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			450 lines
		
	
	
		
			15 KiB
		
	
	
	
		
			C++
		
	
	
	
	
	
			
		
		
	
	
			450 lines
		
	
	
		
			15 KiB
		
	
	
	
		
			C++
		
	
	
	
	
	
//===-- TargetAsmInfo.cpp - Asm Info ---------------------------------------==//
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//
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//                     The LLVM Compiler Infrastructure
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//
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// This file is distributed under the University of Illinois Open Source
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// License. See LICENSE.TXT for details.
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//
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//===----------------------------------------------------------------------===//
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//
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// This file defines target asm properties related what form asm statements
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// should take.
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//
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//===----------------------------------------------------------------------===//
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#include "llvm/Constants.h"
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#include "llvm/DerivedTypes.h"
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#include "llvm/GlobalVariable.h"
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#include "llvm/Function.h"
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#include "llvm/Module.h"
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#include "llvm/Type.h"
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#include "llvm/Target/TargetAsmInfo.h"
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#include "llvm/Target/TargetMachine.h"
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#include "llvm/Target/TargetOptions.h"
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#include "llvm/Support/Dwarf.h"
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#include "llvm/Support/ErrorHandling.h"
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#include <cctype>
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#include <cstring>
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using namespace llvm;
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TargetAsmInfo::TargetAsmInfo(const TargetMachine &tm) : TM(tm) {
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  BSSSection = "\t.bss";
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  BSSSection_ = 0;
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  ReadOnlySection = 0;
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  TLSDataSection = 0;
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  TLSBSSSection = 0;
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  ZeroFillDirective = 0;
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  NonexecutableStackDirective = 0;
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  NeedsSet = false;
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  MaxInstLength = 4;
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  PCSymbol = "$";
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  SeparatorChar = ';';
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  CommentColumn = 60;
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  CommentString = "#";
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  FirstOperandColumn = 0;
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  MaxOperandLength = 0;
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  GlobalPrefix = "";
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  PrivateGlobalPrefix = ".";
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  LinkerPrivateGlobalPrefix = "";
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  JumpTableSpecialLabelPrefix = 0;
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  GlobalVarAddrPrefix = "";
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  GlobalVarAddrSuffix = "";
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  FunctionAddrPrefix = "";
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  FunctionAddrSuffix = "";
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  PersonalityPrefix = "";
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  PersonalitySuffix = "";
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  NeedsIndirectEncoding = false;
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  InlineAsmStart = "#APP";
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  InlineAsmEnd = "#NO_APP";
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  AssemblerDialect = 0;
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  AllowQuotesInName = false;
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  ZeroDirective = "\t.zero\t";
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  ZeroDirectiveSuffix = 0;
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  AsciiDirective = "\t.ascii\t";
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  AscizDirective = "\t.asciz\t";
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  Data8bitsDirective = "\t.byte\t";
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  Data16bitsDirective = "\t.short\t";
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  Data32bitsDirective = "\t.long\t";
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  Data64bitsDirective = "\t.quad\t";
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  AlignDirective = "\t.align\t";
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  AlignmentIsInBytes = true;
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  TextAlignFillValue = 0;
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  SwitchToSectionDirective = "\t.section\t";
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  TextSectionStartSuffix = "";
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  DataSectionStartSuffix = "";
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  SectionEndDirectiveSuffix = 0;
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  ConstantPoolSection = "\t.section .rodata";
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  JumpTableDataSection = "\t.section .rodata";
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  JumpTableDirective = 0;
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  CStringSection = 0;
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  CStringSection_ = 0;
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  // FIXME: Flags are ELFish - replace with normal section stuff.
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  StaticCtorsSection = "\t.section .ctors,\"aw\",@progbits";
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  StaticDtorsSection = "\t.section .dtors,\"aw\",@progbits";
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  GlobalDirective = "\t.globl\t";
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  SetDirective = 0;
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  LCOMMDirective = 0;
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  COMMDirective = "\t.comm\t";
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  COMMDirectiveTakesAlignment = true;
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  HasDotTypeDotSizeDirective = true;
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  HasSingleParameterDotFile = true;
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  UsedDirective = 0;
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  WeakRefDirective = 0;
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  WeakDefDirective = 0;
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  // FIXME: These are ELFish - move to ELFTAI.
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  HiddenDirective = "\t.hidden\t";
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  ProtectedDirective = "\t.protected\t";
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  AbsoluteDebugSectionOffsets = false;
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  AbsoluteEHSectionOffsets = false;
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  HasLEB128 = false;
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  HasDotLocAndDotFile = false;
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  SupportsDebugInformation = false;
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  SupportsExceptionHandling = false;
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  DwarfRequiresFrameSection = true;
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  DwarfUsesInlineInfoSection = false;
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  Is_EHSymbolPrivate = true;
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  GlobalEHDirective = 0;
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  SupportsWeakOmittedEHFrame = true;
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  DwarfSectionOffsetDirective = 0;
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  DwarfAbbrevSection = ".debug_abbrev";
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  DwarfInfoSection = ".debug_info";
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  DwarfLineSection = ".debug_line";
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  DwarfFrameSection = ".debug_frame";
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  DwarfPubNamesSection = ".debug_pubnames";
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  DwarfPubTypesSection = ".debug_pubtypes";
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  DwarfDebugInlineSection = ".debug_inlined";
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  DwarfStrSection = ".debug_str";
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  DwarfLocSection = ".debug_loc";
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  DwarfARangesSection = ".debug_aranges";
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  DwarfRangesSection = ".debug_ranges";
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  DwarfMacroInfoSection = ".debug_macinfo";
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  DwarfEHFrameSection = ".eh_frame";
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  DwarfExceptionSection = ".gcc_except_table";
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  AsmTransCBE = 0;
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  TextSection = getUnnamedSection("\t.text", SectionFlags::Code);
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  DataSection = getUnnamedSection("\t.data", SectionFlags::Writeable);
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}
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TargetAsmInfo::~TargetAsmInfo() {
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}
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/// Measure the specified inline asm to determine an approximation of its
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/// length.
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/// Comments (which run till the next SeparatorChar or newline) do not
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/// count as an instruction.
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/// Any other non-whitespace text is considered an instruction, with
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/// multiple instructions separated by SeparatorChar or newlines.
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/// Variable-length instructions are not handled here; this function
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/// may be overloaded in the target code to do that.
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unsigned TargetAsmInfo::getInlineAsmLength(const char *Str) const {
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  // Count the number of instructions in the asm.
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  bool atInsnStart = true;
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  unsigned Length = 0;
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  for (; *Str; ++Str) {
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    if (*Str == '\n' || *Str == SeparatorChar)
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      atInsnStart = true;
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    if (atInsnStart && !isspace(*Str)) {
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      Length += MaxInstLength;
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      atInsnStart = false;
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    }
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    if (atInsnStart && strncmp(Str, CommentString, strlen(CommentString))==0)
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      atInsnStart = false;
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  }
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  return Length;
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}
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unsigned TargetAsmInfo::PreferredEHDataFormat(DwarfEncoding::Target Reason,
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                                              bool Global) const {
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  return dwarf::DW_EH_PE_absptr;
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}
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static bool isSuitableForBSS(const GlobalVariable *GV) {
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  // Leave constant zeros in readonly constant sections, so they can be shared
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  Constant *C = GV->getInitializer();
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  return (C->isNullValue() && !GV->isConstant() && !NoZerosInBSS);
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}
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static bool isConstantString(const Constant *C) {
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  // First check: is we have constant array of i8 terminated with zero
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  const ConstantArray *CVA = dyn_cast<ConstantArray>(C);
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  // Check, if initializer is a null-terminated string
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  if (CVA && CVA->isCString())
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    return true;
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  // Another possibility: [1 x i8] zeroinitializer
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  if (isa<ConstantAggregateZero>(C))
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    if (const ArrayType *Ty = dyn_cast<ArrayType>(C->getType()))
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      return (Ty->getElementType() == Type::Int8Ty &&
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              Ty->getNumElements() == 1);
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  return false;
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}
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static unsigned SectionFlagsForGlobal(const GlobalValue *GV,
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                                      SectionKind::Kind Kind) {
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  unsigned Flags = SectionFlags::None;
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  // Decode flags from global itself.
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  switch (Kind) {
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  case SectionKind::Text:
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    Flags |= SectionFlags::Code;
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    break;
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  case SectionKind::ThreadData:
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  case SectionKind::ThreadBSS:
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    Flags |= SectionFlags::TLS;
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    // FALLS THROUGH
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  case SectionKind::Data:
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  case SectionKind::DataRel:
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  case SectionKind::DataRelLocal:
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  case SectionKind::DataRelRO:
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  case SectionKind::DataRelROLocal:
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  case SectionKind::BSS:
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    Flags |= SectionFlags::Writeable;
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    break;
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  case SectionKind::ROData:
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  case SectionKind::RODataMergeStr:
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  case SectionKind::RODataMergeConst:
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    // No additional flags here
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    break;
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  default:
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    llvm_unreachable("Unexpected section kind!");
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  }
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  if (GV->isWeakForLinker())
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    Flags |= SectionFlags::Linkonce;
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  return Flags;
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}
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static SectionKind::Kind SectionKindForGlobal(const GlobalValue *GV,
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                                              Reloc::Model ReloModel) {
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  // Early exit - functions should be always in text sections.
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  const GlobalVariable *GVar = dyn_cast<GlobalVariable>(GV);
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  if (GVar == 0)
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    return SectionKind::Text;
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  bool isThreadLocal = GVar->isThreadLocal();
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  // Variable can be easily put to BSS section.
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  if (isSuitableForBSS(GVar))
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    return isThreadLocal ? SectionKind::ThreadBSS : SectionKind::BSS;
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  // If this is thread-local, put it in the general "thread_data" section.
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  if (isThreadLocal)
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    return SectionKind::ThreadData;
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  Constant *C = GVar->getInitializer();
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  // If the global is marked constant, we can put it into a mergable section,
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  // a mergable string section, or general .data if it contains relocations.
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  if (GVar->isConstant()) {
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    // If the initializer for the global contains something that requires a
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    // relocation, then we may have to drop this into a wriable data section
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    // even though it is marked const.
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    switch (C->getRelocationInfo()) {
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    default: llvm_unreachable("unknown relocation info kind");
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    case Constant::NoRelocation:
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      // If initializer is a null-terminated string, put it in a "cstring"
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      // section if the target has it.
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      if (isConstantString(C))
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        return SectionKind::RODataMergeStr;
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      // Otherwise, just drop it into a mergable constant section.
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      return SectionKind::RODataMergeConst;
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    case Constant::LocalRelocation:
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      // In static relocation model, the linker will resolve all addresses, so
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      // the relocation entries will actually be constants by the time the app
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      // starts up.
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      if (ReloModel == Reloc::Static)
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        return SectionKind::ROData;
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      // Otherwise, the dynamic linker needs to fix it up, put it in the
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      // writable data.rel.local section.
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      return SectionKind::DataRelROLocal;
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    case Constant::GlobalRelocations:
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      // In static relocation model, the linker will resolve all addresses, so
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      // the relocation entries will actually be constants by the time the app
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      // starts up.
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      if (ReloModel == Reloc::Static)
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        return SectionKind::ROData;
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      // Otherwise, the dynamic linker needs to fix it up, put it in the
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      // writable data.rel section.
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      return SectionKind::DataRelRO;
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    }
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  }
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  // Okay, this isn't a constant.  If the initializer for the global is going
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  // to require a runtime relocation by the dynamic linker, put it into a more
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  // specific section to improve startup time of the app.  This coalesces these
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  // globals together onto fewer pages, improving the locality of the dynamic
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  // linker.
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  if (ReloModel == Reloc::Static)
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    return SectionKind::Data;
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  switch (C->getRelocationInfo()) {
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  default: llvm_unreachable("unknown relocation info kind");
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  case Constant::NoRelocation:      return SectionKind::Data;
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  case Constant::LocalRelocation:   return SectionKind::DataRelLocal;
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  case Constant::GlobalRelocations: return SectionKind::DataRel;
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  }
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}
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const Section *TargetAsmInfo::SectionForGlobal(const GlobalValue *GV) const {
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  SectionKind::Kind Kind = SectionKindForGlobal(GV, TM.getRelocationModel());
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  // Select section name.
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  if (GV->hasSection()) {
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    // If the target has special section hacks for specifically named globals,
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    // return them now.
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    if (const Section *TS = getSpecialCasedSectionGlobals(GV, Kind))
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      return TS;
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    // Honour section already set, if any.
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    unsigned Flags = SectionFlagsForGlobal(GV, Kind);
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    // This is an explicitly named section.
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    Flags |= SectionFlags::Named;
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    // If the target has magic semantics for certain section names, make sure to
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    // pick up the flags.  This allows the user to write things with attribute
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    // section and still get the appropriate section flags printed.
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    Flags |= getFlagsForNamedSection(GV->getSection().c_str());
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    return getNamedSection(GV->getSection().c_str(), Flags);
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  }
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  // If this global is linkonce/weak and the target handles this by emitting it
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  // into a 'uniqued' section name, create and return the section now.
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  if (GV->isWeakForLinker()) {
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    if (const char *Prefix = getSectionPrefixForUniqueGlobal(Kind)) {
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      unsigned Flags = SectionFlagsForGlobal(GV, Kind);
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      // FIXME: Use mangler interface (PR4584).
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      std::string Name = Prefix+GV->getNameStr();
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      return getNamedSection(Name.c_str(), Flags);
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    }
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  }
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  // Use default section depending on the 'type' of global
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  return SelectSectionForGlobal(GV, Kind);
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}
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// Lame default implementation. Calculate the section name for global.
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const Section*
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TargetAsmInfo::SelectSectionForGlobal(const GlobalValue *GV,
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                                      SectionKind::Kind Kind) const {
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  if (Kind == SectionKind::Text)
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    return getTextSection();
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  if (Kind == SectionKind::BSS)
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    if (const Section *S = getBSSSection_())
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      return S;
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  if (SectionKind::isReadOnly(Kind))
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    if (const Section *S = getReadOnlySection())
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      return S;
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  return getDataSection();
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}
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/// getSectionForMergableConstant - Given a mergable constant with the
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/// specified size and relocation information, return a section that it
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/// should be placed in.
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const Section *
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TargetAsmInfo::getSectionForMergableConstant(uint64_t Size,
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                                             unsigned ReloInfo) const {
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  // FIXME: Support data.rel stuff someday
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  // Lame default implementation. Calculate the section name for machine const.
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  return getDataSection();
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}
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const char *
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TargetAsmInfo::getSectionPrefixForUniqueGlobal(SectionKind::Kind Kind) const {
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  switch (Kind) {
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  default: llvm_unreachable("Unknown section kind");
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  case SectionKind::Text:             return ".gnu.linkonce.t.";
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  case SectionKind::Data:             return ".gnu.linkonce.d.";
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  case SectionKind::DataRel:          return ".gnu.linkonce.d.rel.";
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  case SectionKind::DataRelLocal:     return ".gnu.linkonce.d.rel.local.";
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  case SectionKind::DataRelRO:        return ".gnu.linkonce.d.rel.ro.";
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  case SectionKind::DataRelROLocal:   return ".gnu.linkonce.d.rel.ro.local.";
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  case SectionKind::BSS:              return ".gnu.linkonce.b.";
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  case SectionKind::ROData:
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  case SectionKind::RODataMergeConst:
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  case SectionKind::RODataMergeStr:   return ".gnu.linkonce.r.";
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  case SectionKind::ThreadData:       return ".gnu.linkonce.td.";
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						|
  case SectionKind::ThreadBSS:        return ".gnu.linkonce.tb.";
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  }
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}
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const Section *TargetAsmInfo::getNamedSection(const char *Name, unsigned Flags,
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                                              bool Override) const {
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  Section &S = Sections[Name];
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						|
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  // This is newly-created section, set it up properly.
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  if (S.Flags == SectionFlags::Invalid || Override) {
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    S.Flags = Flags | SectionFlags::Named;
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    S.Name = Name;
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  }
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  return &S;
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}
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const Section*
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TargetAsmInfo::getUnnamedSection(const char *Directive, unsigned Flags,
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                                 bool Override) const {
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  Section& S = Sections[Directive];
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  // This is newly-created section, set it up properly.
 | 
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  if (S.Flags == SectionFlags::Invalid || Override) {
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    S.Flags = Flags & ~SectionFlags::Named;
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    S.Name = Directive;
 | 
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  }
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  return &S;
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}
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const std::string&
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TargetAsmInfo::getSectionFlags(unsigned Flags) const {
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  SectionFlags::FlagsStringsMapType::iterator I = FlagsStrings.find(Flags);
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						|
 | 
						|
  // We didn't print these flags yet, print and save them to map. This reduces
 | 
						|
  // amount of heap trashing due to std::string construction / concatenation.
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						|
  if (I == FlagsStrings.end())
 | 
						|
    I = FlagsStrings.insert(std::make_pair(Flags,
 | 
						|
                                           printSectionFlags(Flags))).first;
 | 
						|
 | 
						|
  return I->second;
 | 
						|
}
 | 
						|
 | 
						|
unsigned TargetAsmInfo::getULEB128Size(unsigned Value) {
 | 
						|
  unsigned Size = 0;
 | 
						|
  do {
 | 
						|
    Value >>= 7;
 | 
						|
    Size += sizeof(int8_t);
 | 
						|
  } while (Value);
 | 
						|
  return Size;
 | 
						|
}
 | 
						|
 | 
						|
unsigned TargetAsmInfo::getSLEB128Size(int Value) {
 | 
						|
  unsigned Size = 0;
 | 
						|
  int Sign = Value >> (8 * sizeof(Value) - 1);
 | 
						|
  bool IsMore;
 | 
						|
 | 
						|
  do {
 | 
						|
    unsigned Byte = Value & 0x7f;
 | 
						|
    Value >>= 7;
 | 
						|
    IsMore = Value != Sign || ((Byte ^ Sign) & 0x40) != 0;
 | 
						|
    Size += sizeof(int8_t);
 | 
						|
  } while (IsMore);
 | 
						|
  return Size;
 | 
						|
}
 |