1 //===- llvm/CodeGen/DwarfCompileUnit.cpp - Dwarf Compile Units ------------===//
2 //
3 // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions.
4 // See https://llvm.org/LICENSE.txt for license information.
5 // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
6 //
7 //===----------------------------------------------------------------------===//
8 //
9 // This file contains support for constructing a dwarf compile unit.
10 //
11 //===----------------------------------------------------------------------===//
12 
13 #include "DwarfCompileUnit.h"
14 #include "AddressPool.h"
15 #include "DwarfDebug.h"
16 #include "DwarfExpression.h"
17 #include "DwarfUnit.h"
18 #include "llvm/ADT/None.h"
19 #include "llvm/ADT/STLExtras.h"
20 #include "llvm/ADT/SmallString.h"
21 #include "llvm/ADT/SmallVector.h"
22 #include "llvm/ADT/StringRef.h"
23 #include "llvm/BinaryFormat/Dwarf.h"
24 #include "llvm/CodeGen/AsmPrinter.h"
25 #include "llvm/CodeGen/DIE.h"
26 #include "llvm/CodeGen/LexicalScopes.h"
27 #include "llvm/CodeGen/MachineFunction.h"
28 #include "llvm/CodeGen/MachineInstr.h"
29 #include "llvm/CodeGen/MachineOperand.h"
30 #include "llvm/CodeGen/TargetFrameLowering.h"
31 #include "llvm/CodeGen/TargetRegisterInfo.h"
32 #include "llvm/CodeGen/TargetSubtargetInfo.h"
33 #include "llvm/IR/DataLayout.h"
34 #include "llvm/IR/DebugInfo.h"
35 #include "llvm/IR/DebugInfoMetadata.h"
36 #include "llvm/IR/GlobalVariable.h"
37 #include "llvm/MC/MCSection.h"
38 #include "llvm/MC/MCStreamer.h"
39 #include "llvm/MC/MCSymbol.h"
40 #include "llvm/MC/MachineLocation.h"
41 #include "llvm/Support/Casting.h"
42 #include "llvm/Target/TargetLoweringObjectFile.h"
43 #include "llvm/Target/TargetMachine.h"
44 #include "llvm/Target/TargetOptions.h"
45 #include <algorithm>
46 #include <cassert>
47 #include <cstdint>
48 #include <iterator>
49 #include <memory>
50 #include <string>
51 #include <utility>
52 
53 using namespace llvm;
54 
55 DwarfCompileUnit::DwarfCompileUnit(unsigned UID, const DICompileUnit *Node,
56                                    AsmPrinter *A, DwarfDebug *DW,
57                                    DwarfFile *DWU)
58     : DwarfUnit(dwarf::DW_TAG_compile_unit, Node, A, DW, DWU), UniqueID(UID) {
59   insertDIE(Node, &getUnitDie());
60   MacroLabelBegin = Asm->createTempSymbol("cu_macro_begin");
61 }
62 
63 /// addLabelAddress - Add a dwarf label attribute data and value using
64 /// DW_FORM_addr or DW_FORM_GNU_addr_index.
65 void DwarfCompileUnit::addLabelAddress(DIE &Die, dwarf::Attribute Attribute,
66                                        const MCSymbol *Label) {
67   // Don't use the address pool in non-fission or in the skeleton unit itself.
68   // FIXME: Once GDB supports this, it's probably worthwhile using the address
69   // pool from the skeleton - maybe even in non-fission (possibly fewer
70   // relocations by sharing them in the pool, but we have other ideas about how
71   // to reduce the number of relocations as well/instead).
72   if ((!DD->useSplitDwarf() || !Skeleton) && DD->getDwarfVersion() < 5)
73     return addLocalLabelAddress(Die, Attribute, Label);
74 
75   if (Label)
76     DD->addArangeLabel(SymbolCU(this, Label));
77 
78   unsigned idx = DD->getAddressPool().getIndex(Label);
79   Die.addValue(DIEValueAllocator, Attribute,
80                DD->getDwarfVersion() >= 5 ? dwarf::DW_FORM_addrx
81                                           : dwarf::DW_FORM_GNU_addr_index,
82                DIEInteger(idx));
83 }
84 
85 void DwarfCompileUnit::addLocalLabelAddress(DIE &Die,
86                                             dwarf::Attribute Attribute,
87                                             const MCSymbol *Label) {
88   if (Label)
89     DD->addArangeLabel(SymbolCU(this, Label));
90 
91   if (Label)
92     Die.addValue(DIEValueAllocator, Attribute, dwarf::DW_FORM_addr,
93                  DIELabel(Label));
94   else
95     Die.addValue(DIEValueAllocator, Attribute, dwarf::DW_FORM_addr,
96                  DIEInteger(0));
97 }
98 
99 unsigned DwarfCompileUnit::getOrCreateSourceID(const DIFile *File) {
100   // If we print assembly, we can't separate .file entries according to
101   // compile units. Thus all files will belong to the default compile unit.
102 
103   // FIXME: add a better feature test than hasRawTextSupport. Even better,
104   // extend .file to support this.
105   unsigned CUID = Asm->OutStreamer->hasRawTextSupport() ? 0 : getUniqueID();
106   if (!File)
107     return Asm->OutStreamer->EmitDwarfFileDirective(0, "", "", None, None, CUID);
108   return Asm->OutStreamer->EmitDwarfFileDirective(
109       0, File->getDirectory(), File->getFilename(), getMD5AsBytes(File),
110       File->getSource(), CUID);
111 }
112 
113 DIE *DwarfCompileUnit::getOrCreateGlobalVariableDIE(
114     const DIGlobalVariable *GV, ArrayRef<GlobalExpr> GlobalExprs) {
115   // Check for pre-existence.
116   if (DIE *Die = getDIE(GV))
117     return Die;
118 
119   assert(GV);
120 
121   auto *GVContext = GV->getScope();
122   const DIType *GTy = GV->getType();
123 
124   // Construct the context before querying for the existence of the DIE in
125   // case such construction creates the DIE.
126   auto *CB = GVContext ? dyn_cast<DICommonBlock>(GVContext) : nullptr;
127   DIE *ContextDIE = CB ? getOrCreateCommonBlock(CB, GlobalExprs)
128     : getOrCreateContextDIE(GVContext);
129 
130   // Add to map.
131   DIE *VariableDIE = &createAndAddDIE(GV->getTag(), *ContextDIE, GV);
132   DIScope *DeclContext;
133   if (auto *SDMDecl = GV->getStaticDataMemberDeclaration()) {
134     DeclContext = SDMDecl->getScope();
135     assert(SDMDecl->isStaticMember() && "Expected static member decl");
136     assert(GV->isDefinition());
137     // We need the declaration DIE that is in the static member's class.
138     DIE *VariableSpecDIE = getOrCreateStaticMemberDIE(SDMDecl);
139     addDIEEntry(*VariableDIE, dwarf::DW_AT_specification, *VariableSpecDIE);
140     // If the global variable's type is different from the one in the class
141     // member type, assume that it's more specific and also emit it.
142     if (GTy != SDMDecl->getBaseType())
143       addType(*VariableDIE, GTy);
144   } else {
145     DeclContext = GV->getScope();
146     // Add name and type.
147     addString(*VariableDIE, dwarf::DW_AT_name, GV->getDisplayName());
148     addType(*VariableDIE, GTy);
149 
150     // Add scoping info.
151     if (!GV->isLocalToUnit())
152       addFlag(*VariableDIE, dwarf::DW_AT_external);
153 
154     // Add line number info.
155     addSourceLine(*VariableDIE, GV);
156   }
157 
158   if (!GV->isDefinition())
159     addFlag(*VariableDIE, dwarf::DW_AT_declaration);
160   else
161     addGlobalName(GV->getName(), *VariableDIE, DeclContext);
162 
163   if (uint32_t AlignInBytes = GV->getAlignInBytes())
164     addUInt(*VariableDIE, dwarf::DW_AT_alignment, dwarf::DW_FORM_udata,
165             AlignInBytes);
166 
167   if (MDTuple *TP = GV->getTemplateParams())
168     addTemplateParams(*VariableDIE, DINodeArray(TP));
169 
170   // Add location.
171   addLocationAttribute(VariableDIE, GV, GlobalExprs);
172 
173   return VariableDIE;
174 }
175 
176 void DwarfCompileUnit::addLocationAttribute(
177     DIE *VariableDIE, const DIGlobalVariable *GV, ArrayRef<GlobalExpr> GlobalExprs) {
178   bool addToAccelTable = false;
179   DIELoc *Loc = nullptr;
180   Optional<unsigned> NVPTXAddressSpace;
181   std::unique_ptr<DIEDwarfExpression> DwarfExpr;
182   for (const auto &GE : GlobalExprs) {
183     const GlobalVariable *Global = GE.Var;
184     const DIExpression *Expr = GE.Expr;
185 
186     // For compatibility with DWARF 3 and earlier,
187     // DW_AT_location(DW_OP_constu, X, DW_OP_stack_value) becomes
188     // DW_AT_const_value(X).
189     if (GlobalExprs.size() == 1 && Expr && Expr->isConstant()) {
190       addToAccelTable = true;
191       addConstantValue(*VariableDIE, /*Unsigned=*/true, Expr->getElement(1));
192       break;
193     }
194 
195     // We cannot describe the location of dllimport'd variables: the
196     // computation of their address requires loads from the IAT.
197     if (Global && Global->hasDLLImportStorageClass())
198       continue;
199 
200     // Nothing to describe without address or constant.
201     if (!Global && (!Expr || !Expr->isConstant()))
202       continue;
203 
204     if (Global && Global->isThreadLocal() &&
205         !Asm->getObjFileLowering().supportDebugThreadLocalLocation())
206       continue;
207 
208     if (!Loc) {
209       addToAccelTable = true;
210       Loc = new (DIEValueAllocator) DIELoc;
211       DwarfExpr = std::make_unique<DIEDwarfExpression>(*Asm, *this, *Loc);
212     }
213 
214     if (Expr) {
215       // According to
216       // https://docs.nvidia.com/cuda/archive/10.0/ptx-writers-guide-to-interoperability/index.html#cuda-specific-dwarf
217       // cuda-gdb requires DW_AT_address_class for all variables to be able to
218       // correctly interpret address space of the variable address.
219       // Decode DW_OP_constu <DWARF Address Space> DW_OP_swap DW_OP_xderef
220       // sequence for the NVPTX + gdb target.
221       unsigned LocalNVPTXAddressSpace;
222       if (Asm->TM.getTargetTriple().isNVPTX() && DD->tuneForGDB()) {
223         const DIExpression *NewExpr =
224             DIExpression::extractAddressClass(Expr, LocalNVPTXAddressSpace);
225         if (NewExpr != Expr) {
226           Expr = NewExpr;
227           NVPTXAddressSpace = LocalNVPTXAddressSpace;
228         }
229       }
230       DwarfExpr->addFragmentOffset(Expr);
231     }
232 
233     if (Global) {
234       const MCSymbol *Sym = Asm->getSymbol(Global);
235       if (Global->isThreadLocal()) {
236         if (Asm->TM.useEmulatedTLS()) {
237           // TODO: add debug info for emulated thread local mode.
238         } else {
239           // FIXME: Make this work with -gsplit-dwarf.
240           unsigned PointerSize = Asm->getDataLayout().getPointerSize();
241           assert((PointerSize == 4 || PointerSize == 8) &&
242                  "Add support for other sizes if necessary");
243           // Based on GCC's support for TLS:
244           if (!DD->useSplitDwarf()) {
245             // 1) Start with a constNu of the appropriate pointer size
246             addUInt(*Loc, dwarf::DW_FORM_data1,
247                     PointerSize == 4 ? dwarf::DW_OP_const4u
248                                      : dwarf::DW_OP_const8u);
249             // 2) containing the (relocated) offset of the TLS variable
250             //    within the module's TLS block.
251             addExpr(*Loc, dwarf::DW_FORM_udata,
252                     Asm->getObjFileLowering().getDebugThreadLocalSymbol(Sym));
253           } else {
254             addUInt(*Loc, dwarf::DW_FORM_data1, dwarf::DW_OP_GNU_const_index);
255             addUInt(*Loc, dwarf::DW_FORM_udata,
256                     DD->getAddressPool().getIndex(Sym, /* TLS */ true));
257           }
258           // 3) followed by an OP to make the debugger do a TLS lookup.
259           addUInt(*Loc, dwarf::DW_FORM_data1,
260                   DD->useGNUTLSOpcode() ? dwarf::DW_OP_GNU_push_tls_address
261                                         : dwarf::DW_OP_form_tls_address);
262         }
263       } else {
264         DD->addArangeLabel(SymbolCU(this, Sym));
265         addOpAddress(*Loc, Sym);
266       }
267     }
268     // Global variables attached to symbols are memory locations.
269     // It would be better if this were unconditional, but malformed input that
270     // mixes non-fragments and fragments for the same variable is too expensive
271     // to detect in the verifier.
272     if (DwarfExpr->isUnknownLocation())
273       DwarfExpr->setMemoryLocationKind();
274     DwarfExpr->addExpression(Expr);
275   }
276   if (Asm->TM.getTargetTriple().isNVPTX() && DD->tuneForGDB()) {
277     // According to
278     // https://docs.nvidia.com/cuda/archive/10.0/ptx-writers-guide-to-interoperability/index.html#cuda-specific-dwarf
279     // cuda-gdb requires DW_AT_address_class for all variables to be able to
280     // correctly interpret address space of the variable address.
281     const unsigned NVPTX_ADDR_global_space = 5;
282     addUInt(*VariableDIE, dwarf::DW_AT_address_class, dwarf::DW_FORM_data1,
283             NVPTXAddressSpace ? *NVPTXAddressSpace : NVPTX_ADDR_global_space);
284   }
285   if (Loc)
286     addBlock(*VariableDIE, dwarf::DW_AT_location, DwarfExpr->finalize());
287 
288   if (DD->useAllLinkageNames())
289     addLinkageName(*VariableDIE, GV->getLinkageName());
290 
291   if (addToAccelTable) {
292     DD->addAccelName(*CUNode, GV->getName(), *VariableDIE);
293 
294     // If the linkage name is different than the name, go ahead and output
295     // that as well into the name table.
296     if (GV->getLinkageName() != "" && GV->getName() != GV->getLinkageName() &&
297         DD->useAllLinkageNames())
298       DD->addAccelName(*CUNode, GV->getLinkageName(), *VariableDIE);
299   }
300 }
301 
302 DIE *DwarfCompileUnit::getOrCreateCommonBlock(
303     const DICommonBlock *CB, ArrayRef<GlobalExpr> GlobalExprs) {
304   // Construct the context before querying for the existence of the DIE in case
305   // such construction creates the DIE.
306   DIE *ContextDIE = getOrCreateContextDIE(CB->getScope());
307 
308   if (DIE *NDie = getDIE(CB))
309     return NDie;
310   DIE &NDie = createAndAddDIE(dwarf::DW_TAG_common_block, *ContextDIE, CB);
311   StringRef Name = CB->getName().empty() ? "_BLNK_" : CB->getName();
312   addString(NDie, dwarf::DW_AT_name, Name);
313   addGlobalName(Name, NDie, CB->getScope());
314   if (CB->getFile())
315     addSourceLine(NDie, CB->getLineNo(), CB->getFile());
316   if (DIGlobalVariable *V = CB->getDecl())
317     getCU().addLocationAttribute(&NDie, V, GlobalExprs);
318   return &NDie;
319 }
320 
321 void DwarfCompileUnit::addRange(RangeSpan Range) {
322   bool SameAsPrevCU = this == DD->getPrevCU();
323   DD->setPrevCU(this);
324   // If we have no current ranges just add the range and return, otherwise,
325   // check the current section and CU against the previous section and CU we
326   // emitted into and the subprogram was contained within. If these are the
327   // same then extend our current range, otherwise add this as a new range.
328   if (CURanges.empty() || !SameAsPrevCU ||
329       (&CURanges.back().End->getSection() !=
330        &Range.End->getSection())) {
331     CURanges.push_back(Range);
332     return;
333   }
334 
335   CURanges.back().End = Range.End;
336 }
337 
338 void DwarfCompileUnit::initStmtList() {
339   if (CUNode->isDebugDirectivesOnly())
340     return;
341 
342   // Define start line table label for each Compile Unit.
343   MCSymbol *LineTableStartSym;
344   const TargetLoweringObjectFile &TLOF = Asm->getObjFileLowering();
345   if (DD->useSectionsAsReferences()) {
346     LineTableStartSym = TLOF.getDwarfLineSection()->getBeginSymbol();
347   } else {
348     LineTableStartSym =
349         Asm->OutStreamer->getDwarfLineTableSymbol(getUniqueID());
350   }
351 
352   // DW_AT_stmt_list is a offset of line number information for this
353   // compile unit in debug_line section. For split dwarf this is
354   // left in the skeleton CU and so not included.
355   // The line table entries are not always emitted in assembly, so it
356   // is not okay to use line_table_start here.
357   StmtListValue =
358       addSectionLabel(getUnitDie(), dwarf::DW_AT_stmt_list, LineTableStartSym,
359                       TLOF.getDwarfLineSection()->getBeginSymbol());
360 }
361 
362 void DwarfCompileUnit::applyStmtList(DIE &D) {
363   D.addValue(DIEValueAllocator, *StmtListValue);
364 }
365 
366 void DwarfCompileUnit::attachLowHighPC(DIE &D, const MCSymbol *Begin,
367                                        const MCSymbol *End) {
368   assert(Begin && "Begin label should not be null!");
369   assert(End && "End label should not be null!");
370   assert(Begin->isDefined() && "Invalid starting label");
371   assert(End->isDefined() && "Invalid end label");
372 
373   addLabelAddress(D, dwarf::DW_AT_low_pc, Begin);
374   if (DD->getDwarfVersion() < 4)
375     addLabelAddress(D, dwarf::DW_AT_high_pc, End);
376   else
377     addLabelDelta(D, dwarf::DW_AT_high_pc, End, Begin);
378 }
379 
380 // Find DIE for the given subprogram and attach appropriate DW_AT_low_pc
381 // and DW_AT_high_pc attributes. If there are global variables in this
382 // scope then create and insert DIEs for these variables.
383 DIE &DwarfCompileUnit::updateSubprogramScopeDIE(const DISubprogram *SP) {
384   DIE *SPDie = getOrCreateSubprogramDIE(SP, includeMinimalInlineScopes());
385 
386   attachLowHighPC(*SPDie, Asm->getFunctionBegin(), Asm->getFunctionEnd());
387   if (DD->useAppleExtensionAttributes() &&
388       !DD->getCurrentFunction()->getTarget().Options.DisableFramePointerElim(
389           *DD->getCurrentFunction()))
390     addFlag(*SPDie, dwarf::DW_AT_APPLE_omit_frame_ptr);
391 
392   // Only include DW_AT_frame_base in full debug info
393   if (!includeMinimalInlineScopes()) {
394     if (Asm->MF->getTarget().getTargetTriple().isNVPTX()) {
395       DIELoc *Loc = new (DIEValueAllocator) DIELoc;
396       addUInt(*Loc, dwarf::DW_FORM_data1, dwarf::DW_OP_call_frame_cfa);
397       addBlock(*SPDie, dwarf::DW_AT_frame_base, Loc);
398     } else {
399       const TargetRegisterInfo *RI = Asm->MF->getSubtarget().getRegisterInfo();
400       MachineLocation Location(RI->getFrameRegister(*Asm->MF));
401       if (Register::isPhysicalRegister(Location.getReg()))
402         addAddress(*SPDie, dwarf::DW_AT_frame_base, Location);
403     }
404   }
405 
406   // Add name to the name table, we do this here because we're guaranteed
407   // to have concrete versions of our DW_TAG_subprogram nodes.
408   DD->addSubprogramNames(*CUNode, SP, *SPDie);
409 
410   return *SPDie;
411 }
412 
413 // Construct a DIE for this scope.
414 void DwarfCompileUnit::constructScopeDIE(
415     LexicalScope *Scope, SmallVectorImpl<DIE *> &FinalChildren) {
416   if (!Scope || !Scope->getScopeNode())
417     return;
418 
419   auto *DS = Scope->getScopeNode();
420 
421   assert((Scope->getInlinedAt() || !isa<DISubprogram>(DS)) &&
422          "Only handle inlined subprograms here, use "
423          "constructSubprogramScopeDIE for non-inlined "
424          "subprograms");
425 
426   SmallVector<DIE *, 8> Children;
427 
428   // We try to create the scope DIE first, then the children DIEs. This will
429   // avoid creating un-used children then removing them later when we find out
430   // the scope DIE is null.
431   DIE *ScopeDIE;
432   if (Scope->getParent() && isa<DISubprogram>(DS)) {
433     ScopeDIE = constructInlinedScopeDIE(Scope);
434     if (!ScopeDIE)
435       return;
436     // We create children when the scope DIE is not null.
437     createScopeChildrenDIE(Scope, Children);
438   } else {
439     // Early exit when we know the scope DIE is going to be null.
440     if (DD->isLexicalScopeDIENull(Scope))
441       return;
442 
443     bool HasNonScopeChildren = false;
444 
445     // We create children here when we know the scope DIE is not going to be
446     // null and the children will be added to the scope DIE.
447     createScopeChildrenDIE(Scope, Children, &HasNonScopeChildren);
448 
449     // If there are only other scopes as children, put them directly in the
450     // parent instead, as this scope would serve no purpose.
451     if (!HasNonScopeChildren) {
452       FinalChildren.insert(FinalChildren.end(),
453                            std::make_move_iterator(Children.begin()),
454                            std::make_move_iterator(Children.end()));
455       return;
456     }
457     ScopeDIE = constructLexicalScopeDIE(Scope);
458     assert(ScopeDIE && "Scope DIE should not be null.");
459   }
460 
461   // Add children
462   for (auto &I : Children)
463     ScopeDIE->addChild(std::move(I));
464 
465   FinalChildren.push_back(std::move(ScopeDIE));
466 }
467 
468 void DwarfCompileUnit::addScopeRangeList(DIE &ScopeDIE,
469                                          SmallVector<RangeSpan, 2> Range) {
470   const TargetLoweringObjectFile &TLOF = Asm->getObjFileLowering();
471 
472   // Emit the offset into .debug_ranges or .debug_rnglists as a relocatable
473   // label. emitDIE() will handle emitting it appropriately.
474   const MCSymbol *RangeSectionSym =
475       DD->getDwarfVersion() >= 5
476           ? TLOF.getDwarfRnglistsSection()->getBeginSymbol()
477           : TLOF.getDwarfRangesSection()->getBeginSymbol();
478 
479   HasRangeLists = true;
480 
481   // Add the range list to the set of ranges to be emitted.
482   auto IndexAndList =
483       (DD->getDwarfVersion() < 5 && Skeleton ? Skeleton->DU : DU)
484           ->addRange(*(Skeleton ? Skeleton : this), std::move(Range));
485 
486   uint32_t Index = IndexAndList.first;
487   auto &List = *IndexAndList.second;
488 
489   // Under fission, ranges are specified by constant offsets relative to the
490   // CU's DW_AT_GNU_ranges_base.
491   // FIXME: For DWARF v5, do not generate the DW_AT_ranges attribute under
492   // fission until we support the forms using the .debug_addr section
493   // (DW_RLE_startx_endx etc.).
494   if (DD->getDwarfVersion() >= 5)
495     addUInt(ScopeDIE, dwarf::DW_AT_ranges, dwarf::DW_FORM_rnglistx, Index);
496   else if (isDwoUnit())
497     addSectionDelta(ScopeDIE, dwarf::DW_AT_ranges, List.getSym(),
498                     RangeSectionSym);
499   else
500     addSectionLabel(ScopeDIE, dwarf::DW_AT_ranges, List.getSym(),
501                     RangeSectionSym);
502 }
503 
504 void DwarfCompileUnit::attachRangesOrLowHighPC(
505     DIE &Die, SmallVector<RangeSpan, 2> Ranges) {
506   if (Ranges.size() == 1 || !DD->useRangesSection()) {
507     const RangeSpan &Front = Ranges.front();
508     const RangeSpan &Back = Ranges.back();
509     attachLowHighPC(Die, Front.Begin, Back.End);
510   } else
511     addScopeRangeList(Die, std::move(Ranges));
512 }
513 
514 void DwarfCompileUnit::attachRangesOrLowHighPC(
515     DIE &Die, const SmallVectorImpl<InsnRange> &Ranges) {
516   SmallVector<RangeSpan, 2> List;
517   List.reserve(Ranges.size());
518   for (const InsnRange &R : Ranges)
519     List.push_back(
520         {DD->getLabelBeforeInsn(R.first), DD->getLabelAfterInsn(R.second)});
521   attachRangesOrLowHighPC(Die, std::move(List));
522 }
523 
524 // This scope represents inlined body of a function. Construct DIE to
525 // represent this concrete inlined copy of the function.
526 DIE *DwarfCompileUnit::constructInlinedScopeDIE(LexicalScope *Scope) {
527   assert(Scope->getScopeNode());
528   auto *DS = Scope->getScopeNode();
529   auto *InlinedSP = getDISubprogram(DS);
530   // Find the subprogram's DwarfCompileUnit in the SPMap in case the subprogram
531   // was inlined from another compile unit.
532   DIE *OriginDIE = getAbstractSPDies()[InlinedSP];
533   assert(OriginDIE && "Unable to find original DIE for an inlined subprogram.");
534 
535   auto ScopeDIE = DIE::get(DIEValueAllocator, dwarf::DW_TAG_inlined_subroutine);
536   addDIEEntry(*ScopeDIE, dwarf::DW_AT_abstract_origin, *OriginDIE);
537 
538   attachRangesOrLowHighPC(*ScopeDIE, Scope->getRanges());
539 
540   // Add the call site information to the DIE.
541   const DILocation *IA = Scope->getInlinedAt();
542   addUInt(*ScopeDIE, dwarf::DW_AT_call_file, None,
543           getOrCreateSourceID(IA->getFile()));
544   addUInt(*ScopeDIE, dwarf::DW_AT_call_line, None, IA->getLine());
545   if (IA->getColumn())
546     addUInt(*ScopeDIE, dwarf::DW_AT_call_column, None, IA->getColumn());
547   if (IA->getDiscriminator() && DD->getDwarfVersion() >= 4)
548     addUInt(*ScopeDIE, dwarf::DW_AT_GNU_discriminator, None,
549             IA->getDiscriminator());
550 
551   // Add name to the name table, we do this here because we're guaranteed
552   // to have concrete versions of our DW_TAG_inlined_subprogram nodes.
553   DD->addSubprogramNames(*CUNode, InlinedSP, *ScopeDIE);
554 
555   return ScopeDIE;
556 }
557 
558 // Construct new DW_TAG_lexical_block for this scope and attach
559 // DW_AT_low_pc/DW_AT_high_pc labels.
560 DIE *DwarfCompileUnit::constructLexicalScopeDIE(LexicalScope *Scope) {
561   if (DD->isLexicalScopeDIENull(Scope))
562     return nullptr;
563 
564   auto ScopeDIE = DIE::get(DIEValueAllocator, dwarf::DW_TAG_lexical_block);
565   if (Scope->isAbstractScope())
566     return ScopeDIE;
567 
568   attachRangesOrLowHighPC(*ScopeDIE, Scope->getRanges());
569 
570   return ScopeDIE;
571 }
572 
573 /// constructVariableDIE - Construct a DIE for the given DbgVariable.
574 DIE *DwarfCompileUnit::constructVariableDIE(DbgVariable &DV, bool Abstract) {
575   auto D = constructVariableDIEImpl(DV, Abstract);
576   DV.setDIE(*D);
577   return D;
578 }
579 
580 DIE *DwarfCompileUnit::constructLabelDIE(DbgLabel &DL,
581                                          const LexicalScope &Scope) {
582   auto LabelDie = DIE::get(DIEValueAllocator, DL.getTag());
583   insertDIE(DL.getLabel(), LabelDie);
584   DL.setDIE(*LabelDie);
585 
586   if (Scope.isAbstractScope())
587     applyLabelAttributes(DL, *LabelDie);
588 
589   return LabelDie;
590 }
591 
592 DIE *DwarfCompileUnit::constructVariableDIEImpl(const DbgVariable &DV,
593                                                 bool Abstract) {
594   // Define variable debug information entry.
595   auto VariableDie = DIE::get(DIEValueAllocator, DV.getTag());
596   insertDIE(DV.getVariable(), VariableDie);
597 
598   if (Abstract) {
599     applyVariableAttributes(DV, *VariableDie);
600     return VariableDie;
601   }
602 
603   // Add variable address.
604 
605   unsigned Offset = DV.getDebugLocListIndex();
606   if (Offset != ~0U) {
607     addLocationList(*VariableDie, dwarf::DW_AT_location, Offset);
608     return VariableDie;
609   }
610 
611   // Check if variable has a single location description.
612   if (auto *DVal = DV.getValueLoc()) {
613     if (DVal->isLocation())
614       addVariableAddress(DV, *VariableDie, DVal->getLoc());
615     else if (DVal->isInt()) {
616       auto *Expr = DV.getSingleExpression();
617       if (Expr && Expr->getNumElements()) {
618         DIELoc *Loc = new (DIEValueAllocator) DIELoc;
619         DIEDwarfExpression DwarfExpr(*Asm, *this, *Loc);
620         // If there is an expression, emit raw unsigned bytes.
621         DwarfExpr.addFragmentOffset(Expr);
622         DwarfExpr.addUnsignedConstant(DVal->getInt());
623         DwarfExpr.addExpression(Expr);
624         addBlock(*VariableDie, dwarf::DW_AT_location, DwarfExpr.finalize());
625       } else
626         addConstantValue(*VariableDie, DVal->getInt(), DV.getType());
627     } else if (DVal->isConstantFP()) {
628       addConstantFPValue(*VariableDie, DVal->getConstantFP());
629     } else if (DVal->isConstantInt()) {
630       addConstantValue(*VariableDie, DVal->getConstantInt(), DV.getType());
631     }
632     return VariableDie;
633   }
634 
635   // .. else use frame index.
636   if (!DV.hasFrameIndexExprs())
637     return VariableDie;
638 
639   Optional<unsigned> NVPTXAddressSpace;
640   DIELoc *Loc = new (DIEValueAllocator) DIELoc;
641   DIEDwarfExpression DwarfExpr(*Asm, *this, *Loc);
642   for (auto &Fragment : DV.getFrameIndexExprs()) {
643     unsigned FrameReg = 0;
644     const DIExpression *Expr = Fragment.Expr;
645     const TargetFrameLowering *TFI = Asm->MF->getSubtarget().getFrameLowering();
646     int Offset = TFI->getFrameIndexReference(*Asm->MF, Fragment.FI, FrameReg);
647     DwarfExpr.addFragmentOffset(Expr);
648     SmallVector<uint64_t, 8> Ops;
649     DIExpression::appendOffset(Ops, Offset);
650     // According to
651     // https://docs.nvidia.com/cuda/archive/10.0/ptx-writers-guide-to-interoperability/index.html#cuda-specific-dwarf
652     // cuda-gdb requires DW_AT_address_class for all variables to be able to
653     // correctly interpret address space of the variable address.
654     // Decode DW_OP_constu <DWARF Address Space> DW_OP_swap DW_OP_xderef
655     // sequence for the NVPTX + gdb target.
656     unsigned LocalNVPTXAddressSpace;
657     if (Asm->TM.getTargetTriple().isNVPTX() && DD->tuneForGDB()) {
658       const DIExpression *NewExpr =
659           DIExpression::extractAddressClass(Expr, LocalNVPTXAddressSpace);
660       if (NewExpr != Expr) {
661         Expr = NewExpr;
662         NVPTXAddressSpace = LocalNVPTXAddressSpace;
663       }
664     }
665     if (Expr)
666       Ops.append(Expr->elements_begin(), Expr->elements_end());
667     DIExpressionCursor Cursor(Ops);
668     DwarfExpr.setMemoryLocationKind();
669     if (const MCSymbol *FrameSymbol = Asm->getFunctionFrameSymbol())
670       addOpAddress(*Loc, FrameSymbol);
671     else
672       DwarfExpr.addMachineRegExpression(
673           *Asm->MF->getSubtarget().getRegisterInfo(), Cursor, FrameReg);
674     DwarfExpr.addExpression(std::move(Cursor));
675   }
676   if (Asm->TM.getTargetTriple().isNVPTX() && DD->tuneForGDB()) {
677     // According to
678     // https://docs.nvidia.com/cuda/archive/10.0/ptx-writers-guide-to-interoperability/index.html#cuda-specific-dwarf
679     // cuda-gdb requires DW_AT_address_class for all variables to be able to
680     // correctly interpret address space of the variable address.
681     const unsigned NVPTX_ADDR_local_space = 6;
682     addUInt(*VariableDie, dwarf::DW_AT_address_class, dwarf::DW_FORM_data1,
683             NVPTXAddressSpace ? *NVPTXAddressSpace : NVPTX_ADDR_local_space);
684   }
685   addBlock(*VariableDie, dwarf::DW_AT_location, DwarfExpr.finalize());
686   if (DwarfExpr.TagOffset)
687     addUInt(*VariableDie, dwarf::DW_AT_LLVM_tag_offset, dwarf::DW_FORM_data1,
688             *DwarfExpr.TagOffset);
689 
690   return VariableDie;
691 }
692 
693 DIE *DwarfCompileUnit::constructVariableDIE(DbgVariable &DV,
694                                             const LexicalScope &Scope,
695                                             DIE *&ObjectPointer) {
696   auto Var = constructVariableDIE(DV, Scope.isAbstractScope());
697   if (DV.isObjectPointer())
698     ObjectPointer = Var;
699   return Var;
700 }
701 
702 /// Return all DIVariables that appear in count: expressions.
703 static SmallVector<const DIVariable *, 2> dependencies(DbgVariable *Var) {
704   SmallVector<const DIVariable *, 2> Result;
705   auto *Array = dyn_cast<DICompositeType>(Var->getType());
706   if (!Array || Array->getTag() != dwarf::DW_TAG_array_type)
707     return Result;
708   for (auto *El : Array->getElements()) {
709     if (auto *Subrange = dyn_cast<DISubrange>(El)) {
710       auto Count = Subrange->getCount();
711       if (auto *Dependency = Count.dyn_cast<DIVariable *>())
712         Result.push_back(Dependency);
713     }
714   }
715   return Result;
716 }
717 
718 /// Sort local variables so that variables appearing inside of helper
719 /// expressions come first.
720 static SmallVector<DbgVariable *, 8>
721 sortLocalVars(SmallVectorImpl<DbgVariable *> &Input) {
722   SmallVector<DbgVariable *, 8> Result;
723   SmallVector<PointerIntPair<DbgVariable *, 1>, 8> WorkList;
724   // Map back from a DIVariable to its containing DbgVariable.
725   SmallDenseMap<const DILocalVariable *, DbgVariable *> DbgVar;
726   // Set of DbgVariables in Result.
727   SmallDenseSet<DbgVariable *, 8> Visited;
728   // For cycle detection.
729   SmallDenseSet<DbgVariable *, 8> Visiting;
730 
731   // Initialize the worklist and the DIVariable lookup table.
732   for (auto Var : reverse(Input)) {
733     DbgVar.insert({Var->getVariable(), Var});
734     WorkList.push_back({Var, 0});
735   }
736 
737   // Perform a stable topological sort by doing a DFS.
738   while (!WorkList.empty()) {
739     auto Item = WorkList.back();
740     DbgVariable *Var = Item.getPointer();
741     bool visitedAllDependencies = Item.getInt();
742     WorkList.pop_back();
743 
744     // Dependency is in a different lexical scope or a global.
745     if (!Var)
746       continue;
747 
748     // Already handled.
749     if (Visited.count(Var))
750       continue;
751 
752     // Add to Result if all dependencies are visited.
753     if (visitedAllDependencies) {
754       Visited.insert(Var);
755       Result.push_back(Var);
756       continue;
757     }
758 
759     // Detect cycles.
760     auto Res = Visiting.insert(Var);
761     if (!Res.second) {
762       assert(false && "dependency cycle in local variables");
763       return Result;
764     }
765 
766     // Push dependencies and this node onto the worklist, so that this node is
767     // visited again after all of its dependencies are handled.
768     WorkList.push_back({Var, 1});
769     for (auto *Dependency : dependencies(Var)) {
770       auto Dep = dyn_cast_or_null<const DILocalVariable>(Dependency);
771       WorkList.push_back({DbgVar[Dep], 0});
772     }
773   }
774   return Result;
775 }
776 
777 DIE *DwarfCompileUnit::createScopeChildrenDIE(LexicalScope *Scope,
778                                               SmallVectorImpl<DIE *> &Children,
779                                               bool *HasNonScopeChildren) {
780   assert(Children.empty());
781   DIE *ObjectPointer = nullptr;
782 
783   // Emit function arguments (order is significant).
784   auto Vars = DU->getScopeVariables().lookup(Scope);
785   for (auto &DV : Vars.Args)
786     Children.push_back(constructVariableDIE(*DV.second, *Scope, ObjectPointer));
787 
788   // Emit local variables.
789   auto Locals = sortLocalVars(Vars.Locals);
790   for (DbgVariable *DV : Locals)
791     Children.push_back(constructVariableDIE(*DV, *Scope, ObjectPointer));
792 
793   // Skip imported directives in gmlt-like data.
794   if (!includeMinimalInlineScopes()) {
795     // There is no need to emit empty lexical block DIE.
796     for (const auto *IE : ImportedEntities[Scope->getScopeNode()])
797       Children.push_back(
798           constructImportedEntityDIE(cast<DIImportedEntity>(IE)));
799   }
800 
801   if (HasNonScopeChildren)
802     *HasNonScopeChildren = !Children.empty();
803 
804   for (DbgLabel *DL : DU->getScopeLabels().lookup(Scope))
805     Children.push_back(constructLabelDIE(*DL, *Scope));
806 
807   for (LexicalScope *LS : Scope->getChildren())
808     constructScopeDIE(LS, Children);
809 
810   return ObjectPointer;
811 }
812 
813 DIE &DwarfCompileUnit::constructSubprogramScopeDIE(const DISubprogram *Sub,
814                                                    LexicalScope *Scope) {
815   DIE &ScopeDIE = updateSubprogramScopeDIE(Sub);
816 
817   if (Scope) {
818     assert(!Scope->getInlinedAt());
819     assert(!Scope->isAbstractScope());
820     // Collect lexical scope children first.
821     // ObjectPointer might be a local (non-argument) local variable if it's a
822     // block's synthetic this pointer.
823     if (DIE *ObjectPointer = createAndAddScopeChildren(Scope, ScopeDIE))
824       addDIEEntry(ScopeDIE, dwarf::DW_AT_object_pointer, *ObjectPointer);
825   }
826 
827   // If this is a variadic function, add an unspecified parameter.
828   DITypeRefArray FnArgs = Sub->getType()->getTypeArray();
829 
830   // If we have a single element of null, it is a function that returns void.
831   // If we have more than one elements and the last one is null, it is a
832   // variadic function.
833   if (FnArgs.size() > 1 && !FnArgs[FnArgs.size() - 1] &&
834       !includeMinimalInlineScopes())
835     ScopeDIE.addChild(
836         DIE::get(DIEValueAllocator, dwarf::DW_TAG_unspecified_parameters));
837 
838   return ScopeDIE;
839 }
840 
841 DIE *DwarfCompileUnit::createAndAddScopeChildren(LexicalScope *Scope,
842                                                  DIE &ScopeDIE) {
843   // We create children when the scope DIE is not null.
844   SmallVector<DIE *, 8> Children;
845   DIE *ObjectPointer = createScopeChildrenDIE(Scope, Children);
846 
847   // Add children
848   for (auto &I : Children)
849     ScopeDIE.addChild(std::move(I));
850 
851   return ObjectPointer;
852 }
853 
854 void DwarfCompileUnit::constructAbstractSubprogramScopeDIE(
855     LexicalScope *Scope) {
856   DIE *&AbsDef = getAbstractSPDies()[Scope->getScopeNode()];
857   if (AbsDef)
858     return;
859 
860   auto *SP = cast<DISubprogram>(Scope->getScopeNode());
861 
862   DIE *ContextDIE;
863   DwarfCompileUnit *ContextCU = this;
864 
865   if (includeMinimalInlineScopes())
866     ContextDIE = &getUnitDie();
867   // Some of this is duplicated from DwarfUnit::getOrCreateSubprogramDIE, with
868   // the important distinction that the debug node is not associated with the
869   // DIE (since the debug node will be associated with the concrete DIE, if
870   // any). It could be refactored to some common utility function.
871   else if (auto *SPDecl = SP->getDeclaration()) {
872     ContextDIE = &getUnitDie();
873     getOrCreateSubprogramDIE(SPDecl);
874   } else {
875     ContextDIE = getOrCreateContextDIE(SP->getScope());
876     // The scope may be shared with a subprogram that has already been
877     // constructed in another CU, in which case we need to construct this
878     // subprogram in the same CU.
879     ContextCU = DD->lookupCU(ContextDIE->getUnitDie());
880   }
881 
882   // Passing null as the associated node because the abstract definition
883   // shouldn't be found by lookup.
884   AbsDef = &ContextCU->createAndAddDIE(dwarf::DW_TAG_subprogram, *ContextDIE, nullptr);
885   ContextCU->applySubprogramAttributesToDefinition(SP, *AbsDef);
886 
887   if (!ContextCU->includeMinimalInlineScopes())
888     ContextCU->addUInt(*AbsDef, dwarf::DW_AT_inline, None, dwarf::DW_INL_inlined);
889   if (DIE *ObjectPointer = ContextCU->createAndAddScopeChildren(Scope, *AbsDef))
890     ContextCU->addDIEEntry(*AbsDef, dwarf::DW_AT_object_pointer, *ObjectPointer);
891 }
892 
893 /// Whether to use the GNU analog for a DWARF5 tag, attribute, or location atom.
894 static bool useGNUAnalogForDwarf5Feature(DwarfDebug *DD) {
895   return DD->getDwarfVersion() == 4 && DD->tuneForGDB();
896 }
897 
898 dwarf::Tag DwarfCompileUnit::getDwarf5OrGNUTag(dwarf::Tag Tag) const {
899   if (!useGNUAnalogForDwarf5Feature(DD))
900     return Tag;
901   switch (Tag) {
902   case dwarf::DW_TAG_call_site:
903     return dwarf::DW_TAG_GNU_call_site;
904   case dwarf::DW_TAG_call_site_parameter:
905     return dwarf::DW_TAG_GNU_call_site_parameter;
906   default:
907     llvm_unreachable("DWARF5 tag with no GNU analog");
908   }
909 }
910 
911 dwarf::Attribute
912 DwarfCompileUnit::getDwarf5OrGNUAttr(dwarf::Attribute Attr) const {
913   if (!useGNUAnalogForDwarf5Feature(DD))
914     return Attr;
915   switch (Attr) {
916   case dwarf::DW_AT_call_all_calls:
917     return dwarf::DW_AT_GNU_all_call_sites;
918   case dwarf::DW_AT_call_target:
919     return dwarf::DW_AT_GNU_call_site_target;
920   case dwarf::DW_AT_call_origin:
921     return dwarf::DW_AT_abstract_origin;
922   case dwarf::DW_AT_call_pc:
923     return dwarf::DW_AT_low_pc;
924   case dwarf::DW_AT_call_value:
925     return dwarf::DW_AT_GNU_call_site_value;
926   case dwarf::DW_AT_call_tail_call:
927     return dwarf::DW_AT_GNU_tail_call;
928   default:
929     llvm_unreachable("DWARF5 attribute with no GNU analog");
930   }
931 }
932 
933 dwarf::LocationAtom
934 DwarfCompileUnit::getDwarf5OrGNULocationAtom(dwarf::LocationAtom Loc) const {
935   if (!useGNUAnalogForDwarf5Feature(DD))
936     return Loc;
937   switch (Loc) {
938   case dwarf::DW_OP_entry_value:
939     return dwarf::DW_OP_GNU_entry_value;
940   default:
941     llvm_unreachable("DWARF5 location atom with no GNU analog");
942   }
943 }
944 
945 DIE &DwarfCompileUnit::constructCallSiteEntryDIE(
946     DIE &ScopeDIE, const DISubprogram *CalleeSP, bool IsTail,
947     const MCSymbol *PCAddr, const MCExpr *PCOffset, unsigned CallReg) {
948   // Insert a call site entry DIE within ScopeDIE.
949   DIE &CallSiteDIE = createAndAddDIE(getDwarf5OrGNUTag(dwarf::DW_TAG_call_site),
950                                      ScopeDIE, nullptr);
951 
952   if (CallReg) {
953     // Indirect call.
954     addAddress(CallSiteDIE, getDwarf5OrGNUAttr(dwarf::DW_AT_call_target),
955                MachineLocation(CallReg));
956   } else {
957     DIE *CalleeDIE = getOrCreateSubprogramDIE(CalleeSP);
958     assert(CalleeDIE && "Could not create DIE for call site entry origin");
959     addDIEEntry(CallSiteDIE, getDwarf5OrGNUAttr(dwarf::DW_AT_call_origin),
960                 *CalleeDIE);
961   }
962 
963   if (IsTail)
964     // Attach DW_AT_call_tail_call to tail calls for standards compliance.
965     addFlag(CallSiteDIE, getDwarf5OrGNUAttr(dwarf::DW_AT_call_tail_call));
966 
967   // Attach the return PC to allow the debugger to disambiguate call paths
968   // from one function to another.
969   if (DD->getDwarfVersion() == 4 && DD->tuneForGDB()) {
970     assert(PCAddr && "Missing PC information for a call");
971     addLabelAddress(CallSiteDIE, dwarf::DW_AT_low_pc, PCAddr);
972   } else if (!IsTail || DD->tuneForGDB()) {
973     assert(PCOffset && "Missing return PC information for a call");
974     addAddressExpr(CallSiteDIE, dwarf::DW_AT_call_return_pc, PCOffset);
975   }
976 
977   return CallSiteDIE;
978 }
979 
980 void DwarfCompileUnit::constructCallSiteParmEntryDIEs(
981     DIE &CallSiteDIE, SmallVector<DbgCallSiteParam, 4> &Params) {
982   for (const auto &Param : Params) {
983     unsigned Register = Param.getRegister();
984     auto CallSiteDieParam =
985         DIE::get(DIEValueAllocator,
986                  getDwarf5OrGNUTag(dwarf::DW_TAG_call_site_parameter));
987     insertDIE(CallSiteDieParam);
988     addAddress(*CallSiteDieParam, dwarf::DW_AT_location,
989                MachineLocation(Register));
990 
991     DIELoc *Loc = new (DIEValueAllocator) DIELoc;
992     DIEDwarfExpression DwarfExpr(*Asm, *this, *Loc);
993     DwarfExpr.setCallSiteParamValueFlag();
994 
995     DwarfDebug::emitDebugLocValue(*Asm, nullptr, Param.getValue(), DwarfExpr);
996 
997     addBlock(*CallSiteDieParam, getDwarf5OrGNUAttr(dwarf::DW_AT_call_value),
998              DwarfExpr.finalize());
999 
1000     CallSiteDIE.addChild(CallSiteDieParam);
1001   }
1002 }
1003 
1004 DIE *DwarfCompileUnit::constructImportedEntityDIE(
1005     const DIImportedEntity *Module) {
1006   DIE *IMDie = DIE::get(DIEValueAllocator, (dwarf::Tag)Module->getTag());
1007   insertDIE(Module, IMDie);
1008   DIE *EntityDie;
1009   auto *Entity = Module->getEntity();
1010   if (auto *NS = dyn_cast<DINamespace>(Entity))
1011     EntityDie = getOrCreateNameSpace(NS);
1012   else if (auto *M = dyn_cast<DIModule>(Entity))
1013     EntityDie = getOrCreateModule(M);
1014   else if (auto *SP = dyn_cast<DISubprogram>(Entity))
1015     EntityDie = getOrCreateSubprogramDIE(SP);
1016   else if (auto *T = dyn_cast<DIType>(Entity))
1017     EntityDie = getOrCreateTypeDIE(T);
1018   else if (auto *GV = dyn_cast<DIGlobalVariable>(Entity))
1019     EntityDie = getOrCreateGlobalVariableDIE(GV, {});
1020   else
1021     EntityDie = getDIE(Entity);
1022   assert(EntityDie);
1023   addSourceLine(*IMDie, Module->getLine(), Module->getFile());
1024   addDIEEntry(*IMDie, dwarf::DW_AT_import, *EntityDie);
1025   StringRef Name = Module->getName();
1026   if (!Name.empty())
1027     addString(*IMDie, dwarf::DW_AT_name, Name);
1028 
1029   return IMDie;
1030 }
1031 
1032 void DwarfCompileUnit::finishSubprogramDefinition(const DISubprogram *SP) {
1033   DIE *D = getDIE(SP);
1034   if (DIE *AbsSPDIE = getAbstractSPDies().lookup(SP)) {
1035     if (D)
1036       // If this subprogram has an abstract definition, reference that
1037       addDIEEntry(*D, dwarf::DW_AT_abstract_origin, *AbsSPDIE);
1038   } else {
1039     assert(D || includeMinimalInlineScopes());
1040     if (D)
1041       // And attach the attributes
1042       applySubprogramAttributesToDefinition(SP, *D);
1043   }
1044 }
1045 
1046 void DwarfCompileUnit::finishEntityDefinition(const DbgEntity *Entity) {
1047   DbgEntity *AbsEntity = getExistingAbstractEntity(Entity->getEntity());
1048 
1049   auto *Die = Entity->getDIE();
1050   /// Label may be used to generate DW_AT_low_pc, so put it outside
1051   /// if/else block.
1052   const DbgLabel *Label = nullptr;
1053   if (AbsEntity && AbsEntity->getDIE()) {
1054     addDIEEntry(*Die, dwarf::DW_AT_abstract_origin, *AbsEntity->getDIE());
1055     Label = dyn_cast<const DbgLabel>(Entity);
1056   } else {
1057     if (const DbgVariable *Var = dyn_cast<const DbgVariable>(Entity))
1058       applyVariableAttributes(*Var, *Die);
1059     else if ((Label = dyn_cast<const DbgLabel>(Entity)))
1060       applyLabelAttributes(*Label, *Die);
1061     else
1062       llvm_unreachable("DbgEntity must be DbgVariable or DbgLabel.");
1063   }
1064 
1065   if (Label)
1066     if (const auto *Sym = Label->getSymbol())
1067       addLabelAddress(*Die, dwarf::DW_AT_low_pc, Sym);
1068 }
1069 
1070 DbgEntity *DwarfCompileUnit::getExistingAbstractEntity(const DINode *Node) {
1071   auto &AbstractEntities = getAbstractEntities();
1072   auto I = AbstractEntities.find(Node);
1073   if (I != AbstractEntities.end())
1074     return I->second.get();
1075   return nullptr;
1076 }
1077 
1078 void DwarfCompileUnit::createAbstractEntity(const DINode *Node,
1079                                             LexicalScope *Scope) {
1080   assert(Scope && Scope->isAbstractScope());
1081   auto &Entity = getAbstractEntities()[Node];
1082   if (isa<const DILocalVariable>(Node)) {
1083     Entity = std::make_unique<DbgVariable>(
1084                         cast<const DILocalVariable>(Node), nullptr /* IA */);;
1085     DU->addScopeVariable(Scope, cast<DbgVariable>(Entity.get()));
1086   } else if (isa<const DILabel>(Node)) {
1087     Entity = std::make_unique<DbgLabel>(
1088                         cast<const DILabel>(Node), nullptr /* IA */);
1089     DU->addScopeLabel(Scope, cast<DbgLabel>(Entity.get()));
1090   }
1091 }
1092 
1093 void DwarfCompileUnit::emitHeader(bool UseOffsets) {
1094   // Don't bother labeling the .dwo unit, as its offset isn't used.
1095   if (!Skeleton && !DD->useSectionsAsReferences()) {
1096     LabelBegin = Asm->createTempSymbol("cu_begin");
1097     Asm->OutStreamer->EmitLabel(LabelBegin);
1098   }
1099 
1100   dwarf::UnitType UT = Skeleton ? dwarf::DW_UT_split_compile
1101                                 : DD->useSplitDwarf() ? dwarf::DW_UT_skeleton
1102                                                       : dwarf::DW_UT_compile;
1103   DwarfUnit::emitCommonHeader(UseOffsets, UT);
1104   if (DD->getDwarfVersion() >= 5 && UT != dwarf::DW_UT_compile)
1105     Asm->emitInt64(getDWOId());
1106 }
1107 
1108 bool DwarfCompileUnit::hasDwarfPubSections() const {
1109   switch (CUNode->getNameTableKind()) {
1110   case DICompileUnit::DebugNameTableKind::None:
1111     return false;
1112     // Opting in to GNU Pubnames/types overrides the default to ensure these are
1113     // generated for things like Gold's gdb_index generation.
1114   case DICompileUnit::DebugNameTableKind::GNU:
1115     return true;
1116   case DICompileUnit::DebugNameTableKind::Default:
1117     return DD->tuneForGDB() && !includeMinimalInlineScopes() &&
1118            !CUNode->isDebugDirectivesOnly() &&
1119            DD->getAccelTableKind() != AccelTableKind::Apple &&
1120            DD->getDwarfVersion() < 5;
1121   }
1122   llvm_unreachable("Unhandled DICompileUnit::DebugNameTableKind enum");
1123 }
1124 
1125 /// addGlobalName - Add a new global name to the compile unit.
1126 void DwarfCompileUnit::addGlobalName(StringRef Name, const DIE &Die,
1127                                      const DIScope *Context) {
1128   if (!hasDwarfPubSections())
1129     return;
1130   std::string FullName = getParentContextString(Context) + Name.str();
1131   GlobalNames[FullName] = &Die;
1132 }
1133 
1134 void DwarfCompileUnit::addGlobalNameForTypeUnit(StringRef Name,
1135                                                 const DIScope *Context) {
1136   if (!hasDwarfPubSections())
1137     return;
1138   std::string FullName = getParentContextString(Context) + Name.str();
1139   // Insert, allowing the entry to remain as-is if it's already present
1140   // This way the CU-level type DIE is preferred over the "can't describe this
1141   // type as a unit offset because it's not really in the CU at all, it's only
1142   // in a type unit"
1143   GlobalNames.insert(std::make_pair(std::move(FullName), &getUnitDie()));
1144 }
1145 
1146 /// Add a new global type to the unit.
1147 void DwarfCompileUnit::addGlobalType(const DIType *Ty, const DIE &Die,
1148                                      const DIScope *Context) {
1149   if (!hasDwarfPubSections())
1150     return;
1151   std::string FullName = getParentContextString(Context) + Ty->getName().str();
1152   GlobalTypes[FullName] = &Die;
1153 }
1154 
1155 void DwarfCompileUnit::addGlobalTypeUnitType(const DIType *Ty,
1156                                              const DIScope *Context) {
1157   if (!hasDwarfPubSections())
1158     return;
1159   std::string FullName = getParentContextString(Context) + Ty->getName().str();
1160   // Insert, allowing the entry to remain as-is if it's already present
1161   // This way the CU-level type DIE is preferred over the "can't describe this
1162   // type as a unit offset because it's not really in the CU at all, it's only
1163   // in a type unit"
1164   GlobalTypes.insert(std::make_pair(std::move(FullName), &getUnitDie()));
1165 }
1166 
1167 void DwarfCompileUnit::addVariableAddress(const DbgVariable &DV, DIE &Die,
1168                                           MachineLocation Location) {
1169   if (DV.hasComplexAddress())
1170     addComplexAddress(DV, Die, dwarf::DW_AT_location, Location);
1171   else
1172     addAddress(Die, dwarf::DW_AT_location, Location);
1173 }
1174 
1175 /// Add an address attribute to a die based on the location provided.
1176 void DwarfCompileUnit::addAddress(DIE &Die, dwarf::Attribute Attribute,
1177                                   const MachineLocation &Location) {
1178   DIELoc *Loc = new (DIEValueAllocator) DIELoc;
1179   DIEDwarfExpression DwarfExpr(*Asm, *this, *Loc);
1180   if (Location.isIndirect())
1181     DwarfExpr.setMemoryLocationKind();
1182 
1183   DIExpressionCursor Cursor({});
1184   const TargetRegisterInfo &TRI = *Asm->MF->getSubtarget().getRegisterInfo();
1185   if (!DwarfExpr.addMachineRegExpression(TRI, Cursor, Location.getReg()))
1186     return;
1187   DwarfExpr.addExpression(std::move(Cursor));
1188 
1189   // Now attach the location information to the DIE.
1190   addBlock(Die, Attribute, DwarfExpr.finalize());
1191 }
1192 
1193 /// Start with the address based on the location provided, and generate the
1194 /// DWARF information necessary to find the actual variable given the extra
1195 /// address information encoded in the DbgVariable, starting from the starting
1196 /// location.  Add the DWARF information to the die.
1197 void DwarfCompileUnit::addComplexAddress(const DbgVariable &DV, DIE &Die,
1198                                          dwarf::Attribute Attribute,
1199                                          const MachineLocation &Location) {
1200   DIELoc *Loc = new (DIEValueAllocator) DIELoc;
1201   DIEDwarfExpression DwarfExpr(*Asm, *this, *Loc);
1202   const DIExpression *DIExpr = DV.getSingleExpression();
1203   DwarfExpr.addFragmentOffset(DIExpr);
1204   if (Location.isIndirect())
1205     DwarfExpr.setMemoryLocationKind();
1206 
1207   DIExpressionCursor Cursor(DIExpr);
1208 
1209   if (DIExpr->isEntryValue()) {
1210     DwarfExpr.setEntryValueFlag();
1211     DwarfExpr.addEntryValueExpression(Cursor);
1212   }
1213 
1214   const TargetRegisterInfo &TRI = *Asm->MF->getSubtarget().getRegisterInfo();
1215   if (!DwarfExpr.addMachineRegExpression(TRI, Cursor, Location.getReg()))
1216     return;
1217   DwarfExpr.addExpression(std::move(Cursor));
1218 
1219   // Now attach the location information to the DIE.
1220   addBlock(Die, Attribute, DwarfExpr.finalize());
1221 }
1222 
1223 /// Add a Dwarf loclistptr attribute data and value.
1224 void DwarfCompileUnit::addLocationList(DIE &Die, dwarf::Attribute Attribute,
1225                                        unsigned Index) {
1226   dwarf::Form Form = DD->getDwarfVersion() >= 4 ? dwarf::DW_FORM_sec_offset
1227                                                 : dwarf::DW_FORM_data4;
1228   Die.addValue(DIEValueAllocator, Attribute, Form, DIELocList(Index));
1229 }
1230 
1231 void DwarfCompileUnit::applyVariableAttributes(const DbgVariable &Var,
1232                                                DIE &VariableDie) {
1233   StringRef Name = Var.getName();
1234   if (!Name.empty())
1235     addString(VariableDie, dwarf::DW_AT_name, Name);
1236   const auto *DIVar = Var.getVariable();
1237   if (DIVar)
1238     if (uint32_t AlignInBytes = DIVar->getAlignInBytes())
1239       addUInt(VariableDie, dwarf::DW_AT_alignment, dwarf::DW_FORM_udata,
1240               AlignInBytes);
1241 
1242   addSourceLine(VariableDie, DIVar);
1243   addType(VariableDie, Var.getType());
1244   if (Var.isArtificial())
1245     addFlag(VariableDie, dwarf::DW_AT_artificial);
1246 }
1247 
1248 void DwarfCompileUnit::applyLabelAttributes(const DbgLabel &Label,
1249                                             DIE &LabelDie) {
1250   StringRef Name = Label.getName();
1251   if (!Name.empty())
1252     addString(LabelDie, dwarf::DW_AT_name, Name);
1253   const auto *DILabel = Label.getLabel();
1254   addSourceLine(LabelDie, DILabel);
1255 }
1256 
1257 /// Add a Dwarf expression attribute data and value.
1258 void DwarfCompileUnit::addExpr(DIELoc &Die, dwarf::Form Form,
1259                                const MCExpr *Expr) {
1260   Die.addValue(DIEValueAllocator, (dwarf::Attribute)0, Form, DIEExpr(Expr));
1261 }
1262 
1263 void DwarfCompileUnit::addAddressExpr(DIE &Die, dwarf::Attribute Attribute,
1264                                       const MCExpr *Expr) {
1265   Die.addValue(DIEValueAllocator, Attribute, dwarf::DW_FORM_addr,
1266                DIEExpr(Expr));
1267 }
1268 
1269 void DwarfCompileUnit::applySubprogramAttributesToDefinition(
1270     const DISubprogram *SP, DIE &SPDie) {
1271   auto *SPDecl = SP->getDeclaration();
1272   auto *Context = SPDecl ? SPDecl->getScope() : SP->getScope();
1273   applySubprogramAttributes(SP, SPDie, includeMinimalInlineScopes());
1274   addGlobalName(SP->getName(), SPDie, Context);
1275 }
1276 
1277 bool DwarfCompileUnit::isDwoUnit() const {
1278   return DD->useSplitDwarf() && Skeleton;
1279 }
1280 
1281 void DwarfCompileUnit::finishNonUnitTypeDIE(DIE& D, const DICompositeType *CTy) {
1282   constructTypeDIE(D, CTy);
1283 }
1284 
1285 bool DwarfCompileUnit::includeMinimalInlineScopes() const {
1286   return getCUNode()->getEmissionKind() == DICompileUnit::LineTablesOnly ||
1287          (DD->useSplitDwarf() && !Skeleton);
1288 }
1289 
1290 void DwarfCompileUnit::addAddrTableBase() {
1291   const TargetLoweringObjectFile &TLOF = Asm->getObjFileLowering();
1292   MCSymbol *Label = DD->getAddressPool().getLabel();
1293   addSectionLabel(getUnitDie(),
1294                   getDwarfVersion() >= 5 ? dwarf::DW_AT_addr_base
1295                                          : dwarf::DW_AT_GNU_addr_base,
1296                   Label, TLOF.getDwarfAddrSection()->getBeginSymbol());
1297 }
1298 
1299 void DwarfCompileUnit::addBaseTypeRef(DIEValueList &Die, int64_t Idx) {
1300   Die.addValue(DIEValueAllocator, (dwarf::Attribute)0, dwarf::DW_FORM_udata,
1301                new (DIEValueAllocator) DIEBaseTypeRef(this, Idx));
1302 }
1303 
1304 void DwarfCompileUnit::createBaseTypeDIEs() {
1305   // Insert the base_type DIEs directly after the CU so that their offsets will
1306   // fit in the fixed size ULEB128 used inside the location expressions.
1307   // Maintain order by iterating backwards and inserting to the front of CU
1308   // child list.
1309   for (auto &Btr : reverse(ExprRefedBaseTypes)) {
1310     DIE &Die = getUnitDie().addChildFront(
1311       DIE::get(DIEValueAllocator, dwarf::DW_TAG_base_type));
1312     SmallString<32> Str;
1313     addString(Die, dwarf::DW_AT_name,
1314               Twine(dwarf::AttributeEncodingString(Btr.Encoding) +
1315                     "_" + Twine(Btr.BitSize)).toStringRef(Str));
1316     addUInt(Die, dwarf::DW_AT_encoding, dwarf::DW_FORM_data1, Btr.Encoding);
1317     addUInt(Die, dwarf::DW_AT_byte_size, None, Btr.BitSize / 8);
1318 
1319     Btr.Die = &Die;
1320   }
1321 }
1322