LLVM 24.0.0git
TargetLoweringBase.cpp
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1//===- TargetLoweringBase.cpp - Implement the TargetLoweringBase class ----===//
2//
3// Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions.
4// See https://llvm.org/LICENSE.txt for license information.
5// SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
6//
7//===----------------------------------------------------------------------===//
8//
9// This implements the TargetLoweringBase class.
10//
11//===----------------------------------------------------------------------===//
12
13#include "llvm/ADT/BitVector.h"
14#include "llvm/ADT/DenseMap.h"
15#include "llvm/ADT/STLExtras.h"
18#include "llvm/ADT/StringRef.h"
19#include "llvm/ADT/Twine.h"
20#include "llvm/Analysis/Loads.h"
39#include "llvm/IR/Attributes.h"
40#include "llvm/IR/CallingConv.h"
41#include "llvm/IR/DataLayout.h"
43#include "llvm/IR/Function.h"
44#include "llvm/IR/GlobalValue.h"
46#include "llvm/IR/IRBuilder.h"
47#include "llvm/IR/Module.h"
48#include "llvm/IR/Type.h"
58#include <algorithm>
59#include <cassert>
60#include <cstdint>
61#include <cstring>
62#include <string>
63#include <tuple>
64#include <utility>
65
66using namespace llvm;
67
69 "jump-is-expensive", cl::init(false),
70 cl::desc("Do not create extra branches to split comparison logic."),
72
74 ("min-jump-table-entries", cl::init(4), cl::Hidden,
75 cl::desc("Set minimum number of entries to use a jump table."));
76
78 ("max-jump-table-size", cl::init(UINT_MAX), cl::Hidden,
79 cl::desc("Set maximum size of jump tables."));
80
81/// Minimum jump table density for normal functions.
83 JumpTableDensity("jump-table-density", cl::init(10), cl::Hidden,
84 cl::desc("Minimum density for building a jump table in "
85 "a normal function"));
86
87/// Minimum jump table density for -Os or -Oz functions.
89 "optsize-jump-table-density", cl::init(40), cl::Hidden,
90 cl::desc("Minimum density for building a jump table in "
91 "an optsize function"));
92
94 "min-bit-test-cmps", cl::init(2), cl::Hidden,
95 cl::desc("Set minimum of largest number of comparisons "
96 "to use bit test for switch."));
97
99 "max-store-memset", cl::init(0), cl::Hidden,
100 cl::desc("Override target's MaxStoresPerMemset and "
101 "MaxStoresPerMemsetOptSize. "
102 "Set to 0 to use the target default."));
103
105 "max-store-memcpy", cl::init(0), cl::Hidden,
106 cl::desc("Override target's MaxStoresPerMemcpy and "
107 "MaxStoresPerMemcpyOptSize. "
108 "Set to 0 to use the target default."));
109
111 "max-store-memmove", cl::init(0), cl::Hidden,
112 cl::desc("Override target's MaxStoresPerMemmove and "
113 "MaxStoresPerMemmoveOptSize. "
114 "Set to 0 to use the target default."));
115
116// FIXME: This option is only to test if the strict fp operation processed
117// correctly by preventing mutating strict fp operation to normal fp operation
118// during development. When the backend supports strict float operation, this
119// option will be meaningless.
120static cl::opt<bool> DisableStrictNodeMutation("disable-strictnode-mutation",
121 cl::desc("Don't mutate strict-float node to a legalize node"),
122 cl::init(false), cl::Hidden);
123
124LLVM_ABI RTLIB::Libcall RTLIB::getSHL(EVT VT) {
125 if (VT == MVT::i16)
126 return RTLIB::SHL_I16;
127 if (VT == MVT::i32)
128 return RTLIB::SHL_I32;
129 if (VT == MVT::i64)
130 return RTLIB::SHL_I64;
131 if (VT == MVT::i128)
132 return RTLIB::SHL_I128;
133
134 return RTLIB::UNKNOWN_LIBCALL;
135}
136
137LLVM_ABI RTLIB::Libcall RTLIB::getSRL(EVT VT) {
138 if (VT == MVT::i16)
139 return RTLIB::SRL_I16;
140 if (VT == MVT::i32)
141 return RTLIB::SRL_I32;
142 if (VT == MVT::i64)
143 return RTLIB::SRL_I64;
144 if (VT == MVT::i128)
145 return RTLIB::SRL_I128;
146
147 return RTLIB::UNKNOWN_LIBCALL;
148}
149
150LLVM_ABI RTLIB::Libcall RTLIB::getSRA(EVT VT) {
151 if (VT == MVT::i16)
152 return RTLIB::SRA_I16;
153 if (VT == MVT::i32)
154 return RTLIB::SRA_I32;
155 if (VT == MVT::i64)
156 return RTLIB::SRA_I64;
157 if (VT == MVT::i128)
158 return RTLIB::SRA_I128;
159
160 return RTLIB::UNKNOWN_LIBCALL;
161}
162
163LLVM_ABI RTLIB::Libcall RTLIB::getMUL(EVT VT) {
164 if (VT == MVT::i16)
165 return RTLIB::MUL_I16;
166 if (VT == MVT::i32)
167 return RTLIB::MUL_I32;
168 if (VT == MVT::i64)
169 return RTLIB::MUL_I64;
170 if (VT == MVT::i128)
171 return RTLIB::MUL_I128;
172 return RTLIB::UNKNOWN_LIBCALL;
173}
174
175LLVM_ABI RTLIB::Libcall RTLIB::getMULO(EVT VT) {
176 if (VT == MVT::i32)
177 return RTLIB::MULO_I32;
178 if (VT == MVT::i64)
179 return RTLIB::MULO_I64;
180 if (VT == MVT::i128)
181 return RTLIB::MULO_I128;
182 return RTLIB::UNKNOWN_LIBCALL;
183}
184
185LLVM_ABI RTLIB::Libcall RTLIB::getSDIV(EVT VT) {
186 if (VT == MVT::i16)
187 return RTLIB::SDIV_I16;
188 if (VT == MVT::i32)
189 return RTLIB::SDIV_I32;
190 if (VT == MVT::i64)
191 return RTLIB::SDIV_I64;
192 if (VT == MVT::i128)
193 return RTLIB::SDIV_I128;
194 return RTLIB::UNKNOWN_LIBCALL;
195}
196
197LLVM_ABI RTLIB::Libcall RTLIB::getUDIV(EVT VT) {
198 if (VT == MVT::i16)
199 return RTLIB::UDIV_I16;
200 if (VT == MVT::i32)
201 return RTLIB::UDIV_I32;
202 if (VT == MVT::i64)
203 return RTLIB::UDIV_I64;
204 if (VT == MVT::i128)
205 return RTLIB::UDIV_I128;
206 return RTLIB::UNKNOWN_LIBCALL;
207}
208
209LLVM_ABI RTLIB::Libcall RTLIB::getSREM(EVT VT) {
210 if (VT == MVT::i16)
211 return RTLIB::SREM_I16;
212 if (VT == MVT::i32)
213 return RTLIB::SREM_I32;
214 if (VT == MVT::i64)
215 return RTLIB::SREM_I64;
216 if (VT == MVT::i128)
217 return RTLIB::SREM_I128;
218 return RTLIB::UNKNOWN_LIBCALL;
219}
220
221LLVM_ABI RTLIB::Libcall RTLIB::getUREM(EVT VT) {
222 if (VT == MVT::i16)
223 return RTLIB::UREM_I16;
224 if (VT == MVT::i32)
225 return RTLIB::UREM_I32;
226 if (VT == MVT::i64)
227 return RTLIB::UREM_I64;
228 if (VT == MVT::i128)
229 return RTLIB::UREM_I128;
230 return RTLIB::UNKNOWN_LIBCALL;
231}
232
233LLVM_ABI RTLIB::Libcall RTLIB::getCTPOP(EVT VT) {
234 if (VT == MVT::i32)
235 return RTLIB::CTPOP_I32;
236 if (VT == MVT::i64)
237 return RTLIB::CTPOP_I64;
238 if (VT == MVT::i128)
239 return RTLIB::CTPOP_I128;
240 return RTLIB::UNKNOWN_LIBCALL;
241}
242
243/// GetFPLibCall - Helper to return the right libcall for the given floating
244/// point type, or UNKNOWN_LIBCALL if there is none.
245RTLIB::Libcall RTLIB::getFPLibCall(EVT VT,
246 RTLIB::Libcall Call_F32,
247 RTLIB::Libcall Call_F64,
248 RTLIB::Libcall Call_F80,
249 RTLIB::Libcall Call_F128,
250 RTLIB::Libcall Call_PPCF128) {
251 return
252 VT == MVT::f32 ? Call_F32 :
253 VT == MVT::f64 ? Call_F64 :
254 VT == MVT::f80 ? Call_F80 :
255 VT == MVT::f128 ? Call_F128 :
256 VT == MVT::ppcf128 ? Call_PPCF128 :
257 RTLIB::UNKNOWN_LIBCALL;
258}
259
260/// getFPEXT - Return the FPEXT_*_* value for the given types, or
261/// UNKNOWN_LIBCALL if there is none.
262RTLIB::Libcall RTLIB::getFPEXT(EVT OpVT, EVT RetVT) {
263 if (OpVT == MVT::f16) {
264 if (RetVT == MVT::f32)
265 return FPEXT_F16_F32;
266 if (RetVT == MVT::f64)
267 return FPEXT_F16_F64;
268 if (RetVT == MVT::f80)
269 return FPEXT_F16_F80;
270 if (RetVT == MVT::f128)
271 return FPEXT_F16_F128;
272 } else if (OpVT == MVT::f32) {
273 if (RetVT == MVT::f64)
274 return FPEXT_F32_F64;
275 if (RetVT == MVT::f128)
276 return FPEXT_F32_F128;
277 if (RetVT == MVT::ppcf128)
278 return FPEXT_F32_PPCF128;
279 } else if (OpVT == MVT::f64) {
280 if (RetVT == MVT::f128)
281 return FPEXT_F64_F128;
282 else if (RetVT == MVT::ppcf128)
283 return FPEXT_F64_PPCF128;
284 } else if (OpVT == MVT::f80) {
285 if (RetVT == MVT::f128)
286 return FPEXT_F80_F128;
287 } else if (OpVT == MVT::bf16) {
288 if (RetVT == MVT::f32)
289 return FPEXT_BF16_F32;
290 }
291
292 return UNKNOWN_LIBCALL;
293}
294
295/// getFPROUND - Return the FPROUND_*_* value for the given types, or
296/// UNKNOWN_LIBCALL if there is none.
297RTLIB::Libcall RTLIB::getFPROUND(EVT OpVT, EVT RetVT) {
298 if (RetVT == MVT::f16) {
299 if (OpVT == MVT::f32)
300 return FPROUND_F32_F16;
301 if (OpVT == MVT::f64)
302 return FPROUND_F64_F16;
303 if (OpVT == MVT::f80)
304 return FPROUND_F80_F16;
305 if (OpVT == MVT::f128)
306 return FPROUND_F128_F16;
307 if (OpVT == MVT::ppcf128)
308 return FPROUND_PPCF128_F16;
309 } else if (RetVT == MVT::bf16) {
310 if (OpVT == MVT::f32)
311 return FPROUND_F32_BF16;
312 if (OpVT == MVT::f64)
313 return FPROUND_F64_BF16;
314 if (OpVT == MVT::f80)
315 return FPROUND_F80_BF16;
316 if (OpVT == MVT::f128)
317 return FPROUND_F128_BF16;
318 } else if (RetVT == MVT::f32) {
319 if (OpVT == MVT::f64)
320 return FPROUND_F64_F32;
321 if (OpVT == MVT::f80)
322 return FPROUND_F80_F32;
323 if (OpVT == MVT::f128)
324 return FPROUND_F128_F32;
325 if (OpVT == MVT::ppcf128)
326 return FPROUND_PPCF128_F32;
327 } else if (RetVT == MVT::f64) {
328 if (OpVT == MVT::f80)
329 return FPROUND_F80_F64;
330 if (OpVT == MVT::f128)
331 return FPROUND_F128_F64;
332 if (OpVT == MVT::ppcf128)
333 return FPROUND_PPCF128_F64;
334 } else if (RetVT == MVT::f80) {
335 if (OpVT == MVT::f128)
336 return FPROUND_F128_F80;
337 }
338
339 return UNKNOWN_LIBCALL;
340}
341
342/// getFPTOSINT - Return the FPTOSINT_*_* value for the given types, or
343/// UNKNOWN_LIBCALL if there is none.
344RTLIB::Libcall RTLIB::getFPTOSINT(EVT OpVT, EVT RetVT) {
345 if (OpVT == MVT::f16) {
346 if (RetVT == MVT::i32)
347 return FPTOSINT_F16_I32;
348 if (RetVT == MVT::i64)
349 return FPTOSINT_F16_I64;
350 if (RetVT == MVT::i128)
351 return FPTOSINT_F16_I128;
352 } else if (OpVT == MVT::f32) {
353 if (RetVT == MVT::i32)
354 return FPTOSINT_F32_I32;
355 if (RetVT == MVT::i64)
356 return FPTOSINT_F32_I64;
357 if (RetVT == MVT::i128)
358 return FPTOSINT_F32_I128;
359 } else if (OpVT == MVT::f64) {
360 if (RetVT == MVT::i32)
361 return FPTOSINT_F64_I32;
362 if (RetVT == MVT::i64)
363 return FPTOSINT_F64_I64;
364 if (RetVT == MVT::i128)
365 return FPTOSINT_F64_I128;
366 } else if (OpVT == MVT::f80) {
367 if (RetVT == MVT::i32)
368 return FPTOSINT_F80_I32;
369 if (RetVT == MVT::i64)
370 return FPTOSINT_F80_I64;
371 if (RetVT == MVT::i128)
372 return FPTOSINT_F80_I128;
373 } else if (OpVT == MVT::f128) {
374 if (RetVT == MVT::i32)
375 return FPTOSINT_F128_I32;
376 if (RetVT == MVT::i64)
377 return FPTOSINT_F128_I64;
378 if (RetVT == MVT::i128)
379 return FPTOSINT_F128_I128;
380 } else if (OpVT == MVT::ppcf128) {
381 if (RetVT == MVT::i32)
382 return FPTOSINT_PPCF128_I32;
383 if (RetVT == MVT::i64)
384 return FPTOSINT_PPCF128_I64;
385 if (RetVT == MVT::i128)
386 return FPTOSINT_PPCF128_I128;
387 }
388 return UNKNOWN_LIBCALL;
389}
390
391/// getFPTOUINT - Return the FPTOUINT_*_* value for the given types, or
392/// UNKNOWN_LIBCALL if there is none.
393RTLIB::Libcall RTLIB::getFPTOUINT(EVT OpVT, EVT RetVT) {
394 if (OpVT == MVT::f16) {
395 if (RetVT == MVT::i32)
396 return FPTOUINT_F16_I32;
397 if (RetVT == MVT::i64)
398 return FPTOUINT_F16_I64;
399 if (RetVT == MVT::i128)
400 return FPTOUINT_F16_I128;
401 } else if (OpVT == MVT::f32) {
402 if (RetVT == MVT::i32)
403 return FPTOUINT_F32_I32;
404 if (RetVT == MVT::i64)
405 return FPTOUINT_F32_I64;
406 if (RetVT == MVT::i128)
407 return FPTOUINT_F32_I128;
408 } else if (OpVT == MVT::f64) {
409 if (RetVT == MVT::i32)
410 return FPTOUINT_F64_I32;
411 if (RetVT == MVT::i64)
412 return FPTOUINT_F64_I64;
413 if (RetVT == MVT::i128)
414 return FPTOUINT_F64_I128;
415 } else if (OpVT == MVT::f80) {
416 if (RetVT == MVT::i32)
417 return FPTOUINT_F80_I32;
418 if (RetVT == MVT::i64)
419 return FPTOUINT_F80_I64;
420 if (RetVT == MVT::i128)
421 return FPTOUINT_F80_I128;
422 } else if (OpVT == MVT::f128) {
423 if (RetVT == MVT::i32)
424 return FPTOUINT_F128_I32;
425 if (RetVT == MVT::i64)
426 return FPTOUINT_F128_I64;
427 if (RetVT == MVT::i128)
428 return FPTOUINT_F128_I128;
429 } else if (OpVT == MVT::ppcf128) {
430 if (RetVT == MVT::i32)
431 return FPTOUINT_PPCF128_I32;
432 if (RetVT == MVT::i64)
433 return FPTOUINT_PPCF128_I64;
434 if (RetVT == MVT::i128)
435 return FPTOUINT_PPCF128_I128;
436 }
437 return UNKNOWN_LIBCALL;
438}
439
440/// getSINTTOFP - Return the SINTTOFP_*_* value for the given types, or
441/// UNKNOWN_LIBCALL if there is none.
442RTLIB::Libcall RTLIB::getSINTTOFP(EVT OpVT, EVT RetVT) {
443 if (OpVT == MVT::i32) {
444 if (RetVT == MVT::f16)
445 return SINTTOFP_I32_F16;
446 if (RetVT == MVT::f32)
447 return SINTTOFP_I32_F32;
448 if (RetVT == MVT::f64)
449 return SINTTOFP_I32_F64;
450 if (RetVT == MVT::f80)
451 return SINTTOFP_I32_F80;
452 if (RetVT == MVT::f128)
453 return SINTTOFP_I32_F128;
454 if (RetVT == MVT::ppcf128)
455 return SINTTOFP_I32_PPCF128;
456 } else if (OpVT == MVT::i64) {
457 if (RetVT == MVT::bf16)
458 return SINTTOFP_I64_BF16;
459 if (RetVT == MVT::f16)
460 return SINTTOFP_I64_F16;
461 if (RetVT == MVT::f32)
462 return SINTTOFP_I64_F32;
463 if (RetVT == MVT::f64)
464 return SINTTOFP_I64_F64;
465 if (RetVT == MVT::f80)
466 return SINTTOFP_I64_F80;
467 if (RetVT == MVT::f128)
468 return SINTTOFP_I64_F128;
469 if (RetVT == MVT::ppcf128)
470 return SINTTOFP_I64_PPCF128;
471 } else if (OpVT == MVT::i128) {
472 if (RetVT == MVT::f16)
473 return SINTTOFP_I128_F16;
474 if (RetVT == MVT::f32)
475 return SINTTOFP_I128_F32;
476 if (RetVT == MVT::f64)
477 return SINTTOFP_I128_F64;
478 if (RetVT == MVT::f80)
479 return SINTTOFP_I128_F80;
480 if (RetVT == MVT::f128)
481 return SINTTOFP_I128_F128;
482 if (RetVT == MVT::ppcf128)
483 return SINTTOFP_I128_PPCF128;
484 }
485 return UNKNOWN_LIBCALL;
486}
487
488/// getUINTTOFP - Return the UINTTOFP_*_* value for the given types, or
489/// UNKNOWN_LIBCALL if there is none.
490RTLIB::Libcall RTLIB::getUINTTOFP(EVT OpVT, EVT RetVT) {
491 if (OpVT == MVT::i32) {
492 if (RetVT == MVT::f16)
493 return UINTTOFP_I32_F16;
494 if (RetVT == MVT::f32)
495 return UINTTOFP_I32_F32;
496 if (RetVT == MVT::f64)
497 return UINTTOFP_I32_F64;
498 if (RetVT == MVT::f80)
499 return UINTTOFP_I32_F80;
500 if (RetVT == MVT::f128)
501 return UINTTOFP_I32_F128;
502 if (RetVT == MVT::ppcf128)
503 return UINTTOFP_I32_PPCF128;
504 } else if (OpVT == MVT::i64) {
505 if (RetVT == MVT::bf16)
506 return UINTTOFP_I64_BF16;
507 if (RetVT == MVT::f16)
508 return UINTTOFP_I64_F16;
509 if (RetVT == MVT::f32)
510 return UINTTOFP_I64_F32;
511 if (RetVT == MVT::f64)
512 return UINTTOFP_I64_F64;
513 if (RetVT == MVT::f80)
514 return UINTTOFP_I64_F80;
515 if (RetVT == MVT::f128)
516 return UINTTOFP_I64_F128;
517 if (RetVT == MVT::ppcf128)
518 return UINTTOFP_I64_PPCF128;
519 } else if (OpVT == MVT::i128) {
520 if (RetVT == MVT::f16)
521 return UINTTOFP_I128_F16;
522 if (RetVT == MVT::f32)
523 return UINTTOFP_I128_F32;
524 if (RetVT == MVT::f64)
525 return UINTTOFP_I128_F64;
526 if (RetVT == MVT::f80)
527 return UINTTOFP_I128_F80;
528 if (RetVT == MVT::f128)
529 return UINTTOFP_I128_F128;
530 if (RetVT == MVT::ppcf128)
531 return UINTTOFP_I128_PPCF128;
532 }
533 return UNKNOWN_LIBCALL;
534}
535
536// The floating-point RTLIB::getXXX(EVT) selectors are generated from the
537// RuntimeLibcallFamily table in RuntimeLibcalls.td.
538#define GET_RUNTIME_LIBCALL_FP_SELECTORS
539#include "llvm/IR/RuntimeLibcalls.inc"
540
541RTLIB::Libcall RTLIB::getOutlineAtomicHelper(const Libcall (&LC)[5][4],
542 AtomicOrdering Order,
543 uint64_t MemSize) {
544 unsigned ModeN, ModelN;
545 switch (MemSize) {
546 case 1:
547 ModeN = 0;
548 break;
549 case 2:
550 ModeN = 1;
551 break;
552 case 4:
553 ModeN = 2;
554 break;
555 case 8:
556 ModeN = 3;
557 break;
558 case 16:
559 ModeN = 4;
560 break;
561 default:
562 return RTLIB::UNKNOWN_LIBCALL;
563 }
564
565 switch (Order) {
567 ModelN = 0;
568 break;
570 ModelN = 1;
571 break;
573 ModelN = 2;
574 break;
577 ModelN = 3;
578 break;
579 default:
580 return UNKNOWN_LIBCALL;
581 }
582
583 return LC[ModeN][ModelN];
584}
585
586RTLIB::Libcall RTLIB::getOUTLINE_ATOMIC(unsigned Opc, AtomicOrdering Order,
587 MVT VT) {
588 if (!VT.isScalarInteger())
589 return UNKNOWN_LIBCALL;
590 uint64_t MemSize = VT.getScalarSizeInBits() / 8;
591
592#define LCALLS(A, B) \
593 { A##B##_RELAX, A##B##_ACQ, A##B##_REL, A##B##_ACQ_REL }
594#define LCALL5(A) \
595 LCALLS(A, 1), LCALLS(A, 2), LCALLS(A, 4), LCALLS(A, 8), LCALLS(A, 16)
596 switch (Opc) {
598 const Libcall LC[5][4] = {LCALL5(OUTLINE_ATOMIC_CAS)};
599 return getOutlineAtomicHelper(LC, Order, MemSize);
600 }
601 case ISD::ATOMIC_SWAP: {
602 const Libcall LC[5][4] = {LCALL5(OUTLINE_ATOMIC_SWP)};
603 return getOutlineAtomicHelper(LC, Order, MemSize);
604 }
606 const Libcall LC[5][4] = {LCALL5(OUTLINE_ATOMIC_LDADD)};
607 return getOutlineAtomicHelper(LC, Order, MemSize);
608 }
609 case ISD::ATOMIC_LOAD_OR: {
610 const Libcall LC[5][4] = {LCALL5(OUTLINE_ATOMIC_LDSET)};
611 return getOutlineAtomicHelper(LC, Order, MemSize);
612 }
614 const Libcall LC[5][4] = {LCALL5(OUTLINE_ATOMIC_LDCLR)};
615 return getOutlineAtomicHelper(LC, Order, MemSize);
616 }
618 const Libcall LC[5][4] = {LCALL5(OUTLINE_ATOMIC_LDEOR)};
619 return getOutlineAtomicHelper(LC, Order, MemSize);
620 }
621 default:
622 return UNKNOWN_LIBCALL;
623 }
624#undef LCALLS
625#undef LCALL5
626}
627
628RTLIB::Libcall RTLIB::getSYNC(unsigned Opc, MVT VT) {
629#define OP_TO_LIBCALL(Name, Enum) \
630 case Name: \
631 switch (VT.SimpleTy) { \
632 default: \
633 return UNKNOWN_LIBCALL; \
634 case MVT::i8: \
635 return Enum##_1; \
636 case MVT::i16: \
637 return Enum##_2; \
638 case MVT::i32: \
639 return Enum##_4; \
640 case MVT::i64: \
641 return Enum##_8; \
642 case MVT::i128: \
643 return Enum##_16; \
644 }
645
646 switch (Opc) {
647 OP_TO_LIBCALL(ISD::ATOMIC_SWAP, SYNC_LOCK_TEST_AND_SET)
648 OP_TO_LIBCALL(ISD::ATOMIC_CMP_SWAP, SYNC_VAL_COMPARE_AND_SWAP)
649 OP_TO_LIBCALL(ISD::ATOMIC_LOAD_ADD, SYNC_FETCH_AND_ADD)
650 OP_TO_LIBCALL(ISD::ATOMIC_LOAD_SUB, SYNC_FETCH_AND_SUB)
651 OP_TO_LIBCALL(ISD::ATOMIC_LOAD_AND, SYNC_FETCH_AND_AND)
652 OP_TO_LIBCALL(ISD::ATOMIC_LOAD_OR, SYNC_FETCH_AND_OR)
653 OP_TO_LIBCALL(ISD::ATOMIC_LOAD_XOR, SYNC_FETCH_AND_XOR)
654 OP_TO_LIBCALL(ISD::ATOMIC_LOAD_NAND, SYNC_FETCH_AND_NAND)
655 OP_TO_LIBCALL(ISD::ATOMIC_LOAD_MAX, SYNC_FETCH_AND_MAX)
656 OP_TO_LIBCALL(ISD::ATOMIC_LOAD_UMAX, SYNC_FETCH_AND_UMAX)
657 OP_TO_LIBCALL(ISD::ATOMIC_LOAD_MIN, SYNC_FETCH_AND_MIN)
658 OP_TO_LIBCALL(ISD::ATOMIC_LOAD_UMIN, SYNC_FETCH_AND_UMIN)
659 }
660
661#undef OP_TO_LIBCALL
662
663 return UNKNOWN_LIBCALL;
664}
665
666RTLIB::Libcall RTLIB::getMEMCPY_ELEMENT_UNORDERED_ATOMIC(uint64_t ElementSize) {
667 switch (ElementSize) {
668 case 1:
669 return MEMCPY_ELEMENT_UNORDERED_ATOMIC_1;
670 case 2:
671 return MEMCPY_ELEMENT_UNORDERED_ATOMIC_2;
672 case 4:
673 return MEMCPY_ELEMENT_UNORDERED_ATOMIC_4;
674 case 8:
675 return MEMCPY_ELEMENT_UNORDERED_ATOMIC_8;
676 case 16:
677 return MEMCPY_ELEMENT_UNORDERED_ATOMIC_16;
678 default:
679 return UNKNOWN_LIBCALL;
680 }
681}
682
683RTLIB::Libcall RTLIB::getMEMMOVE_ELEMENT_UNORDERED_ATOMIC(uint64_t ElementSize) {
684 switch (ElementSize) {
685 case 1:
686 return MEMMOVE_ELEMENT_UNORDERED_ATOMIC_1;
687 case 2:
688 return MEMMOVE_ELEMENT_UNORDERED_ATOMIC_2;
689 case 4:
690 return MEMMOVE_ELEMENT_UNORDERED_ATOMIC_4;
691 case 8:
692 return MEMMOVE_ELEMENT_UNORDERED_ATOMIC_8;
693 case 16:
694 return MEMMOVE_ELEMENT_UNORDERED_ATOMIC_16;
695 default:
696 return UNKNOWN_LIBCALL;
697 }
698}
699
700RTLIB::Libcall RTLIB::getMEMSET_ELEMENT_UNORDERED_ATOMIC(uint64_t ElementSize) {
701 switch (ElementSize) {
702 case 1:
703 return MEMSET_ELEMENT_UNORDERED_ATOMIC_1;
704 case 2:
705 return MEMSET_ELEMENT_UNORDERED_ATOMIC_2;
706 case 4:
707 return MEMSET_ELEMENT_UNORDERED_ATOMIC_4;
708 case 8:
709 return MEMSET_ELEMENT_UNORDERED_ATOMIC_8;
710 case 16:
711 return MEMSET_ELEMENT_UNORDERED_ATOMIC_16;
712 default:
713 return UNKNOWN_LIBCALL;
714 }
715}
716
717/// NOTE: The TargetMachine owns TLOF.
719 const TargetSubtargetInfo &STI)
720 : TM(tm),
721 RuntimeLibcallInfo(TM.getTargetTriple(), TM.Options.ExceptionModel,
722 TM.getTargetTriple().getDefaultFloatABI(),
723 TM.Options.EABIVersion,
724 TM.Options.MCOptions.getABIName(), TM.Options.VecLib),
725 Libcalls(RuntimeLibcallInfo, [&STI](LibcallLoweringInfo &Info) {
726 STI.initLibcallLoweringInfo(Info);
727 }) {
728 initActions();
729
730 // Perform these initializations only once.
731 MaxStoresPerMemset = MaxStoresPerMemcpy = MaxStoresPerMemmove =
733 MaxGluedStoresPerMemcpy = 0;
734 MaxStoresPerMemsetOptSize = MaxStoresPerMemcpyOptSize =
735 MaxStoresPerMemmoveOptSize = MaxLoadsPerMemcmpOptSize = 4;
736 HasExtractBitsInsn = false;
737 JumpIsExpensive = JumpIsExpensiveOverride;
738 PredictableSelectIsExpensive = false;
739 EnableExtLdPromotion = false;
740 StackPointerRegisterToSaveRestore = 0;
741 BooleanContents = UndefinedBooleanContent;
742 BooleanFloatContents = UndefinedBooleanContent;
743 BooleanVectorContents = UndefinedBooleanContent;
744 SchedPreferenceInfo = Sched::ILP;
745 GatherAllAliasesMaxDepth = 18;
746 IsStrictFPEnabled = DisableStrictNodeMutation;
747 MaxBytesForAlignment = 0;
748 MaxAtomicSizeInBitsSupported = 0;
749
750 // Assume that even with libcalls, no target supports wider than 128 bit
751 // division.
752 MaxDivRemBitWidthSupported = 128;
753
754 MaxLargeFPConvertBitWidthSupported = 128;
755
756 MinCmpXchgSizeInBits = 0;
757 SupportsUnalignedAtomics = false;
758
759 MinimumBitTestCmps = MinimumBitTestCmpsOverride;
760}
761
762// Define the virtual destructor out-of-line to act as a key method to anchor
763// debug info (see coding standards).
765
767 // All operations default to being supported.
768 memset(OpActions, 0, sizeof(OpActions));
769 memset(LoadExtActions, 0, sizeof(LoadExtActions));
770 memset(AtomicLoadExtActions, 0, sizeof(AtomicLoadExtActions));
771 memset(TruncStoreActions, 0, sizeof(TruncStoreActions));
772 memset(IndexedModeActions, 0, sizeof(IndexedModeActions));
773 memset(CondCodeActions, 0, sizeof(CondCodeActions));
774 llvm::fill(RegClassForVT, nullptr);
775 llvm::fill(TargetDAGCombineArray, 0);
776
777 // Let extending atomic loads be unsupported by default.
778 for (MVT ValVT : MVT::all_valuetypes())
779 for (MVT MemVT : MVT::all_valuetypes())
781 Expand);
782
783 // We're somewhat special casing MVT::i2 and MVT::i4. Ideally we want to
784 // remove this and targets should individually set these types if not legal.
787 for (MVT VT : {MVT::i2, MVT::i4})
788 OpActions[(unsigned)VT.SimpleTy][NT] = Expand;
789 }
790 for (MVT AVT : MVT::all_valuetypes()) {
791 for (MVT VT : {MVT::i2, MVT::i4, MVT::v128i2, MVT::v64i4}) {
792 setTruncStoreAction(AVT, VT, Expand);
795 }
796 }
797 for (unsigned IM = (unsigned)ISD::PRE_INC;
798 IM != (unsigned)ISD::LAST_INDEXED_MODE; ++IM) {
799 for (MVT VT : {MVT::i2, MVT::i4}) {
804 }
805 }
806
807 for (MVT VT : MVT::fp_valuetypes()) {
808 MVT IntVT = MVT::getIntegerVT(VT.getFixedSizeInBits());
809 if (IntVT.isValid()) {
812 }
813 }
814
815 // If f16 fma is not natively supported, the value must be promoted to an f64
816 // (and not to f32!) to prevent double rounding issues.
817 AddPromotedToType(ISD::FMA, MVT::f16, MVT::f64);
818 AddPromotedToType(ISD::STRICT_FMA, MVT::f16, MVT::f64);
819
820 // Set default actions for various operations.
821 for (MVT VT : MVT::all_valuetypes()) {
822 // Default all indexed load / store to expand.
823 for (unsigned IM = (unsigned)ISD::PRE_INC;
824 IM != (unsigned)ISD::LAST_INDEXED_MODE; ++IM) {
829 }
830
831 // Most backends expect to see the node which just returns the value loaded.
833
834 // clang-format off
835 // These operations default to expand.
867 VT, Expand);
868 // clang-format on
869
870 // Overflow operations default to expand
873 VT, Expand);
874
875 // Carry-using overflow operations default to expand.
878 VT, Expand);
879
880 // ADDC/ADDE/SUBC/SUBE default to expand.
882 Expand);
883
884 // [US]CMP default to expand
886
887 // Halving adds
890 Expand);
891
892 // Absolute difference
894
895 // Carry-less multiply
897
898 // Bit extract/deposit (compress/expand)
900
901 // Saturated trunc
905
906 // These default to Expand so they will be expanded to CTLZ/CTTZ by default.
908 Expand);
909
910 // This defaults to Expand so it will be expanded to ABS by default.
913
915
916 // These library functions default to expand.
919 VT, Expand);
920
921 // These operations default to expand for vector types.
922 if (VT.isVector())
928 VT, Expand);
929
930 // Constrained floating-point operations default to expand.
931#define DAG_INSTRUCTION(NAME, NARG, ROUND_MODE, INTRINSIC, DAGN) \
932 setOperationAction(ISD::STRICT_##DAGN, VT, Expand);
933#include "llvm/IR/ConstrainedOps.def"
936
937 // For most targets @llvm.get.dynamic.area.offset just returns 0.
939
940 // Vector reduction default to expand.
949 VT, Expand);
950
951 // Named vector shuffles default to expand.
953 Expand);
954
955 // Only some target support these vector operations. Default them to Expand.
957
958 // cttz.elts defaults to expand.
960 Expand);
961
962 // VP operations default to expand.
963#define BEGIN_REGISTER_VP_SDNODE(SDOPC, ...) \
964 setOperationAction(ISD::SDOPC, VT, Expand);
965#include "llvm/IR/VPIntrinsics.def"
966
967 // Masked vector extracts default to expand.
969
972
973 // FP environment operations default to expand.
977
979
984 }
985
986 // Most targets ignore the @llvm.prefetch intrinsic.
988
989 // Most targets also ignore the @llvm.readcyclecounter intrinsic.
991
992 // Most targets also ignore the @llvm.readsteadycounter intrinsic.
994
995 // ConstantFP nodes default to expand. Targets can either change this to
996 // Legal, in which case all fp constants are legal, or use isFPImmLegal()
997 // to optimize expansions for certain constants.
999 {MVT::bf16, MVT::f16, MVT::f32, MVT::f64, MVT::f80, MVT::f128},
1000 Expand);
1001
1002 // Insert custom handling default for llvm.canonicalize.*.
1004 {MVT::f16, MVT::f32, MVT::f64, MVT::f128}, Expand);
1005
1006 // FIXME: Query RuntimeLibCalls to make the decision.
1008 {MVT::f32, MVT::f64, MVT::f128}, LibCall);
1009
1012 MVT::f16, Promote);
1013 // Default ISD::TRAP to expand (which turns it into abort).
1014 setOperationAction(ISD::TRAP, MVT::Other, Expand);
1015
1016 // On most systems, DEBUGTRAP and TRAP have no difference. The "Expand"
1017 // here is to inform DAG Legalizer to replace DEBUGTRAP with TRAP.
1019
1021
1024
1025 for (MVT VT : {MVT::i8, MVT::i16, MVT::i32, MVT::i64}) {
1028 }
1030
1031 // This one by default will call __clear_cache unless the target
1032 // wants something different.
1034
1035 // By default, STACKADDRESS nodes are expanded like STACKSAVE nodes.
1036 // On SPARC targets, custom lowering is required.
1038}
1039
1041 EVT) const {
1042 return MVT::getIntegerVT(DL.getPointerSizeInBits(0));
1043}
1044
1046 const DataLayout &DL) const {
1047 assert(LHSTy.isInteger() && "Shift amount is not an integer type!");
1048 if (LHSTy.isVector())
1049 return LHSTy;
1050 MVT ShiftVT = getScalarShiftAmountTy(DL, LHSTy);
1051 // If any possible shift value won't fit in the prefered type, just use
1052 // something safe. Assume it will be legalized when the shift is expanded.
1053 if (ShiftVT.getSizeInBits() < Log2_32_Ceil(LHSTy.getSizeInBits()))
1054 ShiftVT = MVT::i32;
1055 assert(ShiftVT.getSizeInBits() >= Log2_32_Ceil(LHSTy.getSizeInBits()) &&
1056 "ShiftVT is still too small!");
1057 return ShiftVT;
1058}
1059
1060bool TargetLoweringBase::canOpTrap(unsigned Op, EVT VT) const {
1061 assert(isTypeLegal(VT));
1062 switch (Op) {
1063 default:
1064 return false;
1065 case ISD::SDIV:
1066 case ISD::UDIV:
1067 case ISD::SREM:
1068 case ISD::UREM:
1069 return true;
1070 }
1071}
1072
1074 unsigned DestAS) const {
1075 return TM.isNoopAddrSpaceCast(SrcAS, DestAS);
1076}
1077
1079 EVT RetVT, ElementCount EC, bool ZeroIsPoison,
1080 const ConstantRange *VScaleRange) const {
1081 // Find the smallest "sensible" element type to use for the expansion.
1082 ConstantRange CR(APInt(64, EC.getKnownMinValue()));
1083 if (EC.isScalable())
1084 CR = CR.umul_sat(*VScaleRange);
1085
1086 if (ZeroIsPoison)
1087 CR = CR.subtract(APInt(64, 1));
1088
1089 unsigned EltWidth = RetVT.getScalarSizeInBits();
1090 EltWidth = std::min(EltWidth, CR.getActiveBits());
1091 EltWidth = std::max(llvm::bit_ceil(EltWidth), (unsigned)8);
1092
1093 return EltWidth;
1094}
1095
1097 // If the command-line option was specified, ignore this request.
1098 if (!JumpIsExpensiveOverride.getNumOccurrences())
1099 JumpIsExpensive = isExpensive;
1100}
1101
1104 // If this is a simple type, use the ComputeRegisterProp mechanism.
1105 if (VT.isSimple()) {
1106 MVT SVT = VT.getSimpleVT();
1107 assert((unsigned)SVT.SimpleTy < std::size(TransformToType));
1108 MVT NVT = TransformToType[SVT.SimpleTy];
1109 LegalizeTypeAction LA = ValueTypeActions.getTypeAction(SVT);
1110
1111 assert((LA == TypeLegal || LA == TypeSoftenFloat ||
1112 LA == TypeSoftPromoteHalf ||
1113 (NVT.isVector() ||
1114 ValueTypeActions.getTypeAction(NVT) != TypePromoteInteger)) &&
1115 "Promote may not follow Expand or Promote");
1116
1117 if (LA == TypeSplitVector)
1118 return LegalizeKind(LA, EVT(SVT).getHalfNumVectorElementsVT(Context));
1119 if (LA == TypeScalarizeVector)
1120 return LegalizeKind(LA, SVT.getVectorElementType());
1121 return LegalizeKind(LA, NVT);
1122 }
1123
1124 // Handle Extended Scalar Types.
1125 if (!VT.isVector()) {
1126 assert(VT.isInteger() && "Float types must be simple");
1127 unsigned BitSize = VT.getSizeInBits();
1128 // First promote to a power-of-two size, then expand if necessary.
1129 if (BitSize < 8 || !isPowerOf2_32(BitSize)) {
1130 EVT NVT = VT.getRoundIntegerType(Context);
1131 assert(NVT != VT && "Unable to round integer VT");
1132 LegalizeKind NextStep = getTypeConversion(Context, NVT);
1133 // Avoid multi-step promotion.
1134 if (NextStep.first == TypePromoteInteger)
1135 return NextStep;
1136 // Return rounded integer type.
1137 return LegalizeKind(TypePromoteInteger, NVT);
1138 }
1139
1141 EVT::getIntegerVT(Context, VT.getSizeInBits() / 2));
1142 }
1143
1144 // Handle vector types.
1145 ElementCount NumElts = VT.getVectorElementCount();
1146 EVT EltVT = VT.getVectorElementType();
1147
1148 // Vectors with only one element are always scalarized.
1149 if (NumElts.isScalar())
1150 return LegalizeKind(TypeScalarizeVector, EltVT);
1151
1152 // Try to widen vector elements until the element type is a power of two and
1153 // promote it to a legal type later on, for example:
1154 // <3 x i8> -> <4 x i8> -> <4 x i32>
1155 if (EltVT.isInteger()) {
1156 // Vectors with a number of elements that is not a power of two are always
1157 // widened, for example <3 x i8> -> <4 x i8>.
1158 if (!VT.isPow2VectorType()) {
1159 NumElts = NumElts.coefficientNextPowerOf2();
1160 EVT NVT = EVT::getVectorVT(Context, EltVT, NumElts);
1161 return LegalizeKind(TypeWidenVector, NVT);
1162 }
1163
1164 // Examine the element type.
1165 LegalizeKind LK = getTypeConversion(Context, EltVT);
1166
1167 // If type is to be expanded, split the vector.
1168 // <4 x i140> -> <2 x i140>
1169 if (LK.first == TypeExpandInteger) {
1170 if (NumElts.isScalable() && NumElts.getKnownMinValue() == 1)
1173 VT.getHalfNumVectorElementsVT(Context));
1174 }
1175
1176 // Promote the integer element types until a legal vector type is found
1177 // or until the element integer type is too big. If a legal type was not
1178 // found, fallback to the usual mechanism of widening/splitting the
1179 // vector.
1180 EVT OldEltVT = EltVT;
1181 while (true) {
1182 // Increase the bitwidth of the element to the next pow-of-two
1183 // (which is greater than 8 bits).
1184 EltVT = EVT::getIntegerVT(Context, 1 + EltVT.getSizeInBits())
1185 .getRoundIntegerType(Context);
1186
1187 // Stop trying when getting a non-simple element type.
1188 // Note that vector elements may be greater than legal vector element
1189 // types. Example: X86 XMM registers hold 64bit element on 32bit
1190 // systems.
1191 if (!EltVT.isSimple())
1192 break;
1193
1194 // Build a new vector type and check if it is legal.
1195 MVT NVT = MVT::getVectorVT(EltVT.getSimpleVT(), NumElts);
1196 // Found a legal promoted vector type.
1197 if (NVT != MVT() && ValueTypeActions.getTypeAction(NVT) == TypeLegal)
1199 EVT::getVectorVT(Context, EltVT, NumElts));
1200 }
1201
1202 // Reset the type to the unexpanded type if we did not find a legal vector
1203 // type with a promoted vector element type.
1204 EltVT = OldEltVT;
1205 }
1206
1207 // Try to widen the vector until a legal type is found.
1208 // If there is no wider legal type, split the vector.
1209 while (true) {
1210 // Round up to the next power of 2.
1211 NumElts = NumElts.coefficientNextPowerOf2();
1212
1213 // If there is no simple vector type with this many elements then there
1214 // cannot be a larger legal vector type. Note that this assumes that
1215 // there are no skipped intermediate vector types in the simple types.
1216 if (!EltVT.isSimple())
1217 break;
1218 MVT LargerVector = MVT::getVectorVT(EltVT.getSimpleVT(), NumElts);
1219 if (LargerVector == MVT())
1220 break;
1221
1222 // If this type is legal then widen the vector.
1223 if (ValueTypeActions.getTypeAction(LargerVector) == TypeLegal)
1224 return LegalizeKind(TypeWidenVector, LargerVector);
1225 }
1226
1227 // Widen odd vectors to next power of two.
1228 if (!VT.isPow2VectorType()) {
1229 EVT NVT = VT.getPow2VectorType(Context);
1230 return LegalizeKind(TypeWidenVector, NVT);
1231 }
1232
1235
1236 // Vectors with illegal element types are expanded.
1237 EVT NVT = EVT::getVectorVT(Context, EltVT,
1239 return LegalizeKind(TypeSplitVector, NVT);
1240}
1241
1242unsigned TargetLoweringBase::getVectorTypeBreakdownMVT(
1243 MVT VT, MVT &IntermediateVT, unsigned &NumIntermediates, MVT &RegisterVT) {
1244 // Figure out the right, legal destination reg to copy into.
1246 MVT EltTy = VT.getVectorElementType();
1247
1248 unsigned NumVectorRegs = 1;
1249
1250 // Scalable vectors cannot be scalarized, so splitting or widening is
1251 // required.
1252 if (VT.isScalableVector() && !isPowerOf2_32(EC.getKnownMinValue()))
1254 "Splitting or widening of non-power-of-2 MVTs is not implemented.");
1255
1256 // FIXME: We don't support non-power-of-2-sized vectors for now.
1257 // Ideally we could break down into LHS/RHS like LegalizeDAG does.
1258 if (!isPowerOf2_32(EC.getKnownMinValue())) {
1259 // Split EC to unit size (scalable property is preserved).
1260 NumVectorRegs = EC.getKnownMinValue();
1261 EC = ElementCount::getFixed(1);
1262 }
1263
1264 // Divide the input until we get to a supported size. This will
1265 // always end up with an EC that represent a scalar or a scalable
1266 // scalar.
1267 while (EC.getKnownMinValue() > 1 &&
1268 !isTypeLegal(MVT::getVectorVT(EltTy, EC))) {
1269 EC = EC.divideCoefficientBy(2);
1270 NumVectorRegs <<= 1;
1271 }
1272
1273 NumIntermediates = NumVectorRegs;
1274
1275 MVT NewVT = MVT::getVectorVT(EltTy, EC);
1276 if (!isTypeLegal(NewVT))
1277 NewVT = EltTy;
1278 IntermediateVT = NewVT;
1279
1280 unsigned LaneSizeInBits = NewVT.getScalarSizeInBits();
1281
1282 // Convert sizes such as i33 to i64.
1283 LaneSizeInBits = llvm::bit_ceil(LaneSizeInBits);
1284
1285 MVT DestVT = getCachedRegisterType(NewVT);
1286 RegisterVT = DestVT;
1287 if (EVT(DestVT).bitsLT(NewVT)) // Value is expanded, e.g. i64 -> i16.
1288 return NumVectorRegs * (LaneSizeInBits / DestVT.getScalarSizeInBits());
1289
1290 // Otherwise, promotion or legal types use the same number of registers as
1291 // the vector decimated to the appropriate level.
1292 return NumVectorRegs;
1293}
1294
1295/// isLegalRC - Return true if the value types that can be represented by the
1296/// specified register class are all legal.
1298 const TargetRegisterClass &RC) const {
1299 for (const auto *I = TRI.legalclasstypes_begin(RC); *I != MVT::Other; ++I)
1300 if (isTypeLegal(*I))
1301 return true;
1302 return false;
1303}
1304
1305/// Replace/modify any TargetFrameIndex operands with a targte-dependent
1306/// sequence of memory operands that is recognized by PrologEpilogInserter.
1309 MachineBasicBlock *MBB) const {
1310 MachineInstr *MI = &InitialMI;
1311 MachineFunction &MF = *MI->getMF();
1312 MachineFrameInfo &MFI = MF.getFrameInfo();
1313
1314 // We're handling multiple types of operands here:
1315 // PATCHPOINT MetaArgs - live-in, read only, direct
1316 // STATEPOINT Deopt Spill - live-through, read only, indirect
1317 // STATEPOINT Deopt Alloca - live-through, read only, direct
1318 // (We're currently conservative and mark the deopt slots read/write in
1319 // practice.)
1320 // STATEPOINT GC Spill - live-through, read/write, indirect
1321 // STATEPOINT GC Alloca - live-through, read/write, direct
1322 // The live-in vs live-through is handled already (the live through ones are
1323 // all stack slots), but we need to handle the different type of stackmap
1324 // operands and memory effects here.
1325
1326 if (llvm::none_of(MI->operands(),
1327 [](MachineOperand &Operand) { return Operand.isFI(); }))
1328 return MBB;
1329
1330 MachineInstrBuilder MIB = BuildMI(MF, MI->getDebugLoc(), MI->getDesc());
1331
1332 // Inherit previous memory operands.
1333 MIB.cloneMemRefs(*MI);
1334
1335 for (unsigned i = 0; i < MI->getNumOperands(); ++i) {
1336 MachineOperand &MO = MI->getOperand(i);
1337 if (!MO.isFI()) {
1338 // Index of Def operand this Use it tied to.
1339 // Since Defs are coming before Uses, if Use is tied, then
1340 // index of Def must be smaller that index of that Use.
1341 // Also, Defs preserve their position in new MI.
1342 unsigned TiedTo = i;
1343 if (MO.isReg() && MO.isTied())
1344 TiedTo = MI->findTiedOperandIdx(i);
1345 MIB.add(MO);
1346 if (TiedTo < i)
1347 MIB->tieOperands(TiedTo, MIB->getNumOperands() - 1);
1348 continue;
1349 }
1350
1351 // foldMemoryOperand builds a new MI after replacing a single FI operand
1352 // with the canonical set of five x86 addressing-mode operands.
1353 int FI = MO.getIndex();
1354
1355 // Add frame index operands recognized by stackmaps.cpp
1357 // indirect-mem-ref tag, size, #FI, offset.
1358 // Used for spills inserted by StatepointLowering. This codepath is not
1359 // used for patchpoints/stackmaps at all, for these spilling is done via
1360 // foldMemoryOperand callback only.
1361 assert(MI->getOpcode() == TargetOpcode::STATEPOINT && "sanity");
1362 MIB.addImm(StackMaps::IndirectMemRefOp);
1363 MIB.addImm(MFI.getObjectSize(FI));
1364 MIB.add(MO);
1365 MIB.addImm(0);
1366 } else {
1367 // direct-mem-ref tag, #FI, offset.
1368 // Used by patchpoint, and direct alloca arguments to statepoints
1369 MIB.addImm(StackMaps::DirectMemRefOp);
1370 MIB.add(MO);
1371 MIB.addImm(0);
1372 }
1373
1374 assert(MIB->mayLoad() && "Folded a stackmap use to a non-load!");
1375
1376 // Add a new memory operand for this FI.
1377 assert(MFI.getObjectOffset(FI) != -1);
1378
1379 // Note: STATEPOINT MMOs are added during SelectionDAG. STACKMAP, and
1380 // PATCHPOINT should be updated to do the same. (TODO)
1381 if (MI->getOpcode() != TargetOpcode::STATEPOINT) {
1382 auto Flags = MachineMemOperand::MOLoad;
1384 MachinePointerInfo::getFixedStack(MF, FI), Flags,
1386 MIB->addMemOperand(MF, MMO);
1387 }
1388 }
1389 MBB->insert(MachineBasicBlock::iterator(MI), MIB);
1390 MI->eraseFromParent();
1391 return MBB;
1392}
1393
1394/// findRepresentativeClass - Return the largest legal super-reg register class
1395/// of the register class for the specified type and its associated "cost".
1396// This function is in TargetLowering because it uses RegClassForVT which would
1397// need to be moved to TargetRegisterInfo and would necessitate moving
1398// isTypeLegal over as well - a massive change that would just require
1399// TargetLowering having a TargetRegisterInfo class member that it would use.
1400std::pair<const TargetRegisterClass *, uint8_t>
1402 MVT VT) const {
1403 const TargetRegisterClass *RC = RegClassForVT[VT.SimpleTy];
1404 if (!RC)
1405 return std::make_pair(RC, 0);
1406
1407 // Compute the set of all super-register classes.
1408 BitVector SuperRegRC(TRI->getNumRegClasses());
1409 for (SuperRegClassIterator RCI(RC, TRI); RCI.isValid(); ++RCI)
1410 SuperRegRC.setBitsInMask(RCI.getMask());
1411
1412 // Find the first legal register class with the largest spill size.
1413 const TargetRegisterClass *BestRC = RC;
1414 for (unsigned i : SuperRegRC.set_bits()) {
1415 const TargetRegisterClass *SuperRC = TRI->getRegClass(i);
1416 // We want the largest possible spill size.
1417 if (TRI->getSpillSize(*SuperRC) <= TRI->getSpillSize(*BestRC))
1418 continue;
1419 if (!isLegalRC(*TRI, *SuperRC))
1420 continue;
1421 BestRC = SuperRC;
1422 }
1423 return std::make_pair(BestRC, 1);
1424}
1425
1426/// computeRegisterProperties - Once all of the register classes are added,
1427/// this allows us to compute derived properties we expose.
1429 const TargetRegisterInfo *TRI) {
1430 // Everything defaults to needing one register.
1431 for (unsigned i = 0; i != MVT::VALUETYPE_SIZE; ++i) {
1432 NumRegistersForVT[i] = 1;
1433 RegisterTypeForVT[i] = TransformToType[i] = (MVT::SimpleValueType)i;
1434 }
1435 // ...except isVoid, which doesn't need any registers.
1436 NumRegistersForVT[MVT::isVoid] = 0;
1437
1438 // Find the largest integer register class.
1439 unsigned LargestIntReg = MVT::LAST_INTEGER_VALUETYPE;
1440 for (; RegClassForVT[LargestIntReg] == nullptr; --LargestIntReg)
1441 assert(LargestIntReg != MVT::i1 && "No integer registers defined!");
1442
1443 // Every integer value type larger than this largest register takes twice as
1444 // many registers to represent as the previous ValueType.
1445 for (unsigned ExpandedReg = LargestIntReg + 1;
1446 ExpandedReg <= MVT::LAST_INTEGER_VALUETYPE; ++ExpandedReg) {
1447 NumRegistersForVT[ExpandedReg] = 2*NumRegistersForVT[ExpandedReg-1];
1448 RegisterTypeForVT[ExpandedReg] = (MVT::SimpleValueType)LargestIntReg;
1449 TransformToType[ExpandedReg] = (MVT::SimpleValueType)(ExpandedReg - 1);
1450 ValueTypeActions.setTypeAction((MVT::SimpleValueType)ExpandedReg,
1452 }
1453
1454 // Inspect all of the ValueType's smaller than the largest integer
1455 // register to see which ones need promotion.
1456 unsigned LegalIntReg = LargestIntReg;
1457 for (unsigned IntReg = LargestIntReg - 1;
1458 IntReg >= (unsigned)MVT::i1; --IntReg) {
1459 MVT IVT = (MVT::SimpleValueType)IntReg;
1460 if (isTypeLegal(IVT)) {
1461 LegalIntReg = IntReg;
1462 } else {
1463 RegisterTypeForVT[IntReg] = TransformToType[IntReg] =
1464 (MVT::SimpleValueType)LegalIntReg;
1465 ValueTypeActions.setTypeAction(IVT, TypePromoteInteger);
1466 }
1467 }
1468
1469 // ppcf128 type is really two f64's.
1470 if (!isTypeLegal(MVT::ppcf128)) {
1471 if (isTypeLegal(MVT::f64)) {
1472 NumRegistersForVT[MVT::ppcf128] = 2*NumRegistersForVT[MVT::f64];
1473 RegisterTypeForVT[MVT::ppcf128] = MVT::f64;
1474 TransformToType[MVT::ppcf128] = MVT::f64;
1475 ValueTypeActions.setTypeAction(MVT::ppcf128, TypeExpandFloat);
1476 } else {
1477 NumRegistersForVT[MVT::ppcf128] = NumRegistersForVT[MVT::i128];
1478 RegisterTypeForVT[MVT::ppcf128] = RegisterTypeForVT[MVT::i128];
1479 TransformToType[MVT::ppcf128] = MVT::i128;
1480 ValueTypeActions.setTypeAction(MVT::ppcf128, TypeSoftenFloat);
1481 }
1482 }
1483
1484 // Decide how to handle f128. If the target does not have native f128 support,
1485 // expand it to i128 and we will be generating soft float library calls.
1486 if (!isTypeLegal(MVT::f128)) {
1487 NumRegistersForVT[MVT::f128] = NumRegistersForVT[MVT::i128];
1488 RegisterTypeForVT[MVT::f128] = RegisterTypeForVT[MVT::i128];
1489 TransformToType[MVT::f128] = MVT::i128;
1490 ValueTypeActions.setTypeAction(MVT::f128, TypeSoftenFloat);
1491 }
1492
1493 // Decide how to handle f80. If the target does not have native f80 support,
1494 // expand it to i96 and we will be generating soft float library calls.
1495 if (!isTypeLegal(MVT::f80)) {
1496 NumRegistersForVT[MVT::f80] = 3*NumRegistersForVT[MVT::i32];
1497 RegisterTypeForVT[MVT::f80] = RegisterTypeForVT[MVT::i32];
1498 TransformToType[MVT::f80] = MVT::i32;
1499 ValueTypeActions.setTypeAction(MVT::f80, TypeSoftenFloat);
1500 }
1501
1502 // Decide how to handle f64. If the target does not have native f64 support,
1503 // expand it to i64 and we will be generating soft float library calls.
1504 if (!isTypeLegal(MVT::f64)) {
1505 NumRegistersForVT[MVT::f64] = NumRegistersForVT[MVT::i64];
1506 RegisterTypeForVT[MVT::f64] = RegisterTypeForVT[MVT::i64];
1507 TransformToType[MVT::f64] = MVT::i64;
1508 ValueTypeActions.setTypeAction(MVT::f64, TypeSoftenFloat);
1509 }
1510
1511 // Decide how to handle f32. If the target does not have native f32 support,
1512 // expand it to i32 and we will be generating soft float library calls.
1513 if (!isTypeLegal(MVT::f32)) {
1514 NumRegistersForVT[MVT::f32] = NumRegistersForVT[MVT::i32];
1515 RegisterTypeForVT[MVT::f32] = RegisterTypeForVT[MVT::i32];
1516 TransformToType[MVT::f32] = MVT::i32;
1517 ValueTypeActions.setTypeAction(MVT::f32, TypeSoftenFloat);
1518 }
1519
1520 // Decide how to handle f16. If the target does not have native f16 support,
1521 // promote it to f32, because there are no f16 library calls (except for
1522 // conversions).
1523 if (!isTypeLegal(MVT::f16)) {
1524 // Allow targets to control how we legalize half.
1525 bool UseFPRegsForHalfType = useFPRegsForHalfType();
1526
1527 if (!UseFPRegsForHalfType) {
1528 NumRegistersForVT[MVT::f16] = NumRegistersForVT[MVT::i16];
1529 RegisterTypeForVT[MVT::f16] = RegisterTypeForVT[MVT::i16];
1530 } else {
1531 NumRegistersForVT[MVT::f16] = NumRegistersForVT[MVT::f32];
1532 RegisterTypeForVT[MVT::f16] = RegisterTypeForVT[MVT::f32];
1533 }
1534 TransformToType[MVT::f16] = MVT::f32;
1535 ValueTypeActions.setTypeAction(MVT::f16, TypeSoftPromoteHalf);
1536 }
1537
1538 // Decide how to handle bf16. If the target does not have native bf16 support,
1539 // promote it to f32, because there are no bf16 library calls (except for
1540 // converting from f32 to bf16).
1541 if (!isTypeLegal(MVT::bf16)) {
1542 NumRegistersForVT[MVT::bf16] = NumRegistersForVT[MVT::f32];
1543 RegisterTypeForVT[MVT::bf16] = RegisterTypeForVT[MVT::f32];
1544 TransformToType[MVT::bf16] = MVT::f32;
1545 ValueTypeActions.setTypeAction(MVT::bf16, TypeSoftPromoteHalf);
1546 }
1547
1548 // Loop over all of the vector value types to see which need transformations.
1549 for (unsigned i = MVT::FIRST_VECTOR_VALUETYPE;
1550 i <= (unsigned)MVT::LAST_VECTOR_VALUETYPE; ++i) {
1551 MVT VT = (MVT::SimpleValueType) i;
1552 if (isTypeLegal(VT))
1553 continue;
1554
1555 MVT EltVT = VT.getVectorElementType();
1557 bool IsLegalWiderType = false;
1558 bool IsScalable = VT.isScalableVector();
1559 LegalizeTypeAction PreferredAction = getPreferredVectorAction(VT);
1560 switch (PreferredAction) {
1561 case TypePromoteInteger: {
1562 MVT::SimpleValueType EndVT = IsScalable ?
1563 MVT::LAST_INTEGER_SCALABLE_VECTOR_VALUETYPE :
1564 MVT::LAST_INTEGER_FIXEDLEN_VECTOR_VALUETYPE;
1565 // Try to promote the elements of integer vectors. If no legal
1566 // promotion was found, fall through to the widen-vector method.
1567 for (unsigned nVT = i + 1;
1568 (MVT::SimpleValueType)nVT <= EndVT; ++nVT) {
1569 MVT SVT = (MVT::SimpleValueType) nVT;
1570 // Promote vectors of integers to vectors with the same number
1571 // of elements, with a wider element type.
1572 if (SVT.getScalarSizeInBits() > EltVT.getFixedSizeInBits() &&
1573 SVT.getVectorElementCount() == EC && isTypeLegal(SVT)) {
1574 TransformToType[i] = SVT;
1575 RegisterTypeForVT[i] = SVT;
1576 NumRegistersForVT[i] = 1;
1577 ValueTypeActions.setTypeAction(VT, TypePromoteInteger);
1578 IsLegalWiderType = true;
1579 break;
1580 }
1581 }
1582 if (IsLegalWiderType)
1583 break;
1584 [[fallthrough]];
1585 }
1586
1587 case TypeWidenVector:
1588 if (isPowerOf2_32(EC.getKnownMinValue())) {
1589 // Try to widen the vector.
1590 for (unsigned nVT = i + 1; nVT <= MVT::LAST_VECTOR_VALUETYPE; ++nVT) {
1591 MVT SVT = (MVT::SimpleValueType) nVT;
1592 if (SVT.getVectorElementType() == EltVT &&
1593 SVT.isScalableVector() == IsScalable &&
1595 EC.getKnownMinValue() &&
1596 isTypeLegal(SVT)) {
1597 TransformToType[i] = SVT;
1598 RegisterTypeForVT[i] = SVT;
1599 NumRegistersForVT[i] = 1;
1600 ValueTypeActions.setTypeAction(VT, TypeWidenVector);
1601 IsLegalWiderType = true;
1602 break;
1603 }
1604 }
1605 if (IsLegalWiderType)
1606 break;
1607 } else {
1608 // Only widen to the next power of 2 to keep consistency with EVT.
1609 MVT NVT = VT.getPow2VectorType();
1610 if (isTypeLegal(NVT)) {
1611 TransformToType[i] = NVT;
1612 ValueTypeActions.setTypeAction(VT, TypeWidenVector);
1613 RegisterTypeForVT[i] = NVT;
1614 NumRegistersForVT[i] = 1;
1615 break;
1616 }
1617 }
1618 [[fallthrough]];
1619
1620 case TypeSplitVector:
1621 case TypeScalarizeVector: {
1622 MVT IntermediateVT;
1623 MVT RegisterVT;
1624 unsigned NumIntermediates;
1625 unsigned NumRegisters = getVectorTypeBreakdownMVT(
1626 VT, IntermediateVT, NumIntermediates, RegisterVT);
1627 NumRegistersForVT[i] = NumRegisters;
1628 assert(NumRegistersForVT[i] == NumRegisters &&
1629 "NumRegistersForVT size cannot represent NumRegisters!");
1630 RegisterTypeForVT[i] = RegisterVT;
1631
1632 MVT NVT = VT.getPow2VectorType();
1633 if (NVT == VT) {
1634 // Type is already a power of 2. The default action is to split.
1635 TransformToType[i] = MVT::Other;
1636 if (PreferredAction == TypeScalarizeVector)
1637 ValueTypeActions.setTypeAction(VT, TypeScalarizeVector);
1638 else if (PreferredAction == TypeSplitVector)
1639 ValueTypeActions.setTypeAction(VT, TypeSplitVector);
1640 else if (EC.getKnownMinValue() > 1)
1641 ValueTypeActions.setTypeAction(VT, TypeSplitVector);
1642 else
1643 ValueTypeActions.setTypeAction(VT, EC.isScalable()
1646 } else {
1647 TransformToType[i] = NVT;
1648 ValueTypeActions.setTypeAction(VT, TypeWidenVector);
1649 }
1650 break;
1651 }
1652 default:
1653 llvm_unreachable("Unknown vector legalization action!");
1654 }
1655 }
1656
1657 // Determine the 'representative' register class for each value type.
1658 // An representative register class is the largest (meaning one which is
1659 // not a sub-register class / subreg register class) legal register class for
1660 // a group of value types. For example, on i386, i8, i16, and i32
1661 // representative would be GR32; while on x86_64 it's GR64.
1662 for (unsigned i = 0; i != MVT::VALUETYPE_SIZE; ++i) {
1663 const TargetRegisterClass* RRC;
1664 uint8_t Cost;
1666 RepRegClassForVT[i] = RRC;
1667 RepRegClassCostForVT[i] = Cost;
1668 }
1669
1670 // Compute minimum known-legal store size.
1671 MaximumLegalStoreInBits = 0;
1672 for (MVT VT : MVT::all_valuetypes())
1673 if (VT != MVT::Other && isTypeLegal(VT) &&
1674 VT.getSizeInBits().getKnownMinValue() >= MaximumLegalStoreInBits)
1675 MaximumLegalStoreInBits = VT.getSizeInBits().getKnownMinValue();
1676}
1677
1679 EVT VT) const {
1680 assert(!VT.isVector() && "No default SetCC type for vectors!");
1681 return getPointerTy(DL).SimpleTy;
1682}
1683
1684/// getVectorTypeBreakdown - Vector types are broken down into some number of
1685/// legal first class types. For example, MVT::v8f32 maps to 2 MVT::v4f32
1686/// with Altivec or SSE1, or 8 promoted MVT::f64 values with the X86 FP stack.
1687/// Similarly, MVT::v2i64 turns into 4 MVT::i32 values with both PPC and X86.
1688///
1689/// This method returns the number of registers needed, and the VT for each
1690/// register. It also returns the VT and quantity of the intermediate values
1691/// before they are promoted/expanded.
1692unsigned TargetLoweringBase::getVectorTypeBreakdownImpl(
1693 LLVMContext &Context, EVT VT, EVT &IntermediateVT,
1694 unsigned &NumIntermediates, MVT &RegisterVT, bool ForCallingConv) const {
1695 ElementCount EltCnt = VT.getVectorElementCount();
1696
1697 // If there is a wider vector type with the same element type as this one,
1698 // or a promoted vector type that has the same number of elements which
1699 // are wider, then we should convert to that legal vector type.
1700 // This handles things like <2 x float> -> <4 x float> and
1701 // <4 x i1> -> <4 x i32>.
1702 LegalizeTypeAction TA = getTypeAction(Context, VT);
1703 if (!EltCnt.isScalar() &&
1704 (TA == TypeWidenVector || TA == TypePromoteInteger)) {
1705 EVT RegisterEVT = getTypeToTransformTo(Context, VT);
1706 if (isTypeLegal(RegisterEVT)) {
1707 IntermediateVT = RegisterEVT;
1708 RegisterVT = RegisterEVT.getSimpleVT();
1709 NumIntermediates = 1;
1710 return 1;
1711 }
1712 }
1713
1714 // Figure out the right, legal destination reg to copy into.
1715 EVT EltTy = VT.getVectorElementType();
1716
1717 unsigned NumVectorRegs = 1;
1718
1719 auto GetLegalVectorBreakdown = [&]() -> std::optional<unsigned> {
1720 LegalizeKind LK;
1721 EVT PartVT = VT;
1722 do {
1723 // Iterate until we've found a legal (part) type to hold VT.
1724 LK = getTypeConversion(Context, PartVT);
1725 PartVT = LK.second;
1726 } while (LK.first != TypeLegal);
1727
1728 if (!PartVT.isVector())
1729 return std::nullopt;
1730
1731 assert(PartVT.isScalableVector() == VT.isScalableVector() &&
1732 "Vector legalization changed scalability");
1733 NumIntermediates =
1736 IntermediateVT = PartVT;
1737 RegisterVT = getRegisterType(Context, IntermediateVT);
1738 return NumIntermediates;
1739 };
1740
1741 // Scalable vectors cannot be scalarized, so handle the legalisation of the
1742 // types like done elsewhere in SelectionDAG.
1743 if (EltCnt.isScalable()) {
1744 if (std::optional<unsigned> NumRegs = GetLegalVectorBreakdown())
1745 return *NumRegs;
1746 report_fatal_error("Don't know how to legalize this scalable vector type");
1747 }
1748
1749 // FIXME: We don't generically support non-power-of-2-sized vectors for now.
1750 // Ideally we could break down into LHS/RHS like LegalizeDAG does.
1751 if (!isPowerOf2_32(EltCnt.getKnownMinValue())) {
1752 assert(VT.isFixedLengthVector() && "Expected a fixed-length vector VT");
1753 unsigned NumElts = EltCnt.getKnownMinValue();
1754
1755 if (!ForCallingConv && preferVectorizedNonPowerOfTwoTypeBreakdown())
1756 if (std::optional<unsigned> NumRegs = GetLegalVectorBreakdown())
1757 return *NumRegs;
1758
1759 // Fall back to scalars if there is no legal vector decomposition.
1760 NumVectorRegs = NumElts;
1761 EltCnt = ElementCount::getFixed(1);
1762 }
1763
1764 // Divide the input until we get to a supported size. This will always
1765 // end with a scalar if the target doesn't support vectors.
1766 while (EltCnt.getKnownMinValue() > 1 &&
1767 !isTypeLegal(EVT::getVectorVT(Context, EltTy, EltCnt))) {
1768 EltCnt = EltCnt.divideCoefficientBy(2);
1769 NumVectorRegs <<= 1;
1770 }
1771
1772 NumIntermediates = NumVectorRegs;
1773
1774 EVT NewVT = EVT::getVectorVT(Context, EltTy, EltCnt);
1775 if (!isTypeLegal(NewVT))
1776 NewVT = EltTy;
1777 IntermediateVT = NewVT;
1778
1779 MVT DestVT = getRegisterType(Context, NewVT);
1780 RegisterVT = DestVT;
1781
1782 if (EVT(DestVT).bitsLT(NewVT)) { // Value is expanded, e.g. i64 -> i16.
1783 TypeSize NewVTSize = NewVT.getSizeInBits();
1784 // Convert sizes such as i33 to i64.
1786 NewVTSize = NewVTSize.coefficientNextPowerOf2();
1787 return NumVectorRegs*(NewVTSize/DestVT.getSizeInBits());
1788 }
1789
1790 // Otherwise, promotion or legal types use the same number of registers as
1791 // the vector decimated to the appropriate level.
1792 return NumVectorRegs;
1793}
1794
1796 uint64_t NumCases,
1797 uint64_t Range,
1798 ProfileSummaryInfo *PSI,
1799 BlockFrequencyInfo *BFI) const {
1800 // FIXME: This function check the maximum table size and density, but the
1801 // minimum size is not checked. It would be nice if the minimum size is
1802 // also combined within this function. Currently, the minimum size check is
1803 // performed in findJumpTable() in SelectionDAGBuiler and
1804 // getEstimatedNumberOfCaseClusters() in BasicTTIImpl.
1805 const bool OptForSize =
1806 llvm::shouldOptimizeForSize(SI->getParent(), PSI, BFI);
1807 const unsigned MinDensity = getMinimumJumpTableDensity(OptForSize);
1808 const unsigned MaxJumpTableSize = getMaximumJumpTableSize();
1809
1810 // Check whether the number of cases is small enough and
1811 // the range is dense enough for a jump table.
1812 return (OptForSize || Range <= MaxJumpTableSize) &&
1813 (NumCases * 100 >= Range * MinDensity);
1814}
1815
1817 EVT ConditionVT) const {
1818 return getRegisterType(Context, ConditionVT);
1819}
1820
1821/// Get the EVTs and ArgFlags collections that represent the legalized return
1822/// type of the given function. This does not require a DAG or a return value,
1823/// and is suitable for use before any DAGs for the function are constructed.
1824/// TODO: Move this out of TargetLowering.cpp.
1826 AttributeList attr,
1828 const TargetLowering &TLI, const DataLayout &DL) {
1830 ComputeValueTypes(DL, ReturnType, Types);
1831 unsigned NumValues = Types.size();
1832 if (NumValues == 0) return;
1833
1834 for (Type *Ty : Types) {
1835 EVT VT = TLI.getValueType(DL, Ty);
1836 ISD::NodeType ExtendKind = ISD::ANY_EXTEND;
1837
1838 if (attr.hasRetAttr(Attribute::SExt))
1839 ExtendKind = ISD::SIGN_EXTEND;
1840 else if (attr.hasRetAttr(Attribute::ZExt))
1841 ExtendKind = ISD::ZERO_EXTEND;
1842
1843 if (ExtendKind != ISD::ANY_EXTEND && VT.isInteger())
1844 VT = TLI.getTypeForExtReturn(ReturnType->getContext(), VT, ExtendKind);
1845
1846 unsigned NumParts =
1847 TLI.getNumRegistersForCallingConv(ReturnType->getContext(), CC, VT);
1848 MVT PartVT =
1849 TLI.getRegisterTypeForCallingConv(ReturnType->getContext(), CC, VT);
1850
1851 // 'inreg' on function refers to return value
1853 if (attr.hasRetAttr(Attribute::InReg))
1854 Flags.setInReg();
1855
1856 // Propagate extension type if any
1857 if (attr.hasRetAttr(Attribute::SExt))
1858 Flags.setSExt();
1859 else if (attr.hasRetAttr(Attribute::ZExt))
1860 Flags.setZExt();
1861
1862 for (unsigned i = 0; i < NumParts; ++i)
1863 Outs.push_back(ISD::OutputArg(Flags, PartVT, VT, Ty, 0, 0));
1864 }
1865}
1866
1868 const DataLayout &DL) const {
1869 return DL.getABITypeAlign(Ty);
1870}
1871
1873 LLVMContext &Context, const DataLayout &DL, EVT VT, unsigned AddrSpace,
1874 Align Alignment, MachineMemOperand::Flags Flags, unsigned *Fast) const {
1875 // Check if the specified alignment is sufficient based on the data layout.
1876 // TODO: While using the data layout works in practice, a better solution
1877 // would be to implement this check directly (make this a virtual function).
1878 // For example, the ABI alignment may change based on software platform while
1879 // this function should only be affected by hardware implementation.
1880 Type *Ty = VT.getTypeForEVT(Context);
1881 if (VT.isZeroSized() || Alignment >= DL.getABITypeAlign(Ty)) {
1882 // Assume that an access that meets the ABI-specified alignment is fast.
1883 if (Fast != nullptr)
1884 *Fast = 1;
1885 return true;
1886 }
1887
1888 // This is a misaligned access.
1889 return allowsMisalignedMemoryAccesses(VT, AddrSpace, Alignment, Flags, Fast);
1890}
1891
1893 LLVMContext &Context, const DataLayout &DL, EVT VT,
1894 const MachineMemOperand &MMO, unsigned *Fast) const {
1895 return allowsMemoryAccessForAlignment(Context, DL, VT, MMO.getAddrSpace(),
1896 MMO.getAlign(), MMO.getFlags(), Fast);
1897}
1898
1900 const DataLayout &DL, EVT VT,
1901 unsigned AddrSpace, Align Alignment,
1903 unsigned *Fast) const {
1904 return allowsMemoryAccessForAlignment(Context, DL, VT, AddrSpace, Alignment,
1905 Flags, Fast);
1906}
1907
1909 const DataLayout &DL, EVT VT,
1910 const MachineMemOperand &MMO,
1911 unsigned *Fast) const {
1912 return allowsMemoryAccess(Context, DL, VT, MMO.getAddrSpace(), MMO.getAlign(),
1913 MMO.getFlags(), Fast);
1914}
1915
1917 const DataLayout &DL, LLT Ty,
1918 const MachineMemOperand &MMO,
1919 unsigned *Fast) const {
1920 EVT VT = getApproximateEVTForLLT(Ty, Context);
1921 return allowsMemoryAccess(Context, DL, VT, MMO.getAddrSpace(), MMO.getAlign(),
1922 MMO.getFlags(), Fast);
1923}
1924
1925unsigned TargetLoweringBase::getMaxStoresPerMemset(bool OptSize) const {
1928
1930}
1931
1932unsigned TargetLoweringBase::getMaxStoresPerMemcpy(bool OptSize) const {
1935
1937}
1938
1942
1944}
1945
1946//===----------------------------------------------------------------------===//
1947// TargetTransformInfo Helpers
1948//===----------------------------------------------------------------------===//
1949
1951 enum InstructionOpcodes {
1952#define HANDLE_INST(NUM, OPCODE, CLASS) OPCODE = NUM,
1953#define LAST_OTHER_INST(NUM) InstructionOpcodesCount = NUM
1954#include "llvm/IR/Instruction.def"
1955 };
1956 switch (static_cast<InstructionOpcodes>(Opcode)) {
1957 case Ret: return 0;
1958 case UncondBr: return 0;
1959 case CondBr: return 0;
1960 case Switch: return 0;
1961 case IndirectBr: return 0;
1962 case Invoke: return 0;
1963 case CallBr: return 0;
1964 case Resume: return 0;
1965 case Unreachable: return 0;
1966 case CleanupRet: return 0;
1967 case CatchRet: return 0;
1968 case CatchPad: return 0;
1969 case CatchSwitch: return 0;
1970 case CleanupPad: return 0;
1971 case FNeg: return ISD::FNEG;
1972 case Add: return ISD::ADD;
1973 case FAdd: return ISD::FADD;
1974 case Sub: return ISD::SUB;
1975 case FSub: return ISD::FSUB;
1976 case Mul: return ISD::MUL;
1977 case FMul: return ISD::FMUL;
1978 case UDiv: return ISD::UDIV;
1979 case SDiv: return ISD::SDIV;
1980 case FDiv: return ISD::FDIV;
1981 case URem: return ISD::UREM;
1982 case SRem: return ISD::SREM;
1983 case FRem: return ISD::FREM;
1984 case Shl: return ISD::SHL;
1985 case LShr: return ISD::SRL;
1986 case AShr: return ISD::SRA;
1987 case And: return ISD::AND;
1988 case Or: return ISD::OR;
1989 case Xor: return ISD::XOR;
1990 case Alloca: return 0;
1991 case Load: return ISD::LOAD;
1992 case Store: return ISD::STORE;
1993 case GetElementPtr: return 0;
1994 case Fence: return 0;
1995 case AtomicCmpXchg: return 0;
1996 case AtomicRMW: return 0;
1997 case Trunc: return ISD::TRUNCATE;
1998 case ZExt: return ISD::ZERO_EXTEND;
1999 case SExt: return ISD::SIGN_EXTEND;
2000 case FPToUI: return ISD::FP_TO_UINT;
2001 case FPToSI: return ISD::FP_TO_SINT;
2002 case UIToFP: return ISD::UINT_TO_FP;
2003 case SIToFP: return ISD::SINT_TO_FP;
2004 case FPTrunc: return ISD::FP_ROUND;
2005 case FPExt: return ISD::FP_EXTEND;
2006 case PtrToAddr: return ISD::BITCAST;
2007 case PtrToInt: return ISD::BITCAST;
2008 case IntToPtr: return ISD::BITCAST;
2009 case BitCast: return ISD::BITCAST;
2010 case AddrSpaceCast: return ISD::ADDRSPACECAST;
2011 case ICmp: return ISD::SETCC;
2012 case FCmp: return ISD::SETCC;
2013 case PHI: return 0;
2014 case Call: return 0;
2015 case Select: return ISD::SELECT;
2016 case UserOp1: return 0;
2017 case UserOp2: return 0;
2018 case VAArg: return 0;
2019 case ExtractElement: return ISD::EXTRACT_VECTOR_ELT;
2020 case InsertElement: return ISD::INSERT_VECTOR_ELT;
2021 case ShuffleVector: return ISD::VECTOR_SHUFFLE;
2022 case ExtractValue: return ISD::MERGE_VALUES;
2023 case InsertValue: return ISD::MERGE_VALUES;
2024 case LandingPad: return 0;
2025 case Freeze: return ISD::FREEZE;
2026 }
2027
2028 llvm_unreachable("Unknown instruction type encountered!");
2029}
2030
2032 switch (ID) {
2033 case Intrinsic::acos:
2034 return ISD::FACOS;
2035 case Intrinsic::asin:
2036 return ISD::FASIN;
2037 case Intrinsic::atan:
2038 return ISD::FATAN;
2039 case Intrinsic::cos:
2040 return ISD::FCOS;
2041 case Intrinsic::cosh:
2042 return ISD::FCOSH;
2043 case Intrinsic::exp:
2044 return ISD::FEXP;
2045 case Intrinsic::exp2:
2046 return ISD::FEXP2;
2047 case Intrinsic::exp10:
2048 return ISD::FEXP10;
2049 case Intrinsic::log:
2050 return ISD::FLOG;
2051 case Intrinsic::log2:
2052 return ISD::FLOG2;
2053 case Intrinsic::log10:
2054 return ISD::FLOG10;
2055 case Intrinsic::sin:
2056 return ISD::FSIN;
2057 case Intrinsic::sinh:
2058 return ISD::FSINH;
2059 case Intrinsic::tan:
2060 return ISD::FTAN;
2061 case Intrinsic::tanh:
2062 return ISD::FTANH;
2063 default:
2064 return ISD::DELETED_NODE;
2065 }
2066}
2067
2068Value *
2070 bool UseTLS) const {
2071 // compiler-rt provides a variable with a magic name. Targets that do not
2072 // link with compiler-rt may also provide such a variable.
2073 Module *M = IRB.GetInsertBlock()->getParent()->getParent();
2074
2075 RTLIB::LibcallImpl UnsafeStackPtrImpl =
2076 Libcalls.getLibcallImpl(RTLIB::SAFESTACK_UNSAFE_STACK_PTR);
2077 if (UnsafeStackPtrImpl == RTLIB::Unsupported)
2078 return nullptr;
2079
2080 StringRef UnsafeStackPtrVar =
2082 auto UnsafeStackPtr =
2083 dyn_cast_or_null<GlobalVariable>(M->getNamedValue(UnsafeStackPtrVar));
2084
2085 const DataLayout &DL = M->getDataLayout();
2086 PointerType *StackPtrTy = DL.getAllocaPtrType(M->getContext());
2087
2088 if (!UnsafeStackPtr) {
2089 auto TLSModel = UseTLS ?
2092 // The global variable is not defined yet, define it ourselves.
2093 // We use the initial-exec TLS model because we do not support the
2094 // variable living anywhere other than in the main executable.
2095 UnsafeStackPtr = new GlobalVariable(
2096 *M, StackPtrTy, false, GlobalValue::ExternalLinkage, nullptr,
2097 UnsafeStackPtrVar, nullptr, TLSModel);
2098 } else {
2099 // The variable exists, check its type and attributes.
2100 //
2101 // FIXME: Move to IR verifier.
2102 if (UnsafeStackPtr->getValueType() != StackPtrTy)
2103 report_fatal_error(Twine(UnsafeStackPtrVar) + " must have void* type");
2104 if (UseTLS != UnsafeStackPtr->isThreadLocal())
2105 report_fatal_error(Twine(UnsafeStackPtrVar) + " must " +
2106 (UseTLS ? "" : "not ") + "be thread-local");
2107 }
2108 return UnsafeStackPtr;
2109}
2110
2112 IRBuilderBase &IRB, const LibcallLoweringInfo &Libcalls) const {
2113 RTLIB::LibcallImpl SafestackPointerAddressImpl =
2114 Libcalls.getLibcallImpl(RTLIB::SAFESTACK_POINTER_ADDRESS);
2115 if (SafestackPointerAddressImpl == RTLIB::Unsupported)
2116 return getDefaultSafeStackPointerLocation(IRB, true);
2117
2118 Module *M = IRB.GetInsertBlock()->getParent()->getParent();
2119 auto *PtrTy = PointerType::getUnqual(M->getContext());
2120
2121 // Android provides a libc function to retrieve the address of the current
2122 // thread's unsafe stack pointer.
2123 FunctionCallee Fn =
2125 SafestackPointerAddressImpl),
2126 PtrTy);
2127 return IRB.CreateCall(Fn);
2128}
2129
2130//===----------------------------------------------------------------------===//
2131// Loop Strength Reduction hooks
2132//===----------------------------------------------------------------------===//
2133
2134/// isLegalAddressingMode - Return true if the addressing mode represented
2135/// by AM is legal for this target, for a load/store of the specified type.
2137 const AddrMode &AM, Type *Ty,
2138 unsigned AS, Instruction *I) const {
2139 // The default implementation of this implements a conservative RISCy, r+r and
2140 // r+i addr mode.
2141
2142 // Scalable offsets not supported
2143 if (AM.ScalableOffset)
2144 return false;
2145
2146 // Allows a sign-extended 16-bit immediate field.
2147 if (AM.BaseOffs <= -(1LL << 16) || AM.BaseOffs >= (1LL << 16)-1)
2148 return false;
2149
2150 // No global is ever allowed as a base.
2151 if (AM.BaseGV)
2152 return false;
2153
2154 // Only support r+r,
2155 switch (AM.Scale) {
2156 case 0: // "r+i" or just "i", depending on HasBaseReg.
2157 break;
2158 case 1:
2159 if (AM.HasBaseReg && AM.BaseOffs) // "r+r+i" is not allowed.
2160 return false;
2161 // Otherwise we have r+r or r+i.
2162 break;
2163 case 2:
2164 if (AM.HasBaseReg || AM.BaseOffs) // 2*r+r or 2*r+i is not allowed.
2165 return false;
2166 // Allow 2*r as r+r.
2167 break;
2168 default: // Don't allow n * r
2169 return false;
2170 }
2171
2172 return true;
2173}
2174
2175//===----------------------------------------------------------------------===//
2176// Stack Protector
2177//===----------------------------------------------------------------------===//
2178
2179// For OpenBSD return its special guard variable. Otherwise return nullptr,
2180// so that SelectionDAG handle SSP.
2181Value *
2183 const LibcallLoweringInfo &Libcalls) const {
2184 RTLIB::LibcallImpl GuardLocalImpl =
2185 Libcalls.getLibcallImpl(RTLIB::STACK_CHECK_GUARD);
2186 if (GuardLocalImpl != RTLIB::impl___guard_local)
2187 return nullptr;
2188
2189 Module &M = *IRB.GetInsertBlock()->getParent()->getParent();
2190 const DataLayout &DL = M.getDataLayout();
2191 PointerType *PtrTy =
2192 PointerType::get(M.getContext(), DL.getDefaultGlobalsAddressSpace());
2193 GlobalVariable *G =
2194 M.getOrInsertGlobal(getLibcallImplName(GuardLocalImpl), PtrTy);
2195 G->setVisibility(GlobalValue::HiddenVisibility);
2196 return G;
2197}
2198
2199// Currently only support "standard" __stack_chk_guard.
2200// TODO: add LOAD_STACK_GUARD support.
2202 Module &M, const LibcallLoweringInfo &Libcalls) const {
2203 RTLIB::LibcallImpl StackGuardImpl =
2204 Libcalls.getLibcallImpl(RTLIB::STACK_CHECK_GUARD);
2205 if (StackGuardImpl == RTLIB::Unsupported)
2206 return;
2207
2208 StringRef StackGuardVarName = getLibcallImplName(StackGuardImpl);
2209 M.getOrInsertGlobal(
2210 StackGuardVarName, PointerType::getUnqual(M.getContext()), [=, &M]() {
2211 auto *GV = new GlobalVariable(M, PointerType::getUnqual(M.getContext()),
2212 false, GlobalVariable::ExternalLinkage,
2213 nullptr, StackGuardVarName);
2214
2215 // FreeBSD has "__stack_chk_guard" defined externally on libc.so
2216 if (M.getDirectAccessExternalData() &&
2217 !TM.getTargetTriple().isOSCygMing() &&
2218 !(TM.getTargetTriple().isPPC64() &&
2219 TM.getTargetTriple().isOSFreeBSD()) &&
2220 (!TM.getTargetTriple().isOSDarwin() ||
2221 TM.getRelocationModel() == Reloc::Static))
2222 GV->setDSOLocal(true);
2223
2224 return GV;
2225 });
2226}
2227
2228// Currently only support "standard" __stack_chk_guard.
2229// TODO: add LOAD_STACK_GUARD support.
2231 const Module &M, const LibcallLoweringInfo &Libcalls) const {
2232 RTLIB::LibcallImpl GuardVarImpl =
2233 Libcalls.getLibcallImpl(RTLIB::STACK_CHECK_GUARD);
2234 if (GuardVarImpl == RTLIB::Unsupported)
2235 return nullptr;
2236 return M.getNamedValue(getLibcallImplName(GuardVarImpl));
2237}
2238
2240 const Module &M, const LibcallLoweringInfo &Libcalls) const {
2241 // MSVC CRT has a function to validate security cookie.
2242 RTLIB::LibcallImpl SecurityCheckCookieLibcall =
2243 Libcalls.getLibcallImpl(RTLIB::SECURITY_CHECK_COOKIE);
2244 if (SecurityCheckCookieLibcall != RTLIB::Unsupported)
2245 return M.getFunction(getLibcallImplName(SecurityCheckCookieLibcall));
2246 return nullptr;
2247}
2248
2252
2256
2257unsigned TargetLoweringBase::getMinimumJumpTableDensity(bool OptForSize) const {
2258 return OptForSize ? OptsizeJumpTableDensity : JumpTableDensity;
2259}
2260
2264
2268
2272
2274 return MinimumBitTestCmps;
2275}
2276
2278 MinimumBitTestCmps = Val;
2279}
2280
2282 if (TM.Options.LoopAlignment)
2283 return Align(TM.Options.LoopAlignment);
2284 return PrefLoopAlignment;
2285}
2286
2288 MachineBasicBlock *MBB) const {
2289 return MaxBytesForAlignment;
2290}
2291
2292//===----------------------------------------------------------------------===//
2293// Reciprocal Estimates
2294//===----------------------------------------------------------------------===//
2295
2296/// Get the reciprocal estimate attribute string for a function that will
2297/// override the target defaults.
2299 const Function &F = MF.getFunction();
2300 return F.getFnAttribute("reciprocal-estimates").getValueAsString();
2301}
2302
2303/// Construct a string for the given reciprocal operation of the given type.
2304/// This string should match the corresponding option to the front-end's
2305/// "-mrecip" flag assuming those strings have been passed through in an
2306/// attribute string. For example, "vec-divf" for a division of a vXf32.
2307static std::string getReciprocalOpName(bool IsSqrt, EVT VT) {
2308 std::string Name = VT.isVector() ? "vec-" : "";
2309
2310 Name += IsSqrt ? "sqrt" : "div";
2311
2312 // TODO: Handle other float types?
2313 if (VT.getScalarType() == MVT::f64) {
2314 Name += "d";
2315 } else if (VT.getScalarType() == MVT::f16) {
2316 Name += "h";
2317 } else {
2318 assert(VT.getScalarType() == MVT::f32 &&
2319 "Unexpected FP type for reciprocal estimate");
2320 Name += "f";
2321 }
2322
2323 return Name;
2324}
2325
2326/// Return the character position and value (a single numeric character) of a
2327/// customized refinement operation in the input string if it exists. Return
2328/// false if there is no customized refinement step count.
2329static bool parseRefinementStep(StringRef In, size_t &Position,
2330 uint8_t &Value) {
2331 const char RefStepToken = ':';
2332 Position = In.find(RefStepToken);
2333 if (Position == StringRef::npos)
2334 return false;
2335
2336 StringRef RefStepString = In.substr(Position + 1);
2337 // Allow exactly one numeric character for the additional refinement
2338 // step parameter.
2339 if (RefStepString.size() == 1) {
2340 char RefStepChar = RefStepString[0];
2341 if (isDigit(RefStepChar)) {
2342 Value = RefStepChar - '0';
2343 return true;
2344 }
2345 }
2346 report_fatal_error("Invalid refinement step for -recip.");
2347}
2348
2349/// For the input attribute string, return one of the ReciprocalEstimate enum
2350/// status values (enabled, disabled, or not specified) for this operation on
2351/// the specified data type.
2352static int getOpEnabled(bool IsSqrt, EVT VT, StringRef Override) {
2353 if (Override.empty())
2355
2356 SmallVector<StringRef, 4> OverrideVector;
2357 Override.split(OverrideVector, ',');
2358 unsigned NumArgs = OverrideVector.size();
2359
2360 // Check if "all", "none", or "default" was specified.
2361 if (NumArgs == 1) {
2362 // Look for an optional setting of the number of refinement steps needed
2363 // for this type of reciprocal operation.
2364 size_t RefPos;
2365 uint8_t RefSteps;
2366 if (parseRefinementStep(Override, RefPos, RefSteps)) {
2367 // Split the string for further processing.
2368 Override = Override.substr(0, RefPos);
2369 }
2370
2371 // All reciprocal types are enabled.
2372 if (Override == "all")
2374
2375 // All reciprocal types are disabled.
2376 if (Override == "none")
2378
2379 // Target defaults for enablement are used.
2380 if (Override == "default")
2382 }
2383
2384 // The attribute string may omit the size suffix ('f'/'d').
2385 std::string VTName = getReciprocalOpName(IsSqrt, VT);
2386 std::string VTNameNoSize = VTName;
2387 VTNameNoSize.pop_back();
2388 static const char DisabledPrefix = '!';
2389
2390 for (StringRef RecipType : OverrideVector) {
2391 size_t RefPos;
2392 uint8_t RefSteps;
2393 if (parseRefinementStep(RecipType, RefPos, RefSteps))
2394 RecipType = RecipType.substr(0, RefPos);
2395
2396 // Ignore the disablement token for string matching.
2397 bool IsDisabled = RecipType[0] == DisabledPrefix;
2398 if (IsDisabled)
2399 RecipType = RecipType.substr(1);
2400
2401 if (RecipType == VTName || RecipType == VTNameNoSize)
2404 }
2405
2407}
2408
2409/// For the input attribute string, return the customized refinement step count
2410/// for this operation on the specified data type. If the step count does not
2411/// exist, return the ReciprocalEstimate enum value for unspecified.
2412static int getOpRefinementSteps(bool IsSqrt, EVT VT, StringRef Override) {
2413 if (Override.empty())
2415
2416 SmallVector<StringRef, 4> OverrideVector;
2417 Override.split(OverrideVector, ',');
2418 unsigned NumArgs = OverrideVector.size();
2419
2420 // Check if "all", "default", or "none" was specified.
2421 if (NumArgs == 1) {
2422 // Look for an optional setting of the number of refinement steps needed
2423 // for this type of reciprocal operation.
2424 size_t RefPos;
2425 uint8_t RefSteps;
2426 if (!parseRefinementStep(Override, RefPos, RefSteps))
2428
2429 // Split the string for further processing.
2430 Override = Override.substr(0, RefPos);
2431 assert(Override != "none" &&
2432 "Disabled reciprocals, but specifed refinement steps?");
2433
2434 // If this is a general override, return the specified number of steps.
2435 if (Override == "all" || Override == "default")
2436 return RefSteps;
2437 }
2438
2439 // The attribute string may omit the size suffix ('f'/'d').
2440 std::string VTName = getReciprocalOpName(IsSqrt, VT);
2441 std::string VTNameNoSize = VTName;
2442 VTNameNoSize.pop_back();
2443
2444 for (StringRef RecipType : OverrideVector) {
2445 size_t RefPos;
2446 uint8_t RefSteps;
2447 if (!parseRefinementStep(RecipType, RefPos, RefSteps))
2448 continue;
2449
2450 RecipType = RecipType.substr(0, RefPos);
2451 if (RecipType == VTName || RecipType == VTNameNoSize)
2452 return RefSteps;
2453 }
2454
2456}
2457
2462
2467
2472
2477
2479 EVT LoadVT, EVT BitcastVT, const SelectionDAG &DAG,
2480 const MachineMemOperand &MMO) const {
2481 // Single-element vectors are scalarized, so we should generally avoid having
2482 // any memory operations on such types, as they would get scalarized too.
2483 if (LoadVT.isFixedLengthVector() && BitcastVT.isFixedLengthVector() &&
2484 BitcastVT.getVectorNumElements() == 1)
2485 return false;
2486
2487 // Don't do if we could do an indexed load on the original type, but not on
2488 // the new one.
2489 if (!LoadVT.isSimple() || !BitcastVT.isSimple())
2490 return true;
2491
2492 MVT LoadMVT = LoadVT.getSimpleVT();
2493
2494 // Don't bother doing this if it's just going to be promoted again later, as
2495 // doing so might interfere with other combines.
2496 if (getOperationAction(ISD::LOAD, LoadMVT) == Promote &&
2497 getTypeToPromoteTo(ISD::LOAD, LoadMVT) == BitcastVT.getSimpleVT())
2498 return false;
2499
2500 unsigned Fast = 0;
2501 return allowsMemoryAccess(*DAG.getContext(), DAG.getDataLayout(), BitcastVT,
2502 MMO, &Fast) &&
2503 Fast;
2504}
2505
2509
2511 const LoadInst &LI, const DataLayout &DL, AssumptionCache *AC,
2512 const TargetLibraryInfo *LibInfo, CodeGenOptLevel OptLevel) const {
2514 if (LI.isVolatile())
2516
2517 if (LI.hasMetadata(LLVMContext::MD_nontemporal))
2519
2520 if (LI.hasMetadata(LLVMContext::MD_invariant_load))
2522
2523 // Dereferenceability analysis is expensive, skip at O0.
2524 if (OptLevel != CodeGenOptLevel::None &&
2526 LI.getPointerOperand(), LI.getType(), LI.getAlign(),
2527 SimplifyQuery(DL, LibInfo, /*DT=*/nullptr, AC, &LI))) {
2529 } else if (LI.hasMetadata(LLVMContext::MD_dereferenceable)) {
2531 }
2532
2533 Flags |= getTargetMMOFlags(LI);
2534 return Flags;
2535}
2536
2539 const DataLayout &DL) const {
2541
2542 if (SI.isVolatile())
2544
2545 if (SI.hasMetadata(LLVMContext::MD_nontemporal))
2547
2548 // FIXME: Not preserving dereferenceable
2549 Flags |= getTargetMMOFlags(SI);
2550 return Flags;
2551}
2552
2555 const DataLayout &DL) const {
2557
2558 if (const AtomicRMWInst *RMW = dyn_cast<AtomicRMWInst>(&AI)) {
2559 if (RMW->isVolatile())
2561 } else if (const AtomicCmpXchgInst *CmpX = dyn_cast<AtomicCmpXchgInst>(&AI)) {
2562 if (CmpX->isVolatile())
2564 } else
2565 llvm_unreachable("not an atomic instruction");
2566
2567 // FIXME: Not preserving dereferenceable
2568 Flags |= getTargetMMOFlags(AI);
2569 return Flags;
2570}
2571
2573 const VPIntrinsic &VPIntrin) const {
2575 Intrinsic::ID IntrinID = VPIntrin.getIntrinsicID();
2576
2577 switch (IntrinID) {
2578 default:
2579 llvm_unreachable("unexpected intrinsic. Existing code may be appropriate "
2580 "for it, but support must be explicitly enabled");
2581 case Intrinsic::vp_load:
2582 case Intrinsic::vp_gather:
2583 case Intrinsic::experimental_vp_strided_load:
2585 break;
2586 case Intrinsic::vp_store:
2587 case Intrinsic::vp_scatter:
2588 case Intrinsic::experimental_vp_strided_store:
2590 break;
2591 }
2592
2593 if (VPIntrin.hasMetadata(LLVMContext::MD_nontemporal))
2595
2596 Flags |= getTargetMMOFlags(VPIntrin);
2597 return Flags;
2598}
2599
2601 Instruction *Inst,
2602 AtomicOrdering Ord) const {
2603 if (isReleaseOrStronger(Ord) && Inst->hasAtomicStore())
2604 return Builder.CreateFence(Ord);
2605 else
2606 return nullptr;
2607}
2608
2610 Instruction *Inst,
2611 AtomicOrdering Ord) const {
2612 if (isAcquireOrStronger(Ord))
2613 return Builder.CreateFence(Ord);
2614 else
2615 return nullptr;
2616}
2617
2618//===----------------------------------------------------------------------===//
2619// GlobalISel Hooks
2620//===----------------------------------------------------------------------===//
2621
2623 const TargetTransformInfo *TTI) const {
2624 auto &MF = *MI.getMF();
2625 auto &MRI = MF.getRegInfo();
2626 // Assuming a spill and reload of a value has a cost of 1 instruction each,
2627 // this helper function computes the maximum number of uses we should consider
2628 // for remat. E.g. on arm64 global addresses take 2 insts to materialize. We
2629 // break even in terms of code size when the original MI has 2 users vs
2630 // choosing to potentially spill. Any more than 2 users we we have a net code
2631 // size increase. This doesn't take into account register pressure though.
2632 auto maxUses = [](unsigned RematCost) {
2633 // A cost of 1 means remats are basically free.
2634 if (RematCost == 1)
2635 return std::numeric_limits<unsigned>::max();
2636 if (RematCost == 2)
2637 return 2U;
2638
2639 // Remat is too expensive, only sink if there's one user.
2640 if (RematCost > 2)
2641 return 1U;
2642 llvm_unreachable("Unexpected remat cost");
2643 };
2644
2645 switch (MI.getOpcode()) {
2646 default:
2647 return false;
2648 // Constants-like instructions should be close to their users.
2649 // We don't want long live-ranges for them.
2650 case TargetOpcode::G_CONSTANT:
2651 case TargetOpcode::G_FCONSTANT:
2652 case TargetOpcode::G_FRAME_INDEX:
2653 case TargetOpcode::G_INTTOPTR:
2654 return true;
2655 case TargetOpcode::G_GLOBAL_VALUE: {
2656 unsigned RematCost = TTI->getGISelRematGlobalCost();
2657 Register Reg = MI.getOperand(0).getReg();
2658 unsigned MaxUses = maxUses(RematCost);
2659 if (MaxUses == UINT_MAX)
2660 return true; // Remats are "free" so always localize.
2661 return MRI.hasAtMostUserInstrs(Reg, MaxUses);
2662 }
2663 }
2664}
assert(UImm &&(UImm !=~static_cast< T >(0)) &&"Invalid immediate!")
AMDGPU Register Bank Select
Rewrite undef for PHI
MachineBasicBlock & MBB
MachineBasicBlock MachineBasicBlock::iterator DebugLoc DL
This file contains the simple types necessary to represent the attributes associated with functions a...
This file implements the BitVector class.
#define LLVM_ABI
Definition Compiler.h:215
This file defines the DenseMap class.
static cl::opt< unsigned > MaxLoadsPerMemcmpOptSize("max-loads-per-memcmp-opt-size", cl::Hidden, cl::desc("Set maximum number of loads used in expanded memcmp for -Os/Oz"))
static cl::opt< unsigned > MaxLoadsPerMemcmp("max-loads-per-memcmp", cl::Hidden, cl::desc("Set maximum number of loads used in expanded memcmp"))
IRTranslator LLVM IR MI
Module.h This file contains the declarations for the Module class.
static LVOptions Options
Definition LVOptions.cpp:25
#define F(x, y, z)
Definition MD5.cpp:54
#define I(x, y, z)
Definition MD5.cpp:57
#define G(x, y, z)
Definition MD5.cpp:55
Register const TargetRegisterInfo * TRI
ConstantRange Range(APInt(BitWidth, Low), APInt(BitWidth, High))
This file contains some templates that are useful if you are working with the STL at all.
This file defines the SmallVector class.
This file contains some functions that are useful when dealing with strings.
static cl::opt< unsigned > MinimumBitTestCmpsOverride("min-bit-test-cmps", cl::init(2), cl::Hidden, cl::desc("Set minimum of largest number of comparisons " "to use bit test for switch."))
static cl::opt< bool > JumpIsExpensiveOverride("jump-is-expensive", cl::init(false), cl::desc("Do not create extra branches to split comparison logic."), cl::Hidden)
#define OP_TO_LIBCALL(Name, Enum)
static cl::opt< unsigned > MinimumJumpTableEntries("min-jump-table-entries", cl::init(4), cl::Hidden, cl::desc("Set minimum number of entries to use a jump table."))
static cl::opt< bool > DisableStrictNodeMutation("disable-strictnode-mutation", cl::desc("Don't mutate strict-float node to a legalize node"), cl::init(false), cl::Hidden)
static bool parseRefinementStep(StringRef In, size_t &Position, uint8_t &Value)
Return the character position and value (a single numeric character) of a customized refinement opera...
static cl::opt< unsigned > MaximumJumpTableSize("max-jump-table-size", cl::init(UINT_MAX), cl::Hidden, cl::desc("Set maximum size of jump tables."))
static cl::opt< unsigned > JumpTableDensity("jump-table-density", cl::init(10), cl::Hidden, cl::desc("Minimum density for building a jump table in " "a normal function"))
Minimum jump table density for normal functions.
static cl::opt< unsigned > MaxStoresPerMemmoveOverride("max-store-memmove", cl::init(0), cl::Hidden, cl::desc("Override target's MaxStoresPerMemmove and " "MaxStoresPerMemmoveOptSize. " "Set to 0 to use the target default."))
static std::string getReciprocalOpName(bool IsSqrt, EVT VT)
Construct a string for the given reciprocal operation of the given type.
#define LCALL5(A)
static cl::opt< unsigned > MaxStoresPerMemsetOverride("max-store-memset", cl::init(0), cl::Hidden, cl::desc("Override target's MaxStoresPerMemset and " "MaxStoresPerMemsetOptSize. " "Set to 0 to use the target default."))
static int getOpRefinementSteps(bool IsSqrt, EVT VT, StringRef Override)
For the input attribute string, return the customized refinement step count for this operation on the...
static int getOpEnabled(bool IsSqrt, EVT VT, StringRef Override)
For the input attribute string, return one of the ReciprocalEstimate enum status values (enabled,...
static StringRef getRecipEstimateForFunc(MachineFunction &MF)
Get the reciprocal estimate attribute string for a function that will override the target defaults.
static cl::opt< unsigned > MaxStoresPerMemcpyOverride("max-store-memcpy", cl::init(0), cl::Hidden, cl::desc("Override target's MaxStoresPerMemcpy and " "MaxStoresPerMemcpyOptSize. " "Set to 0 to use the target default."))
static cl::opt< unsigned > OptsizeJumpTableDensity("optsize-jump-table-density", cl::init(40), cl::Hidden, cl::desc("Minimum density for building a jump table in " "an optsize function"))
Minimum jump table density for -Os or -Oz functions.
This file describes how to lower LLVM code to machine code.
This pass exposes codegen information to IR-level passes.
Class for arbitrary precision integers.
Definition APInt.h:78
A cache of @llvm.assume calls within a function.
An instruction that atomically checks whether a specified value is in a memory location,...
an instruction that atomically reads a memory location, combines it with another value,...
const Function * getParent() const
Return the enclosing method, or null if none.
Definition BasicBlock.h:213
void setBitsInMask(const uint32_t *Mask, unsigned MaskWords=~0u)
Add '1' bits from Mask to this vector.
Definition BitVector.h:742
iterator_range< const_set_bits_iterator > set_bits() const
Definition BitVector.h:159
BlockFrequencyInfo pass uses BlockFrequencyInfoImpl implementation to estimate IR basic block frequen...
This class represents a range of values.
LLVM_ABI unsigned getActiveBits() const
Compute the maximal number of active bits needed to represent every value in this range.
LLVM_ABI ConstantRange umul_sat(const ConstantRange &Other) const
Perform an unsigned saturating multiplication of two constant ranges.
LLVM_ABI ConstantRange subtract(const APInt &CI) const
Subtract the specified constant from the endpoints of this constant range.
A parsed version of the target data layout string in and methods for querying it.
Definition DataLayout.h:64
LLVM_ABI unsigned getPointerSize(unsigned AS=0) const
The pointer representation size in bytes, rounded up to a whole number of bytes.
static constexpr ElementCount getScalable(ScalarTy MinVal)
Definition TypeSize.h:312
static constexpr ElementCount getFixed(ScalarTy MinVal)
Definition TypeSize.h:309
constexpr bool isScalar() const
Exactly one element.
Definition TypeSize.h:320
A handy container for a FunctionType+Callee-pointer pair, which can be passed around as a single enti...
const Function & getFunction() const
Definition Function.h:166
Module * getParent()
Get the module that this global value is contained inside of...
@ HiddenVisibility
The GV is hidden.
Definition GlobalValue.h:69
@ ExternalLinkage
Externally visible function.
Definition GlobalValue.h:53
Common base class shared among various IRBuilders.
Definition IRBuilder.h:114
BasicBlock * GetInsertBlock() const
Definition IRBuilder.h:175
CallInst * CreateCall(FunctionType *FTy, Value *Callee, ArrayRef< Value * > Args={}, const Twine &Name="", MDNode *FPMathTag=nullptr)
Definition IRBuilder.h:2564
LLVM_ABI bool hasAtomicStore() const LLVM_READONLY
Return true if this atomic instruction stores to memory.
bool hasMetadata() const
Return true if this instruction has any metadata attached to it.
Intrinsic::ID getIntrinsicID() const
Return the intrinsic ID of this intrinsic.
This is an important class for using LLVM in a threaded context.
Definition LLVMContext.h:68
Tracks which library functions to use for a particular subtarget or function.
An instruction for reading from memory.
Value * getPointerOperand()
bool isVolatile() const
Return true if this is a load from a volatile memory location.
Align getAlign() const
Return the alignment of the access that is being performed.
Machine Value Type.
SimpleValueType SimpleTy
uint64_t getScalarSizeInBits() const
bool isVector() const
Return true if this is a vector value type.
bool isScalableVector() const
Return true if this is a vector value type where the runtime length is machine dependent.
static auto all_valuetypes()
SimpleValueType Iteration.
TypeSize getSizeInBits() const
Returns the size of the specified MVT in bits.
uint64_t getFixedSizeInBits() const
Return the size of the specified fixed width value type in bits.
ElementCount getVectorElementCount() const
bool isScalarInteger() const
Return true if this is an integer, not including vectors.
static MVT getVectorVT(MVT VT, unsigned NumElements)
MVT getVectorElementType() const
bool isValid() const
Return true if this is a valid simple valuetype.
static MVT getIntegerVT(unsigned BitWidth)
static auto fp_valuetypes()
MVT getPow2VectorType() const
Widens the length of the given vector MVT up to the nearest power of 2 and returns that type.
MachineInstrBundleIterator< MachineInstr > iterator
The MachineFrameInfo class represents an abstract stack frame until prolog/epilog code is inserted.
bool isStatepointSpillSlotObjectIndex(int ObjectIdx) const
Align getObjectAlign(int ObjectIdx) const
Return the alignment of the specified stack object.
int64_t getObjectSize(int ObjectIdx) const
Return the size of the specified object.
int64_t getObjectOffset(int ObjectIdx) const
Return the assigned stack offset of the specified object from the incoming stack pointer.
MachineFrameInfo & getFrameInfo()
getFrameInfo - Return the frame info object for the current function.
MachineRegisterInfo & getRegInfo()
getRegInfo - Return information about the registers currently in use.
const DataLayout & getDataLayout() const
Return the DataLayout attached to the Module associated to this MF.
Function & getFunction()
Return the LLVM function that this machine code represents.
MachineMemOperand * getMachineMemOperand(MachinePointerInfo PtrInfo, MachineMemOperand::Flags F, LLT MemTy, Align BaseAlignment, const MMOMetadata &Metadata=MMOMetadata(), SyncScope::ID SSID=SyncScope::System, AtomicOrdering Ordering=AtomicOrdering::NotAtomic, AtomicOrdering FailureOrdering=AtomicOrdering::NotAtomic)
getMachineMemOperand - Allocate a new MachineMemOperand.
const MachineInstrBuilder & addImm(int64_t Val) const
Add a new immediate operand.
const MachineInstrBuilder & add(const MachineOperand &MO) const
const MachineInstrBuilder & cloneMemRefs(const MachineInstr &OtherMI) const
Representation of each machine instruction.
unsigned getNumOperands() const
Retuns the total number of operands.
bool mayLoad(QueryType Type=AnyInBundle) const
Return true if this instruction could possibly read memory.
LLVM_ABI void tieOperands(unsigned DefIdx, unsigned UseIdx)
Add a tie between the register operands at DefIdx and UseIdx.
LLVM_ABI void addMemOperand(MachineFunction &MF, MachineMemOperand *MO)
Add a MachineMemOperand to the machine instruction.
A description of a memory reference used in the backend.
unsigned getAddrSpace() const
Flags
Flags values. These may be or'd together.
@ MOVolatile
The memory access is volatile.
@ MODereferenceable
The memory access is dereferenceable (i.e., doesn't trap).
@ MOLoad
The memory access reads data.
@ MONonTemporal
The memory access is non-temporal.
@ MOInvariant
The memory access always returns the same value (or traps).
@ MOStore
The memory access writes data.
Flags getFlags() const
Return the raw flags of the source value,.
LLVM_ABI Align getAlign() const
Return the minimum known alignment in bytes of the actual memory reference.
MachineOperand class - Representation of each machine instruction operand.
bool isReg() const
isReg - Tests if this is a MO_Register operand.
bool isFI() const
isFI - Tests if this is a MO_FrameIndex operand.
LLVM_ABI void freezeReservedRegs()
freezeReservedRegs - Called by the register allocator to freeze the set of reserved registers before ...
A Module instance is used to store all the information related to an LLVM module.
Definition Module.h:67
Class to represent pointers.
static PointerType * getUnqual(LLVMContext &C)
This constructs an opaque pointer to an object in the default address space (address space zero).
static LLVM_ABI PointerType * get(LLVMContext &C, unsigned AddressSpace)
This constructs an opaque pointer to an object in a numbered address space.
Definition Type.cpp:911
Analysis providing profile information.
Wrapper class representing virtual and physical registers.
Definition Register.h:20
This is used to represent a portion of an LLVM function in a low-level Data Dependence DAG representa...
const DataLayout & getDataLayout() const
LLVMContext * getContext() const
This class consists of common code factored out of the SmallVector class to reduce code duplication b...
void push_back(const T &Elt)
This is a 'vector' (really, a variable-sized array), optimized for the case when the array is small.
An instruction for storing to memory.
Represent a constant reference to a string, i.e.
Definition StringRef.h:56
std::pair< StringRef, StringRef > split(char Separator) const
Split into two substrings around the first occurrence of a separator character.
Definition StringRef.h:736
static constexpr size_t npos
Definition StringRef.h:58
constexpr StringRef substr(size_t Start, size_t N=npos) const
Return a reference to the substring from [Start, Start + N).
Definition StringRef.h:597
constexpr bool empty() const
Check if the string is empty.
Definition StringRef.h:141
constexpr size_t size() const
Get the string size.
Definition StringRef.h:144
bool isValid() const
Returns true if this iterator is still pointing at a valid entry.
Multiway switch.
Provides information about what library functions are available for the current target.
virtual Align getByValTypeAlignment(Type *Ty, const DataLayout &DL) const
Returns the desired alignment for ByVal or InAlloca aggregate function arguments in the caller parame...
int InstructionOpcodeToISD(unsigned Opcode) const
Get the ISD node that corresponds to the Instruction class opcode.
unsigned getBitWidthForCttzElements(EVT RetVT, ElementCount EC, bool ZeroIsPoison, const ConstantRange *VScaleRange) const
Return the minimum number of bits required to hold the maximum possible number of trailing zero vecto...
void setOperationAction(unsigned Op, MVT VT, LegalizeAction Action)
Indicate that the specified operation does not work with the specified type and indicate what to do a...
virtual void finalizeLowering(MachineFunction &MF) const
Execute target specific actions to finalize target lowering.
void initActions()
Initialize all of the actions to default values.
Function * getSSPStackGuardCheck(const Module &M, const LibcallLoweringInfo &Libcalls) const
If the target has a standard stack protection check function that performs validation and error handl...
EVT getValueType(const DataLayout &DL, Type *Ty, bool AllowUnknown=false) const
Return the EVT corresponding to this LLVM type.
void setMinimumBitTestCmps(unsigned Val)
Set the minimum of largest of number of comparisons to generate BitTest.
unsigned MaxStoresPerMemcpyOptSize
Likewise for functions with the OptSize attribute.
MachineBasicBlock * emitPatchPoint(MachineInstr &MI, MachineBasicBlock *MBB) const
Replace/modify any TargetFrameIndex operands with a targte-dependent sequence of memory operands that...
int getRecipEstimateSqrtEnabled(EVT VT, MachineFunction &MF) const
Return a ReciprocalEstimate enum value for a square root of the given type based on the function's at...
virtual bool canOpTrap(unsigned Op, EVT VT) const
Returns true if the operation can trap for the value type.
virtual Value * getIRStackGuard(IRBuilderBase &IRB, const LibcallLoweringInfo &Libcalls) const
If the target has a standard location for the stack protector guard, returns the address of that loca...
virtual bool shouldLocalize(const MachineInstr &MI, const TargetTransformInfo *TTI) const
Check whether or not MI needs to be moved close to its uses.
virtual unsigned getMaxPermittedBytesForAlignment(MachineBasicBlock *MBB) const
Return the maximum amount of bytes allowed to be emitted when padding for alignment.
void setMaximumJumpTableSize(unsigned)
Indicate the maximum number of entries in jump tables.
virtual unsigned getMinimumJumpTableEntries() const
Return lower limit for number of blocks in a jump table.
const TargetMachine & getTargetMachine() const
virtual unsigned getNumRegistersForCallingConv(LLVMContext &Context, CallingConv::ID CC, EVT VT) const
Certain targets require unusual breakdowns of certain types.
virtual MachineMemOperand::Flags getTargetMMOFlags(const Instruction &I) const
This callback is used to inspect load/store instructions and add target-specific MachineMemOperand fl...
virtual MVT getRegisterTypeForCallingConv(LLVMContext &Context, CallingConv::ID CC, EVT VT) const
Certain combinations of ABIs, Targets and features require that types are legal for some operations a...
LegalizeTypeAction
This enum indicates whether a types are legal for a target, and if not, what action should be used to...
virtual void insertSSPDeclarations(Module &M, const LibcallLoweringInfo &Libcalls) const
Inserts necessary declarations for SSP (stack protection) purpose.
virtual bool isSuitableForJumpTable(const SwitchInst *SI, uint64_t NumCases, uint64_t Range, ProfileSummaryInfo *PSI, BlockFrequencyInfo *BFI) const
Return true if lowering to a jump table is suitable for a set of case clusters which may contain NumC...
void setIndexedMaskedLoadAction(unsigned IdxMode, MVT VT, LegalizeAction Action)
Indicate that the specified indexed masked load does or does not work with the specified type and ind...
unsigned getMaxStoresPerMemcpy(bool OptSize) const
Get maximum # of store operations permitted for llvm.memcpy.
MVT getRegisterType(LLVMContext &Context, EVT VT) const
Return the type of registers that this ValueType will eventually require.
unsigned getMinimumBitTestCmps() const
Retuen the minimum of largest number of comparisons in BitTest.
virtual bool useFPRegsForHalfType() const
virtual bool isLoadBitCastBeneficial(EVT LoadVT, EVT BitcastVT, const SelectionDAG &DAG, const MachineMemOperand &MMO) const
Return true if the following transform is beneficial: fold (conv (load x)) -> (load (conv*)x) On arch...
void setIndexedLoadAction(ArrayRef< unsigned > IdxModes, MVT VT, LegalizeAction Action)
Indicate that the specified indexed load does or does not work with the specified type and indicate w...
unsigned getMaximumJumpTableSize() const
Return upper limit for number of entries in a jump table.
MachineMemOperand::Flags getLoadMemOperandFlags(const LoadInst &LI, const DataLayout &DL, AssumptionCache *AC=nullptr, const TargetLibraryInfo *LibInfo=nullptr, CodeGenOptLevel OptLevel=CodeGenOptLevel::Default) const
bool isLegalRC(const TargetRegisterInfo &TRI, const TargetRegisterClass &RC) const
Return true if the value types that can be represented by the specified register class are all legal.
virtual TargetLoweringBase::LegalizeTypeAction getPreferredVectorAction(MVT VT) const
Return the preferred vector type legalization action.
void setAtomicLoadExtAction(unsigned ExtType, MVT ValVT, MVT MemVT, LegalizeAction Action)
Let target indicate that an extending atomic load of the specified type is legal.
Value * getDefaultSafeStackPointerLocation(IRBuilderBase &IRB, bool UseTLS) const
unsigned getMaxStoresPerMemset(bool OptSize) const
Get maximum # of store operations permitted for llvm.memset.
MachineMemOperand::Flags getAtomicMemOperandFlags(const Instruction &AI, const DataLayout &DL) const
virtual bool allowsMisalignedMemoryAccesses(EVT, unsigned AddrSpace=0, Align Alignment=Align(1), MachineMemOperand::Flags Flags=MachineMemOperand::MONone, unsigned *=nullptr) const
Determine if the target supports unaligned memory accesses.
unsigned MaxStoresPerMemsetOptSize
Likewise for functions with the OptSize attribute.
EVT getShiftAmountTy(EVT LHSTy, const DataLayout &DL) const
Returns the type for the shift amount of a shift opcode.
unsigned MaxStoresPerMemmove
Specify maximum number of store instructions per memmove call.
virtual Align getPrefLoopAlignment(MachineLoop *ML=nullptr) const
Return the preferred loop alignment.
void computeRegisterProperties(const TargetRegisterInfo *TRI)
Once all of the register classes are added, this allows us to compute derived properties we expose.
MachineMemOperand::Flags getVPIntrinsicMemOperandFlags(const VPIntrinsic &VPIntrin) const
int getDivRefinementSteps(EVT VT, MachineFunction &MF) const
Return the refinement step count for a division of the given type based on the function's attributes.
virtual EVT getSetCCResultType(const DataLayout &DL, LLVMContext &Context, EVT VT) const
Return the ValueType of the result of SETCC operations.
virtual EVT getTypeToTransformTo(LLVMContext &Context, EVT VT) const
For types supported by the target, this is an identity function.
unsigned MaxStoresPerMemmoveOptSize
Likewise for functions with the OptSize attribute.
virtual MVT getPreferredSwitchConditionType(LLVMContext &Context, EVT ConditionVT) const
Returns preferred type for switch condition.
bool isTypeLegal(EVT VT) const
Return true if the target has native support for the specified value type.
int getRecipEstimateDivEnabled(EVT VT, MachineFunction &MF) const
Return a ReciprocalEstimate enum value for a division of the given type based on the function's attri...
void setIndexedStoreAction(ArrayRef< unsigned > IdxModes, MVT VT, LegalizeAction Action)
Indicate that the specified indexed store does or does not work with the specified type and indicate ...
virtual bool isJumpTableRelative() const
virtual MVT getScalarShiftAmountTy(const DataLayout &, EVT) const
Return the type to use for a scalar shift opcode, given the shifted amount type.
virtual MVT getPointerTy(const DataLayout &DL, uint32_t AS=0) const
Return the pointer type for the given address space, defaults to the pointer type from the data layou...
virtual bool isFreeAddrSpaceCast(unsigned SrcAS, unsigned DestAS) const
Returns true if a cast from SrcAS to DestAS is "cheap", such that e.g.
void setIndexedMaskedStoreAction(unsigned IdxMode, MVT VT, LegalizeAction Action)
Indicate that the specified indexed masked store does or does not work with the specified type and in...
TargetLoweringBase(const TargetMachine &TM, const TargetSubtargetInfo &STI)
NOTE: The TargetMachine owns TLOF.
unsigned MaxStoresPerMemset
Specify maximum number of store instructions per memset call.
void setMinimumJumpTableEntries(unsigned Val)
Indicate the minimum number of blocks to generate jump tables.
void setTruncStoreAction(MVT ValVT, MVT MemVT, LegalizeAction Action)
Indicate that the specified truncating store does not work with the specified type and indicate what ...
virtual bool allowsMemoryAccess(LLVMContext &Context, const DataLayout &DL, EVT VT, unsigned AddrSpace=0, Align Alignment=Align(1), MachineMemOperand::Flags Flags=MachineMemOperand::MONone, unsigned *Fast=nullptr) const
Return true if the target supports a memory access of this type for the given address space and align...
MachineMemOperand::Flags getStoreMemOperandFlags(const StoreInst &SI, const DataLayout &DL) const
void AddPromotedToType(unsigned Opc, MVT OrigVT, MVT DestVT)
If Opc/OrigVT is specified as being promoted, the promotion code defaults to trying a larger integer/...
unsigned getMinimumJumpTableDensity(bool OptForSize) const
Return lower limit of the density in a jump table.
virtual Value * getSDagStackGuard(const Module &M, const LibcallLoweringInfo &Libcalls) const
Return the variable that's previously inserted by insertSSPDeclarations, if any, otherwise return nul...
virtual std::pair< const TargetRegisterClass *, uint8_t > findRepresentativeClass(const TargetRegisterInfo *TRI, MVT VT) const
Return the largest legal super-reg register class of the register class for the specified type and it...
virtual bool preferVectorizedNonPowerOfTwoTypeBreakdown() const
Return true if fixed-length, non-power-of-two vectors should be broken down into legal vector parts i...
static StringRef getLibcallImplName(RTLIB::LibcallImpl Call)
Get the libcall routine name for the specified libcall implementation.
virtual Value * getSafeStackPointerLocation(IRBuilderBase &IRB, const LibcallLoweringInfo &Libcalls) const
Returns the target-specific address of the unsafe stack pointer.
LegalizeKind getTypeConversion(LLVMContext &Context, EVT VT) const
Return pair that represents the legalization kind (first) that needs to happen to EVT (second) in ord...
void setLoadExtAction(unsigned ExtType, MVT ValVT, MVT MemVT, LegalizeAction Action)
Indicate that the specified load with extension does not work with the specified type and indicate wh...
int IntrinsicIDToISD(Intrinsic::ID ID) const
Get the ISD node that corresponds to the Intrinsic ID.
LegalizeTypeAction getTypeAction(LLVMContext &Context, EVT VT) const
Return how we should legalize values of this type, either it is already legal (return 'Legal') or we ...
int getSqrtRefinementSteps(EVT VT, MachineFunction &MF) const
Return the refinement step count for a square root of the given type based on the function's attribut...
bool allowsMemoryAccessForAlignment(LLVMContext &Context, const DataLayout &DL, EVT VT, unsigned AddrSpace=0, Align Alignment=Align(1), MachineMemOperand::Flags Flags=MachineMemOperand::MONone, unsigned *Fast=nullptr) const
This function returns true if the memory access is aligned or if the target allows this specific unal...
virtual Instruction * emitTrailingFence(IRBuilderBase &Builder, Instruction *Inst, AtomicOrdering Ord) const
virtual Instruction * emitLeadingFence(IRBuilderBase &Builder, Instruction *Inst, AtomicOrdering Ord) const
Inserts in the IR a target-specific intrinsic specifying a fence.
unsigned MaxStoresPerMemcpy
Specify maximum number of store instructions per memcpy call.
unsigned getMaxStoresPerMemmove(bool OptSize) const
Get maximum # of store operations permitted for llvm.memmove.
void setJumpIsExpensive(bool isExpensive=true)
Tells the code generator not to expand logic operations on comparison predicates into separate sequen...
LegalizeAction getOperationAction(unsigned Op, EVT VT) const
Return how this operation should be treated: either it is legal, needs to be promoted to a larger siz...
MVT getTypeToPromoteTo(unsigned Op, MVT VT) const
If the action for this operation is to promote, this method returns the ValueType to promote to.
virtual bool isLegalAddressingMode(const DataLayout &DL, const AddrMode &AM, Type *Ty, unsigned AddrSpace, Instruction *I=nullptr) const
Return true if the addressing mode represented by AM is legal for this target, for a load/store of th...
std::pair< LegalizeTypeAction, EVT > LegalizeKind
LegalizeKind holds the legalization kind that needs to happen to EVT in order to type-legalize it.
This class defines information used to lower LLVM code to legal SelectionDAG operators that the targe...
virtual EVT getTypeForExtReturn(LLVMContext &Context, EVT VT, ISD::NodeType) const
Return the type that should be used to zero or sign extend a zeroext/signext integer return value.
Primary interface to the complete machine description for the target machine.
bool isPositionIndependent() const
TargetRegisterInfo base class - We assume that the target defines a static array of TargetRegisterDes...
TargetSubtargetInfo - Generic base class for all target subtargets.
virtual void initLibcallLoweringInfo(LibcallLoweringInfo &Info) const
Configure the LibcallLoweringInfo for this subtarget.
This pass provides access to the codegen interfaces that are needed for IR-level transformations.
Twine - A lightweight data structure for efficiently representing the concatenation of temporary valu...
Definition Twine.h:82
The instances of the Type class are immutable: once they are created, they are never changed.
Definition Type.h:46
This is the common base class for vector predication intrinsics.
LLVM Value Representation.
Definition Value.h:75
Type * getType() const
All values are typed, get the type of this value.
Definition Value.h:255
constexpr LeafTy coefficientNextPowerOf2() const
Definition TypeSize.h:260
constexpr bool isScalable() const
Returns whether the quantity is scaled by a runtime quantity (vscale).
Definition TypeSize.h:168
constexpr ScalarTy getKnownMinValue() const
Returns the minimum value this quantity can represent.
Definition TypeSize.h:165
constexpr LeafTy divideCoefficientBy(ScalarTy RHS) const
We do not provide the '/' operator here because division for polynomial types does not work in the sa...
Definition TypeSize.h:252
CallInst * Call
#define llvm_unreachable(msg)
Marks that the current location is not supposed to be reachable.
unsigned ID
LLVM IR allows to use arbitrary numbers as calling convention identifiers.
Definition CallingConv.h:24
NodeType
ISD::NodeType enum - This enum defines the target-independent operators for a SelectionDAG.
Definition ISDOpcodes.h:41
@ SETCC
SetCC operator - This evaluates to a true value iff the condition is true.
Definition ISDOpcodes.h:829
@ MERGE_VALUES
MERGE_VALUES - This node takes multiple discrete operands and returns them all as its individual resu...
Definition ISDOpcodes.h:261
@ DELETED_NODE
DELETED_NODE - This is an illegal value that is used to catch errors.
Definition ISDOpcodes.h:45
@ SET_FPENV
Sets the current floating-point environment.
@ LOOP_DEPENDENCE_RAW_MASK
@ VECREDUCE_SEQ_FADD
Generic reduction nodes.
@ VECREDUCE_FMINIMUMNUM
@ FGETSIGN
INT = FGETSIGN(FP) - Return the sign bit of the specified floating point value as an integer 0/1 valu...
Definition ISDOpcodes.h:540
@ STACKADDRESS
STACKADDRESS - Represents the llvm.stackaddress intrinsic.
Definition ISDOpcodes.h:127
@ SMULFIX
RESULT = [US]MULFIX(LHS, RHS, SCALE) - Perform fixed point multiplication on 2 integers with the same...
Definition ISDOpcodes.h:394
@ ADDC
Carry-setting nodes for multiple precision addition and subtraction.
Definition ISDOpcodes.h:294
@ RESET_FPENV
Set floating-point environment to default state.
@ FMAD
FMAD - Perform a * b + c, while getting the same result as the separately rounded operations.
Definition ISDOpcodes.h:524
@ ADD
Simple integer binary arithmetic operators.
Definition ISDOpcodes.h:264
@ LOAD
LOAD and STORE have token chains as their first operand, then the same operands as an LLVM load/store...
@ SMULFIXSAT
Same as the corresponding unsaturated fixed point instructions, but the result is clamped between the...
Definition ISDOpcodes.h:400
@ SET_FPMODE
Sets the current dynamic floating-point control modes.
@ ANY_EXTEND
ANY_EXTEND - Used for integer types. The high bits are undefined.
Definition ISDOpcodes.h:863
@ CTTZ_ELTS
Returns the number of number of trailing (least significant) zero elements in a vector.
@ FMA
FMA - Perform a * b + c with no intermediate rounding step.
Definition ISDOpcodes.h:520
@ VECTOR_FIND_LAST_ACTIVE
Finds the index of the last active mask element Operands: Mask.
@ FMODF
FMODF - Decomposes the operand into integral and fractional parts, each having the same type and sign...
@ PSEUDO_FMIN
PSEUDO_FMIN is strictly equivalent to op0 olt op1 ?
@ FATAN2
FATAN2 - atan2, inspired by libm.
@ FSINCOSPI
FSINCOSPI - Compute both the sine and cosine times pi more accurately than FSINCOS(pi*x),...
@ ATOMIC_CMP_SWAP_WITH_SUCCESS
Val, Success, OUTCHAIN = ATOMIC_CMP_SWAP_WITH_SUCCESS(INCHAIN, ptr, cmp, swap) N.b.
@ SINT_TO_FP
[SU]INT_TO_FP - These operators convert integers (whose interpreted sign depends on the first letter)...
Definition ISDOpcodes.h:890
@ CONCAT_VECTORS
CONCAT_VECTORS(VECTOR0, VECTOR1, ...) - Given a number of values of vector type with the same length ...
Definition ISDOpcodes.h:586
@ VECREDUCE_FMAX
FMIN/FMAX nodes can have flags, for NaN/NoNaN variants.
@ FADD
Simple binary floating point operators.
Definition ISDOpcodes.h:417
@ VECREDUCE_FMAXIMUM
FMINIMUM/FMAXIMUM nodes propatate NaNs and signed zeroes using the llvm.minimum and llvm....
@ ABS
ABS - Determine the unsigned absolute value of a signed integer value of the same bitwidth.
Definition ISDOpcodes.h:749
@ RESET_FPMODE
Sets default dynamic floating-point control modes.
@ SIGN_EXTEND_VECTOR_INREG
SIGN_EXTEND_VECTOR_INREG(Vector) - This operator represents an in-register sign-extension of the low ...
Definition ISDOpcodes.h:920
@ FMULADD
FMULADD - Performs a * b + c, with, or without, intermediate rounding.
Definition ISDOpcodes.h:530
@ BITCAST
BITCAST - This operator converts between integer, vector and FP values, as if the value was stored to...
@ STRICT_PSEUDO_FMAX
Definition ISDOpcodes.h:462
@ CLMUL
Carry-less multiplication operations.
Definition ISDOpcodes.h:780
@ FLDEXP
FLDEXP - ldexp, inspired by libm (op0 * 2**op1).
@ SDIVFIX
RESULT = [US]DIVFIX(LHS, RHS, SCALE) - Perform fixed point division on 2 integers with the same width...
Definition ISDOpcodes.h:407
@ BUILTIN_OP_END
BUILTIN_OP_END - This must be the last enum value in this list.
@ CONVERT_FROM_ARBITRARY_FP
CONVERT_FROM_ARBITRARY_FP - This operator converts from an arbitrary floating-point represented as an...
@ CTLZ_ZERO_POISON
Definition ISDOpcodes.h:798
@ SIGN_EXTEND
Conversion operators.
Definition ISDOpcodes.h:854
@ AVGCEILS
AVGCEILS/AVGCEILU - Rounding averaging add - Add two integers using an integer of type i[N+2],...
Definition ISDOpcodes.h:717
@ READSTEADYCOUNTER
READSTEADYCOUNTER - This corresponds to the readfixedcounter intrinsic.
@ VECREDUCE_FADD
These reductions have relaxed evaluation order semantics, and have a single vector operand.
@ PREFETCH
PREFETCH - This corresponds to a prefetch intrinsic.
@ STRICT_PSEUDO_FMIN
Definition ISDOpcodes.h:461
@ TRUNCATE_SSAT_U
Definition ISDOpcodes.h:883
@ VECREDUCE_FMAXIMUMNUM
FMINIMUMNUM/FMAXIMUMNUM nodes do not propagate NaNs and order signed zeroes using the llvm....
@ FSINCOS
FSINCOS - Compute both fsin and fcos as a single operation.
@ SETCCCARRY
Like SetCC, ops #0 and #1 are the LHS and RHS operands to compare, but op #2 is a boolean indicating ...
Definition ISDOpcodes.h:837
@ FNEG
Perform various unary floating-point operations inspired by libm.
@ SSUBO
Same for subtraction.
Definition ISDOpcodes.h:352
@ FCANONICALIZE
Returns platform specific canonical encoding of a floating point number.
Definition ISDOpcodes.h:543
@ IS_FPCLASS
Performs a check of floating point class property, defined by IEEE-754.
Definition ISDOpcodes.h:550
@ SSUBSAT
RESULT = [US]SUBSAT(LHS, RHS) - Perform saturation subtraction on 2 integers with the same bit width ...
Definition ISDOpcodes.h:374
@ SELECT
Select(COND, TRUEVAL, FALSEVAL).
Definition ISDOpcodes.h:806
@ SPLAT_VECTOR
SPLAT_VECTOR(VAL) - Returns a vector with the scalar value VAL duplicated in all lanes.
Definition ISDOpcodes.h:674
@ SADDO
RESULT, BOOL = [SU]ADDO(LHS, RHS) - Overflow-aware nodes for addition.
Definition ISDOpcodes.h:348
@ CTLS
Count leading redundant sign bits.
Definition ISDOpcodes.h:802
@ VECREDUCE_ADD
Integer reductions may have a result type larger than the vector element type.
@ GET_FPMODE
Reads the current dynamic floating-point control modes.
@ GET_FPENV
Gets the current floating-point environment.
@ SHL
Shift and rotation operations.
Definition ISDOpcodes.h:771
@ VECTOR_SHUFFLE
VECTOR_SHUFFLE(VEC1, VEC2) - Returns a vector, of the same type as VEC1/VEC2.
Definition ISDOpcodes.h:651
@ FMINNUM_IEEE
FMINNUM_IEEE/FMAXNUM_IEEE - Perform floating-point minimumNumber or maximumNumber on two values,...
@ EXTRACT_VECTOR_ELT
EXTRACT_VECTOR_ELT(VECTOR, IDX) - Returns a single element from VECTOR identified by the (potentially...
Definition ISDOpcodes.h:578
@ ZERO_EXTEND
ZERO_EXTEND - Used for integer types, zeroing the new bits.
Definition ISDOpcodes.h:860
@ DEBUGTRAP
DEBUGTRAP - Trap intended to get the attention of a debugger.
@ ATOMIC_CMP_SWAP
Val, OUTCHAIN = ATOMIC_CMP_SWAP(INCHAIN, ptr, cmp, swap) For double-word atomic operations: ValLo,...
@ FMINNUM
FMINNUM/FMAXNUM - Perform floating-point minimum maximum on two values, following IEEE-754 definition...
@ UBSANTRAP
UBSANTRAP - Trap with an immediate describing the kind of sanitizer failure.
@ SSHLSAT
RESULT = [US]SHLSAT(LHS, RHS) - Perform saturation left shift.
Definition ISDOpcodes.h:386
@ SMULO
Same for multiplication.
Definition ISDOpcodes.h:356
@ VECTOR_SPLICE_LEFT
VECTOR_SPLICE_LEFT(VEC1, VEC2, OFFSET) - Shifts CONCAT_VECTORS(VEC1, VEC2) left by OFFSET elements an...
Definition ISDOpcodes.h:655
@ ANY_EXTEND_VECTOR_INREG
ANY_EXTEND_VECTOR_INREG(Vector) - This operator represents an in-register any-extension of the low la...
Definition ISDOpcodes.h:909
@ SIGN_EXTEND_INREG
SIGN_EXTEND_INREG - This operator atomically performs a SHL/SRA pair to sign extend a small value in ...
Definition ISDOpcodes.h:898
@ SMIN
[US]{MIN/MAX} - Binary minimum or maximum of signed or unsigned integers.
Definition ISDOpcodes.h:729
@ MASKED_UDIV
Masked vector arithmetic that returns poison on disabled lanes.
@ SDIVFIXSAT
Same as the corresponding unsaturated fixed point instructions, but the result is clamped between the...
Definition ISDOpcodes.h:413
@ FP_EXTEND
X = FP_EXTEND(Y) - Extend a smaller FP type into a larger FP type.
Definition ISDOpcodes.h:988
@ UADDO_CARRY
Carry-using nodes for multiple precision addition and subtraction.
Definition ISDOpcodes.h:328
@ PEXT
Parallel bit extract (compress) and parallel bit deposit (expand).
Definition ISDOpcodes.h:785
@ FMINIMUM
FMINIMUM/FMAXIMUM - NaN-propagating minimum/maximum that also treat -0.0 as less than 0....
@ FP_TO_SINT
FP_TO_[US]INT - Convert a floating point value to a signed or unsigned integer.
Definition ISDOpcodes.h:936
@ READCYCLECOUNTER
READCYCLECOUNTER - This corresponds to the readcyclecounter intrinsic.
@ AND
Bitwise operators - logical and, logical or, logical xor.
Definition ISDOpcodes.h:741
@ TRAP
TRAP - Trapping instruction.
@ GET_FPENV_MEM
Gets the current floating-point environment.
@ SCMP
[US]CMP - 3-way comparison of signed or unsigned integers.
Definition ISDOpcodes.h:737
@ AVGFLOORS
AVGFLOORS/AVGFLOORU - Averaging add - Add two integers using an integer of type i[N+1],...
Definition ISDOpcodes.h:712
@ VECTOR_MATCH
VECTOR_MATCH - this corresponds to the llvm.experimental.vector.match intrinsic.
@ VECTOR_SPLICE_RIGHT
VECTOR_SPLICE_RIGHT(VEC1, VEC2, OFFSET) - Shifts CONCAT_VECTORS(VEC1,VEC2) right by OFFSET elements a...
Definition ISDOpcodes.h:659
@ ADDE
Carry-using nodes for multiple precision addition and subtraction.
Definition ISDOpcodes.h:304
@ FREEZE
FREEZE - FREEZE(VAL) returns an arbitrary value if VAL is UNDEF (or is evaluated to UNDEF),...
Definition ISDOpcodes.h:241
@ INSERT_VECTOR_ELT
INSERT_VECTOR_ELT(VECTOR, VAL, IDX) - Returns VECTOR with the element at IDX replaced with VAL.
Definition ISDOpcodes.h:567
@ ATOMIC_SWAP
Val, OUTCHAIN = ATOMIC_SWAP(INCHAIN, ptr, amt) Val, OUTCHAIN = ATOMIC_LOAD_[OpName](INCHAIN,...
@ CTTZ_ZERO_POISON
Bit counting operators with a poisoned result for zero inputs.
Definition ISDOpcodes.h:797
@ FFREXP
FFREXP - frexp, extract fractional and exponent component of a floating-point value.
@ FP_ROUND
X = FP_ROUND(Y, TRUNC) - Rounding 'Y' from a larger floating point type down to the precision of the ...
Definition ISDOpcodes.h:969
@ VECTOR_COMPRESS
VECTOR_COMPRESS(Vec, Mask, Passthru) consecutively place vector elements based on mask e....
Definition ISDOpcodes.h:701
@ CLEAR_CACHE
llvm.clear_cache intrinsic Operands: Input Chain, Start Addres, End Address Outputs: Output Chain
@ ZERO_EXTEND_VECTOR_INREG
ZERO_EXTEND_VECTOR_INREG(Vector) - This operator represents an in-register zero-extension of the low ...
Definition ISDOpcodes.h:931
@ ADDRSPACECAST
ADDRSPACECAST - This operator converts between pointers of different address spaces.
@ FP_TO_SINT_SAT
FP_TO_[US]INT_SAT - Convert floating point value in operand 0 to a signed or unsigned scalar integer ...
Definition ISDOpcodes.h:955
@ VECREDUCE_FMINIMUM
@ TRUNCATE
TRUNCATE - Completely drop the high bits.
Definition ISDOpcodes.h:866
@ VECREDUCE_SEQ_FMUL
@ CONVERT_TO_ARBITRARY_FP
CONVERT_TO_ARBITRARY_FP - Converts a native FP value to an arbitrary floating-point format,...
@ FCOPYSIGN
FCOPYSIGN(X, Y) - Return the value of X with the sign of Y.
Definition ISDOpcodes.h:536
@ SADDSAT
RESULT = [US]ADDSAT(LHS, RHS) - Perform saturation addition on 2 integers with the same bit width (W)...
Definition ISDOpcodes.h:365
@ GET_DYNAMIC_AREA_OFFSET
GET_DYNAMIC_AREA_OFFSET - get offset from native SP to the address of the most recent dynamic alloca.
@ CTTZ_ELTS_ZERO_POISON
@ SET_FPENV_MEM
Sets the current floating point environment.
@ FMINIMUMNUM
FMINIMUMNUM/FMAXIMUMNUM - minimumnum/maximumnum that is same with FMINNUM_IEEE and FMAXNUM_IEEE besid...
@ TRUNCATE_SSAT_S
TRUNCATE_[SU]SAT_[SU] - Truncate for saturated operand [SU] located in middle, prefix for SAT means i...
Definition ISDOpcodes.h:881
@ ABDS
ABDS/ABDU - Absolute difference - Return the absolute difference between two numbers interpreted as s...
Definition ISDOpcodes.h:724
@ TRUNCATE_USAT_U
Definition ISDOpcodes.h:885
@ SADDO_CARRY
Carry-using overflow-aware nodes for multiple precision addition and subtraction.
Definition ISDOpcodes.h:338
@ ABS_MIN_POISON
ABS with a poison result for INT_MIN.
Definition ISDOpcodes.h:753
@ LOOP_DEPENDENCE_WAR_MASK
The llvm.loop.dependence.
static const int LAST_INDEXED_MODE
LLVM_ABI Libcall getSINTTOFP(EVT OpVT, EVT RetVT)
getSINTTOFP - Return the SINTTOFP_*_* value for the given types, or UNKNOWN_LIBCALL if there is none.
LLVM_ABI Libcall getUREM(EVT VT)
LLVM_ABI Libcall getSHL(EVT VT)
LLVM_ABI Libcall getSYNC(unsigned Opc, MVT VT)
Return the SYNC_FETCH_AND_* value for the given opcode and type, or UNKNOWN_LIBCALL if there is none.
LLVM_ABI Libcall getUINTTOFP(EVT OpVT, EVT RetVT)
getUINTTOFP - Return the UINTTOFP_*_* value for the given types, or UNKNOWN_LIBCALL if there is none.
LLVM_ABI Libcall getSDIV(EVT VT)
LLVM_ABI Libcall getSRL(EVT VT)
LLVM_ABI Libcall getMEMCPY_ELEMENT_UNORDERED_ATOMIC(uint64_t ElementSize)
getMEMCPY_ELEMENT_UNORDERED_ATOMIC - Return MEMCPY_ELEMENT_UNORDERED_ATOMIC_* value for the given ele...
LLVM_ABI Libcall getSRA(EVT VT)
LLVM_ABI Libcall getUDIV(EVT VT)
LLVM_ABI Libcall getFPLibCall(EVT VT, Libcall Call_F32, Libcall Call_F64, Libcall Call_F80, Libcall Call_F128, Libcall Call_PPCF128)
GetFPLibCall - Helper to return the right libcall for the given floating point type,...
LLVM_ABI Libcall getFPTOUINT(EVT OpVT, EVT RetVT)
getFPTOUINT - Return the FPTOUINT_*_* value for the given types, or UNKNOWN_LIBCALL if there is none.
LLVM_ABI Libcall getFPTOSINT(EVT OpVT, EVT RetVT)
getFPTOSINT - Return the FPTOSINT_*_* value for the given types, or UNKNOWN_LIBCALL if there is none.
LLVM_ABI Libcall getOUTLINE_ATOMIC(unsigned Opc, AtomicOrdering Order, MVT VT)
Return the outline atomics value for the given opcode, atomic ordering and type, or UNKNOWN_LIBCALL i...
LLVM_ABI Libcall getFPEXT(EVT OpVT, EVT RetVT)
getFPEXT - Return the FPEXT_*_* value for the given types, or UNKNOWN_LIBCALL if there is none.
LLVM_ABI Libcall getFPROUND(EVT OpVT, EVT RetVT)
getFPROUND - Return the FPROUND_*_* value for the given types, or UNKNOWN_LIBCALL if there is none.
LLVM_ABI Libcall getSREM(EVT VT)
LLVM_ABI Libcall getMEMSET_ELEMENT_UNORDERED_ATOMIC(uint64_t ElementSize)
getMEMSET_ELEMENT_UNORDERED_ATOMIC - Return MEMSET_ELEMENT_UNORDERED_ATOMIC_* value for the given ele...
LLVM_ABI Libcall getOutlineAtomicHelper(const Libcall(&LC)[5][4], AtomicOrdering Order, uint64_t MemSize)
Return the outline atomics value for the given atomic ordering, access size and set of libcalls for a...
LLVM_ABI Libcall getMUL(EVT VT)
LLVM_ABI Libcall getCTPOP(EVT VT)
LLVM_ABI Libcall getMULO(EVT VT)
LLVM_ABI Libcall getMEMMOVE_ELEMENT_UNORDERED_ATOMIC(uint64_t ElementSize)
getMEMMOVE_ELEMENT_UNORDERED_ATOMIC - Return MEMMOVE_ELEMENT_UNORDERED_ATOMIC_* value for the given e...
initializer< Ty > init(const Ty &Val)
This is an optimization pass for GlobalISel generic memory operations.
unsigned Log2_32_Ceil(uint32_t Value)
Return the ceil log base 2 of the specified value, 32 if the value is zero.
Definition MathExtras.h:339
void fill(R &&Range, T &&Value)
Provide wrappers to std::fill which take ranges instead of having to pass begin/end explicitly.
Definition STLExtras.h:1759
LLVM_ABI void GetReturnInfo(CallingConv::ID CC, Type *ReturnType, AttributeList attr, SmallVectorImpl< ISD::OutputArg > &Outs, const TargetLowering &TLI, const DataLayout &DL)
Given an LLVM IR type and return type attributes, compute the return value EVTs and flags,...
MachineInstrBuilder BuildMI(MachineFunction &MF, const MIMetadata &MIMD, const MCInstrDesc &MCID)
Builder interface. Specify how to create the initial instruction itself.
InstructionCost Cost
decltype(auto) dyn_cast(const From &Val)
dyn_cast<X> - Return the argument parameter cast to the specified type.
Definition Casting.h:643
@ Load
The value being inserted comes from a load (InsertElement only).
@ Store
The extracted value is stored (ExtractElement only).
LLVM_ABI bool shouldOptimizeForSize(const MachineFunction *MF, ProfileSummaryInfo *PSI, const MachineBlockFrequencyInfo *BFI, PGSOQueryType QueryType=PGSOQueryType::Other)
Returns true if machine function MF is suggested to be size-optimized based on the profile.
constexpr force_iteration_on_noniterable_enum_t force_iteration_on_noniterable_enum
Definition Sequence.h:110
T bit_ceil(T Value)
Returns the smallest integral power of two no smaller than Value if Value is nonzero.
Definition bit.h:362
LLVM_ABI void ComputeValueTypes(const DataLayout &DL, Type *Ty, SmallVectorImpl< Type * > &Types, SmallVectorImpl< TypeSize > *Offsets=nullptr, TypeSize StartingOffset=TypeSize::getZero())
Given an LLVM IR type, compute non-aggregate subtypes.
Definition Analysis.cpp:72
bool isReleaseOrStronger(AtomicOrdering AO)
auto dyn_cast_or_null(const Y &Val)
Definition Casting.h:753
constexpr bool has_single_bit(T Value) noexcept
Definition bit.h:149
constexpr bool isPowerOf2_32(uint32_t Value)
Return true if the argument is a power of two > 0.
Definition MathExtras.h:280
constexpr auto enum_seq(EnumT Begin, EnumT End)
Iterate over an enum type from Begin up to - but not including - End.
Definition Sequence.h:373
bool none_of(R &&Range, UnaryPredicate P)
Provide wrappers to std::none_of which take ranges instead of having to pass begin/end explicitly.
Definition STLExtras.h:1753
LLVM_ABI void report_fatal_error(Error Err, bool gen_crash_diag=true)
Definition Error.cpp:163
bool isDigit(char C)
Checks if character C is one of the 10 decimal digits.
CodeGenOptLevel
Code generation optimization level.
Definition CodeGen.h:149
AtomicOrdering
Atomic ordering for LLVM's memory model.
LLVM_ABI EVT getApproximateEVTForLLT(LLT Ty, LLVMContext &Ctx)
constexpr T divideCeil(U Numerator, V Denominator)
Returns the integer ceil(Numerator / Denominator).
Definition MathExtras.h:389
TargetTransformInfo TTI
@ Mul
Product of integers.
@ FSub
Subtraction of floats.
@ Xor
Bitwise or logical XOR of integers.
@ FMul
Product of floats.
@ Sub
Subtraction of integers.
@ Add
Sum of integers.
@ FAdd
Sum of floats.
@ Fast
Assign the register banks as fast as possible (default).
DWARFExpression::Operation Op
LLVM_ABI bool isDereferenceableAndAlignedPointer(const Value *V, Type *Ty, Align Alignment, const SimplifyQuery &Q, bool IgnoreFree=false)
Returns true if V is always a dereferenceable pointer with alignment greater or equal than requested.
Definition Loads.cpp:244
bool isAcquireOrStronger(AtomicOrdering AO)
MCRegisterClass TargetRegisterClass
Definition FastISel.h:58
This struct is a compact representation of a valid (non-zero power of two) alignment.
Definition Alignment.h:39
Extended Value Type.
Definition ValueTypes.h:35
EVT getPow2VectorType(LLVMContext &Context) const
Widens the length of the given vector EVT up to the nearest power of 2 and returns that type.
Definition ValueTypes.h:508
bool isSimple() const
Test if the given EVT is simple (as opposed to being extended).
Definition ValueTypes.h:145
static EVT getVectorVT(LLVMContext &Context, EVT VT, unsigned NumElements, bool IsScalable=false)
Returns the EVT that represents a vector NumElements in length, where each element is of type VT.
Definition ValueTypes.h:70
ElementCount getVectorElementCount() const
Definition ValueTypes.h:373
TypeSize getSizeInBits() const
Return the size of the specified value type in bits.
Definition ValueTypes.h:396
uint64_t getScalarSizeInBits() const
Definition ValueTypes.h:408
bool isPow2VectorType() const
Returns true if the given vector is a power of 2.
Definition ValueTypes.h:501
MVT getSimpleVT() const
Return the SimpleValueType held in the specified simple EVT.
Definition ValueTypes.h:339
static EVT getIntegerVT(LLVMContext &Context, unsigned BitWidth)
Returns the EVT that represents an integer with the given number of bits.
Definition ValueTypes.h:61
bool isFixedLengthVector() const
Definition ValueTypes.h:199
EVT getRoundIntegerType(LLVMContext &Context) const
Rounds the bit-width of the given integer EVT up to the nearest power of two (and at least to eight),...
Definition ValueTypes.h:442
bool isVector() const
Return true if this is a vector value type.
Definition ValueTypes.h:176
EVT getScalarType() const
If this is a vector type, return the element type, otherwise return this.
Definition ValueTypes.h:346
LLVM_ABI Type * getTypeForEVT(LLVMContext &Context) const
This method returns an LLVM type corresponding to the specified EVT.
bool isScalableVector() const
Return true if this is a vector type where the runtime length is machine dependent.
Definition ValueTypes.h:187
EVT getVectorElementType() const
Given a vector type, return the type of each element.
Definition ValueTypes.h:351
unsigned getVectorNumElements() const
Given a vector type, return the number of elements it contains.
Definition ValueTypes.h:359
bool isZeroSized() const
Test if the given EVT has zero size, this will fail if called on a scalable type.
Definition ValueTypes.h:140
EVT getHalfNumVectorElementsVT(LLVMContext &Context) const
Definition ValueTypes.h:484
bool isInteger() const
Return true if this is an integer or a vector integer type.
Definition ValueTypes.h:160
OutputArg - This struct carries flags and a value for a single outgoing (actual) argument or outgoing...
Matching combinators.
static LLVM_ABI MachinePointerInfo getFixedStack(MachineFunction &MF, int FI, int64_t Offset=0)
Return a MachinePointerInfo record that refers to the specified FrameIndex.
static StringRef getLibcallImplName(RTLIB::LibcallImpl CallImpl)
Get the libcall routine name for the specified libcall implementation.
This represents an addressing mode of: BaseGV + BaseOffs + BaseReg + Scale*ScaleReg + ScalableOffset*...