pair(&operand, 0); 1279 } else { 1280 return std::make_pair(nullptr, 0); 1281 } 1282 } 1283 } 1284 return std::make_pair(nullptr, 0); 1285 } 1286 1287 std::pair<const Instruction::Operand *, int64_t> 1288 GetBaseExplainingDereference(const Instruction::Operand &operand, 1289 RegisterContext ®ister_context, 1290 lldb::addr_t addr) { 1291 if (operand.m_type == Instruction::Operand::Type::Dereference) { 1292 return GetBaseExplainingValue(operand.m_children[0], register_context, 1293 addr); 1294 } 1295 return std::make_pair(nullptr, 0); 1296 } 1297 } 1298 1299 lldb::ValueObjectSP StackFrame::GuessValueForAddress(lldb::addr_t addr) { 1300 TargetSP target_sp = CalculateTarget(); 1301 1302 const ArchSpec &target_arch = target_sp->GetArchitecture(); 1303 1304 AddressRange pc_range; 1305 pc_range.GetBaseAddress() = GetFrameCodeAddress(); 1306 pc_range.SetByteSize(target_arch.GetMaximumOpcodeByteSize()); 1307 1308 ExecutionContext exe_ctx(shared_from_this()); 1309 1310 const char *plugin_name = nullptr; 1311 const char *flavor = nullptr; 1312 const bool prefer_file_cache = false; 1313 1314 DisassemblerSP disassembler_sp = Disassembler::DisassembleRange( 1315 target_arch, plugin_name, flavor, exe_ctx, pc_range, prefer_file_cache); 1316 1317 if (!disassembler_sp->GetInstructionList().GetSize()) { 1318 return ValueObjectSP(); 1319 } 1320 1321 InstructionSP instruction_sp = 1322 disassembler_sp->GetInstructionList().GetInstructionAtIndex(0); 1323 1324 llvm::SmallVector<Instruction::Operand, 3> operands; 1325 1326 if (!instruction_sp->ParseOperands(operands)) { 1327 return ValueObjectSP(); 1328 } 1329 1330 RegisterContextSP register_context_sp = GetRegisterContext(); 1331 1332 if (!register_context_sp) { 1333 return ValueObjectSP(); 1334 } 1335 1336 for (const Instruction::Operand &operand : operands) { 1337 std::pair<const Instruction::Operand *, int64_t> base_and_offset = 1338 GetBaseExplainingDereference(operand, *register_context_sp, addr); 1339 1340 if (!base_and_offset.first) { 1341 continue; 1342 } 1343 1344 switch (base_and_offset.first->m_type) { 1345 case Instruction::Operand::Type::Immediate: { 1346 lldb_private::Address addr; 1347 if (target_sp->ResolveLoadAddress(base_and_offset.first->m_immediate + 1348 base_and_offset.second, 1349 addr)) { 1350 TypeSystem *c_type_system = 1351 target_sp->GetScratchTypeSystemForLanguage(nullptr, eLanguageTypeC); 1352 if (!c_type_system) { 1353 return ValueObjectSP(); 1354 } else { 1355 CompilerType void_ptr_type = 1356 c_type_system 1357 ->GetBasicTypeFromAST(lldb::BasicType::eBasicTypeChar) 1358 .GetPointerType(); 1359 return ValueObjectMemory::Create(this, "", addr, void_ptr_type); 1360 } 1361 } else { 1362 return ValueObjectSP(); 1363 } 1364 break; 1365 } 1366 case Instruction::Operand::Type::Register: { 1367 return GuessValueForRegisterAndOffset(base_and_offset.first->m_register, 1368 base_and_offset.second); 1369 } 1370 default: 1371 return ValueObjectSP(); 1372 } 1373 } 1374 1375 return ValueObjectSP(); 1376 } 1377 1378 namespace { 1379 ValueObjectSP GetValueForOffset(StackFrame &frame, ValueObjectSP &parent, 1380 int64_t offset) { 1381 if (offset < 0 || uint64_t(offset) >= parent->GetByteSize()) { 1382 return ValueObjectSP(); 1383 } 1384 1385 if (parent->IsPointerOrReferenceType()) { 1386 return parent; 1387 } 1388 1389 for (int ci = 0, ce = parent->GetNumChildren(); ci != ce; ++ci) { 1390 const bool can_create = true; 1391 ValueObjectSP child_sp = parent->GetChildAtIndex(ci, can_create); 1392 1393 if (!child_sp) { 1394 return ValueObjectSP(); 1395 } 1396 1397 int64_t child_offset = child_sp->GetByteOffset(); 1398 int64_t child_size = child_sp->GetByteSize(); 1399 1400 if (offset >= child_offset && offset < (child_offset + child_size)) { 1401 return GetValueForOffset(frame, child_sp, offset - child_offset); 1402 } 1403 } 1404 1405 if (offset == 0) { 1406 return parent; 1407 } else { 1408 return ValueObjectSP(); 1409 } 1410 } 1411 1412 ValueObjectSP GetValueForDereferincingOffset(StackFrame &frame, 1413 ValueObjectSP &base, 1414 int64_t offset) { 1415 // base is a pointer to something 1416 // offset is the thing to add to the pointer 1417 // We return the most sensible ValueObject for the result of *(base+offset) 1418 1419 if (!base->IsPointerOrReferenceType()) { 1420 return ValueObjectSP(); 1421 } 1422 1423 Error error; 1424 ValueObjectSP pointee = base->Dereference(error); 1425 1426 if (!pointee) { 1427 return ValueObjectSP(); 1428 } 1429 1430 if (offset >= 0 && uint64_t(offset) >= pointee->GetByteSize()) { 1431 int64_t index = offset / pointee->GetByteSize(); 1432 offset = offset % pointee->GetByteSize(); 1433 const bool can_create = true; 1434 pointee = base->GetSyntheticArrayMember(index, can_create); 1435 } 1436 1437 if (!pointee || error.Fail()) { 1438 return ValueObjectSP(); 1439 } 1440 1441 return GetValueForOffset(frame, pointee, offset); 1442 } 1443 1444 //------------------------------------------------------------------ 1445 /// Attempt to reconstruct the ValueObject for the address contained in a 1446 /// given register plus an offset. 1447 /// 1448 /// @params [in] frame 1449 /// The current stack frame. 1450 /// 1451 /// @params [in] reg 1452 /// The register. 1453 /// 1454 /// @params [in] offset 1455 /// The offset from the register. 1456 /// 1457 /// @param [in] disassembler 1458 /// A disassembler containing instructions valid up to the current PC. 1459 /// 1460 /// @param [in] variables 1461 /// The variable list from the current frame, 1462 /// 1463 /// @param [in] pc 1464 /// The program counter for the instruction considered the 'user'. 1465 /// 1466 /// @return 1467 /// A string describing the base for the ExpressionPath. This could be a 1468 /// variable, a register value, an argument, or a function return value. 1469 /// The ValueObject if found. If valid, it has a valid ExpressionPath. 1470 //------------------------------------------------------------------ 1471 lldb::ValueObjectSP DoGuessValueAt(StackFrame &frame, ConstString reg, 1472 int64_t offset, Disassembler &disassembler, 1473 VariableList &variables, const Address &pc) { 1474 // Example of operation for Intel: 1475 // 1476 // +14: movq -0x8(%rbp), %rdi 1477 // +18: movq 0x8(%rdi), %rdi 1478 // +22: addl 0x4(%rdi), %eax 1479 // 1480 // f, a pointer to a struct, is known to be at -0x8(%rbp). 1481 // 1482 // DoGuessValueAt(frame, rdi, 4, dis, vars, 0x22) finds the instruction at +18 1483 // that assigns to rdi, and calls itself recursively for that dereference 1484 // DoGuessValueAt(frame, rdi, 8, dis, vars, 0x18) finds the instruction at 1485 // +14 that assigns to rdi, and calls itself recursively for that 1486 // derefernece 1487 // DoGuessValueAt(frame, rbp, -8, dis, vars, 0x14) finds "f" in the 1488 // variable list. 1489 // Returns a ValueObject for f. (That's what was stored at rbp-8 at +14) 1490 // Returns a ValueObject for *(f+8) or f->b (That's what was stored at rdi+8 1491 // at +18) 1492 // Returns a ValueObject for *(f->b+4) or f->b->a (That's what was stored at 1493 // rdi+4 at +22) 1494 1495 // First, check the variable list to see if anything is at the specified 1496 // location. 1497 1498 using namespace OperandMatchers; 1499 1500 const RegisterInfo *reg_info = 1501 frame.GetRegisterContext()->GetRegisterInfoByName(reg.AsCString()); 1502 if (!reg_info) { 1503 return ValueObjectSP(); 1504 } 1505 1506 Instruction::Operand op = 1507 offset ? Instruction::Operand::BuildDereference( 1508 Instruction::Operand::BuildSum( 1509 Instruction::Operand::BuildRegister(reg), 1510 Instruction::Operand::BuildImmediate(offset))) 1511 : Instruction::Operand::BuildDereference( 1512 Instruction::Operand::BuildRegister(reg)); 1513 1514 for (size_t vi = 0, ve = variables.GetSize(); vi != ve; ++vi) { 1515 VariableSP var_sp = variables.GetVariableAtIndex(vi); 1516 if (var_sp->LocationExpression().MatchesOperand(frame, op)) { 1517 return frame.GetValueObjectForFrameVariable(var_sp, eNoDynamicValues); 1518 } 1519 } 1520 1521 const uint32_t current_inst = 1522 disassembler.GetInstructionList().GetIndexOfInstructionAtAddress(pc); 1523 if (current_inst == UINT32_MAX) { 1524 return ValueObjectSP(); 1525 } 1526 1527 for (uint32_t ii = current_inst - 1; ii != (uint32_t)-1; --ii) { 1528 // This is not an exact algorithm, and it sacrifices accuracy for 1529 // generality. Recognizing "mov" and "ld" instructions –– and which are 1530 // their source and destination operands -- is something the disassembler 1531 // should do for us. 1532 InstructionSP instruction_sp = 1533 disassembler.GetInstructionList().GetInstructionAtIndex(ii); 1534 1535 if (instruction_sp->IsCall()) { 1536 ABISP abi_sp = frame.CalculateProcess()->GetABI(); 1537 if (!abi_sp) { 1538 continue; 1539 } 1540 1541 const char *return_register_name; 1542 if (!abi_sp->GetPointerReturnRegister(return_register_name)) { 1543 continue; 1544 } 1545 1546 const RegisterInfo *return_register_info = 1547 frame.GetRegisterContext()->GetRegisterInfoByName( 1548 return_register_name); 1549 if (!return_register_info) { 1550 continue; 1551 } 1552 1553 int64_t offset = 0; 1554 1555 if (!MatchUnaryOp(MatchOpType(Instruction::Operand::Type::Dereference), 1556 MatchRegOp(*return_register_info))(op) && 1557 !MatchUnaryOp( 1558 MatchOpType(Instruction::Operand::Type::Dereference), 1559 MatchBinaryOp(MatchOpType(Instruction::Operand::Type::Sum), 1560 MatchRegOp(*return_register_info), 1561 FetchImmOp(offset)))(op)) { 1562 continue; 1563 } 1564 1565 llvm::SmallVector<Instruction::Operand, 1> operands; 1566 if (!instruction_sp->ParseOperands(operands) || operands.size() != 1) { 1567 continue; 1568 } 1569 1570 switch (operands[0].m_type) { 1571 default: 1572 break; 1573 case Instruction::Operand::Type::Immediate: { 1574 SymbolContext sc; 1575 Address load_address; 1576 if (!frame.CalculateTarget()->ResolveLoadAddress( 1577 operands[0].m_immediate, load_address)) { 1578 break; 1579 } 1580 frame.CalculateTarget()->GetImages().ResolveSymbolContextForAddress( 1581 load_address, eSymbolContextFunction, sc); 1582 if (!sc.function) { 1583 break; 1584 } 1585 CompilerType function_type = sc.function->GetCompilerType(); 1586 if (!function_type.IsFunctionType()) { 1587 break; 1588 } 1589 CompilerType return_type = function_type.GetFunctionReturnType(); 1590 RegisterValue return_value; 1591 if (!frame.GetRegisterContext()->ReadRegister(return_register_info, 1592 return_value)) { 1593 break; 1594 } 1595 std::string name_str( 1596 sc.function->GetName().AsCString("<unknown function>")); 1597 name_str.append("()"); 1598 Address return_value_address(return_value.GetAsUInt64()); 1599 ValueObjectSP return_value_sp = ValueObjectMemory::Create( 1600 &frame, name_str, return_value_address, return_type); 1601 return GetValueForDereferincingOffset(frame, return_value_sp, offset); 1602 } 1603 } 1604 1605 continue; 1606 } 1607 1608 llvm::SmallVector<Instruction::Operand, 2> operands; 1609 if (!instruction_sp->ParseOperands(operands) || operands.size() != 2) { 1610 continue; 1611 } 1612 1613 Instruction::Operand *origin_operand = nullptr; 1614 auto clobbered_reg_matcher = [reg_info](const Instruction::Operand &op) { 1615 return MatchRegOp(*reg_info)(op) && op.m_clobbered; 1616 }; 1617 1618 if (clobbered_reg_matcher(operands[0])) { 1619 origin_operand = &operands[1]; 1620 } 1621 else if (clobbered_reg_matcher(operands[1])) { 1622 origin_operand = &operands[0]; 1623 } 1624 else { 1625 continue; 1626 } 1627 1628 // We have an origin operand. Can we track its value down? 1629 ValueObjectSP source_path; 1630 ConstString origin_register; 1631 int64_t origin_offset = 0; 1632 1633 if (FetchRegOp(origin_register)(*origin_operand)) { 1634 source_path = DoGuessValueAt(frame, origin_register, 0, disassembler, 1635 variables, instruction_sp->GetAddress()); 1636 } else if (MatchUnaryOp( 1637 MatchOpType(Instruction::Operand::Type::Dereference), 1638 FetchRegOp(origin_register))(*origin_operand) || 1639 MatchUnaryOp( 1640 MatchOpType(Instruction::Operand::Type::Dereference), 1641 MatchBinaryOp(MatchOpType(Instruction::Operand::Type::Sum), 1642 FetchRegOp(origin_register), 1643 FetchImmOp(origin_offset)))(*origin_operand)) { 1644 source_path = 1645 DoGuessValueAt(frame, origin_register, origin_offset, disassembler, 1646 variables, instruction_sp->GetAddress()); 1647 if (!source_path) { 1648 continue; 1649 } 1650 source_path = 1651 GetValueForDereferincingOffset(frame, source_path, offset); 1652 } 1653 1654 if (source_path) { 1655 return source_path; 1656 } 1657 } 1658 1659 return ValueObjectSP(); 1660 } 1661 } 1662 1663 lldb::ValueObjectSP StackFrame::GuessValueForRegisterAndOffset(ConstString reg, 1664 int64_t offset) { 1665 TargetSP target_sp = CalculateTarget(); 1666 1667 const ArchSpec &target_arch = target_sp->GetArchitecture(); 1668 1669 Block *frame_block = GetFrameBlock(); 1670 1671 if (!frame_block) { 1672 return ValueObjectSP(); 1673 } 1674 1675 Function *function = frame_block->CalculateSymbolContextFunction(); 1676 if (!function) { 1677 return ValueObjectSP(); 1678 } 1679 1680 AddressRange pc_range = function->GetAddressRange(); 1681 1682 if (GetFrameCodeAddress().GetFileAddress() < 1683 pc_range.GetBaseAddress().GetFileAddress() || 1684 GetFrameCodeAddress().GetFileAddress() - 1685 pc_range.GetBaseAddress().GetFileAddress() >= 1686 pc_range.GetByteSize()) { 1687 return ValueObjectSP(); 1688 } 1689 1690 ExecutionContext exe_ctx(shared_from_this()); 1691 1692 const char *plugin_name = nullptr; 1693 const char *flavor = nullptr; 1694 const bool prefer_file_cache = false; 1695 DisassemblerSP disassembler_sp = Disassembler::DisassembleRange( 1696 target_arch, plugin_name, flavor, exe_ctx, pc_range, prefer_file_cache); 1697 1698 if (!disassembler_sp || !disassembler_sp->GetInstructionList().GetSize()) { 1699 return ValueObjectSP(); 1700 } 1701 1702 const bool get_file_globals = false; 1703 VariableList *variables = GetVariableList(get_file_globals); 1704 1705 if (!variables) { 1706 return ValueObjectSP(); 1707 } 1708 1709 return DoGuessValueAt(*this, reg, offset, *disassembler_sp, *variables, 1710 GetFrameCodeAddress()); 1711 } 1712 1713 TargetSP StackFrame::CalculateTarget() { 1714 TargetSP target_sp; 1715 ThreadSP thread_sp(GetThread()); 1716 if (thread_sp) { 1717 ProcessSP process_sp(thread_sp->CalculateProcess()); 1718 if (process_sp) 1719 target_sp = process_sp->CalculateTarget(); 1720 } 1721 return target_sp; 1722 } 1723 1724 ProcessSP StackFrame::CalculateProcess() { 1725 ProcessSP process_sp; 1726 ThreadSP thread_sp(GetThread()); 1727 if (thread_sp) 1728 process_sp = thread_sp->CalculateProcess(); 1729 return process_sp; 1730 } 1731 1732 ThreadSP StackFrame::CalculateThread() { return GetThread(); } 1733 1734 StackFrameSP StackFrame::CalculateStackFrame() { return shared_from_this(); } 1735 1736 void StackFrame::CalculateExecutionContext(ExecutionContext &exe_ctx) { 1737 exe_ctx.SetContext(shared_from_this()); 1738 } 1739 1740 void StackFrame::DumpUsingSettingsFormat(Stream *strm, 1741 const char *frame_marker) { 1742 if (strm == nullptr) 1743 return; 1744 1745 GetSymbolContext(eSymbolContextEverything); 1746 ExecutionContext exe_ctx(shared_from_this()); 1747 StreamString s; 1748 1749 if (frame_marker) 1750 s.PutCString(frame_marker); 1751 1752 const FormatEntity::Entry *frame_format = nullptr; 1753 Target *target = exe_ctx.GetTargetPtr(); 1754 if (target) 1755 frame_format = target->GetDebugger().GetFrameFormat(); 1756 if (frame_format && FormatEntity::Format(*frame_format, s, &m_sc, &exe_ctx, 1757 nullptr, nullptr, false, false)) { 1758 strm->PutCString(s.GetString()); 1759 } else { 1760 Dump(strm, true, false); 1761 strm->EOL(); 1762 } 1763 } 1764 1765 void StackFrame::Dump(Stream *strm, bool show_frame_index, 1766 bool show_fullpaths) { 1767 if (strm == nullptr) 1768 return; 1769 1770 if (show_frame_index) 1771 strm->Printf("frame #%u: ", m_frame_index); 1772 ExecutionContext exe_ctx(shared_from_this()); 1773 Target *target = exe_ctx.GetTargetPtr(); 1774 strm->Printf("0x%0*" PRIx64 " ", 1775 target ? (target->GetArchitecture().GetAddressByteSize() * 2) 1776 : 16, 1777 GetFrameCodeAddress().GetLoadAddress(target)); 1778 GetSymbolContext(eSymbolContextEverything); 1779 const bool show_module = true; 1780 const bool show_inline = true; 1781 const bool show_function_arguments = true; 1782 const bool show_function_name = true; 1783 m_sc.DumpStopContext(strm, exe_ctx.GetBestExecutionContextScope(), 1784 GetFrameCodeAddress(), show_fullpaths, show_module, 1785 show_inline, show_function_arguments, 1786 show_function_name); 1787 } 1788 1789 void StackFrame::UpdateCurrentFrameFromPreviousFrame(StackFrame &prev_frame) { 1790 std::lock_guard<std::recursive_mutex> guard(m_mutex); 1791 assert(GetStackID() == 1792 prev_frame.GetStackID()); // TODO: remove this after some testing 1793 m_variable_list_sp = prev_frame.m_variable_list_sp; 1794 m_variable_list_value_objects.Swap(prev_frame.m_variable_list_value_objects); 1795 if (!m_disassembly.GetString().empty()) { 1796 m_disassembly.Clear(); 1797 m_disassembly.PutCString(prev_frame.m_disassembly.GetString()); 1798 } 1799 } 1800 1801 void StackFrame::UpdatePreviousFrameFromCurrentFrame(StackFrame &curr_frame) { 1802 std::lock_guard<std::recursive_mutex> guard(m_mutex); 1803 assert(GetStackID() == 1804 curr_frame.GetStackID()); // TODO: remove this after some testing 1805 m_id.SetPC(curr_frame.m_id.GetPC()); // Update the Stack ID PC value 1806 assert(GetThread() == curr_frame.GetThread()); 1807 m_frame_index = curr_frame.m_frame_index; 1808 m_concrete_frame_index = curr_frame.m_concrete_frame_index; 1809 m_reg_context_sp = curr_frame.m_reg_context_sp; 1810 m_frame_code_addr = curr_frame.m_frame_code_addr; 1811 assert(!m_sc.target_sp || !curr_frame.m_sc.target_sp || 1812 m_sc.target_sp.get() == curr_frame.m_sc.target_sp.get()); 1813 assert(!m_sc.module_sp || !curr_frame.m_sc.module_sp || 1814 m_sc.module_sp.get() == curr_frame.m_sc.module_sp.get()); 1815 assert(m_sc.comp_unit == nullptr || curr_frame.m_sc.comp_unit == nullptr || 1816 m_sc.comp_unit == curr_frame.m_sc.comp_unit); 1817 assert(m_sc.function == nullptr || curr_frame.m_sc.function == nullptr || 1818 m_sc.function == curr_frame.m_sc.function); 1819 m_sc = curr_frame.m_sc; 1820 m_flags.Clear(GOT_FRAME_BASE | eSymbolContextEverything); 1821 m_flags.Set(m_sc.GetResolvedMask()); 1822 m_frame_base.Clear(); 1823 m_frame_base_error.Clear(); 1824 } 1825 1826 bool StackFrame::HasCachedData() const { 1827 if (m_variable_list_sp) 1828 return true; 1829 if (m_variable_list_value_objects.GetSize() > 0) 1830 return true; 1831 if (!m_disassembly.GetString().empty()) 1832 return true; 1833 return false; 1834 } 1835 1836 bool StackFrame::GetStatus(Stream &strm, bool show_frame_info, bool show_source, 1837 const char *frame_marker) { 1838 1839 if (show_frame_info) { 1840 strm.Indent(); 1841 DumpUsingSettingsFormat(&strm, frame_marker); 1842 } 1843 1844 if (show_source) { 1845 ExecutionContext exe_ctx(shared_from_this()); 1846 bool have_source = false, have_debuginfo = false; 1847 Debugger::StopDisassemblyType disasm_display = 1848 Debugger::eStopDisassemblyTypeNever; 1849 Target *target = exe_ctx.GetTargetPtr(); 1850 if (target) { 1851 Debugger &debugger = target->GetDebugger(); 1852 const uint32_t source_lines_before = 1853 debugger.GetStopSourceLineCount(true); 1854 const uint32_t source_lines_after = 1855 debugger.GetStopSourceLineCount(false); 1856 disasm_display = debugger.GetStopDisassemblyDisplay(); 1857 1858 GetSymbolContext(eSymbolContextCompUnit | eSymbolContextLineEntry); 1859 if (m_sc.comp_unit && m_sc.line_entry.IsValid()) { 1860 have_debuginfo = true; 1861 if (source_lines_before > 0 || source_lines_after > 0) { 1862 size_t num_lines = 1863 target->GetSourceManager().DisplaySourceLinesWithLineNumbers( 1864 m_sc.line_entry.file, m_sc.line_entry.line, 1865 m_sc.line_entry.column, source_lines_before, 1866 source_lines_after, "->", &strm); 1867 if (num_lines != 0) 1868 have_source = true; 1869 // TODO: Give here a one time warning if source file is missing. 1870 } 1871 } 1872 switch (disasm_display) { 1873 case Debugger::eStopDisassemblyTypeNever: 1874 break; 1875 1876 case Debugger::eStopDisassemblyTypeNoDebugInfo: 1877 if (have_debuginfo) 1878 break; 1879 LLVM_FALLTHROUGH; 1880 1881 case Debugger::eStopDisassemblyTypeNoSource: 1882 if (have_source) 1883 break; 1884 LLVM_FALLTHROUGH; 1885 1886 case Debugger::eStopDisassemblyTypeAlways: 1887 if (target) { 1888 const uint32_t disasm_lines = debugger.GetDisassemblyLineCount(); 1889 if (disasm_lines > 0) { 1890 const ArchSpec &target_arch = target->GetArchitecture(); 1891 AddressRange pc_range; 1892 pc_range.GetBaseAddress() = GetFrameCodeAddress(); 1893 pc_range.SetByteSize(disasm_lines * 1894 target_arch.GetMaximumOpcodeByteSize()); 1895 const char *plugin_name = nullptr; 1896 const char *flavor = nullptr; 1897 const bool mixed_source_and_assembly = false; 1898 Disassembler::Disassemble( 1899 target->GetDebugger(), target_arch, plugin_name, flavor, 1900 exe_ctx, pc_range, disasm_lines, mixed_source_and_assembly, 0, 1901 Disassembler::eOptionMarkPCAddress, strm); 1902 } 1903 } 1904 break; 1905 } 1906 } 1907 } 1908 return true; 1909 } 1910