+
+// NOTE: This must be kept in synch with the copy in lib/VMCore/Function.cpp!
+enum IIT_Info {
+ // Common values should be encoded with 0-15.
+ IIT_Done = 0,
+ IIT_I1 = 1,
+ IIT_I8 = 2,
+ IIT_I16 = 3,
+ IIT_I32 = 4,
+ IIT_I64 = 5,
+ IIT_F32 = 6,
+ IIT_F64 = 7,
+ IIT_V2 = 8,
+ IIT_V4 = 9,
+ IIT_V8 = 10,
+ IIT_V16 = 11,
+ IIT_V32 = 12,
+ IIT_MMX = 13,
+ IIT_PTR = 14,
+ IIT_ARG = 15,
+
+ // Values from 16+ are only encodable with the inefficient encoding.
+ IIT_METADATA = 16,
+ IIT_EMPTYSTRUCT = 17,
+ IIT_STRUCT2 = 18,
+ IIT_STRUCT3 = 19,
+ IIT_STRUCT4 = 20,
+ IIT_STRUCT5 = 21,
+ IIT_EXTEND_VEC_ARG = 22,
+ IIT_TRUNC_VEC_ARG = 23,
+ IIT_ANYPTR = 24
+};
+
+
+static void EncodeFixedValueType(MVT::SimpleValueType VT,
+ std::vector<unsigned char> &Sig) {
+ if (EVT(VT).isInteger()) {
+ unsigned BitWidth = EVT(VT).getSizeInBits();
+ switch (BitWidth) {
+ default: throw "unhandled integer type width in intrinsic!";
+ case 1: return Sig.push_back(IIT_I1);
+ case 8: return Sig.push_back(IIT_I8);
+ case 16: return Sig.push_back(IIT_I16);
+ case 32: return Sig.push_back(IIT_I32);
+ case 64: return Sig.push_back(IIT_I64);
+ }
+ }
+
+ switch (VT) {
+ default: throw "unhandled MVT in intrinsic!";
+ case MVT::f32: return Sig.push_back(IIT_F32);
+ case MVT::f64: return Sig.push_back(IIT_F64);
+ case MVT::Metadata: return Sig.push_back(IIT_METADATA);
+ case MVT::x86mmx: return Sig.push_back(IIT_MMX);
+ // MVT::OtherVT is used to mean the empty struct type here.
+ case MVT::Other: return Sig.push_back(IIT_EMPTYSTRUCT);
+ }
+}
+
+#ifdef _MSC_VER
+#pragma optimize("",off) // MSVC 2010 optimizer can't deal with this function.
+#endif
+
+static void EncodeFixedType(Record *R, std::vector<unsigned char> &ArgCodes,
+ std::vector<unsigned char> &Sig) {
+
+ if (R->isSubClassOf("LLVMMatchType")) {
+ unsigned Number = R->getValueAsInt("Number");
+ assert(Number < ArgCodes.size() && "Invalid matching number!");
+ if (R->isSubClassOf("LLVMExtendedElementVectorType"))
+ Sig.push_back(IIT_EXTEND_VEC_ARG);
+ else if (R->isSubClassOf("LLVMTruncatedElementVectorType"))
+ Sig.push_back(IIT_TRUNC_VEC_ARG);
+ else
+ Sig.push_back(IIT_ARG);
+ return Sig.push_back((Number << 2) | ArgCodes[Number]);
+ }
+
+ MVT::SimpleValueType VT = getValueType(R->getValueAsDef("VT"));
+
+ unsigned Tmp = 0;
+ switch (VT) {
+ default: break;
+ case MVT::iPTRAny: ++Tmp; // FALL THROUGH.
+ case MVT::vAny: ++Tmp; // FALL THROUGH.
+ case MVT::fAny: ++Tmp; // FALL THROUGH.
+ case MVT::iAny: {
+ // If this is an "any" valuetype, then the type is the type of the next
+ // type in the list specified to getIntrinsic().
+ Sig.push_back(IIT_ARG);
+
+ // Figure out what arg # this is consuming, and remember what kind it was.
+ unsigned ArgNo = ArgCodes.size();
+ ArgCodes.push_back(Tmp);
+
+ // Encode what sort of argument it must be in the low 2 bits of the ArgNo.
+ return Sig.push_back((ArgNo << 2) | Tmp);
+ }
+
+ case MVT::iPTR: {
+ unsigned AddrSpace = 0;
+ if (R->isSubClassOf("LLVMQualPointerType")) {
+ AddrSpace = R->getValueAsInt("AddrSpace");
+ assert(AddrSpace < 256 && "Address space exceeds 255");
+ }
+ if (AddrSpace) {
+ Sig.push_back(IIT_ANYPTR);
+ Sig.push_back(AddrSpace);
+ } else {
+ Sig.push_back(IIT_PTR);
+ }
+ return EncodeFixedType(R->getValueAsDef("ElTy"), ArgCodes, Sig);
+ }
+ }
+
+ if (EVT(VT).isVector()) {
+ EVT VVT = VT;
+ switch (VVT.getVectorNumElements()) {
+ default: throw "unhandled vector type width in intrinsic!";
+ case 2: Sig.push_back(IIT_V2); break;
+ case 4: Sig.push_back(IIT_V4); break;
+ case 8: Sig.push_back(IIT_V8); break;
+ case 16: Sig.push_back(IIT_V16); break;
+ case 32: Sig.push_back(IIT_V32); break;
+ }
+
+ return EncodeFixedValueType(VVT.getVectorElementType().
+ getSimpleVT().SimpleTy, Sig);
+ }
+
+ EncodeFixedValueType(VT, Sig);
+}
+
+#ifdef _MSC_VER
+#pragma optimize("",on)
+#endif
+
+/// ComputeFixedEncoding - If we can encode the type signature for this
+/// intrinsic into 32 bits, return it. If not, return ~0U.
+static void ComputeFixedEncoding(const CodeGenIntrinsic &Int,
+ std::vector<unsigned char> &TypeSig) {
+ std::vector<unsigned char> ArgCodes;
+
+ if (Int.IS.RetVTs.empty())
+ TypeSig.push_back(IIT_Done);
+ else if (Int.IS.RetVTs.size() == 1 &&
+ Int.IS.RetVTs[0] == MVT::isVoid)
+ TypeSig.push_back(IIT_Done);
+ else {
+ switch (Int.IS.RetVTs.size()) {
+ case 1: break;
+ case 2: TypeSig.push_back(IIT_STRUCT2); break;
+ case 3: TypeSig.push_back(IIT_STRUCT3); break;
+ case 4: TypeSig.push_back(IIT_STRUCT4); break;
+ case 5: TypeSig.push_back(IIT_STRUCT5); break;
+ default: assert(0 && "Unhandled case in struct");
+ }
+
+ for (unsigned i = 0, e = Int.IS.RetVTs.size(); i != e; ++i)
+ EncodeFixedType(Int.IS.RetTypeDefs[i], ArgCodes, TypeSig);
+ }
+
+ for (unsigned i = 0, e = Int.IS.ParamTypeDefs.size(); i != e; ++i)
+ EncodeFixedType(Int.IS.ParamTypeDefs[i], ArgCodes, TypeSig);
+}
+
+void printIITEntry(raw_ostream &OS, unsigned char X) {
+ OS << (unsigned)X;
+}
+
+void IntrinsicEmitter::EmitGenerator(const std::vector<CodeGenIntrinsic> &Ints,
+ raw_ostream &OS) {
+ // If we can compute a 32-bit fixed encoding for this intrinsic, do so and
+ // capture it in this vector, otherwise store a ~0U.
+ std::vector<unsigned> FixedEncodings;
+
+ SequenceToOffsetTable<std::vector<unsigned char> > LongEncodingTable;
+
+ std::vector<unsigned char> TypeSig;
+
+ // Compute the unique argument type info.