MveEmitter.cpp revision 1.1.1.2 1 1.1 joerg //===- MveEmitter.cpp - Generate arm_mve.h for use with clang -*- C++ -*-=====//
2 1.1 joerg //
3 1.1 joerg // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions.
4 1.1 joerg // See https://llvm.org/LICENSE.txt for license information.
5 1.1 joerg // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
6 1.1 joerg //
7 1.1 joerg //===----------------------------------------------------------------------===//
8 1.1 joerg //
9 1.1 joerg // This set of linked tablegen backends is responsible for emitting the bits
10 1.1 joerg // and pieces that implement <arm_mve.h>, which is defined by the ACLE standard
11 1.1 joerg // and provides a set of types and functions for (more or less) direct access
12 1.1 joerg // to the MVE instruction set, including the scalar shifts as well as the
13 1.1 joerg // vector instructions.
14 1.1 joerg //
15 1.1 joerg // MVE's standard intrinsic functions are unusual in that they have a system of
16 1.1 joerg // polymorphism. For example, the function vaddq() can behave like vaddq_u16(),
17 1.1 joerg // vaddq_f32(), vaddq_s8(), etc., depending on the types of the vector
18 1.1 joerg // arguments you give it.
19 1.1 joerg //
20 1.1 joerg // This constrains the implementation strategies. The usual approach to making
21 1.1 joerg // the user-facing functions polymorphic would be to either use
22 1.1 joerg // __attribute__((overloadable)) to make a set of vaddq() functions that are
23 1.1 joerg // all inline wrappers on the underlying clang builtins, or to define a single
24 1.1 joerg // vaddq() macro which expands to an instance of _Generic.
25 1.1 joerg //
26 1.1 joerg // The inline-wrappers approach would work fine for most intrinsics, except for
27 1.1 joerg // the ones that take an argument required to be a compile-time constant,
28 1.1 joerg // because if you wrap an inline function around a call to a builtin, the
29 1.1 joerg // constant nature of the argument is not passed through.
30 1.1 joerg //
31 1.1 joerg // The _Generic approach can be made to work with enough effort, but it takes a
32 1.1 joerg // lot of machinery, because of the design feature of _Generic that even the
33 1.1 joerg // untaken branches are required to pass all front-end validity checks such as
34 1.1 joerg // type-correctness. You can work around that by nesting further _Generics all
35 1.1 joerg // over the place to coerce things to the right type in untaken branches, but
36 1.1 joerg // what you get out is complicated, hard to guarantee its correctness, and
37 1.1 joerg // worst of all, gives _completely unreadable_ error messages if the user gets
38 1.1 joerg // the types wrong for an intrinsic call.
39 1.1 joerg //
40 1.1 joerg // Therefore, my strategy is to introduce a new __attribute__ that allows a
41 1.1 joerg // function to be mapped to a clang builtin even though it doesn't have the
42 1.1 joerg // same name, and then declare all the user-facing MVE function names with that
43 1.1 joerg // attribute, mapping each one directly to the clang builtin. And the
44 1.1 joerg // polymorphic ones have __attribute__((overloadable)) as well. So once the
45 1.1 joerg // compiler has resolved the overload, it knows the internal builtin ID of the
46 1.1 joerg // selected function, and can check the immediate arguments against that; and
47 1.1 joerg // if the user gets the types wrong in a call to a polymorphic intrinsic, they
48 1.1 joerg // get a completely clear error message showing all the declarations of that
49 1.1 joerg // function in the header file and explaining why each one doesn't fit their
50 1.1 joerg // call.
51 1.1 joerg //
52 1.1 joerg // The downside of this is that if every clang builtin has to correspond
53 1.1 joerg // exactly to a user-facing ACLE intrinsic, then you can't save work in the
54 1.1 joerg // frontend by doing it in the header file: CGBuiltin.cpp has to do the entire
55 1.1 joerg // job of converting an ACLE intrinsic call into LLVM IR. So the Tablegen
56 1.1 joerg // description for an MVE intrinsic has to contain a full description of the
57 1.1 joerg // sequence of IRBuilder calls that clang will need to make.
58 1.1 joerg //
59 1.1 joerg //===----------------------------------------------------------------------===//
60 1.1 joerg
61 1.1 joerg #include "llvm/ADT/APInt.h"
62 1.1 joerg #include "llvm/ADT/StringRef.h"
63 1.1.1.2 joerg #include "llvm/ADT/StringSwitch.h"
64 1.1 joerg #include "llvm/Support/Casting.h"
65 1.1 joerg #include "llvm/Support/raw_ostream.h"
66 1.1 joerg #include "llvm/TableGen/Error.h"
67 1.1 joerg #include "llvm/TableGen/Record.h"
68 1.1.1.2 joerg #include "llvm/TableGen/StringToOffsetTable.h"
69 1.1 joerg #include <cassert>
70 1.1 joerg #include <cstddef>
71 1.1 joerg #include <cstdint>
72 1.1 joerg #include <list>
73 1.1 joerg #include <map>
74 1.1 joerg #include <memory>
75 1.1 joerg #include <set>
76 1.1 joerg #include <string>
77 1.1 joerg #include <vector>
78 1.1 joerg
79 1.1 joerg using namespace llvm;
80 1.1 joerg
81 1.1 joerg namespace {
82 1.1 joerg
83 1.1.1.2 joerg class EmitterBase;
84 1.1 joerg class Result;
85 1.1 joerg
86 1.1 joerg // -----------------------------------------------------------------------------
87 1.1 joerg // A system of classes to represent all the types we'll need to deal with in
88 1.1 joerg // the prototypes of intrinsics.
89 1.1 joerg //
90 1.1 joerg // Query methods include finding out the C name of a type; the "LLVM name" in
91 1.1 joerg // the sense of a C++ code snippet that can be used in the codegen function;
92 1.1 joerg // the suffix that represents the type in the ACLE intrinsic naming scheme
93 1.1 joerg // (e.g. 's32' represents int32_t in intrinsics such as vaddq_s32); whether the
94 1.1 joerg // type is floating-point related (hence should be under #ifdef in the MVE
95 1.1 joerg // header so that it isn't included in integer-only MVE mode); and the type's
96 1.1 joerg // size in bits. Not all subtypes support all these queries.
97 1.1 joerg
98 1.1 joerg class Type {
99 1.1 joerg public:
100 1.1 joerg enum class TypeKind {
101 1.1 joerg // Void appears as a return type (for store intrinsics, which are pure
102 1.1 joerg // side-effect). It's also used as the parameter type in the Tablegen
103 1.1 joerg // when an intrinsic doesn't need to come in various suffixed forms like
104 1.1 joerg // vfooq_s8,vfooq_u16,vfooq_f32.
105 1.1 joerg Void,
106 1.1 joerg
107 1.1 joerg // Scalar is used for ordinary int and float types of all sizes.
108 1.1 joerg Scalar,
109 1.1 joerg
110 1.1 joerg // Vector is used for anything that occupies exactly one MVE vector
111 1.1 joerg // register, i.e. {uint,int,float}NxM_t.
112 1.1 joerg Vector,
113 1.1 joerg
114 1.1 joerg // MultiVector is used for the {uint,int,float}NxMxK_t types used by the
115 1.1 joerg // interleaving load/store intrinsics v{ld,st}{2,4}q.
116 1.1 joerg MultiVector,
117 1.1 joerg
118 1.1 joerg // Predicate is used by all the predicated intrinsics. Its C
119 1.1 joerg // representation is mve_pred16_t (which is just an alias for uint16_t).
120 1.1 joerg // But we give more detail here, by indicating that a given predicate
121 1.1 joerg // instruction is logically regarded as a vector of i1 containing the
122 1.1 joerg // same number of lanes as the input vector type. So our Predicate type
123 1.1 joerg // comes with a lane count, which we use to decide which kind of <n x i1>
124 1.1 joerg // we'll invoke the pred_i2v IR intrinsic to translate it into.
125 1.1 joerg Predicate,
126 1.1 joerg
127 1.1 joerg // Pointer is used for pointer types (obviously), and comes with a flag
128 1.1 joerg // indicating whether it's a pointer to a const or mutable instance of
129 1.1 joerg // the pointee type.
130 1.1 joerg Pointer,
131 1.1 joerg };
132 1.1 joerg
133 1.1 joerg private:
134 1.1 joerg const TypeKind TKind;
135 1.1 joerg
136 1.1 joerg protected:
137 1.1 joerg Type(TypeKind K) : TKind(K) {}
138 1.1 joerg
139 1.1 joerg public:
140 1.1 joerg TypeKind typeKind() const { return TKind; }
141 1.1 joerg virtual ~Type() = default;
142 1.1 joerg virtual bool requiresFloat() const = 0;
143 1.1.1.2 joerg virtual bool requiresMVE() const = 0;
144 1.1 joerg virtual unsigned sizeInBits() const = 0;
145 1.1 joerg virtual std::string cName() const = 0;
146 1.1 joerg virtual std::string llvmName() const {
147 1.1 joerg PrintFatalError("no LLVM type name available for type " + cName());
148 1.1 joerg }
149 1.1.1.2 joerg virtual std::string acleSuffix(std::string) const {
150 1.1 joerg PrintFatalError("no ACLE suffix available for this type");
151 1.1 joerg }
152 1.1 joerg };
153 1.1 joerg
154 1.1 joerg enum class ScalarTypeKind { SignedInt, UnsignedInt, Float };
155 1.1 joerg inline std::string toLetter(ScalarTypeKind kind) {
156 1.1 joerg switch (kind) {
157 1.1 joerg case ScalarTypeKind::SignedInt:
158 1.1 joerg return "s";
159 1.1 joerg case ScalarTypeKind::UnsignedInt:
160 1.1 joerg return "u";
161 1.1 joerg case ScalarTypeKind::Float:
162 1.1 joerg return "f";
163 1.1 joerg }
164 1.1 joerg llvm_unreachable("Unhandled ScalarTypeKind enum");
165 1.1 joerg }
166 1.1 joerg inline std::string toCPrefix(ScalarTypeKind kind) {
167 1.1 joerg switch (kind) {
168 1.1 joerg case ScalarTypeKind::SignedInt:
169 1.1 joerg return "int";
170 1.1 joerg case ScalarTypeKind::UnsignedInt:
171 1.1 joerg return "uint";
172 1.1 joerg case ScalarTypeKind::Float:
173 1.1 joerg return "float";
174 1.1 joerg }
175 1.1 joerg llvm_unreachable("Unhandled ScalarTypeKind enum");
176 1.1 joerg }
177 1.1 joerg
178 1.1 joerg class VoidType : public Type {
179 1.1 joerg public:
180 1.1 joerg VoidType() : Type(TypeKind::Void) {}
181 1.1 joerg unsigned sizeInBits() const override { return 0; }
182 1.1 joerg bool requiresFloat() const override { return false; }
183 1.1.1.2 joerg bool requiresMVE() const override { return false; }
184 1.1 joerg std::string cName() const override { return "void"; }
185 1.1 joerg
186 1.1 joerg static bool classof(const Type *T) { return T->typeKind() == TypeKind::Void; }
187 1.1.1.2 joerg std::string acleSuffix(std::string) const override { return ""; }
188 1.1 joerg };
189 1.1 joerg
190 1.1 joerg class PointerType : public Type {
191 1.1 joerg const Type *Pointee;
192 1.1 joerg bool Const;
193 1.1 joerg
194 1.1 joerg public:
195 1.1 joerg PointerType(const Type *Pointee, bool Const)
196 1.1 joerg : Type(TypeKind::Pointer), Pointee(Pointee), Const(Const) {}
197 1.1 joerg unsigned sizeInBits() const override { return 32; }
198 1.1 joerg bool requiresFloat() const override { return Pointee->requiresFloat(); }
199 1.1.1.2 joerg bool requiresMVE() const override { return Pointee->requiresMVE(); }
200 1.1 joerg std::string cName() const override {
201 1.1 joerg std::string Name = Pointee->cName();
202 1.1 joerg
203 1.1 joerg // The syntax for a pointer in C is different when the pointee is
204 1.1 joerg // itself a pointer. The MVE intrinsics don't contain any double
205 1.1 joerg // pointers, so we don't need to worry about that wrinkle.
206 1.1 joerg assert(!isa<PointerType>(Pointee) && "Pointer to pointer not supported");
207 1.1 joerg
208 1.1 joerg if (Const)
209 1.1 joerg Name = "const " + Name;
210 1.1 joerg return Name + " *";
211 1.1 joerg }
212 1.1.1.2 joerg std::string llvmName() const override {
213 1.1.1.2 joerg return "llvm::PointerType::getUnqual(" + Pointee->llvmName() + ")";
214 1.1.1.2 joerg }
215 1.1 joerg
216 1.1 joerg static bool classof(const Type *T) {
217 1.1 joerg return T->typeKind() == TypeKind::Pointer;
218 1.1 joerg }
219 1.1 joerg };
220 1.1 joerg
221 1.1 joerg // Base class for all the types that have a name of the form
222 1.1 joerg // [prefix][numbers]_t, like int32_t, uint16x8_t, float32x4x2_t.
223 1.1 joerg //
224 1.1 joerg // For this sub-hierarchy we invent a cNameBase() method which returns the
225 1.1 joerg // whole name except for the trailing "_t", so that Vector and MultiVector can
226 1.1 joerg // append an extra "x2" or whatever to their element type's cNameBase(). Then
227 1.1 joerg // the main cName() query method puts "_t" on the end for the final type name.
228 1.1 joerg
229 1.1 joerg class CRegularNamedType : public Type {
230 1.1 joerg using Type::Type;
231 1.1 joerg virtual std::string cNameBase() const = 0;
232 1.1 joerg
233 1.1 joerg public:
234 1.1 joerg std::string cName() const override { return cNameBase() + "_t"; }
235 1.1 joerg };
236 1.1 joerg
237 1.1 joerg class ScalarType : public CRegularNamedType {
238 1.1 joerg ScalarTypeKind Kind;
239 1.1 joerg unsigned Bits;
240 1.1.1.2 joerg std::string NameOverride;
241 1.1 joerg
242 1.1 joerg public:
243 1.1 joerg ScalarType(const Record *Record) : CRegularNamedType(TypeKind::Scalar) {
244 1.1 joerg Kind = StringSwitch<ScalarTypeKind>(Record->getValueAsString("kind"))
245 1.1 joerg .Case("s", ScalarTypeKind::SignedInt)
246 1.1 joerg .Case("u", ScalarTypeKind::UnsignedInt)
247 1.1 joerg .Case("f", ScalarTypeKind::Float);
248 1.1 joerg Bits = Record->getValueAsInt("size");
249 1.1.1.2 joerg NameOverride = std::string(Record->getValueAsString("nameOverride"));
250 1.1 joerg }
251 1.1 joerg unsigned sizeInBits() const override { return Bits; }
252 1.1 joerg ScalarTypeKind kind() const { return Kind; }
253 1.1 joerg std::string suffix() const { return toLetter(Kind) + utostr(Bits); }
254 1.1 joerg std::string cNameBase() const override {
255 1.1 joerg return toCPrefix(Kind) + utostr(Bits);
256 1.1 joerg }
257 1.1.1.2 joerg std::string cName() const override {
258 1.1.1.2 joerg if (NameOverride.empty())
259 1.1.1.2 joerg return CRegularNamedType::cName();
260 1.1.1.2 joerg return NameOverride;
261 1.1.1.2 joerg }
262 1.1 joerg std::string llvmName() const override {
263 1.1 joerg if (Kind == ScalarTypeKind::Float) {
264 1.1 joerg if (Bits == 16)
265 1.1 joerg return "HalfTy";
266 1.1 joerg if (Bits == 32)
267 1.1 joerg return "FloatTy";
268 1.1 joerg if (Bits == 64)
269 1.1 joerg return "DoubleTy";
270 1.1 joerg PrintFatalError("bad size for floating type");
271 1.1 joerg }
272 1.1 joerg return "Int" + utostr(Bits) + "Ty";
273 1.1 joerg }
274 1.1.1.2 joerg std::string acleSuffix(std::string overrideLetter) const override {
275 1.1.1.2 joerg return "_" + (overrideLetter.size() ? overrideLetter : toLetter(Kind))
276 1.1.1.2 joerg + utostr(Bits);
277 1.1 joerg }
278 1.1 joerg bool isInteger() const { return Kind != ScalarTypeKind::Float; }
279 1.1 joerg bool requiresFloat() const override { return !isInteger(); }
280 1.1.1.2 joerg bool requiresMVE() const override { return false; }
281 1.1.1.2 joerg bool hasNonstandardName() const { return !NameOverride.empty(); }
282 1.1 joerg
283 1.1 joerg static bool classof(const Type *T) {
284 1.1 joerg return T->typeKind() == TypeKind::Scalar;
285 1.1 joerg }
286 1.1 joerg };
287 1.1 joerg
288 1.1 joerg class VectorType : public CRegularNamedType {
289 1.1 joerg const ScalarType *Element;
290 1.1 joerg unsigned Lanes;
291 1.1 joerg
292 1.1 joerg public:
293 1.1.1.2 joerg VectorType(const ScalarType *Element, unsigned Lanes)
294 1.1.1.2 joerg : CRegularNamedType(TypeKind::Vector), Element(Element), Lanes(Lanes) {}
295 1.1.1.2 joerg unsigned sizeInBits() const override { return Lanes * Element->sizeInBits(); }
296 1.1 joerg unsigned lanes() const { return Lanes; }
297 1.1 joerg bool requiresFloat() const override { return Element->requiresFloat(); }
298 1.1.1.2 joerg bool requiresMVE() const override { return true; }
299 1.1 joerg std::string cNameBase() const override {
300 1.1 joerg return Element->cNameBase() + "x" + utostr(Lanes);
301 1.1 joerg }
302 1.1 joerg std::string llvmName() const override {
303 1.1.1.2 joerg return "llvm::FixedVectorType::get(" + Element->llvmName() + ", " +
304 1.1 joerg utostr(Lanes) + ")";
305 1.1 joerg }
306 1.1 joerg
307 1.1 joerg static bool classof(const Type *T) {
308 1.1 joerg return T->typeKind() == TypeKind::Vector;
309 1.1 joerg }
310 1.1 joerg };
311 1.1 joerg
312 1.1 joerg class MultiVectorType : public CRegularNamedType {
313 1.1 joerg const VectorType *Element;
314 1.1 joerg unsigned Registers;
315 1.1 joerg
316 1.1 joerg public:
317 1.1 joerg MultiVectorType(unsigned Registers, const VectorType *Element)
318 1.1 joerg : CRegularNamedType(TypeKind::MultiVector), Element(Element),
319 1.1 joerg Registers(Registers) {}
320 1.1 joerg unsigned sizeInBits() const override {
321 1.1 joerg return Registers * Element->sizeInBits();
322 1.1 joerg }
323 1.1 joerg unsigned registers() const { return Registers; }
324 1.1 joerg bool requiresFloat() const override { return Element->requiresFloat(); }
325 1.1.1.2 joerg bool requiresMVE() const override { return true; }
326 1.1 joerg std::string cNameBase() const override {
327 1.1 joerg return Element->cNameBase() + "x" + utostr(Registers);
328 1.1 joerg }
329 1.1 joerg
330 1.1 joerg // MultiVectorType doesn't override llvmName, because we don't expect to do
331 1.1 joerg // automatic code generation for the MVE intrinsics that use it: the {vld2,
332 1.1 joerg // vld4, vst2, vst4} family are the only ones that use these types, so it was
333 1.1 joerg // easier to hand-write the codegen for dealing with these structs than to
334 1.1 joerg // build in lots of extra automatic machinery that would only be used once.
335 1.1 joerg
336 1.1 joerg static bool classof(const Type *T) {
337 1.1 joerg return T->typeKind() == TypeKind::MultiVector;
338 1.1 joerg }
339 1.1 joerg };
340 1.1 joerg
341 1.1 joerg class PredicateType : public CRegularNamedType {
342 1.1 joerg unsigned Lanes;
343 1.1 joerg
344 1.1 joerg public:
345 1.1 joerg PredicateType(unsigned Lanes)
346 1.1 joerg : CRegularNamedType(TypeKind::Predicate), Lanes(Lanes) {}
347 1.1 joerg unsigned sizeInBits() const override { return 16; }
348 1.1 joerg std::string cNameBase() const override { return "mve_pred16"; }
349 1.1 joerg bool requiresFloat() const override { return false; };
350 1.1.1.2 joerg bool requiresMVE() const override { return true; }
351 1.1 joerg std::string llvmName() const override {
352 1.1 joerg // Use <4 x i1> instead of <2 x i1> for two-lane vector types. See
353 1.1 joerg // the comment in llvm/lib/Target/ARM/ARMInstrMVE.td for further
354 1.1 joerg // explanation.
355 1.1 joerg unsigned ModifiedLanes = (Lanes == 2 ? 4 : Lanes);
356 1.1 joerg
357 1.1.1.2 joerg return "llvm::FixedVectorType::get(Builder.getInt1Ty(), " +
358 1.1 joerg utostr(ModifiedLanes) + ")";
359 1.1 joerg }
360 1.1 joerg
361 1.1 joerg static bool classof(const Type *T) {
362 1.1 joerg return T->typeKind() == TypeKind::Predicate;
363 1.1 joerg }
364 1.1 joerg };
365 1.1 joerg
366 1.1 joerg // -----------------------------------------------------------------------------
367 1.1 joerg // Class to facilitate merging together the code generation for many intrinsics
368 1.1 joerg // by means of varying a few constant or type parameters.
369 1.1 joerg //
370 1.1 joerg // Most obviously, the intrinsics in a single parametrised family will have
371 1.1 joerg // code generation sequences that only differ in a type or two, e.g. vaddq_s8
372 1.1 joerg // and vaddq_u16 will look the same apart from putting a different vector type
373 1.1 joerg // in the call to CGM.getIntrinsic(). But also, completely different intrinsics
374 1.1 joerg // will often code-generate in the same way, with only a different choice of
375 1.1 joerg // _which_ IR intrinsic they lower to (e.g. vaddq_m_s8 and vmulq_m_s8), but
376 1.1 joerg // marshalling the arguments and return values of the IR intrinsic in exactly
377 1.1 joerg // the same way. And others might differ only in some other kind of constant,
378 1.1 joerg // such as a lane index.
379 1.1 joerg //
380 1.1 joerg // So, when we generate the IR-building code for all these intrinsics, we keep
381 1.1 joerg // track of every value that could possibly be pulled out of the code and
382 1.1 joerg // stored ahead of time in a local variable. Then we group together intrinsics
383 1.1 joerg // by textual equivalence of the code that would result if _all_ those
384 1.1 joerg // parameters were stored in local variables. That gives us maximal sets that
385 1.1 joerg // can be implemented by a single piece of IR-building code by changing
386 1.1 joerg // parameter values ahead of time.
387 1.1 joerg //
388 1.1 joerg // After we've done that, we do a second pass in which we only allocate _some_
389 1.1 joerg // of the parameters into local variables, by tracking which ones have the same
390 1.1 joerg // values as each other (so that a single variable can be reused) and which
391 1.1 joerg // ones are the same across the whole set (so that no variable is needed at
392 1.1 joerg // all).
393 1.1 joerg //
394 1.1 joerg // Hence the class below. Its allocParam method is invoked during code
395 1.1 joerg // generation by every method of a Result subclass (see below) that wants to
396 1.1 joerg // give it the opportunity to pull something out into a switchable parameter.
397 1.1 joerg // It returns a variable name for the parameter, or (if it's being used in the
398 1.1 joerg // second pass once we've decided that some parameters don't need to be stored
399 1.1 joerg // in variables after all) it might just return the input expression unchanged.
400 1.1 joerg
401 1.1 joerg struct CodeGenParamAllocator {
402 1.1 joerg // Accumulated during code generation
403 1.1 joerg std::vector<std::string> *ParamTypes = nullptr;
404 1.1 joerg std::vector<std::string> *ParamValues = nullptr;
405 1.1 joerg
406 1.1 joerg // Provided ahead of time in pass 2, to indicate which parameters are being
407 1.1 joerg // assigned to what. This vector contains an entry for each call to
408 1.1 joerg // allocParam expected during code gen (which we counted up in pass 1), and
409 1.1 joerg // indicates the number of the parameter variable that should be returned, or
410 1.1 joerg // -1 if this call shouldn't allocate a parameter variable at all.
411 1.1 joerg //
412 1.1 joerg // We rely on the recursive code generation working identically in passes 1
413 1.1 joerg // and 2, so that the same list of calls to allocParam happen in the same
414 1.1 joerg // order. That guarantees that the parameter numbers recorded in pass 1 will
415 1.1.1.2 joerg // match the entries in this vector that store what EmitterBase::EmitBuiltinCG
416 1.1 joerg // decided to do about each one in pass 2.
417 1.1 joerg std::vector<int> *ParamNumberMap = nullptr;
418 1.1 joerg
419 1.1 joerg // Internally track how many things we've allocated
420 1.1 joerg unsigned nparams = 0;
421 1.1 joerg
422 1.1 joerg std::string allocParam(StringRef Type, StringRef Value) {
423 1.1 joerg unsigned ParamNumber;
424 1.1 joerg
425 1.1 joerg if (!ParamNumberMap) {
426 1.1 joerg // In pass 1, unconditionally assign a new parameter variable to every
427 1.1 joerg // value we're asked to process.
428 1.1 joerg ParamNumber = nparams++;
429 1.1 joerg } else {
430 1.1 joerg // In pass 2, consult the map provided by the caller to find out which
431 1.1 joerg // variable we should be keeping things in.
432 1.1 joerg int MapValue = (*ParamNumberMap)[nparams++];
433 1.1 joerg if (MapValue < 0)
434 1.1.1.2 joerg return std::string(Value);
435 1.1 joerg ParamNumber = MapValue;
436 1.1 joerg }
437 1.1 joerg
438 1.1 joerg // If we've allocated a new parameter variable for the first time, store
439 1.1 joerg // its type and value to be retrieved after codegen.
440 1.1 joerg if (ParamTypes && ParamTypes->size() == ParamNumber)
441 1.1.1.2 joerg ParamTypes->push_back(std::string(Type));
442 1.1 joerg if (ParamValues && ParamValues->size() == ParamNumber)
443 1.1.1.2 joerg ParamValues->push_back(std::string(Value));
444 1.1 joerg
445 1.1 joerg // Unimaginative naming scheme for parameter variables.
446 1.1 joerg return "Param" + utostr(ParamNumber);
447 1.1 joerg }
448 1.1 joerg };
449 1.1 joerg
450 1.1 joerg // -----------------------------------------------------------------------------
451 1.1 joerg // System of classes that represent all the intermediate values used during
452 1.1 joerg // code-generation for an intrinsic.
453 1.1 joerg //
454 1.1 joerg // The base class 'Result' can represent a value of the LLVM type 'Value', or
455 1.1 joerg // sometimes 'Address' (for loads/stores, including an alignment requirement).
456 1.1 joerg //
457 1.1 joerg // In the case where the Tablegen provides a value in the codegen dag as a
458 1.1 joerg // plain integer literal, the Result object we construct here will be one that
459 1.1 joerg // returns true from hasIntegerConstantValue(). This allows the generated C++
460 1.1 joerg // code to use the constant directly in contexts which can take a literal
461 1.1 joerg // integer, such as Builder.CreateExtractValue(thing, 1), without going to the
462 1.1 joerg // effort of calling llvm::ConstantInt::get() and then pulling the constant
463 1.1 joerg // back out of the resulting llvm:Value later.
464 1.1 joerg
465 1.1 joerg class Result {
466 1.1 joerg public:
467 1.1 joerg // Convenient shorthand for the pointer type we'll be using everywhere.
468 1.1 joerg using Ptr = std::shared_ptr<Result>;
469 1.1 joerg
470 1.1 joerg private:
471 1.1 joerg Ptr Predecessor;
472 1.1 joerg std::string VarName;
473 1.1 joerg bool VarNameUsed = false;
474 1.1 joerg unsigned Visited = 0;
475 1.1 joerg
476 1.1 joerg public:
477 1.1 joerg virtual ~Result() = default;
478 1.1 joerg using Scope = std::map<std::string, Ptr>;
479 1.1 joerg virtual void genCode(raw_ostream &OS, CodeGenParamAllocator &) const = 0;
480 1.1 joerg virtual bool hasIntegerConstantValue() const { return false; }
481 1.1 joerg virtual uint32_t integerConstantValue() const { return 0; }
482 1.1.1.2 joerg virtual bool hasIntegerValue() const { return false; }
483 1.1.1.2 joerg virtual std::string getIntegerValue(const std::string &) {
484 1.1.1.2 joerg llvm_unreachable("non-working Result::getIntegerValue called");
485 1.1.1.2 joerg }
486 1.1 joerg virtual std::string typeName() const { return "Value *"; }
487 1.1 joerg
488 1.1 joerg // Mostly, when a code-generation operation has a dependency on prior
489 1.1 joerg // operations, it's because it uses the output values of those operations as
490 1.1 joerg // inputs. But there's one exception, which is the use of 'seq' in Tablegen
491 1.1 joerg // to indicate that operations have to be performed in sequence regardless of
492 1.1 joerg // whether they use each others' output values.
493 1.1 joerg //
494 1.1 joerg // So, the actual generation of code is done by depth-first search, using the
495 1.1 joerg // prerequisites() method to get a list of all the other Results that have to
496 1.1 joerg // be computed before this one. That method divides into the 'predecessor',
497 1.1 joerg // set by setPredecessor() while processing a 'seq' dag node, and the list
498 1.1 joerg // returned by 'morePrerequisites', which each subclass implements to return
499 1.1 joerg // a list of the Results it uses as input to whatever its own computation is
500 1.1 joerg // doing.
501 1.1 joerg
502 1.1 joerg virtual void morePrerequisites(std::vector<Ptr> &output) const {}
503 1.1 joerg std::vector<Ptr> prerequisites() const {
504 1.1 joerg std::vector<Ptr> ToRet;
505 1.1 joerg if (Predecessor)
506 1.1 joerg ToRet.push_back(Predecessor);
507 1.1 joerg morePrerequisites(ToRet);
508 1.1 joerg return ToRet;
509 1.1 joerg }
510 1.1 joerg
511 1.1 joerg void setPredecessor(Ptr p) {
512 1.1.1.2 joerg // If the user has nested one 'seq' node inside another, and this
513 1.1.1.2 joerg // method is called on the return value of the inner 'seq' (i.e.
514 1.1.1.2 joerg // the final item inside it), then we can't link _this_ node to p,
515 1.1.1.2 joerg // because it already has a predecessor. Instead, walk the chain
516 1.1.1.2 joerg // until we find the first item in the inner seq, and link that to
517 1.1.1.2 joerg // p, so that nesting seqs has the obvious effect of linking
518 1.1.1.2 joerg // everything together into one long sequential chain.
519 1.1.1.2 joerg Result *r = this;
520 1.1.1.2 joerg while (r->Predecessor)
521 1.1.1.2 joerg r = r->Predecessor.get();
522 1.1.1.2 joerg r->Predecessor = p;
523 1.1 joerg }
524 1.1 joerg
525 1.1 joerg // Each Result will be assigned a variable name in the output code, but not
526 1.1 joerg // all those variable names will actually be used (e.g. the return value of
527 1.1 joerg // Builder.CreateStore has void type, so nobody will want to refer to it). To
528 1.1 joerg // prevent annoying compiler warnings, we track whether each Result's
529 1.1 joerg // variable name was ever actually mentioned in subsequent statements, so
530 1.1 joerg // that it can be left out of the final generated code.
531 1.1 joerg std::string varname() {
532 1.1 joerg VarNameUsed = true;
533 1.1 joerg return VarName;
534 1.1 joerg }
535 1.1.1.2 joerg void setVarname(const StringRef s) { VarName = std::string(s); }
536 1.1 joerg bool varnameUsed() const { return VarNameUsed; }
537 1.1 joerg
538 1.1.1.2 joerg // Emit code to generate this result as a Value *.
539 1.1.1.2 joerg virtual std::string asValue() {
540 1.1.1.2 joerg return varname();
541 1.1.1.2 joerg }
542 1.1.1.2 joerg
543 1.1 joerg // Code generation happens in multiple passes. This method tracks whether a
544 1.1 joerg // Result has yet been visited in a given pass, without the need for a
545 1.1 joerg // tedious loop in between passes that goes through and resets a 'visited'
546 1.1 joerg // flag back to false: you just set Pass=1 the first time round, and Pass=2
547 1.1 joerg // the second time.
548 1.1 joerg bool needsVisiting(unsigned Pass) {
549 1.1 joerg bool ToRet = Visited < Pass;
550 1.1 joerg Visited = Pass;
551 1.1 joerg return ToRet;
552 1.1 joerg }
553 1.1 joerg };
554 1.1 joerg
555 1.1 joerg // Result subclass that retrieves one of the arguments to the clang builtin
556 1.1 joerg // function. In cases where the argument has pointer type, we call
557 1.1 joerg // EmitPointerWithAlignment and store the result in a variable of type Address,
558 1.1 joerg // so that load and store IR nodes can know the right alignment. Otherwise, we
559 1.1 joerg // call EmitScalarExpr.
560 1.1 joerg //
561 1.1 joerg // There are aggregate parameters in the MVE intrinsics API, but we don't deal
562 1.1 joerg // with them in this Tablegen back end: they only arise in the vld2q/vld4q and
563 1.1 joerg // vst2q/vst4q family, which is few enough that we just write the code by hand
564 1.1 joerg // for those in CGBuiltin.cpp.
565 1.1 joerg class BuiltinArgResult : public Result {
566 1.1 joerg public:
567 1.1 joerg unsigned ArgNum;
568 1.1 joerg bool AddressType;
569 1.1.1.2 joerg bool Immediate;
570 1.1.1.2 joerg BuiltinArgResult(unsigned ArgNum, bool AddressType, bool Immediate)
571 1.1.1.2 joerg : ArgNum(ArgNum), AddressType(AddressType), Immediate(Immediate) {}
572 1.1 joerg void genCode(raw_ostream &OS, CodeGenParamAllocator &) const override {
573 1.1 joerg OS << (AddressType ? "EmitPointerWithAlignment" : "EmitScalarExpr")
574 1.1 joerg << "(E->getArg(" << ArgNum << "))";
575 1.1 joerg }
576 1.1 joerg std::string typeName() const override {
577 1.1 joerg return AddressType ? "Address" : Result::typeName();
578 1.1 joerg }
579 1.1.1.2 joerg // Emit code to generate this result as a Value *.
580 1.1.1.2 joerg std::string asValue() override {
581 1.1.1.2 joerg if (AddressType)
582 1.1.1.2 joerg return "(" + varname() + ".getPointer())";
583 1.1.1.2 joerg return Result::asValue();
584 1.1.1.2 joerg }
585 1.1.1.2 joerg bool hasIntegerValue() const override { return Immediate; }
586 1.1.1.2 joerg std::string getIntegerValue(const std::string &IntType) override {
587 1.1.1.2 joerg return "GetIntegerConstantValue<" + IntType + ">(E->getArg(" +
588 1.1.1.2 joerg utostr(ArgNum) + "), getContext())";
589 1.1.1.2 joerg }
590 1.1 joerg };
591 1.1 joerg
592 1.1 joerg // Result subclass for an integer literal appearing in Tablegen. This may need
593 1.1 joerg // to be turned into an llvm::Result by means of llvm::ConstantInt::get(), or
594 1.1 joerg // it may be used directly as an integer, depending on which IRBuilder method
595 1.1 joerg // it's being passed to.
596 1.1 joerg class IntLiteralResult : public Result {
597 1.1 joerg public:
598 1.1 joerg const ScalarType *IntegerType;
599 1.1 joerg uint32_t IntegerValue;
600 1.1 joerg IntLiteralResult(const ScalarType *IntegerType, uint32_t IntegerValue)
601 1.1 joerg : IntegerType(IntegerType), IntegerValue(IntegerValue) {}
602 1.1 joerg void genCode(raw_ostream &OS,
603 1.1 joerg CodeGenParamAllocator &ParamAlloc) const override {
604 1.1 joerg OS << "llvm::ConstantInt::get("
605 1.1 joerg << ParamAlloc.allocParam("llvm::Type *", IntegerType->llvmName())
606 1.1 joerg << ", ";
607 1.1 joerg OS << ParamAlloc.allocParam(IntegerType->cName(), utostr(IntegerValue))
608 1.1 joerg << ")";
609 1.1 joerg }
610 1.1 joerg bool hasIntegerConstantValue() const override { return true; }
611 1.1 joerg uint32_t integerConstantValue() const override { return IntegerValue; }
612 1.1 joerg };
613 1.1 joerg
614 1.1 joerg // Result subclass representing a cast between different integer types. We use
615 1.1 joerg // our own ScalarType abstraction as the representation of the target type,
616 1.1 joerg // which gives both size and signedness.
617 1.1 joerg class IntCastResult : public Result {
618 1.1 joerg public:
619 1.1 joerg const ScalarType *IntegerType;
620 1.1 joerg Ptr V;
621 1.1 joerg IntCastResult(const ScalarType *IntegerType, Ptr V)
622 1.1 joerg : IntegerType(IntegerType), V(V) {}
623 1.1 joerg void genCode(raw_ostream &OS,
624 1.1 joerg CodeGenParamAllocator &ParamAlloc) const override {
625 1.1 joerg OS << "Builder.CreateIntCast(" << V->varname() << ", "
626 1.1 joerg << ParamAlloc.allocParam("llvm::Type *", IntegerType->llvmName()) << ", "
627 1.1 joerg << ParamAlloc.allocParam("bool",
628 1.1 joerg IntegerType->kind() == ScalarTypeKind::SignedInt
629 1.1 joerg ? "true"
630 1.1 joerg : "false")
631 1.1 joerg << ")";
632 1.1 joerg }
633 1.1 joerg void morePrerequisites(std::vector<Ptr> &output) const override {
634 1.1 joerg output.push_back(V);
635 1.1 joerg }
636 1.1 joerg };
637 1.1 joerg
638 1.1.1.2 joerg // Result subclass representing a cast between different pointer types.
639 1.1.1.2 joerg class PointerCastResult : public Result {
640 1.1.1.2 joerg public:
641 1.1.1.2 joerg const PointerType *PtrType;
642 1.1.1.2 joerg Ptr V;
643 1.1.1.2 joerg PointerCastResult(const PointerType *PtrType, Ptr V)
644 1.1.1.2 joerg : PtrType(PtrType), V(V) {}
645 1.1.1.2 joerg void genCode(raw_ostream &OS,
646 1.1.1.2 joerg CodeGenParamAllocator &ParamAlloc) const override {
647 1.1.1.2 joerg OS << "Builder.CreatePointerCast(" << V->asValue() << ", "
648 1.1.1.2 joerg << ParamAlloc.allocParam("llvm::Type *", PtrType->llvmName()) << ")";
649 1.1.1.2 joerg }
650 1.1.1.2 joerg void morePrerequisites(std::vector<Ptr> &output) const override {
651 1.1.1.2 joerg output.push_back(V);
652 1.1.1.2 joerg }
653 1.1.1.2 joerg };
654 1.1.1.2 joerg
655 1.1 joerg // Result subclass representing a call to an IRBuilder method. Each IRBuilder
656 1.1 joerg // method we want to use will have a Tablegen record giving the method name and
657 1.1 joerg // describing any important details of how to call it, such as whether a
658 1.1 joerg // particular argument should be an integer constant instead of an llvm::Value.
659 1.1 joerg class IRBuilderResult : public Result {
660 1.1 joerg public:
661 1.1.1.2 joerg StringRef CallPrefix;
662 1.1 joerg std::vector<Ptr> Args;
663 1.1 joerg std::set<unsigned> AddressArgs;
664 1.1.1.2 joerg std::map<unsigned, std::string> IntegerArgs;
665 1.1.1.2 joerg IRBuilderResult(StringRef CallPrefix, std::vector<Ptr> Args,
666 1.1 joerg std::set<unsigned> AddressArgs,
667 1.1.1.2 joerg std::map<unsigned, std::string> IntegerArgs)
668 1.1.1.2 joerg : CallPrefix(CallPrefix), Args(Args), AddressArgs(AddressArgs),
669 1.1.1.2 joerg IntegerArgs(IntegerArgs) {}
670 1.1 joerg void genCode(raw_ostream &OS,
671 1.1 joerg CodeGenParamAllocator &ParamAlloc) const override {
672 1.1.1.2 joerg OS << CallPrefix;
673 1.1 joerg const char *Sep = "";
674 1.1 joerg for (unsigned i = 0, e = Args.size(); i < e; ++i) {
675 1.1 joerg Ptr Arg = Args[i];
676 1.1.1.2 joerg auto it = IntegerArgs.find(i);
677 1.1.1.2 joerg
678 1.1.1.2 joerg OS << Sep;
679 1.1.1.2 joerg Sep = ", ";
680 1.1.1.2 joerg
681 1.1.1.2 joerg if (it != IntegerArgs.end()) {
682 1.1.1.2 joerg if (Arg->hasIntegerConstantValue())
683 1.1.1.2 joerg OS << "static_cast<" << it->second << ">("
684 1.1.1.2 joerg << ParamAlloc.allocParam(it->second,
685 1.1.1.2 joerg utostr(Arg->integerConstantValue()))
686 1.1.1.2 joerg << ")";
687 1.1.1.2 joerg else if (Arg->hasIntegerValue())
688 1.1.1.2 joerg OS << ParamAlloc.allocParam(it->second,
689 1.1.1.2 joerg Arg->getIntegerValue(it->second));
690 1.1 joerg } else {
691 1.1.1.2 joerg OS << Arg->varname();
692 1.1 joerg }
693 1.1 joerg }
694 1.1 joerg OS << ")";
695 1.1 joerg }
696 1.1 joerg void morePrerequisites(std::vector<Ptr> &output) const override {
697 1.1 joerg for (unsigned i = 0, e = Args.size(); i < e; ++i) {
698 1.1 joerg Ptr Arg = Args[i];
699 1.1.1.2 joerg if (IntegerArgs.find(i) != IntegerArgs.end())
700 1.1 joerg continue;
701 1.1 joerg output.push_back(Arg);
702 1.1 joerg }
703 1.1 joerg }
704 1.1 joerg };
705 1.1 joerg
706 1.1.1.2 joerg // Result subclass representing making an Address out of a Value.
707 1.1.1.2 joerg class AddressResult : public Result {
708 1.1.1.2 joerg public:
709 1.1.1.2 joerg Ptr Arg;
710 1.1.1.2 joerg unsigned Align;
711 1.1.1.2 joerg AddressResult(Ptr Arg, unsigned Align) : Arg(Arg), Align(Align) {}
712 1.1.1.2 joerg void genCode(raw_ostream &OS,
713 1.1.1.2 joerg CodeGenParamAllocator &ParamAlloc) const override {
714 1.1.1.2 joerg OS << "Address(" << Arg->varname() << ", CharUnits::fromQuantity("
715 1.1.1.2 joerg << Align << "))";
716 1.1.1.2 joerg }
717 1.1.1.2 joerg std::string typeName() const override {
718 1.1.1.2 joerg return "Address";
719 1.1.1.2 joerg }
720 1.1.1.2 joerg void morePrerequisites(std::vector<Ptr> &output) const override {
721 1.1.1.2 joerg output.push_back(Arg);
722 1.1.1.2 joerg }
723 1.1.1.2 joerg };
724 1.1.1.2 joerg
725 1.1 joerg // Result subclass representing a call to an IR intrinsic, which we first have
726 1.1 joerg // to look up using an Intrinsic::ID constant and an array of types.
727 1.1 joerg class IRIntrinsicResult : public Result {
728 1.1 joerg public:
729 1.1 joerg std::string IntrinsicID;
730 1.1 joerg std::vector<const Type *> ParamTypes;
731 1.1 joerg std::vector<Ptr> Args;
732 1.1 joerg IRIntrinsicResult(StringRef IntrinsicID, std::vector<const Type *> ParamTypes,
733 1.1 joerg std::vector<Ptr> Args)
734 1.1.1.2 joerg : IntrinsicID(std::string(IntrinsicID)), ParamTypes(ParamTypes),
735 1.1.1.2 joerg Args(Args) {}
736 1.1 joerg void genCode(raw_ostream &OS,
737 1.1 joerg CodeGenParamAllocator &ParamAlloc) const override {
738 1.1 joerg std::string IntNo = ParamAlloc.allocParam(
739 1.1.1.2 joerg "Intrinsic::ID", "Intrinsic::" + IntrinsicID);
740 1.1 joerg OS << "Builder.CreateCall(CGM.getIntrinsic(" << IntNo;
741 1.1 joerg if (!ParamTypes.empty()) {
742 1.1.1.2 joerg OS << ", {";
743 1.1 joerg const char *Sep = "";
744 1.1 joerg for (auto T : ParamTypes) {
745 1.1 joerg OS << Sep << ParamAlloc.allocParam("llvm::Type *", T->llvmName());
746 1.1 joerg Sep = ", ";
747 1.1 joerg }
748 1.1 joerg OS << "}";
749 1.1 joerg }
750 1.1.1.2 joerg OS << "), {";
751 1.1 joerg const char *Sep = "";
752 1.1 joerg for (auto Arg : Args) {
753 1.1.1.2 joerg OS << Sep << Arg->asValue();
754 1.1 joerg Sep = ", ";
755 1.1 joerg }
756 1.1 joerg OS << "})";
757 1.1 joerg }
758 1.1 joerg void morePrerequisites(std::vector<Ptr> &output) const override {
759 1.1 joerg output.insert(output.end(), Args.begin(), Args.end());
760 1.1 joerg }
761 1.1 joerg };
762 1.1 joerg
763 1.1.1.2 joerg // Result subclass that specifies a type, for use in IRBuilder operations such
764 1.1.1.2 joerg // as CreateBitCast that take a type argument.
765 1.1.1.2 joerg class TypeResult : public Result {
766 1.1.1.2 joerg public:
767 1.1.1.2 joerg const Type *T;
768 1.1.1.2 joerg TypeResult(const Type *T) : T(T) {}
769 1.1.1.2 joerg void genCode(raw_ostream &OS, CodeGenParamAllocator &) const override {
770 1.1.1.2 joerg OS << T->llvmName();
771 1.1.1.2 joerg }
772 1.1.1.2 joerg std::string typeName() const override {
773 1.1.1.2 joerg return "llvm::Type *";
774 1.1.1.2 joerg }
775 1.1.1.2 joerg };
776 1.1.1.2 joerg
777 1.1 joerg // -----------------------------------------------------------------------------
778 1.1 joerg // Class that describes a single ACLE intrinsic.
779 1.1 joerg //
780 1.1 joerg // A Tablegen record will typically describe more than one ACLE intrinsic, by
781 1.1 joerg // means of setting the 'list<Type> Params' field to a list of multiple
782 1.1 joerg // parameter types, so as to define vaddq_{s8,u8,...,f16,f32} all in one go.
783 1.1 joerg // We'll end up with one instance of ACLEIntrinsic for *each* parameter type,
784 1.1 joerg // rather than a single one for all of them. Hence, the constructor takes both
785 1.1 joerg // a Tablegen record and the current value of the parameter type.
786 1.1 joerg
787 1.1 joerg class ACLEIntrinsic {
788 1.1 joerg // Structure documenting that one of the intrinsic's arguments is required to
789 1.1 joerg // be a compile-time constant integer, and what constraints there are on its
790 1.1 joerg // value. Used when generating Sema checking code.
791 1.1 joerg struct ImmediateArg {
792 1.1 joerg enum class BoundsType { ExplicitRange, UInt };
793 1.1 joerg BoundsType boundsType;
794 1.1 joerg int64_t i1, i2;
795 1.1 joerg StringRef ExtraCheckType, ExtraCheckArgs;
796 1.1 joerg const Type *ArgType;
797 1.1 joerg };
798 1.1 joerg
799 1.1 joerg // For polymorphic intrinsics, FullName is the explicit name that uniquely
800 1.1 joerg // identifies this variant of the intrinsic, and ShortName is the name it
801 1.1 joerg // shares with at least one other intrinsic.
802 1.1 joerg std::string ShortName, FullName;
803 1.1 joerg
804 1.1.1.2 joerg // Name of the architecture extension, used in the Clang builtin name
805 1.1.1.2 joerg StringRef BuiltinExtension;
806 1.1.1.2 joerg
807 1.1.1.2 joerg // A very small number of intrinsics _only_ have a polymorphic
808 1.1.1.2 joerg // variant (vuninitializedq taking an unevaluated argument).
809 1.1.1.2 joerg bool PolymorphicOnly;
810 1.1.1.2 joerg
811 1.1.1.2 joerg // Another rarely-used flag indicating that the builtin doesn't
812 1.1.1.2 joerg // evaluate its argument(s) at all.
813 1.1.1.2 joerg bool NonEvaluating;
814 1.1.1.2 joerg
815 1.1.1.2 joerg // True if the intrinsic needs only the C header part (no codegen, semantic
816 1.1.1.2 joerg // checks, etc). Used for redeclaring MVE intrinsics in the arm_cde.h header.
817 1.1.1.2 joerg bool HeaderOnly;
818 1.1.1.2 joerg
819 1.1 joerg const Type *ReturnType;
820 1.1 joerg std::vector<const Type *> ArgTypes;
821 1.1 joerg std::map<unsigned, ImmediateArg> ImmediateArgs;
822 1.1 joerg Result::Ptr Code;
823 1.1 joerg
824 1.1 joerg std::map<std::string, std::string> CustomCodeGenArgs;
825 1.1 joerg
826 1.1 joerg // Recursive function that does the internals of code generation.
827 1.1 joerg void genCodeDfs(Result::Ptr V, std::list<Result::Ptr> &Used,
828 1.1 joerg unsigned Pass) const {
829 1.1 joerg if (!V->needsVisiting(Pass))
830 1.1 joerg return;
831 1.1 joerg
832 1.1 joerg for (Result::Ptr W : V->prerequisites())
833 1.1 joerg genCodeDfs(W, Used, Pass);
834 1.1 joerg
835 1.1 joerg Used.push_back(V);
836 1.1 joerg }
837 1.1 joerg
838 1.1 joerg public:
839 1.1 joerg const std::string &shortName() const { return ShortName; }
840 1.1 joerg const std::string &fullName() const { return FullName; }
841 1.1.1.2 joerg StringRef builtinExtension() const { return BuiltinExtension; }
842 1.1 joerg const Type *returnType() const { return ReturnType; }
843 1.1 joerg const std::vector<const Type *> &argTypes() const { return ArgTypes; }
844 1.1 joerg bool requiresFloat() const {
845 1.1 joerg if (ReturnType->requiresFloat())
846 1.1 joerg return true;
847 1.1 joerg for (const Type *T : ArgTypes)
848 1.1 joerg if (T->requiresFloat())
849 1.1 joerg return true;
850 1.1 joerg return false;
851 1.1 joerg }
852 1.1.1.2 joerg bool requiresMVE() const {
853 1.1.1.2 joerg return ReturnType->requiresMVE() ||
854 1.1.1.2 joerg any_of(ArgTypes, [](const Type *T) { return T->requiresMVE(); });
855 1.1.1.2 joerg }
856 1.1 joerg bool polymorphic() const { return ShortName != FullName; }
857 1.1.1.2 joerg bool polymorphicOnly() const { return PolymorphicOnly; }
858 1.1.1.2 joerg bool nonEvaluating() const { return NonEvaluating; }
859 1.1.1.2 joerg bool headerOnly() const { return HeaderOnly; }
860 1.1 joerg
861 1.1.1.2 joerg // External entry point for code generation, called from EmitterBase.
862 1.1 joerg void genCode(raw_ostream &OS, CodeGenParamAllocator &ParamAlloc,
863 1.1 joerg unsigned Pass) const {
864 1.1.1.2 joerg assert(!headerOnly() && "Called genCode for header-only intrinsic");
865 1.1 joerg if (!hasCode()) {
866 1.1 joerg for (auto kv : CustomCodeGenArgs)
867 1.1 joerg OS << " " << kv.first << " = " << kv.second << ";\n";
868 1.1 joerg OS << " break; // custom code gen\n";
869 1.1 joerg return;
870 1.1 joerg }
871 1.1 joerg std::list<Result::Ptr> Used;
872 1.1 joerg genCodeDfs(Code, Used, Pass);
873 1.1 joerg
874 1.1 joerg unsigned varindex = 0;
875 1.1 joerg for (Result::Ptr V : Used)
876 1.1 joerg if (V->varnameUsed())
877 1.1 joerg V->setVarname("Val" + utostr(varindex++));
878 1.1 joerg
879 1.1 joerg for (Result::Ptr V : Used) {
880 1.1 joerg OS << " ";
881 1.1 joerg if (V == Used.back()) {
882 1.1 joerg assert(!V->varnameUsed());
883 1.1 joerg OS << "return "; // FIXME: what if the top-level thing is void?
884 1.1 joerg } else if (V->varnameUsed()) {
885 1.1 joerg std::string Type = V->typeName();
886 1.1 joerg OS << V->typeName();
887 1.1 joerg if (!StringRef(Type).endswith("*"))
888 1.1 joerg OS << " ";
889 1.1 joerg OS << V->varname() << " = ";
890 1.1 joerg }
891 1.1 joerg V->genCode(OS, ParamAlloc);
892 1.1 joerg OS << ";\n";
893 1.1 joerg }
894 1.1 joerg }
895 1.1 joerg bool hasCode() const { return Code != nullptr; }
896 1.1 joerg
897 1.1.1.2 joerg static std::string signedHexLiteral(const llvm::APInt &iOrig) {
898 1.1.1.2 joerg llvm::APInt i = iOrig.trunc(64);
899 1.1.1.2 joerg SmallString<40> s;
900 1.1.1.2 joerg i.toString(s, 16, true, true);
901 1.1.1.2 joerg return std::string(s.str());
902 1.1.1.2 joerg }
903 1.1.1.2 joerg
904 1.1 joerg std::string genSema() const {
905 1.1.1.2 joerg assert(!headerOnly() && "Called genSema for header-only intrinsic");
906 1.1 joerg std::vector<std::string> SemaChecks;
907 1.1 joerg
908 1.1 joerg for (const auto &kv : ImmediateArgs) {
909 1.1 joerg const ImmediateArg &IA = kv.second;
910 1.1 joerg
911 1.1 joerg llvm::APInt lo(128, 0), hi(128, 0);
912 1.1 joerg switch (IA.boundsType) {
913 1.1 joerg case ImmediateArg::BoundsType::ExplicitRange:
914 1.1 joerg lo = IA.i1;
915 1.1 joerg hi = IA.i2;
916 1.1 joerg break;
917 1.1 joerg case ImmediateArg::BoundsType::UInt:
918 1.1 joerg lo = 0;
919 1.1.1.2 joerg hi = llvm::APInt::getMaxValue(IA.i1).zext(128);
920 1.1 joerg break;
921 1.1 joerg }
922 1.1 joerg
923 1.1 joerg std::string Index = utostr(kv.first);
924 1.1 joerg
925 1.1.1.2 joerg // Emit a range check if the legal range of values for the
926 1.1.1.2 joerg // immediate is smaller than the _possible_ range of values for
927 1.1.1.2 joerg // its type.
928 1.1.1.2 joerg unsigned ArgTypeBits = IA.ArgType->sizeInBits();
929 1.1.1.2 joerg llvm::APInt ArgTypeRange = llvm::APInt::getMaxValue(ArgTypeBits).zext(128);
930 1.1.1.2 joerg llvm::APInt ActualRange = (hi-lo).trunc(64).sext(128);
931 1.1.1.2 joerg if (ActualRange.ult(ArgTypeRange))
932 1.1 joerg SemaChecks.push_back("SemaBuiltinConstantArgRange(TheCall, " + Index +
933 1.1.1.2 joerg ", " + signedHexLiteral(lo) + ", " +
934 1.1.1.2 joerg signedHexLiteral(hi) + ")");
935 1.1 joerg
936 1.1 joerg if (!IA.ExtraCheckType.empty()) {
937 1.1 joerg std::string Suffix;
938 1.1.1.2 joerg if (!IA.ExtraCheckArgs.empty()) {
939 1.1.1.2 joerg std::string tmp;
940 1.1.1.2 joerg StringRef Arg = IA.ExtraCheckArgs;
941 1.1.1.2 joerg if (Arg == "!lanesize") {
942 1.1.1.2 joerg tmp = utostr(IA.ArgType->sizeInBits());
943 1.1.1.2 joerg Arg = tmp;
944 1.1.1.2 joerg }
945 1.1.1.2 joerg Suffix = (Twine(", ") + Arg).str();
946 1.1.1.2 joerg }
947 1.1 joerg SemaChecks.push_back((Twine("SemaBuiltinConstantArg") +
948 1.1 joerg IA.ExtraCheckType + "(TheCall, " + Index +
949 1.1 joerg Suffix + ")")
950 1.1 joerg .str());
951 1.1 joerg }
952 1.1.1.2 joerg
953 1.1.1.2 joerg assert(!SemaChecks.empty());
954 1.1 joerg }
955 1.1 joerg if (SemaChecks.empty())
956 1.1 joerg return "";
957 1.1.1.2 joerg return join(std::begin(SemaChecks), std::end(SemaChecks),
958 1.1.1.2 joerg " ||\n ") +
959 1.1.1.2 joerg ";\n";
960 1.1 joerg }
961 1.1 joerg
962 1.1.1.2 joerg ACLEIntrinsic(EmitterBase &ME, Record *R, const Type *Param);
963 1.1 joerg };
964 1.1 joerg
965 1.1 joerg // -----------------------------------------------------------------------------
966 1.1 joerg // The top-level class that holds all the state from analyzing the entire
967 1.1 joerg // Tablegen input.
968 1.1 joerg
969 1.1.1.2 joerg class EmitterBase {
970 1.1.1.2 joerg protected:
971 1.1.1.2 joerg // EmitterBase holds a collection of all the types we've instantiated.
972 1.1 joerg VoidType Void;
973 1.1 joerg std::map<std::string, std::unique_ptr<ScalarType>> ScalarTypes;
974 1.1.1.2 joerg std::map<std::tuple<ScalarTypeKind, unsigned, unsigned>,
975 1.1.1.2 joerg std::unique_ptr<VectorType>>
976 1.1 joerg VectorTypes;
977 1.1 joerg std::map<std::pair<std::string, unsigned>, std::unique_ptr<MultiVectorType>>
978 1.1 joerg MultiVectorTypes;
979 1.1 joerg std::map<unsigned, std::unique_ptr<PredicateType>> PredicateTypes;
980 1.1 joerg std::map<std::string, std::unique_ptr<PointerType>> PointerTypes;
981 1.1 joerg
982 1.1 joerg // And all the ACLEIntrinsic instances we've created.
983 1.1 joerg std::map<std::string, std::unique_ptr<ACLEIntrinsic>> ACLEIntrinsics;
984 1.1 joerg
985 1.1 joerg public:
986 1.1 joerg // Methods to create a Type object, or return the right existing one from the
987 1.1 joerg // maps stored in this object.
988 1.1 joerg const VoidType *getVoidType() { return &Void; }
989 1.1 joerg const ScalarType *getScalarType(StringRef Name) {
990 1.1.1.2 joerg return ScalarTypes[std::string(Name)].get();
991 1.1 joerg }
992 1.1 joerg const ScalarType *getScalarType(Record *R) {
993 1.1 joerg return getScalarType(R->getName());
994 1.1 joerg }
995 1.1.1.2 joerg const VectorType *getVectorType(const ScalarType *ST, unsigned Lanes) {
996 1.1.1.2 joerg std::tuple<ScalarTypeKind, unsigned, unsigned> key(ST->kind(),
997 1.1.1.2 joerg ST->sizeInBits(), Lanes);
998 1.1 joerg if (VectorTypes.find(key) == VectorTypes.end())
999 1.1.1.2 joerg VectorTypes[key] = std::make_unique<VectorType>(ST, Lanes);
1000 1.1 joerg return VectorTypes[key].get();
1001 1.1 joerg }
1002 1.1.1.2 joerg const VectorType *getVectorType(const ScalarType *ST) {
1003 1.1.1.2 joerg return getVectorType(ST, 128 / ST->sizeInBits());
1004 1.1.1.2 joerg }
1005 1.1 joerg const MultiVectorType *getMultiVectorType(unsigned Registers,
1006 1.1 joerg const VectorType *VT) {
1007 1.1 joerg std::pair<std::string, unsigned> key(VT->cNameBase(), Registers);
1008 1.1 joerg if (MultiVectorTypes.find(key) == MultiVectorTypes.end())
1009 1.1 joerg MultiVectorTypes[key] = std::make_unique<MultiVectorType>(Registers, VT);
1010 1.1 joerg return MultiVectorTypes[key].get();
1011 1.1 joerg }
1012 1.1 joerg const PredicateType *getPredicateType(unsigned Lanes) {
1013 1.1 joerg unsigned key = Lanes;
1014 1.1 joerg if (PredicateTypes.find(key) == PredicateTypes.end())
1015 1.1 joerg PredicateTypes[key] = std::make_unique<PredicateType>(Lanes);
1016 1.1 joerg return PredicateTypes[key].get();
1017 1.1 joerg }
1018 1.1 joerg const PointerType *getPointerType(const Type *T, bool Const) {
1019 1.1 joerg PointerType PT(T, Const);
1020 1.1 joerg std::string key = PT.cName();
1021 1.1 joerg if (PointerTypes.find(key) == PointerTypes.end())
1022 1.1 joerg PointerTypes[key] = std::make_unique<PointerType>(PT);
1023 1.1 joerg return PointerTypes[key].get();
1024 1.1 joerg }
1025 1.1 joerg
1026 1.1 joerg // Methods to construct a type from various pieces of Tablegen. These are
1027 1.1 joerg // always called in the context of setting up a particular ACLEIntrinsic, so
1028 1.1 joerg // there's always an ambient parameter type (because we're iterating through
1029 1.1 joerg // the Params list in the Tablegen record for the intrinsic), which is used
1030 1.1 joerg // to expand Tablegen classes like 'Vector' which mean something different in
1031 1.1 joerg // each member of a parametric family.
1032 1.1 joerg const Type *getType(Record *R, const Type *Param);
1033 1.1 joerg const Type *getType(DagInit *D, const Type *Param);
1034 1.1 joerg const Type *getType(Init *I, const Type *Param);
1035 1.1 joerg
1036 1.1 joerg // Functions that translate the Tablegen representation of an intrinsic's
1037 1.1 joerg // code generation into a collection of Value objects (which will then be
1038 1.1 joerg // reprocessed to read out the actual C++ code included by CGBuiltin.cpp).
1039 1.1 joerg Result::Ptr getCodeForDag(DagInit *D, const Result::Scope &Scope,
1040 1.1 joerg const Type *Param);
1041 1.1 joerg Result::Ptr getCodeForDagArg(DagInit *D, unsigned ArgNum,
1042 1.1 joerg const Result::Scope &Scope, const Type *Param);
1043 1.1.1.2 joerg Result::Ptr getCodeForArg(unsigned ArgNum, const Type *ArgType, bool Promote,
1044 1.1.1.2 joerg bool Immediate);
1045 1.1.1.2 joerg
1046 1.1.1.2 joerg void GroupSemaChecks(std::map<std::string, std::set<std::string>> &Checks);
1047 1.1 joerg
1048 1.1 joerg // Constructor and top-level functions.
1049 1.1 joerg
1050 1.1.1.2 joerg EmitterBase(RecordKeeper &Records);
1051 1.1.1.2 joerg virtual ~EmitterBase() = default;
1052 1.1 joerg
1053 1.1.1.2 joerg virtual void EmitHeader(raw_ostream &OS) = 0;
1054 1.1.1.2 joerg virtual void EmitBuiltinDef(raw_ostream &OS) = 0;
1055 1.1.1.2 joerg virtual void EmitBuiltinSema(raw_ostream &OS) = 0;
1056 1.1 joerg void EmitBuiltinCG(raw_ostream &OS);
1057 1.1 joerg void EmitBuiltinAliases(raw_ostream &OS);
1058 1.1 joerg };
1059 1.1 joerg
1060 1.1.1.2 joerg const Type *EmitterBase::getType(Init *I, const Type *Param) {
1061 1.1 joerg if (auto Dag = dyn_cast<DagInit>(I))
1062 1.1 joerg return getType(Dag, Param);
1063 1.1 joerg if (auto Def = dyn_cast<DefInit>(I))
1064 1.1 joerg return getType(Def->getDef(), Param);
1065 1.1 joerg
1066 1.1 joerg PrintFatalError("Could not convert this value into a type");
1067 1.1 joerg }
1068 1.1 joerg
1069 1.1.1.2 joerg const Type *EmitterBase::getType(Record *R, const Type *Param) {
1070 1.1.1.2 joerg // Pass to a subfield of any wrapper records. We don't expect more than one
1071 1.1.1.2 joerg // of these: immediate operands are used as plain numbers rather than as
1072 1.1.1.2 joerg // llvm::Value, so it's meaningless to promote their type anyway.
1073 1.1 joerg if (R->isSubClassOf("Immediate"))
1074 1.1.1.2 joerg R = R->getValueAsDef("type");
1075 1.1.1.2 joerg else if (R->isSubClassOf("unpromoted"))
1076 1.1.1.2 joerg R = R->getValueAsDef("underlying_type");
1077 1.1 joerg
1078 1.1 joerg if (R->getName() == "Void")
1079 1.1 joerg return getVoidType();
1080 1.1 joerg if (R->isSubClassOf("PrimitiveType"))
1081 1.1 joerg return getScalarType(R);
1082 1.1 joerg if (R->isSubClassOf("ComplexType"))
1083 1.1 joerg return getType(R->getValueAsDag("spec"), Param);
1084 1.1 joerg
1085 1.1 joerg PrintFatalError(R->getLoc(), "Could not convert this record into a type");
1086 1.1 joerg }
1087 1.1 joerg
1088 1.1.1.2 joerg const Type *EmitterBase::getType(DagInit *D, const Type *Param) {
1089 1.1 joerg // The meat of the getType system: types in the Tablegen are represented by a
1090 1.1 joerg // dag whose operators select sub-cases of this function.
1091 1.1 joerg
1092 1.1 joerg Record *Op = cast<DefInit>(D->getOperator())->getDef();
1093 1.1 joerg if (!Op->isSubClassOf("ComplexTypeOp"))
1094 1.1 joerg PrintFatalError(
1095 1.1 joerg "Expected ComplexTypeOp as dag operator in type expression");
1096 1.1 joerg
1097 1.1 joerg if (Op->getName() == "CTO_Parameter") {
1098 1.1 joerg if (isa<VoidType>(Param))
1099 1.1 joerg PrintFatalError("Parametric type in unparametrised context");
1100 1.1 joerg return Param;
1101 1.1 joerg }
1102 1.1 joerg
1103 1.1 joerg if (Op->getName() == "CTO_Vec") {
1104 1.1 joerg const Type *Element = getType(D->getArg(0), Param);
1105 1.1.1.2 joerg if (D->getNumArgs() == 1) {
1106 1.1.1.2 joerg return getVectorType(cast<ScalarType>(Element));
1107 1.1.1.2 joerg } else {
1108 1.1.1.2 joerg const Type *ExistingVector = getType(D->getArg(1), Param);
1109 1.1.1.2 joerg return getVectorType(cast<ScalarType>(Element),
1110 1.1.1.2 joerg cast<VectorType>(ExistingVector)->lanes());
1111 1.1.1.2 joerg }
1112 1.1 joerg }
1113 1.1 joerg
1114 1.1 joerg if (Op->getName() == "CTO_Pred") {
1115 1.1 joerg const Type *Element = getType(D->getArg(0), Param);
1116 1.1 joerg return getPredicateType(128 / Element->sizeInBits());
1117 1.1 joerg }
1118 1.1 joerg
1119 1.1 joerg if (Op->isSubClassOf("CTO_Tuple")) {
1120 1.1 joerg unsigned Registers = Op->getValueAsInt("n");
1121 1.1 joerg const Type *Element = getType(D->getArg(0), Param);
1122 1.1 joerg return getMultiVectorType(Registers, cast<VectorType>(Element));
1123 1.1 joerg }
1124 1.1 joerg
1125 1.1 joerg if (Op->isSubClassOf("CTO_Pointer")) {
1126 1.1 joerg const Type *Pointee = getType(D->getArg(0), Param);
1127 1.1 joerg return getPointerType(Pointee, Op->getValueAsBit("const"));
1128 1.1 joerg }
1129 1.1 joerg
1130 1.1.1.2 joerg if (Op->getName() == "CTO_CopyKind") {
1131 1.1.1.2 joerg const ScalarType *STSize = cast<ScalarType>(getType(D->getArg(0), Param));
1132 1.1.1.2 joerg const ScalarType *STKind = cast<ScalarType>(getType(D->getArg(1), Param));
1133 1.1.1.2 joerg for (const auto &kv : ScalarTypes) {
1134 1.1.1.2 joerg const ScalarType *RT = kv.second.get();
1135 1.1.1.2 joerg if (RT->kind() == STKind->kind() && RT->sizeInBits() == STSize->sizeInBits())
1136 1.1.1.2 joerg return RT;
1137 1.1.1.2 joerg }
1138 1.1.1.2 joerg PrintFatalError("Cannot find a type to satisfy CopyKind");
1139 1.1.1.2 joerg }
1140 1.1.1.2 joerg
1141 1.1.1.2 joerg if (Op->isSubClassOf("CTO_ScaleSize")) {
1142 1.1.1.2 joerg const ScalarType *STKind = cast<ScalarType>(getType(D->getArg(0), Param));
1143 1.1.1.2 joerg int Num = Op->getValueAsInt("num"), Denom = Op->getValueAsInt("denom");
1144 1.1.1.2 joerg unsigned DesiredSize = STKind->sizeInBits() * Num / Denom;
1145 1.1 joerg for (const auto &kv : ScalarTypes) {
1146 1.1 joerg const ScalarType *RT = kv.second.get();
1147 1.1.1.2 joerg if (RT->kind() == STKind->kind() && RT->sizeInBits() == DesiredSize)
1148 1.1 joerg return RT;
1149 1.1 joerg }
1150 1.1.1.2 joerg PrintFatalError("Cannot find a type to satisfy ScaleSize");
1151 1.1 joerg }
1152 1.1 joerg
1153 1.1 joerg PrintFatalError("Bad operator in type dag expression");
1154 1.1 joerg }
1155 1.1 joerg
1156 1.1.1.2 joerg Result::Ptr EmitterBase::getCodeForDag(DagInit *D, const Result::Scope &Scope,
1157 1.1.1.2 joerg const Type *Param) {
1158 1.1 joerg Record *Op = cast<DefInit>(D->getOperator())->getDef();
1159 1.1 joerg
1160 1.1 joerg if (Op->getName() == "seq") {
1161 1.1 joerg Result::Scope SubScope = Scope;
1162 1.1 joerg Result::Ptr PrevV = nullptr;
1163 1.1 joerg for (unsigned i = 0, e = D->getNumArgs(); i < e; ++i) {
1164 1.1 joerg // We don't use getCodeForDagArg here, because the argument name
1165 1.1 joerg // has different semantics in a seq
1166 1.1 joerg Result::Ptr V =
1167 1.1 joerg getCodeForDag(cast<DagInit>(D->getArg(i)), SubScope, Param);
1168 1.1 joerg StringRef ArgName = D->getArgNameStr(i);
1169 1.1 joerg if (!ArgName.empty())
1170 1.1.1.2 joerg SubScope[std::string(ArgName)] = V;
1171 1.1 joerg if (PrevV)
1172 1.1 joerg V->setPredecessor(PrevV);
1173 1.1 joerg PrevV = V;
1174 1.1 joerg }
1175 1.1 joerg return PrevV;
1176 1.1 joerg } else if (Op->isSubClassOf("Type")) {
1177 1.1 joerg if (D->getNumArgs() != 1)
1178 1.1 joerg PrintFatalError("Type casts should have exactly one argument");
1179 1.1 joerg const Type *CastType = getType(Op, Param);
1180 1.1 joerg Result::Ptr Arg = getCodeForDagArg(D, 0, Scope, Param);
1181 1.1 joerg if (const auto *ST = dyn_cast<ScalarType>(CastType)) {
1182 1.1 joerg if (!ST->requiresFloat()) {
1183 1.1 joerg if (Arg->hasIntegerConstantValue())
1184 1.1 joerg return std::make_shared<IntLiteralResult>(
1185 1.1 joerg ST, Arg->integerConstantValue());
1186 1.1 joerg else
1187 1.1 joerg return std::make_shared<IntCastResult>(ST, Arg);
1188 1.1 joerg }
1189 1.1.1.2 joerg } else if (const auto *PT = dyn_cast<PointerType>(CastType)) {
1190 1.1.1.2 joerg return std::make_shared<PointerCastResult>(PT, Arg);
1191 1.1 joerg }
1192 1.1 joerg PrintFatalError("Unsupported type cast");
1193 1.1.1.2 joerg } else if (Op->getName() == "address") {
1194 1.1.1.2 joerg if (D->getNumArgs() != 2)
1195 1.1.1.2 joerg PrintFatalError("'address' should have two arguments");
1196 1.1.1.2 joerg Result::Ptr Arg = getCodeForDagArg(D, 0, Scope, Param);
1197 1.1.1.2 joerg unsigned Alignment;
1198 1.1.1.2 joerg if (auto *II = dyn_cast<IntInit>(D->getArg(1))) {
1199 1.1.1.2 joerg Alignment = II->getValue();
1200 1.1.1.2 joerg } else {
1201 1.1.1.2 joerg PrintFatalError("'address' alignment argument should be an integer");
1202 1.1.1.2 joerg }
1203 1.1.1.2 joerg return std::make_shared<AddressResult>(Arg, Alignment);
1204 1.1.1.2 joerg } else if (Op->getName() == "unsignedflag") {
1205 1.1.1.2 joerg if (D->getNumArgs() != 1)
1206 1.1.1.2 joerg PrintFatalError("unsignedflag should have exactly one argument");
1207 1.1.1.2 joerg Record *TypeRec = cast<DefInit>(D->getArg(0))->getDef();
1208 1.1.1.2 joerg if (!TypeRec->isSubClassOf("Type"))
1209 1.1.1.2 joerg PrintFatalError("unsignedflag's argument should be a type");
1210 1.1.1.2 joerg if (const auto *ST = dyn_cast<ScalarType>(getType(TypeRec, Param))) {
1211 1.1.1.2 joerg return std::make_shared<IntLiteralResult>(
1212 1.1.1.2 joerg getScalarType("u32"), ST->kind() == ScalarTypeKind::UnsignedInt);
1213 1.1.1.2 joerg } else {
1214 1.1.1.2 joerg PrintFatalError("unsignedflag's argument should be a scalar type");
1215 1.1.1.2 joerg }
1216 1.1.1.2 joerg } else if (Op->getName() == "bitsize") {
1217 1.1.1.2 joerg if (D->getNumArgs() != 1)
1218 1.1.1.2 joerg PrintFatalError("bitsize should have exactly one argument");
1219 1.1.1.2 joerg Record *TypeRec = cast<DefInit>(D->getArg(0))->getDef();
1220 1.1.1.2 joerg if (!TypeRec->isSubClassOf("Type"))
1221 1.1.1.2 joerg PrintFatalError("bitsize's argument should be a type");
1222 1.1.1.2 joerg if (const auto *ST = dyn_cast<ScalarType>(getType(TypeRec, Param))) {
1223 1.1.1.2 joerg return std::make_shared<IntLiteralResult>(getScalarType("u32"),
1224 1.1.1.2 joerg ST->sizeInBits());
1225 1.1.1.2 joerg } else {
1226 1.1.1.2 joerg PrintFatalError("bitsize's argument should be a scalar type");
1227 1.1.1.2 joerg }
1228 1.1 joerg } else {
1229 1.1 joerg std::vector<Result::Ptr> Args;
1230 1.1 joerg for (unsigned i = 0, e = D->getNumArgs(); i < e; ++i)
1231 1.1 joerg Args.push_back(getCodeForDagArg(D, i, Scope, Param));
1232 1.1.1.2 joerg if (Op->isSubClassOf("IRBuilderBase")) {
1233 1.1 joerg std::set<unsigned> AddressArgs;
1234 1.1.1.2 joerg std::map<unsigned, std::string> IntegerArgs;
1235 1.1.1.2 joerg for (Record *sp : Op->getValueAsListOfDefs("special_params")) {
1236 1.1.1.2 joerg unsigned Index = sp->getValueAsInt("index");
1237 1.1.1.2 joerg if (sp->isSubClassOf("IRBuilderAddrParam")) {
1238 1.1.1.2 joerg AddressArgs.insert(Index);
1239 1.1.1.2 joerg } else if (sp->isSubClassOf("IRBuilderIntParam")) {
1240 1.1.1.2 joerg IntegerArgs[Index] = std::string(sp->getValueAsString("type"));
1241 1.1.1.2 joerg }
1242 1.1.1.2 joerg }
1243 1.1.1.2 joerg return std::make_shared<IRBuilderResult>(Op->getValueAsString("prefix"),
1244 1.1.1.2 joerg Args, AddressArgs, IntegerArgs);
1245 1.1.1.2 joerg } else if (Op->isSubClassOf("IRIntBase")) {
1246 1.1 joerg std::vector<const Type *> ParamTypes;
1247 1.1 joerg for (Record *RParam : Op->getValueAsListOfDefs("params"))
1248 1.1 joerg ParamTypes.push_back(getType(RParam, Param));
1249 1.1.1.2 joerg std::string IntName = std::string(Op->getValueAsString("intname"));
1250 1.1 joerg if (Op->getValueAsBit("appendKind"))
1251 1.1 joerg IntName += "_" + toLetter(cast<ScalarType>(Param)->kind());
1252 1.1 joerg return std::make_shared<IRIntrinsicResult>(IntName, ParamTypes, Args);
1253 1.1 joerg } else {
1254 1.1 joerg PrintFatalError("Unsupported dag node " + Op->getName());
1255 1.1 joerg }
1256 1.1 joerg }
1257 1.1 joerg }
1258 1.1 joerg
1259 1.1.1.2 joerg Result::Ptr EmitterBase::getCodeForDagArg(DagInit *D, unsigned ArgNum,
1260 1.1.1.2 joerg const Result::Scope &Scope,
1261 1.1.1.2 joerg const Type *Param) {
1262 1.1 joerg Init *Arg = D->getArg(ArgNum);
1263 1.1 joerg StringRef Name = D->getArgNameStr(ArgNum);
1264 1.1 joerg
1265 1.1 joerg if (!Name.empty()) {
1266 1.1 joerg if (!isa<UnsetInit>(Arg))
1267 1.1 joerg PrintFatalError(
1268 1.1 joerg "dag operator argument should not have both a value and a name");
1269 1.1.1.2 joerg auto it = Scope.find(std::string(Name));
1270 1.1 joerg if (it == Scope.end())
1271 1.1 joerg PrintFatalError("unrecognized variable name '" + Name + "'");
1272 1.1 joerg return it->second;
1273 1.1 joerg }
1274 1.1 joerg
1275 1.1.1.2 joerg // Sometimes the Arg is a bit. Prior to multiclass template argument
1276 1.1.1.2 joerg // checking, integers would sneak through the bit declaration,
1277 1.1.1.2 joerg // but now they really are bits.
1278 1.1.1.2 joerg if (auto *BI = dyn_cast<BitInit>(Arg))
1279 1.1.1.2 joerg return std::make_shared<IntLiteralResult>(getScalarType("u32"),
1280 1.1.1.2 joerg BI->getValue());
1281 1.1.1.2 joerg
1282 1.1 joerg if (auto *II = dyn_cast<IntInit>(Arg))
1283 1.1 joerg return std::make_shared<IntLiteralResult>(getScalarType("u32"),
1284 1.1 joerg II->getValue());
1285 1.1 joerg
1286 1.1 joerg if (auto *DI = dyn_cast<DagInit>(Arg))
1287 1.1 joerg return getCodeForDag(DI, Scope, Param);
1288 1.1 joerg
1289 1.1.1.2 joerg if (auto *DI = dyn_cast<DefInit>(Arg)) {
1290 1.1.1.2 joerg Record *Rec = DI->getDef();
1291 1.1.1.2 joerg if (Rec->isSubClassOf("Type")) {
1292 1.1.1.2 joerg const Type *T = getType(Rec, Param);
1293 1.1.1.2 joerg return std::make_shared<TypeResult>(T);
1294 1.1.1.2 joerg }
1295 1.1.1.2 joerg }
1296 1.1 joerg
1297 1.1.1.2 joerg PrintError("bad DAG argument type for code generation");
1298 1.1.1.2 joerg PrintNote("DAG: " + D->getAsString());
1299 1.1.1.2 joerg if (TypedInit *Typed = dyn_cast<TypedInit>(Arg))
1300 1.1.1.2 joerg PrintNote("argument type: " + Typed->getType()->getAsString());
1301 1.1.1.2 joerg PrintFatalNote("argument number " + Twine(ArgNum) + ": " + Arg->getAsString());
1302 1.1.1.2 joerg }
1303 1.1 joerg
1304 1.1.1.2 joerg Result::Ptr EmitterBase::getCodeForArg(unsigned ArgNum, const Type *ArgType,
1305 1.1.1.2 joerg bool Promote, bool Immediate) {
1306 1.1.1.2 joerg Result::Ptr V = std::make_shared<BuiltinArgResult>(
1307 1.1.1.2 joerg ArgNum, isa<PointerType>(ArgType), Immediate);
1308 1.1.1.2 joerg
1309 1.1.1.2 joerg if (Promote) {
1310 1.1.1.2 joerg if (const auto *ST = dyn_cast<ScalarType>(ArgType)) {
1311 1.1.1.2 joerg if (ST->isInteger() && ST->sizeInBits() < 32)
1312 1.1.1.2 joerg V = std::make_shared<IntCastResult>(getScalarType("u32"), V);
1313 1.1.1.2 joerg } else if (const auto *PT = dyn_cast<PredicateType>(ArgType)) {
1314 1.1 joerg V = std::make_shared<IntCastResult>(getScalarType("u32"), V);
1315 1.1.1.2 joerg V = std::make_shared<IRIntrinsicResult>("arm_mve_pred_i2v",
1316 1.1.1.2 joerg std::vector<const Type *>{PT},
1317 1.1.1.2 joerg std::vector<Result::Ptr>{V});
1318 1.1.1.2 joerg }
1319 1.1 joerg }
1320 1.1 joerg
1321 1.1 joerg return V;
1322 1.1 joerg }
1323 1.1 joerg
1324 1.1.1.2 joerg ACLEIntrinsic::ACLEIntrinsic(EmitterBase &ME, Record *R, const Type *Param)
1325 1.1 joerg : ReturnType(ME.getType(R->getValueAsDef("ret"), Param)) {
1326 1.1 joerg // Derive the intrinsic's full name, by taking the name of the
1327 1.1 joerg // Tablegen record (or override) and appending the suffix from its
1328 1.1 joerg // parameter type. (If the intrinsic is unparametrised, its
1329 1.1 joerg // parameter type will be given as Void, which returns the empty
1330 1.1 joerg // string for acleSuffix.)
1331 1.1 joerg StringRef BaseName =
1332 1.1 joerg (R->isSubClassOf("NameOverride") ? R->getValueAsString("basename")
1333 1.1 joerg : R->getName());
1334 1.1.1.2 joerg StringRef overrideLetter = R->getValueAsString("overrideKindLetter");
1335 1.1.1.2 joerg FullName =
1336 1.1.1.2 joerg (Twine(BaseName) + Param->acleSuffix(std::string(overrideLetter))).str();
1337 1.1 joerg
1338 1.1 joerg // Derive the intrinsic's polymorphic name, by removing components from the
1339 1.1 joerg // full name as specified by its 'pnt' member ('polymorphic name type'),
1340 1.1 joerg // which indicates how many type suffixes to remove, and any other piece of
1341 1.1 joerg // the name that should be removed.
1342 1.1 joerg Record *PolymorphicNameType = R->getValueAsDef("pnt");
1343 1.1 joerg SmallVector<StringRef, 8> NameParts;
1344 1.1 joerg StringRef(FullName).split(NameParts, '_');
1345 1.1 joerg for (unsigned i = 0, e = PolymorphicNameType->getValueAsInt(
1346 1.1 joerg "NumTypeSuffixesToDiscard");
1347 1.1 joerg i < e; ++i)
1348 1.1 joerg NameParts.pop_back();
1349 1.1 joerg if (!PolymorphicNameType->isValueUnset("ExtraSuffixToDiscard")) {
1350 1.1 joerg StringRef ExtraSuffix =
1351 1.1 joerg PolymorphicNameType->getValueAsString("ExtraSuffixToDiscard");
1352 1.1 joerg auto it = NameParts.end();
1353 1.1 joerg while (it != NameParts.begin()) {
1354 1.1 joerg --it;
1355 1.1 joerg if (*it == ExtraSuffix) {
1356 1.1 joerg NameParts.erase(it);
1357 1.1 joerg break;
1358 1.1 joerg }
1359 1.1 joerg }
1360 1.1 joerg }
1361 1.1 joerg ShortName = join(std::begin(NameParts), std::end(NameParts), "_");
1362 1.1 joerg
1363 1.1.1.2 joerg BuiltinExtension = R->getValueAsString("builtinExtension");
1364 1.1.1.2 joerg
1365 1.1.1.2 joerg PolymorphicOnly = R->getValueAsBit("polymorphicOnly");
1366 1.1.1.2 joerg NonEvaluating = R->getValueAsBit("nonEvaluating");
1367 1.1.1.2 joerg HeaderOnly = R->getValueAsBit("headerOnly");
1368 1.1.1.2 joerg
1369 1.1 joerg // Process the intrinsic's argument list.
1370 1.1 joerg DagInit *ArgsDag = R->getValueAsDag("args");
1371 1.1 joerg Result::Scope Scope;
1372 1.1 joerg for (unsigned i = 0, e = ArgsDag->getNumArgs(); i < e; ++i) {
1373 1.1 joerg Init *TypeInit = ArgsDag->getArg(i);
1374 1.1 joerg
1375 1.1.1.2 joerg bool Promote = true;
1376 1.1.1.2 joerg if (auto TypeDI = dyn_cast<DefInit>(TypeInit))
1377 1.1.1.2 joerg if (TypeDI->getDef()->isSubClassOf("unpromoted"))
1378 1.1.1.2 joerg Promote = false;
1379 1.1.1.2 joerg
1380 1.1 joerg // Work out the type of the argument, for use in the function prototype in
1381 1.1 joerg // the header file.
1382 1.1 joerg const Type *ArgType = ME.getType(TypeInit, Param);
1383 1.1 joerg ArgTypes.push_back(ArgType);
1384 1.1 joerg
1385 1.1 joerg // If the argument is a subclass of Immediate, record the details about
1386 1.1 joerg // what values it can take, for Sema checking.
1387 1.1.1.2 joerg bool Immediate = false;
1388 1.1 joerg if (auto TypeDI = dyn_cast<DefInit>(TypeInit)) {
1389 1.1 joerg Record *TypeRec = TypeDI->getDef();
1390 1.1 joerg if (TypeRec->isSubClassOf("Immediate")) {
1391 1.1.1.2 joerg Immediate = true;
1392 1.1.1.2 joerg
1393 1.1 joerg Record *Bounds = TypeRec->getValueAsDef("bounds");
1394 1.1 joerg ImmediateArg &IA = ImmediateArgs[i];
1395 1.1 joerg if (Bounds->isSubClassOf("IB_ConstRange")) {
1396 1.1 joerg IA.boundsType = ImmediateArg::BoundsType::ExplicitRange;
1397 1.1 joerg IA.i1 = Bounds->getValueAsInt("lo");
1398 1.1 joerg IA.i2 = Bounds->getValueAsInt("hi");
1399 1.1 joerg } else if (Bounds->getName() == "IB_UEltValue") {
1400 1.1 joerg IA.boundsType = ImmediateArg::BoundsType::UInt;
1401 1.1 joerg IA.i1 = Param->sizeInBits();
1402 1.1 joerg } else if (Bounds->getName() == "IB_LaneIndex") {
1403 1.1 joerg IA.boundsType = ImmediateArg::BoundsType::ExplicitRange;
1404 1.1 joerg IA.i1 = 0;
1405 1.1.1.2 joerg IA.i2 = 128 / Param->sizeInBits() - 1;
1406 1.1.1.2 joerg } else if (Bounds->isSubClassOf("IB_EltBit")) {
1407 1.1 joerg IA.boundsType = ImmediateArg::BoundsType::ExplicitRange;
1408 1.1 joerg IA.i1 = Bounds->getValueAsInt("base");
1409 1.1.1.2 joerg const Type *T = ME.getType(Bounds->getValueAsDef("type"), Param);
1410 1.1.1.2 joerg IA.i2 = IA.i1 + T->sizeInBits() - 1;
1411 1.1 joerg } else {
1412 1.1 joerg PrintFatalError("unrecognised ImmediateBounds subclass");
1413 1.1 joerg }
1414 1.1 joerg
1415 1.1 joerg IA.ArgType = ArgType;
1416 1.1 joerg
1417 1.1 joerg if (!TypeRec->isValueUnset("extra")) {
1418 1.1 joerg IA.ExtraCheckType = TypeRec->getValueAsString("extra");
1419 1.1 joerg if (!TypeRec->isValueUnset("extraarg"))
1420 1.1 joerg IA.ExtraCheckArgs = TypeRec->getValueAsString("extraarg");
1421 1.1 joerg }
1422 1.1 joerg }
1423 1.1 joerg }
1424 1.1.1.2 joerg
1425 1.1.1.2 joerg // The argument will usually have a name in the arguments dag, which goes
1426 1.1.1.2 joerg // into the variable-name scope that the code gen will refer to.
1427 1.1.1.2 joerg StringRef ArgName = ArgsDag->getArgNameStr(i);
1428 1.1.1.2 joerg if (!ArgName.empty())
1429 1.1.1.2 joerg Scope[std::string(ArgName)] =
1430 1.1.1.2 joerg ME.getCodeForArg(i, ArgType, Promote, Immediate);
1431 1.1 joerg }
1432 1.1 joerg
1433 1.1 joerg // Finally, go through the codegen dag and translate it into a Result object
1434 1.1 joerg // (with an arbitrary DAG of depended-on Results hanging off it).
1435 1.1 joerg DagInit *CodeDag = R->getValueAsDag("codegen");
1436 1.1 joerg Record *MainOp = cast<DefInit>(CodeDag->getOperator())->getDef();
1437 1.1 joerg if (MainOp->isSubClassOf("CustomCodegen")) {
1438 1.1 joerg // Or, if it's the special case of CustomCodegen, just accumulate
1439 1.1 joerg // a list of parameters we're going to assign to variables before
1440 1.1 joerg // breaking from the loop.
1441 1.1 joerg CustomCodeGenArgs["CustomCodeGenType"] =
1442 1.1 joerg (Twine("CustomCodeGen::") + MainOp->getValueAsString("type")).str();
1443 1.1 joerg for (unsigned i = 0, e = CodeDag->getNumArgs(); i < e; ++i) {
1444 1.1 joerg StringRef Name = CodeDag->getArgNameStr(i);
1445 1.1 joerg if (Name.empty()) {
1446 1.1 joerg PrintFatalError("Operands to CustomCodegen should have names");
1447 1.1 joerg } else if (auto *II = dyn_cast<IntInit>(CodeDag->getArg(i))) {
1448 1.1.1.2 joerg CustomCodeGenArgs[std::string(Name)] = itostr(II->getValue());
1449 1.1 joerg } else if (auto *SI = dyn_cast<StringInit>(CodeDag->getArg(i))) {
1450 1.1.1.2 joerg CustomCodeGenArgs[std::string(Name)] = std::string(SI->getValue());
1451 1.1 joerg } else {
1452 1.1 joerg PrintFatalError("Operands to CustomCodegen should be integers");
1453 1.1 joerg }
1454 1.1 joerg }
1455 1.1 joerg } else {
1456 1.1 joerg Code = ME.getCodeForDag(CodeDag, Scope, Param);
1457 1.1 joerg }
1458 1.1 joerg }
1459 1.1 joerg
1460 1.1.1.2 joerg EmitterBase::EmitterBase(RecordKeeper &Records) {
1461 1.1.1.2 joerg // Construct the whole EmitterBase.
1462 1.1 joerg
1463 1.1 joerg // First, look up all the instances of PrimitiveType. This gives us the list
1464 1.1 joerg // of vector typedefs we have to put in arm_mve.h, and also allows us to
1465 1.1 joerg // collect all the useful ScalarType instances into a big list so that we can
1466 1.1 joerg // use it for operations such as 'find the unsigned version of this signed
1467 1.1 joerg // integer type'.
1468 1.1 joerg for (Record *R : Records.getAllDerivedDefinitions("PrimitiveType"))
1469 1.1.1.2 joerg ScalarTypes[std::string(R->getName())] = std::make_unique<ScalarType>(R);
1470 1.1 joerg
1471 1.1 joerg // Now go through the instances of Intrinsic, and for each one, iterate
1472 1.1 joerg // through its list of type parameters making an ACLEIntrinsic for each one.
1473 1.1 joerg for (Record *R : Records.getAllDerivedDefinitions("Intrinsic")) {
1474 1.1 joerg for (Record *RParam : R->getValueAsListOfDefs("params")) {
1475 1.1 joerg const Type *Param = getType(RParam, getVoidType());
1476 1.1 joerg auto Intrinsic = std::make_unique<ACLEIntrinsic>(*this, R, Param);
1477 1.1 joerg ACLEIntrinsics[Intrinsic->fullName()] = std::move(Intrinsic);
1478 1.1 joerg }
1479 1.1 joerg }
1480 1.1 joerg }
1481 1.1 joerg
1482 1.1 joerg /// A wrapper on raw_string_ostream that contains its own buffer rather than
1483 1.1 joerg /// having to point it at one elsewhere. (In other words, it works just like
1484 1.1 joerg /// std::ostringstream; also, this makes it convenient to declare a whole array
1485 1.1 joerg /// of them at once.)
1486 1.1 joerg ///
1487 1.1 joerg /// We have to set this up using multiple inheritance, to ensure that the
1488 1.1 joerg /// string member has been constructed before raw_string_ostream's constructor
1489 1.1 joerg /// is given a pointer to it.
1490 1.1 joerg class string_holder {
1491 1.1 joerg protected:
1492 1.1 joerg std::string S;
1493 1.1 joerg };
1494 1.1 joerg class raw_self_contained_string_ostream : private string_holder,
1495 1.1 joerg public raw_string_ostream {
1496 1.1 joerg public:
1497 1.1 joerg raw_self_contained_string_ostream()
1498 1.1 joerg : string_holder(), raw_string_ostream(S) {}
1499 1.1 joerg };
1500 1.1 joerg
1501 1.1.1.2 joerg const char LLVMLicenseHeader[] =
1502 1.1.1.2 joerg " *\n"
1503 1.1.1.2 joerg " *\n"
1504 1.1.1.2 joerg " * Part of the LLVM Project, under the Apache License v2.0 with LLVM"
1505 1.1.1.2 joerg " Exceptions.\n"
1506 1.1.1.2 joerg " * See https://llvm.org/LICENSE.txt for license information.\n"
1507 1.1.1.2 joerg " * SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception\n"
1508 1.1.1.2 joerg " *\n"
1509 1.1.1.2 joerg " *===-----------------------------------------------------------------"
1510 1.1.1.2 joerg "------===\n"
1511 1.1.1.2 joerg " */\n"
1512 1.1.1.2 joerg "\n";
1513 1.1 joerg
1514 1.1.1.2 joerg // Machinery for the grouping of intrinsics by similar codegen.
1515 1.1.1.2 joerg //
1516 1.1.1.2 joerg // The general setup is that 'MergeableGroup' stores the things that a set of
1517 1.1.1.2 joerg // similarly shaped intrinsics have in common: the text of their code
1518 1.1.1.2 joerg // generation, and the number and type of their parameter variables.
1519 1.1.1.2 joerg // MergeableGroup is the key in a std::map whose value is a set of
1520 1.1.1.2 joerg // OutputIntrinsic, which stores the ways in which a particular intrinsic
1521 1.1.1.2 joerg // specializes the MergeableGroup's generic description: the function name and
1522 1.1.1.2 joerg // the _values_ of the parameter variables.
1523 1.1 joerg
1524 1.1.1.2 joerg struct ComparableStringVector : std::vector<std::string> {
1525 1.1.1.2 joerg // Infrastructure: a derived class of vector<string> which comes with an
1526 1.1.1.2 joerg // ordering, so that it can be used as a key in maps and an element in sets.
1527 1.1.1.2 joerg // There's no requirement on the ordering beyond being deterministic.
1528 1.1.1.2 joerg bool operator<(const ComparableStringVector &rhs) const {
1529 1.1.1.2 joerg if (size() != rhs.size())
1530 1.1.1.2 joerg return size() < rhs.size();
1531 1.1.1.2 joerg for (size_t i = 0, e = size(); i < e; ++i)
1532 1.1.1.2 joerg if ((*this)[i] != rhs[i])
1533 1.1.1.2 joerg return (*this)[i] < rhs[i];
1534 1.1.1.2 joerg return false;
1535 1.1.1.2 joerg }
1536 1.1.1.2 joerg };
1537 1.1 joerg
1538 1.1.1.2 joerg struct OutputIntrinsic {
1539 1.1.1.2 joerg const ACLEIntrinsic *Int;
1540 1.1.1.2 joerg std::string Name;
1541 1.1.1.2 joerg ComparableStringVector ParamValues;
1542 1.1.1.2 joerg bool operator<(const OutputIntrinsic &rhs) const {
1543 1.1.1.2 joerg if (Name != rhs.Name)
1544 1.1.1.2 joerg return Name < rhs.Name;
1545 1.1.1.2 joerg return ParamValues < rhs.ParamValues;
1546 1.1 joerg }
1547 1.1.1.2 joerg };
1548 1.1.1.2 joerg struct MergeableGroup {
1549 1.1.1.2 joerg std::string Code;
1550 1.1.1.2 joerg ComparableStringVector ParamTypes;
1551 1.1.1.2 joerg bool operator<(const MergeableGroup &rhs) const {
1552 1.1.1.2 joerg if (Code != rhs.Code)
1553 1.1.1.2 joerg return Code < rhs.Code;
1554 1.1.1.2 joerg return ParamTypes < rhs.ParamTypes;
1555 1.1.1.2 joerg }
1556 1.1.1.2 joerg };
1557 1.1 joerg
1558 1.1.1.2 joerg void EmitterBase::EmitBuiltinCG(raw_ostream &OS) {
1559 1.1.1.2 joerg // Pass 1: generate code for all the intrinsics as if every type or constant
1560 1.1.1.2 joerg // that can possibly be abstracted out into a parameter variable will be.
1561 1.1.1.2 joerg // This identifies the sets of intrinsics we'll group together into a single
1562 1.1.1.2 joerg // piece of code generation.
1563 1.1.1.2 joerg
1564 1.1.1.2 joerg std::map<MergeableGroup, std::set<OutputIntrinsic>> MergeableGroupsPrelim;
1565 1.1 joerg
1566 1.1 joerg for (const auto &kv : ACLEIntrinsics) {
1567 1.1 joerg const ACLEIntrinsic &Int = *kv.second;
1568 1.1.1.2 joerg if (Int.headerOnly())
1569 1.1.1.2 joerg continue;
1570 1.1 joerg
1571 1.1.1.2 joerg MergeableGroup MG;
1572 1.1.1.2 joerg OutputIntrinsic OI;
1573 1.1 joerg
1574 1.1.1.2 joerg OI.Int = ∬
1575 1.1.1.2 joerg OI.Name = Int.fullName();
1576 1.1.1.2 joerg CodeGenParamAllocator ParamAllocPrelim{&MG.ParamTypes, &OI.ParamValues};
1577 1.1.1.2 joerg raw_string_ostream OS(MG.Code);
1578 1.1.1.2 joerg Int.genCode(OS, ParamAllocPrelim, 1);
1579 1.1.1.2 joerg OS.flush();
1580 1.1 joerg
1581 1.1.1.2 joerg MergeableGroupsPrelim[MG].insert(OI);
1582 1.1.1.2 joerg }
1583 1.1 joerg
1584 1.1.1.2 joerg // Pass 2: for each of those groups, optimize the parameter variable set by
1585 1.1.1.2 joerg // eliminating 'parameters' that are the same for all intrinsics in the
1586 1.1.1.2 joerg // group, and merging together pairs of parameter variables that take the
1587 1.1.1.2 joerg // same values as each other for all intrinsics in the group.
1588 1.1 joerg
1589 1.1.1.2 joerg std::map<MergeableGroup, std::set<OutputIntrinsic>> MergeableGroups;
1590 1.1 joerg
1591 1.1.1.2 joerg for (const auto &kv : MergeableGroupsPrelim) {
1592 1.1.1.2 joerg const MergeableGroup &MG = kv.first;
1593 1.1.1.2 joerg std::vector<int> ParamNumbers;
1594 1.1.1.2 joerg std::map<ComparableStringVector, int> ParamNumberMap;
1595 1.1 joerg
1596 1.1.1.2 joerg // Loop over the parameters for this group.
1597 1.1.1.2 joerg for (size_t i = 0, e = MG.ParamTypes.size(); i < e; ++i) {
1598 1.1.1.2 joerg // Is this parameter the same for all intrinsics in the group?
1599 1.1.1.2 joerg const OutputIntrinsic &OI_first = *kv.second.begin();
1600 1.1.1.2 joerg bool Constant = all_of(kv.second, [&](const OutputIntrinsic &OI) {
1601 1.1.1.2 joerg return OI.ParamValues[i] == OI_first.ParamValues[i];
1602 1.1.1.2 joerg });
1603 1.1 joerg
1604 1.1.1.2 joerg // If so, record it as -1, meaning 'no parameter variable needed'. Then
1605 1.1.1.2 joerg // the corresponding call to allocParam in pass 2 will not generate a
1606 1.1.1.2 joerg // variable at all, and just use the value inline.
1607 1.1.1.2 joerg if (Constant) {
1608 1.1.1.2 joerg ParamNumbers.push_back(-1);
1609 1.1.1.2 joerg continue;
1610 1.1.1.2 joerg }
1611 1.1 joerg
1612 1.1.1.2 joerg // Otherwise, make a list of the values this parameter takes for each
1613 1.1.1.2 joerg // intrinsic, and see if that value vector matches anything we already
1614 1.1.1.2 joerg // have. We also record the parameter type, so that we don't accidentally
1615 1.1.1.2 joerg // match up two parameter variables with different types. (Not that
1616 1.1.1.2 joerg // there's much chance of them having textually equivalent values, but in
1617 1.1.1.2 joerg // _principle_ it could happen.)
1618 1.1.1.2 joerg ComparableStringVector key;
1619 1.1.1.2 joerg key.push_back(MG.ParamTypes[i]);
1620 1.1.1.2 joerg for (const auto &OI : kv.second)
1621 1.1.1.2 joerg key.push_back(OI.ParamValues[i]);
1622 1.1.1.2 joerg
1623 1.1.1.2 joerg auto Found = ParamNumberMap.find(key);
1624 1.1.1.2 joerg if (Found != ParamNumberMap.end()) {
1625 1.1.1.2 joerg // Yes, an existing parameter variable can be reused for this.
1626 1.1.1.2 joerg ParamNumbers.push_back(Found->second);
1627 1.1.1.2 joerg continue;
1628 1.1.1.2 joerg }
1629 1.1.1.2 joerg
1630 1.1.1.2 joerg // No, we need a new parameter variable.
1631 1.1.1.2 joerg int ExistingIndex = ParamNumberMap.size();
1632 1.1.1.2 joerg ParamNumberMap[key] = ExistingIndex;
1633 1.1.1.2 joerg ParamNumbers.push_back(ExistingIndex);
1634 1.1.1.2 joerg }
1635 1.1.1.2 joerg
1636 1.1.1.2 joerg // Now we're ready to do the pass 2 code generation, which will emit the
1637 1.1.1.2 joerg // reduced set of parameter variables we've just worked out.
1638 1.1.1.2 joerg
1639 1.1.1.2 joerg for (const auto &OI_prelim : kv.second) {
1640 1.1.1.2 joerg const ACLEIntrinsic *Int = OI_prelim.Int;
1641 1.1.1.2 joerg
1642 1.1.1.2 joerg MergeableGroup MG;
1643 1.1.1.2 joerg OutputIntrinsic OI;
1644 1.1.1.2 joerg
1645 1.1.1.2 joerg OI.Int = OI_prelim.Int;
1646 1.1.1.2 joerg OI.Name = OI_prelim.Name;
1647 1.1.1.2 joerg CodeGenParamAllocator ParamAlloc{&MG.ParamTypes, &OI.ParamValues,
1648 1.1.1.2 joerg &ParamNumbers};
1649 1.1.1.2 joerg raw_string_ostream OS(MG.Code);
1650 1.1.1.2 joerg Int->genCode(OS, ParamAlloc, 2);
1651 1.1.1.2 joerg OS.flush();
1652 1.1.1.2 joerg
1653 1.1.1.2 joerg MergeableGroups[MG].insert(OI);
1654 1.1.1.2 joerg }
1655 1.1.1.2 joerg }
1656 1.1.1.2 joerg
1657 1.1.1.2 joerg // Output the actual C++ code.
1658 1.1.1.2 joerg
1659 1.1.1.2 joerg for (const auto &kv : MergeableGroups) {
1660 1.1.1.2 joerg const MergeableGroup &MG = kv.first;
1661 1.1.1.2 joerg
1662 1.1.1.2 joerg // List of case statements in the main switch on BuiltinID, and an open
1663 1.1.1.2 joerg // brace.
1664 1.1.1.2 joerg const char *prefix = "";
1665 1.1.1.2 joerg for (const auto &OI : kv.second) {
1666 1.1.1.2 joerg OS << prefix << "case ARM::BI__builtin_arm_" << OI.Int->builtinExtension()
1667 1.1.1.2 joerg << "_" << OI.Name << ":";
1668 1.1.1.2 joerg
1669 1.1.1.2 joerg prefix = "\n";
1670 1.1.1.2 joerg }
1671 1.1.1.2 joerg OS << " {\n";
1672 1.1.1.2 joerg
1673 1.1.1.2 joerg if (!MG.ParamTypes.empty()) {
1674 1.1.1.2 joerg // If we've got some parameter variables, then emit their declarations...
1675 1.1.1.2 joerg for (size_t i = 0, e = MG.ParamTypes.size(); i < e; ++i) {
1676 1.1.1.2 joerg StringRef Type = MG.ParamTypes[i];
1677 1.1.1.2 joerg OS << " " << Type;
1678 1.1.1.2 joerg if (!Type.endswith("*"))
1679 1.1.1.2 joerg OS << " ";
1680 1.1.1.2 joerg OS << " Param" << utostr(i) << ";\n";
1681 1.1.1.2 joerg }
1682 1.1.1.2 joerg
1683 1.1.1.2 joerg // ... and an inner switch on BuiltinID that will fill them in with each
1684 1.1.1.2 joerg // individual intrinsic's values.
1685 1.1.1.2 joerg OS << " switch (BuiltinID) {\n";
1686 1.1.1.2 joerg for (const auto &OI : kv.second) {
1687 1.1.1.2 joerg OS << " case ARM::BI__builtin_arm_" << OI.Int->builtinExtension()
1688 1.1.1.2 joerg << "_" << OI.Name << ":\n";
1689 1.1.1.2 joerg for (size_t i = 0, e = MG.ParamTypes.size(); i < e; ++i)
1690 1.1.1.2 joerg OS << " Param" << utostr(i) << " = " << OI.ParamValues[i] << ";\n";
1691 1.1.1.2 joerg OS << " break;\n";
1692 1.1.1.2 joerg }
1693 1.1.1.2 joerg OS << " }\n";
1694 1.1.1.2 joerg }
1695 1.1.1.2 joerg
1696 1.1.1.2 joerg // And finally, output the code, and close the outer pair of braces. (The
1697 1.1.1.2 joerg // code will always end with a 'return' statement, so we need not insert a
1698 1.1.1.2 joerg // 'break' here.)
1699 1.1.1.2 joerg OS << MG.Code << "}\n";
1700 1.1.1.2 joerg }
1701 1.1.1.2 joerg }
1702 1.1.1.2 joerg
1703 1.1.1.2 joerg void EmitterBase::EmitBuiltinAliases(raw_ostream &OS) {
1704 1.1.1.2 joerg // Build a sorted table of:
1705 1.1.1.2 joerg // - intrinsic id number
1706 1.1.1.2 joerg // - full name
1707 1.1.1.2 joerg // - polymorphic name or -1
1708 1.1.1.2 joerg StringToOffsetTable StringTable;
1709 1.1.1.2 joerg OS << "static const IntrinToName MapData[] = {\n";
1710 1.1.1.2 joerg for (const auto &kv : ACLEIntrinsics) {
1711 1.1.1.2 joerg const ACLEIntrinsic &Int = *kv.second;
1712 1.1.1.2 joerg if (Int.headerOnly())
1713 1.1.1.2 joerg continue;
1714 1.1.1.2 joerg int32_t ShortNameOffset =
1715 1.1.1.2 joerg Int.polymorphic() ? StringTable.GetOrAddStringOffset(Int.shortName())
1716 1.1.1.2 joerg : -1;
1717 1.1.1.2 joerg OS << " { ARM::BI__builtin_arm_" << Int.builtinExtension() << "_"
1718 1.1.1.2 joerg << Int.fullName() << ", "
1719 1.1.1.2 joerg << StringTable.GetOrAddStringOffset(Int.fullName()) << ", "
1720 1.1.1.2 joerg << ShortNameOffset << "},\n";
1721 1.1.1.2 joerg }
1722 1.1.1.2 joerg OS << "};\n\n";
1723 1.1.1.2 joerg
1724 1.1.1.2 joerg OS << "ArrayRef<IntrinToName> Map(MapData);\n\n";
1725 1.1.1.2 joerg
1726 1.1.1.2 joerg OS << "static const char IntrinNames[] = {\n";
1727 1.1.1.2 joerg StringTable.EmitString(OS);
1728 1.1.1.2 joerg OS << "};\n\n";
1729 1.1.1.2 joerg }
1730 1.1.1.2 joerg
1731 1.1.1.2 joerg void EmitterBase::GroupSemaChecks(
1732 1.1.1.2 joerg std::map<std::string, std::set<std::string>> &Checks) {
1733 1.1.1.2 joerg for (const auto &kv : ACLEIntrinsics) {
1734 1.1.1.2 joerg const ACLEIntrinsic &Int = *kv.second;
1735 1.1.1.2 joerg if (Int.headerOnly())
1736 1.1.1.2 joerg continue;
1737 1.1.1.2 joerg std::string Check = Int.genSema();
1738 1.1.1.2 joerg if (!Check.empty())
1739 1.1.1.2 joerg Checks[Check].insert(Int.fullName());
1740 1.1.1.2 joerg }
1741 1.1.1.2 joerg }
1742 1.1.1.2 joerg
1743 1.1.1.2 joerg // -----------------------------------------------------------------------------
1744 1.1.1.2 joerg // The class used for generating arm_mve.h and related Clang bits
1745 1.1.1.2 joerg //
1746 1.1.1.2 joerg
1747 1.1.1.2 joerg class MveEmitter : public EmitterBase {
1748 1.1.1.2 joerg public:
1749 1.1.1.2 joerg MveEmitter(RecordKeeper &Records) : EmitterBase(Records){};
1750 1.1.1.2 joerg void EmitHeader(raw_ostream &OS) override;
1751 1.1.1.2 joerg void EmitBuiltinDef(raw_ostream &OS) override;
1752 1.1.1.2 joerg void EmitBuiltinSema(raw_ostream &OS) override;
1753 1.1.1.2 joerg };
1754 1.1.1.2 joerg
1755 1.1.1.2 joerg void MveEmitter::EmitHeader(raw_ostream &OS) {
1756 1.1.1.2 joerg // Accumulate pieces of the header file that will be enabled under various
1757 1.1.1.2 joerg // different combinations of #ifdef. The index into parts[] is made up of
1758 1.1.1.2 joerg // the following bit flags.
1759 1.1.1.2 joerg constexpr unsigned Float = 1;
1760 1.1.1.2 joerg constexpr unsigned UseUserNamespace = 2;
1761 1.1.1.2 joerg
1762 1.1.1.2 joerg constexpr unsigned NumParts = 4;
1763 1.1.1.2 joerg raw_self_contained_string_ostream parts[NumParts];
1764 1.1.1.2 joerg
1765 1.1.1.2 joerg // Write typedefs for all the required vector types, and a few scalar
1766 1.1.1.2 joerg // types that don't already have the name we want them to have.
1767 1.1.1.2 joerg
1768 1.1.1.2 joerg parts[0] << "typedef uint16_t mve_pred16_t;\n";
1769 1.1.1.2 joerg parts[Float] << "typedef __fp16 float16_t;\n"
1770 1.1.1.2 joerg "typedef float float32_t;\n";
1771 1.1.1.2 joerg for (const auto &kv : ScalarTypes) {
1772 1.1.1.2 joerg const ScalarType *ST = kv.second.get();
1773 1.1.1.2 joerg if (ST->hasNonstandardName())
1774 1.1.1.2 joerg continue;
1775 1.1.1.2 joerg raw_ostream &OS = parts[ST->requiresFloat() ? Float : 0];
1776 1.1.1.2 joerg const VectorType *VT = getVectorType(ST);
1777 1.1.1.2 joerg
1778 1.1.1.2 joerg OS << "typedef __attribute__((__neon_vector_type__(" << VT->lanes()
1779 1.1.1.2 joerg << "), __clang_arm_mve_strict_polymorphism)) " << ST->cName() << " "
1780 1.1.1.2 joerg << VT->cName() << ";\n";
1781 1.1.1.2 joerg
1782 1.1.1.2 joerg // Every vector type also comes with a pair of multi-vector types for
1783 1.1.1.2 joerg // the VLD2 and VLD4 instructions.
1784 1.1.1.2 joerg for (unsigned n = 2; n <= 4; n += 2) {
1785 1.1.1.2 joerg const MultiVectorType *MT = getMultiVectorType(n, VT);
1786 1.1.1.2 joerg OS << "typedef struct { " << VT->cName() << " val[" << n << "]; } "
1787 1.1.1.2 joerg << MT->cName() << ";\n";
1788 1.1.1.2 joerg }
1789 1.1.1.2 joerg }
1790 1.1.1.2 joerg parts[0] << "\n";
1791 1.1.1.2 joerg parts[Float] << "\n";
1792 1.1.1.2 joerg
1793 1.1.1.2 joerg // Write declarations for all the intrinsics.
1794 1.1.1.2 joerg
1795 1.1.1.2 joerg for (const auto &kv : ACLEIntrinsics) {
1796 1.1.1.2 joerg const ACLEIntrinsic &Int = *kv.second;
1797 1.1.1.2 joerg
1798 1.1.1.2 joerg // We generate each intrinsic twice, under its full unambiguous
1799 1.1.1.2 joerg // name and its shorter polymorphic name (if the latter exists).
1800 1.1.1.2 joerg for (bool Polymorphic : {false, true}) {
1801 1.1.1.2 joerg if (Polymorphic && !Int.polymorphic())
1802 1.1.1.2 joerg continue;
1803 1.1.1.2 joerg if (!Polymorphic && Int.polymorphicOnly())
1804 1.1.1.2 joerg continue;
1805 1.1.1.2 joerg
1806 1.1.1.2 joerg // We also generate each intrinsic under a name like __arm_vfooq
1807 1.1.1.2 joerg // (which is in C language implementation namespace, so it's
1808 1.1.1.2 joerg // safe to define in any conforming user program) and a shorter
1809 1.1.1.2 joerg // one like vfooq (which is in user namespace, so a user might
1810 1.1.1.2 joerg // reasonably have used it for something already). If so, they
1811 1.1.1.2 joerg // can #define __ARM_MVE_PRESERVE_USER_NAMESPACE before
1812 1.1.1.2 joerg // including the header, which will suppress the shorter names
1813 1.1.1.2 joerg // and leave only the implementation-namespace ones. Then they
1814 1.1.1.2 joerg // have to write __arm_vfooq everywhere, of course.
1815 1.1.1.2 joerg
1816 1.1.1.2 joerg for (bool UserNamespace : {false, true}) {
1817 1.1.1.2 joerg raw_ostream &OS = parts[(Int.requiresFloat() ? Float : 0) |
1818 1.1.1.2 joerg (UserNamespace ? UseUserNamespace : 0)];
1819 1.1.1.2 joerg
1820 1.1.1.2 joerg // Make the name of the function in this declaration.
1821 1.1.1.2 joerg
1822 1.1.1.2 joerg std::string FunctionName =
1823 1.1.1.2 joerg Polymorphic ? Int.shortName() : Int.fullName();
1824 1.1.1.2 joerg if (!UserNamespace)
1825 1.1.1.2 joerg FunctionName = "__arm_" + FunctionName;
1826 1.1.1.2 joerg
1827 1.1.1.2 joerg // Make strings for the types involved in the function's
1828 1.1.1.2 joerg // prototype.
1829 1.1.1.2 joerg
1830 1.1.1.2 joerg std::string RetTypeName = Int.returnType()->cName();
1831 1.1.1.2 joerg if (!StringRef(RetTypeName).endswith("*"))
1832 1.1.1.2 joerg RetTypeName += " ";
1833 1.1.1.2 joerg
1834 1.1.1.2 joerg std::vector<std::string> ArgTypeNames;
1835 1.1.1.2 joerg for (const Type *ArgTypePtr : Int.argTypes())
1836 1.1.1.2 joerg ArgTypeNames.push_back(ArgTypePtr->cName());
1837 1.1.1.2 joerg std::string ArgTypesString =
1838 1.1.1.2 joerg join(std::begin(ArgTypeNames), std::end(ArgTypeNames), ", ");
1839 1.1.1.2 joerg
1840 1.1.1.2 joerg // Emit the actual declaration. All these functions are
1841 1.1.1.2 joerg // declared 'static inline' without a body, which is fine
1842 1.1.1.2 joerg // provided clang recognizes them as builtins, and has the
1843 1.1.1.2 joerg // effect that this type signature is used in place of the one
1844 1.1.1.2 joerg // that Builtins.def didn't provide. That's how we can get
1845 1.1.1.2 joerg // structure types that weren't defined until this header was
1846 1.1.1.2 joerg // included to be part of the type signature of a builtin that
1847 1.1.1.2 joerg // was known to clang already.
1848 1.1.1.2 joerg //
1849 1.1.1.2 joerg // The declarations use __attribute__(__clang_arm_builtin_alias),
1850 1.1.1.2 joerg // so that each function declared will be recognized as the
1851 1.1.1.2 joerg // appropriate MVE builtin in spite of its user-facing name.
1852 1.1.1.2 joerg //
1853 1.1.1.2 joerg // (That's better than making them all wrapper functions,
1854 1.1.1.2 joerg // partly because it avoids any compiler error message citing
1855 1.1.1.2 joerg // the wrapper function definition instead of the user's code,
1856 1.1.1.2 joerg // and mostly because some MVE intrinsics have arguments
1857 1.1.1.2 joerg // required to be compile-time constants, and that property
1858 1.1.1.2 joerg // can't be propagated through a wrapper function. It can be
1859 1.1.1.2 joerg // propagated through a macro, but macros can't be overloaded
1860 1.1.1.2 joerg // on argument types very easily - you have to use _Generic,
1861 1.1 joerg // which makes error messages very confusing when the user
1862 1.1 joerg // gets it wrong.)
1863 1.1 joerg //
1864 1.1 joerg // Finally, the polymorphic versions of the intrinsics are
1865 1.1 joerg // also defined with __attribute__(overloadable), so that when
1866 1.1 joerg // the same name is defined with several type signatures, the
1867 1.1 joerg // right thing happens. Each one of the overloaded
1868 1.1 joerg // declarations is given a different builtin id, which
1869 1.1 joerg // has exactly the effect we want: first clang resolves the
1870 1.1 joerg // overload to the right function, then it knows which builtin
1871 1.1 joerg // it's referring to, and then the Sema checking for that
1872 1.1 joerg // builtin can check further things like the constant
1873 1.1 joerg // arguments.
1874 1.1 joerg //
1875 1.1 joerg // One more subtlety is the newline just before the return
1876 1.1 joerg // type name. That's a cosmetic tweak to make the error
1877 1.1 joerg // messages legible if the user gets the types wrong in a call
1878 1.1 joerg // to a polymorphic function: this way, clang will print just
1879 1.1 joerg // the _final_ line of each declaration in the header, to show
1880 1.1 joerg // the type signatures that would have been legal. So all the
1881 1.1 joerg // confusing machinery with __attribute__ is left out of the
1882 1.1 joerg // error message, and the user sees something that's more or
1883 1.1 joerg // less self-documenting: "here's a list of actually readable
1884 1.1 joerg // type signatures for vfooq(), and here's why each one didn't
1885 1.1 joerg // match your call".
1886 1.1 joerg
1887 1.1 joerg OS << "static __inline__ __attribute__(("
1888 1.1.1.2 joerg << (Polymorphic ? "__overloadable__, " : "")
1889 1.1.1.2 joerg << "__clang_arm_builtin_alias(__builtin_arm_mve_" << Int.fullName()
1890 1.1 joerg << ")))\n"
1891 1.1 joerg << RetTypeName << FunctionName << "(" << ArgTypesString << ");\n";
1892 1.1 joerg }
1893 1.1 joerg }
1894 1.1 joerg }
1895 1.1 joerg for (auto &part : parts)
1896 1.1 joerg part << "\n";
1897 1.1 joerg
1898 1.1 joerg // Now we've finished accumulating bits and pieces into the parts[] array.
1899 1.1 joerg // Put it all together to write the final output file.
1900 1.1 joerg
1901 1.1 joerg OS << "/*===---- arm_mve.h - ARM MVE intrinsics "
1902 1.1 joerg "-----------------------------------===\n"
1903 1.1.1.2 joerg << LLVMLicenseHeader
1904 1.1.1.2 joerg << "#ifndef __ARM_MVE_H\n"
1905 1.1 joerg "#define __ARM_MVE_H\n"
1906 1.1 joerg "\n"
1907 1.1 joerg "#if !__ARM_FEATURE_MVE\n"
1908 1.1 joerg "#error \"MVE support not enabled\"\n"
1909 1.1 joerg "#endif\n"
1910 1.1 joerg "\n"
1911 1.1 joerg "#include <stdint.h>\n"
1912 1.1.1.2 joerg "\n"
1913 1.1.1.2 joerg "#ifdef __cplusplus\n"
1914 1.1.1.2 joerg "extern \"C\" {\n"
1915 1.1.1.2 joerg "#endif\n"
1916 1.1 joerg "\n";
1917 1.1 joerg
1918 1.1 joerg for (size_t i = 0; i < NumParts; ++i) {
1919 1.1 joerg std::vector<std::string> conditions;
1920 1.1 joerg if (i & Float)
1921 1.1 joerg conditions.push_back("(__ARM_FEATURE_MVE & 2)");
1922 1.1 joerg if (i & UseUserNamespace)
1923 1.1 joerg conditions.push_back("(!defined __ARM_MVE_PRESERVE_USER_NAMESPACE)");
1924 1.1 joerg
1925 1.1 joerg std::string condition =
1926 1.1 joerg join(std::begin(conditions), std::end(conditions), " && ");
1927 1.1 joerg if (!condition.empty())
1928 1.1 joerg OS << "#if " << condition << "\n\n";
1929 1.1 joerg OS << parts[i].str();
1930 1.1 joerg if (!condition.empty())
1931 1.1 joerg OS << "#endif /* " << condition << " */\n\n";
1932 1.1 joerg }
1933 1.1 joerg
1934 1.1.1.2 joerg OS << "#ifdef __cplusplus\n"
1935 1.1.1.2 joerg "} /* extern \"C\" */\n"
1936 1.1.1.2 joerg "#endif\n"
1937 1.1.1.2 joerg "\n"
1938 1.1.1.2 joerg "#endif /* __ARM_MVE_H */\n";
1939 1.1 joerg }
1940 1.1 joerg
1941 1.1 joerg void MveEmitter::EmitBuiltinDef(raw_ostream &OS) {
1942 1.1 joerg for (const auto &kv : ACLEIntrinsics) {
1943 1.1 joerg const ACLEIntrinsic &Int = *kv.second;
1944 1.1 joerg OS << "TARGET_HEADER_BUILTIN(__builtin_arm_mve_" << Int.fullName()
1945 1.1 joerg << ", \"\", \"n\", \"arm_mve.h\", ALL_LANGUAGES, \"\")\n";
1946 1.1 joerg }
1947 1.1 joerg
1948 1.1 joerg std::set<std::string> ShortNamesSeen;
1949 1.1 joerg
1950 1.1 joerg for (const auto &kv : ACLEIntrinsics) {
1951 1.1 joerg const ACLEIntrinsic &Int = *kv.second;
1952 1.1 joerg if (Int.polymorphic()) {
1953 1.1 joerg StringRef Name = Int.shortName();
1954 1.1.1.2 joerg if (ShortNamesSeen.find(std::string(Name)) == ShortNamesSeen.end()) {
1955 1.1.1.2 joerg OS << "BUILTIN(__builtin_arm_mve_" << Name << ", \"vi.\", \"nt";
1956 1.1.1.2 joerg if (Int.nonEvaluating())
1957 1.1.1.2 joerg OS << "u"; // indicate that this builtin doesn't evaluate its args
1958 1.1.1.2 joerg OS << "\")\n";
1959 1.1.1.2 joerg ShortNamesSeen.insert(std::string(Name));
1960 1.1 joerg }
1961 1.1 joerg }
1962 1.1 joerg }
1963 1.1 joerg }
1964 1.1 joerg
1965 1.1 joerg void MveEmitter::EmitBuiltinSema(raw_ostream &OS) {
1966 1.1 joerg std::map<std::string, std::set<std::string>> Checks;
1967 1.1.1.2 joerg GroupSemaChecks(Checks);
1968 1.1 joerg
1969 1.1 joerg for (const auto &kv : Checks) {
1970 1.1 joerg for (StringRef Name : kv.second)
1971 1.1 joerg OS << "case ARM::BI__builtin_arm_mve_" << Name << ":\n";
1972 1.1.1.2 joerg OS << " return " << kv.first;
1973 1.1 joerg }
1974 1.1 joerg }
1975 1.1 joerg
1976 1.1.1.2 joerg // -----------------------------------------------------------------------------
1977 1.1.1.2 joerg // Class that describes an ACLE intrinsic implemented as a macro.
1978 1.1 joerg //
1979 1.1.1.2 joerg // This class is used when the intrinsic is polymorphic in 2 or 3 types, but we
1980 1.1.1.2 joerg // want to avoid a combinatorial explosion by reinterpreting the arguments to
1981 1.1.1.2 joerg // fixed types.
1982 1.1.1.2 joerg
1983 1.1.1.2 joerg class FunctionMacro {
1984 1.1.1.2 joerg std::vector<StringRef> Params;
1985 1.1.1.2 joerg StringRef Definition;
1986 1.1 joerg
1987 1.1.1.2 joerg public:
1988 1.1.1.2 joerg FunctionMacro(const Record &R);
1989 1.1 joerg
1990 1.1.1.2 joerg const std::vector<StringRef> &getParams() const { return Params; }
1991 1.1.1.2 joerg StringRef getDefinition() const { return Definition; }
1992 1.1 joerg };
1993 1.1 joerg
1994 1.1.1.2 joerg FunctionMacro::FunctionMacro(const Record &R) {
1995 1.1.1.2 joerg Params = R.getValueAsListOfStrings("params");
1996 1.1.1.2 joerg Definition = R.getValueAsString("definition");
1997 1.1.1.2 joerg }
1998 1.1 joerg
1999 1.1.1.2 joerg // -----------------------------------------------------------------------------
2000 1.1.1.2 joerg // The class used for generating arm_cde.h and related Clang bits
2001 1.1.1.2 joerg //
2002 1.1 joerg
2003 1.1.1.2 joerg class CdeEmitter : public EmitterBase {
2004 1.1.1.2 joerg std::map<StringRef, FunctionMacro> FunctionMacros;
2005 1.1 joerg
2006 1.1.1.2 joerg public:
2007 1.1.1.2 joerg CdeEmitter(RecordKeeper &Records);
2008 1.1.1.2 joerg void EmitHeader(raw_ostream &OS) override;
2009 1.1.1.2 joerg void EmitBuiltinDef(raw_ostream &OS) override;
2010 1.1.1.2 joerg void EmitBuiltinSema(raw_ostream &OS) override;
2011 1.1.1.2 joerg };
2012 1.1 joerg
2013 1.1.1.2 joerg CdeEmitter::CdeEmitter(RecordKeeper &Records) : EmitterBase(Records) {
2014 1.1.1.2 joerg for (Record *R : Records.getAllDerivedDefinitions("FunctionMacro"))
2015 1.1.1.2 joerg FunctionMacros.emplace(R->getName(), FunctionMacro(*R));
2016 1.1.1.2 joerg }
2017 1.1 joerg
2018 1.1.1.2 joerg void CdeEmitter::EmitHeader(raw_ostream &OS) {
2019 1.1.1.2 joerg // Accumulate pieces of the header file that will be enabled under various
2020 1.1.1.2 joerg // different combinations of #ifdef. The index into parts[] is one of the
2021 1.1.1.2 joerg // following:
2022 1.1.1.2 joerg constexpr unsigned None = 0;
2023 1.1.1.2 joerg constexpr unsigned MVE = 1;
2024 1.1.1.2 joerg constexpr unsigned MVEFloat = 2;
2025 1.1 joerg
2026 1.1.1.2 joerg constexpr unsigned NumParts = 3;
2027 1.1.1.2 joerg raw_self_contained_string_ostream parts[NumParts];
2028 1.1 joerg
2029 1.1.1.2 joerg // Write typedefs for all the required vector types, and a few scalar
2030 1.1.1.2 joerg // types that don't already have the name we want them to have.
2031 1.1 joerg
2032 1.1.1.2 joerg parts[MVE] << "typedef uint16_t mve_pred16_t;\n";
2033 1.1.1.2 joerg parts[MVEFloat] << "typedef __fp16 float16_t;\n"
2034 1.1.1.2 joerg "typedef float float32_t;\n";
2035 1.1.1.2 joerg for (const auto &kv : ScalarTypes) {
2036 1.1.1.2 joerg const ScalarType *ST = kv.second.get();
2037 1.1.1.2 joerg if (ST->hasNonstandardName())
2038 1.1.1.2 joerg continue;
2039 1.1.1.2 joerg // We don't have float64x2_t
2040 1.1.1.2 joerg if (ST->kind() == ScalarTypeKind::Float && ST->sizeInBits() == 64)
2041 1.1.1.2 joerg continue;
2042 1.1.1.2 joerg raw_ostream &OS = parts[ST->requiresFloat() ? MVEFloat : MVE];
2043 1.1.1.2 joerg const VectorType *VT = getVectorType(ST);
2044 1.1 joerg
2045 1.1.1.2 joerg OS << "typedef __attribute__((__neon_vector_type__(" << VT->lanes()
2046 1.1.1.2 joerg << "), __clang_arm_mve_strict_polymorphism)) " << ST->cName() << " "
2047 1.1.1.2 joerg << VT->cName() << ";\n";
2048 1.1.1.2 joerg }
2049 1.1.1.2 joerg parts[MVE] << "\n";
2050 1.1.1.2 joerg parts[MVEFloat] << "\n";
2051 1.1 joerg
2052 1.1.1.2 joerg // Write declarations for all the intrinsics.
2053 1.1 joerg
2054 1.1.1.2 joerg for (const auto &kv : ACLEIntrinsics) {
2055 1.1.1.2 joerg const ACLEIntrinsic &Int = *kv.second;
2056 1.1 joerg
2057 1.1.1.2 joerg // We generate each intrinsic twice, under its full unambiguous
2058 1.1.1.2 joerg // name and its shorter polymorphic name (if the latter exists).
2059 1.1.1.2 joerg for (bool Polymorphic : {false, true}) {
2060 1.1.1.2 joerg if (Polymorphic && !Int.polymorphic())
2061 1.1.1.2 joerg continue;
2062 1.1.1.2 joerg if (!Polymorphic && Int.polymorphicOnly())
2063 1.1 joerg continue;
2064 1.1 joerg
2065 1.1.1.2 joerg raw_ostream &OS =
2066 1.1.1.2 joerg parts[Int.requiresFloat() ? MVEFloat
2067 1.1.1.2 joerg : Int.requiresMVE() ? MVE : None];
2068 1.1.1.2 joerg
2069 1.1.1.2 joerg // Make the name of the function in this declaration.
2070 1.1.1.2 joerg std::string FunctionName =
2071 1.1.1.2 joerg "__arm_" + (Polymorphic ? Int.shortName() : Int.fullName());
2072 1.1.1.2 joerg
2073 1.1.1.2 joerg // Make strings for the types involved in the function's
2074 1.1.1.2 joerg // prototype.
2075 1.1.1.2 joerg std::string RetTypeName = Int.returnType()->cName();
2076 1.1.1.2 joerg if (!StringRef(RetTypeName).endswith("*"))
2077 1.1.1.2 joerg RetTypeName += " ";
2078 1.1.1.2 joerg
2079 1.1.1.2 joerg std::vector<std::string> ArgTypeNames;
2080 1.1.1.2 joerg for (const Type *ArgTypePtr : Int.argTypes())
2081 1.1.1.2 joerg ArgTypeNames.push_back(ArgTypePtr->cName());
2082 1.1.1.2 joerg std::string ArgTypesString =
2083 1.1.1.2 joerg join(std::begin(ArgTypeNames), std::end(ArgTypeNames), ", ");
2084 1.1.1.2 joerg
2085 1.1.1.2 joerg // Emit the actual declaration. See MveEmitter::EmitHeader for detailed
2086 1.1.1.2 joerg // comments
2087 1.1.1.2 joerg OS << "static __inline__ __attribute__(("
2088 1.1.1.2 joerg << (Polymorphic ? "__overloadable__, " : "")
2089 1.1.1.2 joerg << "__clang_arm_builtin_alias(__builtin_arm_" << Int.builtinExtension()
2090 1.1.1.2 joerg << "_" << Int.fullName() << ")))\n"
2091 1.1.1.2 joerg << RetTypeName << FunctionName << "(" << ArgTypesString << ");\n";
2092 1.1 joerg }
2093 1.1 joerg }
2094 1.1 joerg
2095 1.1.1.2 joerg for (const auto &kv : FunctionMacros) {
2096 1.1.1.2 joerg StringRef Name = kv.first;
2097 1.1.1.2 joerg const FunctionMacro &FM = kv.second;
2098 1.1.1.2 joerg
2099 1.1.1.2 joerg raw_ostream &OS = parts[MVE];
2100 1.1.1.2 joerg OS << "#define "
2101 1.1.1.2 joerg << "__arm_" << Name << "(" << join(FM.getParams(), ", ") << ") "
2102 1.1.1.2 joerg << FM.getDefinition() << "\n";
2103 1.1.1.2 joerg }
2104 1.1 joerg
2105 1.1.1.2 joerg for (auto &part : parts)
2106 1.1.1.2 joerg part << "\n";
2107 1.1 joerg
2108 1.1.1.2 joerg // Now we've finished accumulating bits and pieces into the parts[] array.
2109 1.1.1.2 joerg // Put it all together to write the final output file.
2110 1.1 joerg
2111 1.1.1.2 joerg OS << "/*===---- arm_cde.h - ARM CDE intrinsics "
2112 1.1.1.2 joerg "-----------------------------------===\n"
2113 1.1.1.2 joerg << LLVMLicenseHeader
2114 1.1.1.2 joerg << "#ifndef __ARM_CDE_H\n"
2115 1.1.1.2 joerg "#define __ARM_CDE_H\n"
2116 1.1.1.2 joerg "\n"
2117 1.1.1.2 joerg "#if !__ARM_FEATURE_CDE\n"
2118 1.1.1.2 joerg "#error \"CDE support not enabled\"\n"
2119 1.1.1.2 joerg "#endif\n"
2120 1.1.1.2 joerg "\n"
2121 1.1.1.2 joerg "#include <stdint.h>\n"
2122 1.1.1.2 joerg "\n"
2123 1.1.1.2 joerg "#ifdef __cplusplus\n"
2124 1.1.1.2 joerg "extern \"C\" {\n"
2125 1.1.1.2 joerg "#endif\n"
2126 1.1.1.2 joerg "\n";
2127 1.1 joerg
2128 1.1.1.2 joerg for (size_t i = 0; i < NumParts; ++i) {
2129 1.1.1.2 joerg std::string condition;
2130 1.1.1.2 joerg if (i == MVEFloat)
2131 1.1.1.2 joerg condition = "__ARM_FEATURE_MVE & 2";
2132 1.1.1.2 joerg else if (i == MVE)
2133 1.1.1.2 joerg condition = "__ARM_FEATURE_MVE";
2134 1.1 joerg
2135 1.1.1.2 joerg if (!condition.empty())
2136 1.1.1.2 joerg OS << "#if " << condition << "\n\n";
2137 1.1.1.2 joerg OS << parts[i].str();
2138 1.1.1.2 joerg if (!condition.empty())
2139 1.1.1.2 joerg OS << "#endif /* " << condition << " */\n\n";
2140 1.1 joerg }
2141 1.1.1.2 joerg
2142 1.1.1.2 joerg OS << "#ifdef __cplusplus\n"
2143 1.1.1.2 joerg "} /* extern \"C\" */\n"
2144 1.1.1.2 joerg "#endif\n"
2145 1.1.1.2 joerg "\n"
2146 1.1.1.2 joerg "#endif /* __ARM_CDE_H */\n";
2147 1.1 joerg }
2148 1.1 joerg
2149 1.1.1.2 joerg void CdeEmitter::EmitBuiltinDef(raw_ostream &OS) {
2150 1.1 joerg for (const auto &kv : ACLEIntrinsics) {
2151 1.1.1.2 joerg if (kv.second->headerOnly())
2152 1.1.1.2 joerg continue;
2153 1.1 joerg const ACLEIntrinsic &Int = *kv.second;
2154 1.1.1.2 joerg OS << "TARGET_HEADER_BUILTIN(__builtin_arm_cde_" << Int.fullName()
2155 1.1.1.2 joerg << ", \"\", \"ncU\", \"arm_cde.h\", ALL_LANGUAGES, \"\")\n";
2156 1.1.1.2 joerg }
2157 1.1.1.2 joerg }
2158 1.1.1.2 joerg
2159 1.1.1.2 joerg void CdeEmitter::EmitBuiltinSema(raw_ostream &OS) {
2160 1.1.1.2 joerg std::map<std::string, std::set<std::string>> Checks;
2161 1.1.1.2 joerg GroupSemaChecks(Checks);
2162 1.1.1.2 joerg
2163 1.1.1.2 joerg for (const auto &kv : Checks) {
2164 1.1.1.2 joerg for (StringRef Name : kv.second)
2165 1.1.1.2 joerg OS << "case ARM::BI__builtin_arm_cde_" << Name << ":\n";
2166 1.1.1.2 joerg OS << " Err = " << kv.first << " break;\n";
2167 1.1 joerg }
2168 1.1 joerg }
2169 1.1 joerg
2170 1.1 joerg } // namespace
2171 1.1 joerg
2172 1.1 joerg namespace clang {
2173 1.1 joerg
2174 1.1.1.2 joerg // MVE
2175 1.1.1.2 joerg
2176 1.1 joerg void EmitMveHeader(RecordKeeper &Records, raw_ostream &OS) {
2177 1.1 joerg MveEmitter(Records).EmitHeader(OS);
2178 1.1 joerg }
2179 1.1 joerg
2180 1.1 joerg void EmitMveBuiltinDef(RecordKeeper &Records, raw_ostream &OS) {
2181 1.1 joerg MveEmitter(Records).EmitBuiltinDef(OS);
2182 1.1 joerg }
2183 1.1 joerg
2184 1.1 joerg void EmitMveBuiltinSema(RecordKeeper &Records, raw_ostream &OS) {
2185 1.1 joerg MveEmitter(Records).EmitBuiltinSema(OS);
2186 1.1 joerg }
2187 1.1 joerg
2188 1.1 joerg void EmitMveBuiltinCG(RecordKeeper &Records, raw_ostream &OS) {
2189 1.1 joerg MveEmitter(Records).EmitBuiltinCG(OS);
2190 1.1 joerg }
2191 1.1 joerg
2192 1.1 joerg void EmitMveBuiltinAliases(RecordKeeper &Records, raw_ostream &OS) {
2193 1.1 joerg MveEmitter(Records).EmitBuiltinAliases(OS);
2194 1.1 joerg }
2195 1.1 joerg
2196 1.1.1.2 joerg // CDE
2197 1.1.1.2 joerg
2198 1.1.1.2 joerg void EmitCdeHeader(RecordKeeper &Records, raw_ostream &OS) {
2199 1.1.1.2 joerg CdeEmitter(Records).EmitHeader(OS);
2200 1.1.1.2 joerg }
2201 1.1.1.2 joerg
2202 1.1.1.2 joerg void EmitCdeBuiltinDef(RecordKeeper &Records, raw_ostream &OS) {
2203 1.1.1.2 joerg CdeEmitter(Records).EmitBuiltinDef(OS);
2204 1.1.1.2 joerg }
2205 1.1.1.2 joerg
2206 1.1.1.2 joerg void EmitCdeBuiltinSema(RecordKeeper &Records, raw_ostream &OS) {
2207 1.1.1.2 joerg CdeEmitter(Records).EmitBuiltinSema(OS);
2208 1.1.1.2 joerg }
2209 1.1.1.2 joerg
2210 1.1.1.2 joerg void EmitCdeBuiltinCG(RecordKeeper &Records, raw_ostream &OS) {
2211 1.1.1.2 joerg CdeEmitter(Records).EmitBuiltinCG(OS);
2212 1.1.1.2 joerg }
2213 1.1.1.2 joerg
2214 1.1.1.2 joerg void EmitCdeBuiltinAliases(RecordKeeper &Records, raw_ostream &OS) {
2215 1.1.1.2 joerg CdeEmitter(Records).EmitBuiltinAliases(OS);
2216 1.1.1.2 joerg }
2217 1.1.1.2 joerg
2218 1.1 joerg } // end namespace clang
2219