зеркало из https://github.com/microsoft/clang-1.git
264 строки
10 KiB
C++
264 строки
10 KiB
C++
//===--- TargetInfo.cpp - Information about Target machine ----------------===//
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//
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// The LLVM Compiler Infrastructure
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//
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// This file was developed by Chris Lattner and is distributed under
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// the University of Illinois Open Source License. See LICENSE.TXT for details.
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//
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//===----------------------------------------------------------------------===//
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//
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// This file implements the TargetInfo and TargetInfoImpl interfaces.
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//
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//===----------------------------------------------------------------------===//
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#include "clang/Basic/TargetInfo.h"
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#include "clang/Basic/Diagnostic.h"
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#include "clang/AST/Builtins.h"
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#include "llvm/ADT/StringMap.h"
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#include "llvm/ADT/APFloat.h"
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#include <set>
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using namespace clang;
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void TargetInfoImpl::ANCHOR() {} // out-of-line virtual method for class.
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//===----------------------------------------------------------------------===//
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// FIXME: These are temporary hacks, they should revector into the
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// TargetInfoImpl.
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void TargetInfo::getFloatInfo(uint64_t &Size, unsigned &Align,
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const llvm::fltSemantics *&Format,
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SourceLocation Loc) {
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Align = 32; // FIXME: implement correctly.
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Size = 32;
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Format = &llvm::APFloat::IEEEsingle;
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}
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void TargetInfo::getDoubleInfo(uint64_t &Size, unsigned &Align,
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const llvm::fltSemantics *&Format,
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SourceLocation Loc) {
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Size = Align = 64; // FIXME: implement correctly.
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Format = &llvm::APFloat::IEEEdouble;
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}
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void TargetInfo::getLongDoubleInfo(uint64_t &Size, unsigned &Align,
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const llvm::fltSemantics *&Format,
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SourceLocation Loc) {
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Size = Align = 64; // FIXME: implement correctly.
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Format = &llvm::APFloat::IEEEdouble;
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//Size = 80; Align = 32; // FIXME: implement correctly.
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//Format = &llvm::APFloat::x87DoubleExtended;
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}
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//===----------------------------------------------------------------------===//
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/// DiagnoseNonPortability - When a use of a non-portable target feature is
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/// used, this method emits the diagnostic and marks the translation unit as
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/// non-portable.
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void TargetInfo::DiagnoseNonPortability(SourceLocation Loc, unsigned DiagKind) {
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NonPortable = true;
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if (Diag && Loc.isValid()) Diag->Report(Loc, DiagKind);
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}
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/// GetTargetDefineMap - Get the set of target #defines in an associative
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/// collection for easy lookup.
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static void GetTargetDefineMap(const TargetInfoImpl *Target,
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llvm::StringMap<std::string> &Map) {
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std::vector<char> Defines;
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Defines.reserve(4096);
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Target->getTargetDefines(Defines);
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for (const char *DefStr = &Defines[0], *E = DefStr+Defines.size();
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DefStr != E;) {
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// Skip the '#define ' portion.
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assert(memcmp(DefStr, "#define ", strlen("#define ")) == 0 &&
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"#define didn't start with #define!");
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DefStr += strlen("#define ");
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// Find the divider between the key and value.
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const char *SpacePos = strchr(DefStr, ' ');
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std::string &Entry = Map.GetOrCreateValue(DefStr, SpacePos).getValue();
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const char *EndPos = strchr(SpacePos+1, '\n');
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Entry = std::string(SpacePos+1, EndPos);
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DefStr = EndPos+1;
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}
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}
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/// getTargetDefines - Appends the target-specific #define values for this
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/// target set to the specified buffer.
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void TargetInfo::getTargetDefines(std::vector<char> &Buffer) {
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// If we have no secondary targets, be a bit more efficient.
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if (SecondaryTargets.empty()) {
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PrimaryTarget->getTargetDefines(Buffer);
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return;
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}
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// This is tricky in the face of secondary targets. Specifically,
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// target-specific #defines that are present and identical across all
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// secondary targets are turned into #defines, #defines that are present in
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// the primary target but are missing or different in the secondary targets
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// are turned into #define_target, and #defines that are not defined in the
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// primary, but are defined in a secondary are turned into
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// #define_other_target. This allows the preprocessor to correctly track uses
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// of target-specific macros.
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// Get the set of primary #defines.
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llvm::StringMap<std::string> PrimaryDefines;
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GetTargetDefineMap(PrimaryTarget, PrimaryDefines);
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// Get the sets of secondary #defines.
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llvm::StringMap<std::string> *SecondaryDefines
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= new llvm::StringMap<std::string>[SecondaryTargets.size()];
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for (unsigned i = 0, e = SecondaryTargets.size(); i != e; ++i)
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GetTargetDefineMap(SecondaryTargets[i], SecondaryDefines[i]);
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// Loop over all defines in the primary target, processing them until we run
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// out.
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for (llvm::StringMap<std::string>::iterator PDI =
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PrimaryDefines.begin(), E = PrimaryDefines.end(); PDI != E; ++PDI) {
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std::string DefineName(PDI->getKeyData(),
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PDI->getKeyData() + PDI->getKeyLength());
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std::string DefineValue = PDI->getValue();
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// Check to see whether all secondary targets have this #define and whether
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// it is to the same value. Remember if not, but remove the #define from
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// their collection in any case if they have it.
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bool isPortable = true;
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for (unsigned i = 0, e = SecondaryTargets.size(); i != e; ++i) {
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llvm::StringMap<std::string>::iterator I =
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SecondaryDefines[i].find(&DefineName[0],
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&DefineName[0]+DefineName.size());
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if (I == SecondaryDefines[i].end()) {
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// Secondary target doesn't have this #define.
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isPortable = false;
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} else {
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// Secondary target has this define, remember if it disagrees.
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if (isPortable)
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isPortable = I->getValue() == DefineValue;
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// Remove it from the secondary target unconditionally.
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SecondaryDefines[i].erase(I);
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}
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}
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// If this define is non-portable, turn it into #define_target, otherwise
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// just use #define.
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const char *Command = isPortable ? "#define " : "#define_target ";
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Buffer.insert(Buffer.end(), Command, Command+strlen(Command));
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// Insert "defname defvalue\n".
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Buffer.insert(Buffer.end(), DefineName.begin(), DefineName.end());
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Buffer.push_back(' ');
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Buffer.insert(Buffer.end(), DefineValue.begin(), DefineValue.end());
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Buffer.push_back('\n');
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}
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// Now that all of the primary target's defines have been handled and removed
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// from the secondary target's define sets, go through the remaining secondary
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// target's #defines and taint them.
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for (unsigned i = 0, e = SecondaryTargets.size(); i != e; ++i) {
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llvm::StringMap<std::string> &Defs = SecondaryDefines[i];
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while (!Defs.empty()) {
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const char *DefStart = Defs.begin()->getKeyData();
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const char *DefEnd = DefStart + Defs.begin()->getKeyLength();
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// Insert "#define_other_target defname".
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const char *Command = "#define_other_target ";
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Buffer.insert(Buffer.end(), Command, Command+strlen(Command));
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Buffer.insert(Buffer.end(), DefStart, DefEnd);
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Buffer.push_back('\n');
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// If any other secondary targets have this same define, remove it from
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// them to avoid duplicate #define_other_target directives.
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for (unsigned j = i+1; j != e; ++j) {
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llvm::StringMap<std::string>::iterator I =
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SecondaryDefines[j].find(DefStart, DefEnd);
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if (I != SecondaryDefines[j].end())
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SecondaryDefines[j].erase(I);
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}
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Defs.erase(Defs.begin());
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}
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}
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delete[] SecondaryDefines;
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}
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/// ComputeWCharWidth - Determine the width of the wchar_t type for the primary
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/// target, diagnosing whether this is non-portable across the secondary
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/// targets.
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void TargetInfo::ComputeWCharInfo(SourceLocation Loc) {
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PrimaryTarget->getWCharInfo(WCharWidth, WCharAlign);
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// Check whether this is portable across the secondary targets if the T-U is
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// portable so far.
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for (unsigned i = 0, e = SecondaryTargets.size(); i != e; ++i) {
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unsigned Width, Align;
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SecondaryTargets[i]->getWCharInfo(Width, Align);
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if (Width != WCharWidth || Align != WCharAlign)
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return DiagnoseNonPortability(Loc, diag::port_wchar_t);
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}
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}
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/// getTargetBuiltins - Return information about target-specific builtins for
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/// the current primary target, and info about which builtins are non-portable
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/// across the current set of primary and secondary targets.
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void TargetInfo::getTargetBuiltins(const Builtin::Info *&Records,
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unsigned &NumRecords,
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std::vector<const char *> &NPortable) const {
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// Get info about what actual builtins we will expose.
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PrimaryTarget->getTargetBuiltins(Records, NumRecords);
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if (SecondaryTargets.empty()) return;
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// Compute the set of non-portable builtins.
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// Start by computing a mapping from the primary target's builtins to their
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// info records for efficient lookup.
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llvm::StringMap<const Builtin::Info*> PrimaryRecs;
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for (unsigned i = 0, e = NumRecords; i != e; ++i) {
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const char *BIName = Records[i].Name;
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PrimaryRecs.GetOrCreateValue(BIName, BIName+strlen(BIName)).getValue()
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= Records+i;
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}
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for (unsigned i = 0, e = SecondaryTargets.size(); i != e; ++i) {
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// Get the builtins for this secondary target.
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const Builtin::Info *Records2nd;
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unsigned NumRecords2nd;
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SecondaryTargets[i]->getTargetBuiltins(Records2nd, NumRecords2nd);
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// Remember all of the secondary builtin names.
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std::set<std::string> BuiltinNames2nd;
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for (unsigned j = 0, e = NumRecords2nd; j != e; ++j) {
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BuiltinNames2nd.insert(Records2nd[j].Name);
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// Check to see if the primary target has this builtin.
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llvm::StringMap<const Builtin::Info*>::iterator I =
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PrimaryRecs.find(Records2nd[j].Name,
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Records2nd[j].Name+strlen(Records2nd[j].Name));
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if (I != PrimaryRecs.end()) {
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const Builtin::Info *PrimBI = I->getValue();
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// If does. If they are not identical, mark the builtin as being
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// non-portable.
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if (Records2nd[j] != *PrimBI)
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NPortable.push_back(PrimBI->Name);
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} else {
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// The primary target doesn't have this, it is non-portable.
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NPortable.push_back(Records2nd[j].Name);
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}
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}
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// Now that we checked all the secondary builtins, check to see if the
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// primary target has any builtins that the secondary one doesn't. If so,
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// then those are non-portable.
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for (unsigned j = 0, e = NumRecords; j != e; ++j) {
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if (!BuiltinNames2nd.count(Records[j].Name))
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NPortable.push_back(Records[j].Name);
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}
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}
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}
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