1 //===---------- llvm/unittest/Support/Casting.cpp - Casting tests ---------===// 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 #include "llvm/Support/Casting.h" 10 #include "llvm/IR/User.h" 11 #include "llvm/Support/Debug.h" 12 #include "llvm/Support/raw_ostream.h" 13 #include "gtest/gtest.h" 14 #include <cstdlib> 15 16 namespace llvm { 17 // Used to test illegal cast. If a cast doesn't match any of the "real" ones, 18 // it will match this one. 19 struct IllegalCast; 20 template <typename T> IllegalCast *cast(...) { return nullptr; } 21 22 // set up two example classes 23 // with conversion facility 24 // 25 struct bar { 26 bar() {} 27 struct foo *baz(); 28 struct foo *caz(); 29 struct foo *daz(); 30 struct foo *naz(); 31 32 private: 33 bar(const bar &); 34 }; 35 struct foo { 36 foo(const bar &) {} 37 void ext() const; 38 }; 39 40 struct base { 41 virtual ~base() {} 42 }; 43 44 struct derived : public base { 45 static bool classof(const base *B) { return true; } 46 }; 47 48 template <> struct isa_impl<foo, bar> { 49 static inline bool doit(const bar &Val) { 50 dbgs() << "Classof: " << &Val << "\n"; 51 return true; 52 } 53 }; 54 55 // Note for the future - please don't do this. isa_impl is an internal template 56 // for the implementation of `isa` and should not be exposed this way. 57 // Completely unrelated types *should* result in compiler errors if you try to 58 // cast between them. 59 template <typename T> struct isa_impl<foo, T> { 60 static inline bool doit(const T &Val) { return false; } 61 }; 62 63 foo *bar::baz() { return cast<foo>(this); } 64 65 foo *bar::caz() { return cast_or_null<foo>(this); } 66 67 foo *bar::daz() { return dyn_cast<foo>(this); } 68 69 foo *bar::naz() { return dyn_cast_or_null<foo>(this); } 70 71 bar *fub(); 72 73 template <> struct simplify_type<foo> { 74 typedef int SimpleType; 75 static SimpleType getSimplifiedValue(foo &Val) { return 0; } 76 }; 77 78 struct T1 {}; 79 80 struct T2 { 81 T2(const T1 &x) {} 82 static bool classof(const T1 *x) { return true; } 83 }; 84 85 template <> struct CastInfo<T2, T1> : public OptionalValueCast<T2, T1> {}; 86 87 struct T3 { 88 T3(const T1 *x) : hasValue(x != nullptr) {} 89 90 static bool classof(const T1 *x) { return true; } 91 bool hasValue = false; 92 }; 93 94 // T3 is convertible from a pointer to T1. 95 template <> struct CastInfo<T3, T1 *> : public ValueFromPointerCast<T3, T1> {}; 96 97 struct T4 { 98 T4() : hasValue(false) {} 99 T4(const T3 &x) : hasValue(true) {} 100 101 static bool classof(const T3 *x) { return true; } 102 bool hasValue = false; 103 }; 104 105 template <> struct ValueIsPresent<T3> { 106 using UnwrappedType = T3; 107 static inline bool isPresent(const T3 &t) { return t.hasValue; } 108 static inline const T3 &unwrapValue(const T3 &t) { return t; } 109 }; 110 111 template <> struct CastInfo<T4, T3> { 112 using CastResultType = T4; 113 static inline CastResultType doCast(const T3 &t) { return T4(t); } 114 static inline CastResultType castFailed() { return CastResultType(); } 115 static inline CastResultType doCastIfPossible(const T3 &f) { 116 return doCast(f); 117 } 118 }; 119 120 } // namespace llvm 121 122 using namespace llvm; 123 124 // Test the peculiar behavior of Use in simplify_type. 125 static_assert(std::is_same<simplify_type<Use>::SimpleType, Value *>::value, 126 "Use doesn't simplify correctly!"); 127 static_assert(std::is_same<simplify_type<Use *>::SimpleType, Value *>::value, 128 "Use doesn't simplify correctly!"); 129 130 // Test that a regular class behaves as expected. 131 static_assert(std::is_same<simplify_type<foo>::SimpleType, int>::value, 132 "Unexpected simplify_type result!"); 133 static_assert(std::is_same<simplify_type<foo *>::SimpleType, foo *>::value, 134 "Unexpected simplify_type result!"); 135 136 namespace { 137 138 const foo *null_foo = nullptr; 139 140 bar B; 141 extern bar &B1; 142 bar &B1 = B; 143 extern const bar *B2; 144 // test various configurations of const 145 const bar &B3 = B1; 146 const bar *const B4 = B2; 147 148 TEST(CastingTest, isa) { 149 EXPECT_TRUE(isa<foo>(B1)); 150 EXPECT_TRUE(isa<foo>(B2)); 151 EXPECT_TRUE(isa<foo>(B3)); 152 EXPECT_TRUE(isa<foo>(B4)); 153 } 154 155 TEST(CastingTest, isa_and_nonnull) { 156 EXPECT_TRUE(isa_and_nonnull<foo>(B2)); 157 EXPECT_TRUE(isa_and_nonnull<foo>(B4)); 158 EXPECT_FALSE(isa_and_nonnull<foo>(fub())); 159 } 160 161 TEST(CastingTest, cast) { 162 foo &F1 = cast<foo>(B1); 163 EXPECT_NE(&F1, null_foo); 164 const foo *F3 = cast<foo>(B2); 165 EXPECT_NE(F3, null_foo); 166 const foo *F4 = cast<foo>(B2); 167 EXPECT_NE(F4, null_foo); 168 const foo &F5 = cast<foo>(B3); 169 EXPECT_NE(&F5, null_foo); 170 const foo *F6 = cast<foo>(B4); 171 EXPECT_NE(F6, null_foo); 172 // Can't pass null pointer to cast<>. 173 // foo *F7 = cast<foo>(fub()); 174 // EXPECT_EQ(F7, null_foo); 175 foo *F8 = B1.baz(); 176 EXPECT_NE(F8, null_foo); 177 178 std::unique_ptr<const bar> BP(B2); 179 auto FP = cast<foo>(std::move(BP)); 180 static_assert(std::is_same<std::unique_ptr<const foo>, decltype(FP)>::value, 181 "Incorrect deduced return type!"); 182 EXPECT_NE(FP.get(), null_foo); 183 FP.release(); 184 } 185 186 TEST(CastingTest, cast_or_null) { 187 const foo *F11 = cast_or_null<foo>(B2); 188 EXPECT_NE(F11, null_foo); 189 const foo *F12 = cast_or_null<foo>(B2); 190 EXPECT_NE(F12, null_foo); 191 const foo *F13 = cast_or_null<foo>(B4); 192 EXPECT_NE(F13, null_foo); 193 const foo *F14 = cast_or_null<foo>(fub()); // Shouldn't print. 194 EXPECT_EQ(F14, null_foo); 195 foo *F15 = B1.caz(); 196 EXPECT_NE(F15, null_foo); 197 198 std::unique_ptr<const bar> BP(fub()); 199 auto FP = cast_or_null<foo>(std::move(BP)); 200 EXPECT_EQ(FP.get(), null_foo); 201 } 202 203 TEST(CastingTest, dyn_cast) { 204 const foo *F1 = dyn_cast<foo>(B2); 205 EXPECT_NE(F1, null_foo); 206 const foo *F2 = dyn_cast<foo>(B2); 207 EXPECT_NE(F2, null_foo); 208 const foo *F3 = dyn_cast<foo>(B4); 209 EXPECT_NE(F3, null_foo); 210 // Can't pass null pointer to dyn_cast<>. 211 // foo *F4 = dyn_cast<foo>(fub()); 212 // EXPECT_EQ(F4, null_foo); 213 foo *F5 = B1.daz(); 214 EXPECT_NE(F5, null_foo); 215 } 216 217 // All these tests forward to dyn_cast_if_present, so they also provde an 218 // effective test for its use cases. 219 TEST(CastingTest, dyn_cast_or_null) { 220 const foo *F1 = dyn_cast_or_null<foo>(B2); 221 EXPECT_NE(F1, null_foo); 222 const foo *F2 = dyn_cast_or_null<foo>(B2); 223 EXPECT_NE(F2, null_foo); 224 const foo *F3 = dyn_cast_or_null<foo>(B4); 225 EXPECT_NE(F3, null_foo); 226 foo *F4 = dyn_cast_or_null<foo>(fub()); 227 EXPECT_EQ(F4, null_foo); 228 foo *F5 = B1.naz(); 229 EXPECT_NE(F5, null_foo); 230 // dyn_cast_if_present should have exactly the same behavior as 231 // dyn_cast_or_null. 232 const foo *F6 = dyn_cast_if_present<foo>(B2); 233 EXPECT_EQ(F6, F2); 234 } 235 236 TEST(CastingTest, dyn_cast_value_types) { 237 T1 t1; 238 Optional<T2> t2 = dyn_cast<T2>(t1); 239 EXPECT_TRUE(t2); 240 241 T2 *t2ptr = dyn_cast<T2>(&t1); 242 EXPECT_TRUE(t2ptr != nullptr); 243 244 T3 t3 = dyn_cast<T3>(&t1); 245 EXPECT_TRUE(t3.hasValue); 246 } 247 248 TEST(CastingTest, dyn_cast_if_present) { 249 Optional<T1> empty{}; 250 Optional<T2> F1 = dyn_cast_if_present<T2>(empty); 251 EXPECT_FALSE(F1.has_value()); 252 253 T1 t1; 254 Optional<T2> F2 = dyn_cast_if_present<T2>(t1); 255 EXPECT_TRUE(F2.has_value()); 256 257 T1 *t1Null = nullptr; 258 259 // T3 should have hasValue == false because t1Null is nullptr. 260 T3 t3 = dyn_cast_if_present<T3>(t1Null); 261 EXPECT_FALSE(t3.hasValue); 262 263 // Now because of that, T4 should receive the castFailed implementation of its 264 // FallibleCastTraits, which default-constructs a T4, which has no value. 265 T4 t4 = dyn_cast_if_present<T4>(t3); 266 EXPECT_FALSE(t4.hasValue); 267 } 268 269 std::unique_ptr<derived> newd() { return std::make_unique<derived>(); } 270 std::unique_ptr<base> newb() { return std::make_unique<derived>(); } 271 272 TEST(CastingTest, unique_dyn_cast) { 273 derived *OrigD = nullptr; 274 auto D = std::make_unique<derived>(); 275 OrigD = D.get(); 276 277 // Converting from D to itself is valid, it should return a new unique_ptr 278 // and the old one should become nullptr. 279 auto NewD = unique_dyn_cast<derived>(D); 280 ASSERT_EQ(OrigD, NewD.get()); 281 ASSERT_EQ(nullptr, D); 282 283 // Converting from D to B is valid, B should have a value and D should be 284 // nullptr. 285 auto B = unique_dyn_cast<base>(NewD); 286 ASSERT_EQ(OrigD, B.get()); 287 ASSERT_EQ(nullptr, NewD); 288 289 // Converting from B to itself is valid, it should return a new unique_ptr 290 // and the old one should become nullptr. 291 auto NewB = unique_dyn_cast<base>(B); 292 ASSERT_EQ(OrigD, NewB.get()); 293 ASSERT_EQ(nullptr, B); 294 295 // Converting from B to D is valid, D should have a value and B should be 296 // nullptr; 297 D = unique_dyn_cast<derived>(NewB); 298 ASSERT_EQ(OrigD, D.get()); 299 ASSERT_EQ(nullptr, NewB); 300 301 // This is a very contrived test, casting between completely unrelated types 302 // should generally fail to compile. See the classof shenanigans we have in 303 // the definition of `foo` above. 304 auto F = unique_dyn_cast<foo>(D); 305 ASSERT_EQ(nullptr, F); 306 ASSERT_EQ(OrigD, D.get()); 307 308 // All of the above should also hold for temporaries. 309 auto D2 = unique_dyn_cast<derived>(newd()); 310 EXPECT_NE(nullptr, D2); 311 312 auto B2 = unique_dyn_cast<derived>(newb()); 313 EXPECT_NE(nullptr, B2); 314 315 auto B3 = unique_dyn_cast<base>(newb()); 316 EXPECT_NE(nullptr, B3); 317 318 // This is a very contrived test, casting between completely unrelated types 319 // should generally fail to compile. See the classof shenanigans we have in 320 // the definition of `foo` above. 321 auto F2 = unique_dyn_cast<foo>(newb()); 322 EXPECT_EQ(nullptr, F2); 323 } 324 325 // These lines are errors... 326 // foo *F20 = cast<foo>(B2); // Yields const foo* 327 // foo &F21 = cast<foo>(B3); // Yields const foo& 328 // foo *F22 = cast<foo>(B4); // Yields const foo* 329 // foo &F23 = cast_or_null<foo>(B1); 330 // const foo &F24 = cast_or_null<foo>(B3); 331 332 const bar *B2 = &B; 333 } // anonymous namespace 334 335 bar *llvm::fub() { return nullptr; } 336 337 namespace { 338 namespace inferred_upcasting { 339 // This test case verifies correct behavior of inferred upcasts when the 340 // types are statically known to be OK to upcast. This is the case when, 341 // for example, Derived inherits from Base, and we do `isa<Base>(Derived)`. 342 343 // Note: This test will actually fail to compile without inferred 344 // upcasting. 345 346 class Base { 347 public: 348 // No classof. We are testing that the upcast is inferred. 349 Base() {} 350 }; 351 352 class Derived : public Base { 353 public: 354 Derived() {} 355 }; 356 357 // Even with no explicit classof() in Base, we should still be able to cast 358 // Derived to its base class. 359 TEST(CastingTest, UpcastIsInferred) { 360 Derived D; 361 EXPECT_TRUE(isa<Base>(D)); 362 Base *BP = dyn_cast<Base>(&D); 363 EXPECT_NE(BP, nullptr); 364 } 365 366 // This test verifies that the inferred upcast takes precedence over an 367 // explicitly written one. This is important because it verifies that the 368 // dynamic check gets optimized away. 369 class UseInferredUpcast { 370 public: 371 int Dummy; 372 static bool classof(const UseInferredUpcast *) { return false; } 373 }; 374 375 TEST(CastingTest, InferredUpcastTakesPrecedence) { 376 UseInferredUpcast UIU; 377 // Since the explicit classof() returns false, this will fail if the 378 // explicit one is used. 379 EXPECT_TRUE(isa<UseInferredUpcast>(&UIU)); 380 } 381 382 } // end namespace inferred_upcasting 383 } // end anonymous namespace 384 385 namespace { 386 namespace pointer_wrappers { 387 388 struct Base { 389 bool IsDerived; 390 Base(bool IsDerived = false) : IsDerived(IsDerived) {} 391 }; 392 393 struct Derived : Base { 394 Derived() : Base(true) {} 395 static bool classof(const Base *B) { return B->IsDerived; } 396 }; 397 398 class PTy { 399 Base *B; 400 401 public: 402 PTy(Base *B) : B(B) {} 403 explicit operator bool() const { return get(); } 404 Base *get() const { return B; } 405 }; 406 407 } // end namespace pointer_wrappers 408 } // end namespace 409 410 namespace llvm { 411 412 template <> struct ValueIsPresent<pointer_wrappers::PTy> { 413 using UnwrappedType = pointer_wrappers::PTy; 414 static inline bool isPresent(const pointer_wrappers::PTy &P) { 415 return P.get() != nullptr; 416 } 417 static UnwrappedType &unwrapValue(pointer_wrappers::PTy &P) { return P; } 418 }; 419 420 template <> struct ValueIsPresent<const pointer_wrappers::PTy> { 421 using UnwrappedType = pointer_wrappers::PTy; 422 static inline bool isPresent(const pointer_wrappers::PTy &P) { 423 return P.get() != nullptr; 424 } 425 426 static UnwrappedType &unwrapValue(const pointer_wrappers::PTy &P) { 427 return const_cast<UnwrappedType &>(P); 428 } 429 }; 430 431 template <> struct simplify_type<pointer_wrappers::PTy> { 432 typedef pointer_wrappers::Base *SimpleType; 433 static SimpleType getSimplifiedValue(pointer_wrappers::PTy &P) { 434 return P.get(); 435 } 436 }; 437 template <> struct simplify_type<const pointer_wrappers::PTy> { 438 typedef pointer_wrappers::Base *SimpleType; 439 static SimpleType getSimplifiedValue(const pointer_wrappers::PTy &P) { 440 return P.get(); 441 } 442 }; 443 444 } // end namespace llvm 445 446 namespace { 447 namespace pointer_wrappers { 448 449 // Some objects. 450 pointer_wrappers::Base B; 451 pointer_wrappers::Derived D; 452 453 // Mutable "smart" pointers. 454 pointer_wrappers::PTy MN(nullptr); 455 pointer_wrappers::PTy MB(&B); 456 pointer_wrappers::PTy MD(&D); 457 458 // Const "smart" pointers. 459 const pointer_wrappers::PTy CN(nullptr); 460 const pointer_wrappers::PTy CB(&B); 461 const pointer_wrappers::PTy CD(&D); 462 463 TEST(CastingTest, smart_isa) { 464 EXPECT_TRUE(!isa<pointer_wrappers::Derived>(MB)); 465 EXPECT_TRUE(!isa<pointer_wrappers::Derived>(CB)); 466 EXPECT_TRUE(isa<pointer_wrappers::Derived>(MD)); 467 EXPECT_TRUE(isa<pointer_wrappers::Derived>(CD)); 468 } 469 470 TEST(CastingTest, smart_cast) { 471 EXPECT_EQ(cast<pointer_wrappers::Derived>(MD), &D); 472 EXPECT_EQ(cast<pointer_wrappers::Derived>(CD), &D); 473 } 474 475 TEST(CastingTest, smart_cast_or_null) { 476 EXPECT_EQ(cast_or_null<pointer_wrappers::Derived>(MN), nullptr); 477 EXPECT_EQ(cast_or_null<pointer_wrappers::Derived>(CN), nullptr); 478 EXPECT_EQ(cast_or_null<pointer_wrappers::Derived>(MD), &D); 479 EXPECT_EQ(cast_or_null<pointer_wrappers::Derived>(CD), &D); 480 } 481 482 TEST(CastingTest, smart_dyn_cast) { 483 EXPECT_EQ(dyn_cast<pointer_wrappers::Derived>(MB), nullptr); 484 EXPECT_EQ(dyn_cast<pointer_wrappers::Derived>(CB), nullptr); 485 EXPECT_EQ(dyn_cast<pointer_wrappers::Derived>(MD), &D); 486 EXPECT_EQ(dyn_cast<pointer_wrappers::Derived>(CD), &D); 487 } 488 489 TEST(CastingTest, smart_dyn_cast_or_null) { 490 EXPECT_EQ(dyn_cast_or_null<pointer_wrappers::Derived>(MN), nullptr); 491 EXPECT_EQ(dyn_cast_or_null<pointer_wrappers::Derived>(CN), nullptr); 492 EXPECT_EQ(dyn_cast_or_null<pointer_wrappers::Derived>(MB), nullptr); 493 EXPECT_EQ(dyn_cast_or_null<pointer_wrappers::Derived>(CB), nullptr); 494 EXPECT_EQ(dyn_cast_or_null<pointer_wrappers::Derived>(MD), &D); 495 EXPECT_EQ(dyn_cast_or_null<pointer_wrappers::Derived>(CD), &D); 496 } 497 498 } // end namespace pointer_wrappers 499 500 #ifndef NDEBUG 501 namespace assertion_checks { 502 struct Base { 503 virtual ~Base() {} 504 }; 505 506 struct Derived : public Base { 507 static bool classof(const Base *B) { return false; } 508 }; 509 510 TEST(CastingTest, assertion_check_const_ref) { 511 const Base B; 512 EXPECT_DEATH((void)cast<Derived>(B), "argument of incompatible type") 513 << "Invalid cast of const ref did not cause an abort()"; 514 } 515 516 TEST(CastingTest, assertion_check_ref) { 517 Base B; 518 EXPECT_DEATH((void)cast<Derived>(B), "argument of incompatible type") 519 << "Invalid cast of const ref did not cause an abort()"; 520 } 521 522 TEST(CastingTest, assertion_check_ptr) { 523 Base B; 524 EXPECT_DEATH((void)cast<Derived>(&B), "argument of incompatible type") 525 << "Invalid cast of const ref did not cause an abort()"; 526 } 527 528 TEST(CastingTest, assertion_check_unique_ptr) { 529 auto B = std::make_unique<Base>(); 530 EXPECT_DEATH((void)cast<Derived>(std::move(B)), 531 "argument of incompatible type") 532 << "Invalid cast of const ref did not cause an abort()"; 533 } 534 535 } // end namespace assertion_checks 536 #endif 537 } // end namespace 538