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1 // Copyright 2018 The Abseil Authors.
2 //
3 // Licensed under the Apache License, Version 2.0 (the "License");
4 // you may not use this file except in compliance with the License.
5 // You may obtain a copy of the License at
6 //
7 //      https://www.apache.org/licenses/LICENSE-2.0
8 //
9 // Unless required by applicable law or agreed to in writing, software
10 // distributed under the License is distributed on an "AS IS" BASIS,
11 // WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
12 // See the License for the specific language governing permissions and
13 // limitations under the License.
14 
15 #include "absl/hash/hash.h"
16 
17 #include <algorithm>
18 #include <array>
19 #include <bitset>
20 #include <cstddef>
21 #include <cstdint>
22 #include <cstdlib>
23 #include <cstring>
24 #include <functional>
25 #include <initializer_list>
26 #include <ios>
27 #include <limits>
28 #include <memory>
29 #include <ostream>
30 #include <set>
31 #include <string>
32 #include <tuple>
33 #include <type_traits>
34 #include <unordered_map>
35 #include <utility>
36 #include <vector>
37 
38 #include "gmock/gmock.h"
39 #include "gtest/gtest.h"
40 #include "absl/base/config.h"
41 #include "absl/container/flat_hash_set.h"
42 #include "absl/hash/hash_testing.h"
43 #include "absl/hash/internal/hash_test.h"
44 #include "absl/hash/internal/spy_hash_state.h"
45 #include "absl/memory/memory.h"
46 #include "absl/meta/type_traits.h"
47 #include "absl/numeric/bits.h"
48 #include "absl/strings/cord_test_helpers.h"
49 #include "absl/strings/string_view.h"
50 #include "absl/types/optional.h"
51 #include "absl/types/variant.h"
52 
53 #ifdef ABSL_INTERNAL_STD_FILESYSTEM_PATH_HASH_AVAILABLE
54 #include <filesystem>  // NOLINT
55 #endif
56 
57 #ifdef ABSL_HAVE_STD_STRING_VIEW
58 #include <string_view>
59 #endif
60 
61 namespace {
62 
63 using ::absl::hash_test_internal::is_hashable;
64 using ::absl::hash_test_internal::TypeErasedContainer;
65 using ::absl::hash_test_internal::TypeErasedValue;
66 using ::testing::SizeIs;
67 
68 template <typename T>
69 using TypeErasedVector = TypeErasedContainer<std::vector<T>>;
70 
71 using absl::Hash;
72 using absl::hash_internal::SpyHashState;
73 
74 template <typename T>
75 class HashValueIntTest : public testing::Test {
76 };
77 TYPED_TEST_SUITE_P(HashValueIntTest);
78 
79 template <typename T>
SpyHash(const T & value)80 SpyHashState SpyHash(const T& value) {
81   return SpyHashState::combine(SpyHashState(), value);
82 }
83 
TYPED_TEST_P(HashValueIntTest,BasicUsage)84 TYPED_TEST_P(HashValueIntTest, BasicUsage) {
85   EXPECT_TRUE((is_hashable<TypeParam>::value));
86 
87   TypeParam n = 42;
88   EXPECT_EQ(SpyHash(n), SpyHash(TypeParam{42}));
89   EXPECT_NE(SpyHash(n), SpyHash(TypeParam{0}));
90   EXPECT_NE(SpyHash(std::numeric_limits<TypeParam>::max()),
91             SpyHash(std::numeric_limits<TypeParam>::min()));
92 }
93 
TYPED_TEST_P(HashValueIntTest,FastPath)94 TYPED_TEST_P(HashValueIntTest, FastPath) {
95   // Test the fast-path to make sure the values are the same.
96   TypeParam n = 42;
97   EXPECT_EQ(absl::Hash<TypeParam>{}(n),
98             absl::Hash<std::tuple<TypeParam>>{}(std::tuple<TypeParam>(n)));
99 }
100 
101 REGISTER_TYPED_TEST_SUITE_P(HashValueIntTest, BasicUsage, FastPath);
102 using IntTypes = testing::Types<unsigned char, char, int, int32_t, int64_t,
103                                 uint32_t, uint64_t, size_t>;
104 INSTANTIATE_TYPED_TEST_SUITE_P(My, HashValueIntTest, IntTypes);
105 
106 enum LegacyEnum { kValue1, kValue2, kValue3 };
107 
108 enum class EnumClass { kValue4, kValue5, kValue6 };
109 
TEST(HashValueTest,EnumAndBool)110 TEST(HashValueTest, EnumAndBool) {
111   EXPECT_TRUE((is_hashable<LegacyEnum>::value));
112   EXPECT_TRUE((is_hashable<EnumClass>::value));
113   EXPECT_TRUE((is_hashable<bool>::value));
114 
115   EXPECT_TRUE(absl::VerifyTypeImplementsAbslHashCorrectly(std::make_tuple(
116       LegacyEnum::kValue1, LegacyEnum::kValue2, LegacyEnum::kValue3)));
117   EXPECT_TRUE(absl::VerifyTypeImplementsAbslHashCorrectly(std::make_tuple(
118       EnumClass::kValue4, EnumClass::kValue5, EnumClass::kValue6)));
119   EXPECT_TRUE(absl::VerifyTypeImplementsAbslHashCorrectly(
120       std::make_tuple(true, false)));
121 }
122 
TEST(HashValueTest,HashConsistentAcrossIntTypes)123 TEST(HashValueTest, HashConsistentAcrossIntTypes){
124   std::vector<size_t> hashes = {
125       absl::Hash<int8_t>{}(1),  absl::Hash<uint8_t>{}(1),
126       absl::Hash<int16_t>{}(1), absl::Hash<uint16_t>{}(1),
127       absl::Hash<int32_t>{}(1), absl::Hash<uint32_t>{}(1),
128       absl::Hash<int64_t>{}(1), absl::Hash<uint64_t>{}(1)};
129   EXPECT_THAT(hashes, testing::Each(absl::Hash<int>{}(1)));
130 }
131 
TEST(HashValueTest,FloatingPoint)132 TEST(HashValueTest, FloatingPoint) {
133   EXPECT_TRUE((is_hashable<float>::value));
134   EXPECT_TRUE((is_hashable<double>::value));
135   EXPECT_TRUE((is_hashable<long double>::value));
136 
137   EXPECT_TRUE(absl::VerifyTypeImplementsAbslHashCorrectly(
138       std::make_tuple(42.f, 0.f, -0.f, std::numeric_limits<float>::infinity(),
139                       -std::numeric_limits<float>::infinity())));
140 
141   EXPECT_TRUE(absl::VerifyTypeImplementsAbslHashCorrectly(
142       std::make_tuple(42., 0., -0., std::numeric_limits<double>::infinity(),
143                       -std::numeric_limits<double>::infinity())));
144 
145   EXPECT_TRUE(absl::VerifyTypeImplementsAbslHashCorrectly(std::make_tuple(
146       // Add some values with small exponent to test that NORMAL values also
147       // append their category.
148       .5L, 1.L, 2.L, 4.L, 42.L, 0.L, -0.L,
149       17 * static_cast<long double>(std::numeric_limits<double>::max()),
150       std::numeric_limits<long double>::infinity(),
151       -std::numeric_limits<long double>::infinity())));
152 }
153 
TEST(HashValueTest,Pointer)154 TEST(HashValueTest, Pointer) {
155   EXPECT_TRUE((is_hashable<int*>::value));
156   EXPECT_TRUE((is_hashable<int(*)(char, float)>::value));
157   EXPECT_TRUE((is_hashable<void(*)(int, int, ...)>::value));
158 
159   int i;
160   int* ptr = &i;
161   int* n = nullptr;
162 
163   EXPECT_TRUE(absl::VerifyTypeImplementsAbslHashCorrectly(
164       std::make_tuple(&i, ptr, nullptr, ptr + 1, n)));
165 }
166 
TEST(HashValueTest,PointerAlignment)167 TEST(HashValueTest, PointerAlignment) {
168   // We want to make sure that pointer alignment will not cause too many bits to
169   // be stuck.
170 
171   constexpr size_t kTotalSize = 1 << 20;
172   std::unique_ptr<char[]> data(new char[kTotalSize]);
173   constexpr size_t kLog2NumValues = 5;
174   constexpr size_t kNumValues = 1 << kLog2NumValues;
175 
176   for (size_t align = 1; align < kTotalSize / kNumValues;
177        align < 8 ? align += 1 : align < 1024 ? align += 8 : align += 32) {
178     SCOPED_TRACE(align);
179     ASSERT_LE(align * kNumValues, kTotalSize);
180 
181     size_t bits_or = 0;
182     size_t bits_and = ~size_t{};
183 
184     for (size_t i = 0; i < kNumValues; ++i) {
185       size_t hash = absl::Hash<void*>()(data.get() + i * align);
186       bits_or |= hash;
187       bits_and &= hash;
188     }
189 
190     // Limit the scope to the bits we would be using for Swisstable.
191     constexpr size_t kMask = (1 << (kLog2NumValues + 7)) - 1;
192     size_t stuck_bits = (~bits_or | bits_and) & kMask;
193     // Test that there are at most 2 stuck bits. Sometimes we see stuck_bits
194     // of 0x3.
195     EXPECT_LE(absl::popcount(stuck_bits), 2) << "0x" << std::hex << stuck_bits;
196   }
197 }
198 
TEST(HashValueTest,PointerToMember)199 TEST(HashValueTest, PointerToMember) {
200   struct Bass {
201     void q() {}
202   };
203 
204   struct A : Bass {
205     virtual ~A() = default;
206     virtual void vfa() {}
207 
208     static auto pq() -> void (A::*)() { return &A::q; }
209   };
210 
211   struct B : Bass {
212     virtual ~B() = default;
213     virtual void vfb() {}
214 
215     static auto pq() -> void (B::*)() { return &B::q; }
216   };
217 
218   struct Foo : A, B {
219     void f1() {}
220     void f2() const {}
221 
222     int g1() & { return 0; }
223     int g2() const & { return 0; }
224     int g3() && { return 0; }
225     int g4() const && { return 0; }
226 
227     int h1() & { return 0; }
228     int h2() const & { return 0; }
229     int h3() && { return 0; }
230     int h4() const && { return 0; }
231 
232     int a;
233     int b;
234 
235     const int c = 11;
236     const int d = 22;
237   };
238 
239   EXPECT_TRUE((is_hashable<float Foo::*>::value));
240   EXPECT_TRUE((is_hashable<double (Foo::*)(int, int)&&>::value));
241 
242   EXPECT_TRUE(absl::VerifyTypeImplementsAbslHashCorrectly(
243       std::make_tuple(&Foo::a, &Foo::b, static_cast<int Foo::*>(nullptr))));
244 
245   EXPECT_TRUE(absl::VerifyTypeImplementsAbslHashCorrectly(
246       std::make_tuple(&Foo::c, &Foo::d, static_cast<const int Foo::*>(nullptr),
247                       &Foo::a, &Foo::b)));
248 
249   EXPECT_TRUE(absl::VerifyTypeImplementsAbslHashCorrectly(std::make_tuple(
250       &Foo::f1, static_cast<void (Foo::*)()>(nullptr))));
251 
252   EXPECT_TRUE(absl::VerifyTypeImplementsAbslHashCorrectly(std::make_tuple(
253       &Foo::f2, static_cast<void (Foo::*)() const>(nullptr))));
254 
255   EXPECT_TRUE(absl::VerifyTypeImplementsAbslHashCorrectly(std::make_tuple(
256       &Foo::g1, &Foo::h1, static_cast<int (Foo::*)() &>(nullptr))));
257 
258   EXPECT_TRUE(absl::VerifyTypeImplementsAbslHashCorrectly(std::make_tuple(
259       &Foo::g2, &Foo::h2, static_cast<int (Foo::*)() const &>(nullptr))));
260 
261   EXPECT_TRUE(absl::VerifyTypeImplementsAbslHashCorrectly(std::make_tuple(
262       &Foo::g3, &Foo::h3, static_cast<int (Foo::*)() &&>(nullptr))));
263 
264   EXPECT_TRUE(absl::VerifyTypeImplementsAbslHashCorrectly(std::make_tuple(
265       &Foo::g4, &Foo::h4, static_cast<int (Foo::*)() const &&>(nullptr))));
266 
267   EXPECT_TRUE(absl::VerifyTypeImplementsAbslHashCorrectly(
268       std::make_tuple(static_cast<void (Foo::*)()>(&Foo::vfa),
269                       static_cast<void (Foo::*)()>(&Foo::vfb),
270                       static_cast<void (Foo::*)()>(nullptr))));
271 
272   EXPECT_TRUE(absl::VerifyTypeImplementsAbslHashCorrectly(
273       std::make_tuple(static_cast<void (Foo::*)()>(Foo::A::pq()),
274                       static_cast<void (Foo::*)()>(Foo::B::pq()),
275                       static_cast<void (Foo::*)()>(nullptr))));
276 }
277 
TEST(HashValueTest,PairAndTuple)278 TEST(HashValueTest, PairAndTuple) {
279   EXPECT_TRUE((is_hashable<std::pair<int, int>>::value));
280   EXPECT_TRUE((is_hashable<std::pair<const int&, const int&>>::value));
281   EXPECT_TRUE((is_hashable<std::tuple<int&, int&>>::value));
282   EXPECT_TRUE((is_hashable<std::tuple<int&&, int&&>>::value));
283 
284   EXPECT_TRUE(absl::VerifyTypeImplementsAbslHashCorrectly(std::make_tuple(
285       std::make_pair(0, 42), std::make_pair(0, 42), std::make_pair(42, 0),
286       std::make_pair(0, 0), std::make_pair(42, 42), std::make_pair(1, 42))));
287 
288   EXPECT_TRUE(absl::VerifyTypeImplementsAbslHashCorrectly(
289       std::make_tuple(std::make_tuple(0, 0, 0), std::make_tuple(0, 0, 42),
290                       std::make_tuple(0, 23, 0), std::make_tuple(17, 0, 0),
291                       std::make_tuple(42, 0, 0), std::make_tuple(3, 9, 9),
292                       std::make_tuple(0, 0, -42))));
293 
294   // Test that tuples of lvalue references work (so we need a few lvalues):
295   int a = 0, b = 1, c = 17, d = 23;
296   EXPECT_TRUE(absl::VerifyTypeImplementsAbslHashCorrectly(std::make_tuple(
297       std::tie(a, a), std::tie(a, b), std::tie(b, c), std::tie(c, d))));
298 
299   // Test that tuples of rvalue references work:
300   EXPECT_TRUE(absl::VerifyTypeImplementsAbslHashCorrectly(std::make_tuple(
301       std::forward_as_tuple(0, 0, 0), std::forward_as_tuple(0, 0, 42),
302       std::forward_as_tuple(0, 23, 0), std::forward_as_tuple(17, 0, 0),
303       std::forward_as_tuple(42, 0, 0), std::forward_as_tuple(3, 9, 9),
304       std::forward_as_tuple(0, 0, -42))));
305 }
306 
TEST(HashValueTest,CombineContiguousWorks)307 TEST(HashValueTest, CombineContiguousWorks) {
308   std::vector<std::tuple<int>> v1 = {std::make_tuple(1), std::make_tuple(3)};
309   std::vector<std::tuple<int>> v2 = {std::make_tuple(1), std::make_tuple(2)};
310 
311   auto vh1 = SpyHash(v1);
312   auto vh2 = SpyHash(v2);
313   EXPECT_NE(vh1, vh2);
314 }
315 
316 struct DummyDeleter {
317   template <typename T>
operator ()__anon29191fe00111::DummyDeleter318   void operator() (T*) {}
319 };
320 
321 struct SmartPointerEq {
322   template <typename T, typename U>
operator ()__anon29191fe00111::SmartPointerEq323   bool operator()(const T& t, const U& u) const {
324     return GetPtr(t) == GetPtr(u);
325   }
326 
327   template <typename T>
GetPtr__anon29191fe00111::SmartPointerEq328   static auto GetPtr(const T& t) -> decltype(&*t) {
329     return t ? &*t : nullptr;
330   }
331 
GetPtr__anon29191fe00111::SmartPointerEq332   static std::nullptr_t GetPtr(std::nullptr_t) { return nullptr; }
333 };
334 
TEST(HashValueTest,SmartPointers)335 TEST(HashValueTest, SmartPointers) {
336   EXPECT_TRUE((is_hashable<std::unique_ptr<int>>::value));
337   EXPECT_TRUE((is_hashable<std::unique_ptr<int, DummyDeleter>>::value));
338   EXPECT_TRUE((is_hashable<std::shared_ptr<int>>::value));
339 
340   int i, j;
341   std::unique_ptr<int, DummyDeleter> unique1(&i);
342   std::unique_ptr<int, DummyDeleter> unique2(&i);
343   std::unique_ptr<int, DummyDeleter> unique_other(&j);
344   std::unique_ptr<int, DummyDeleter> unique_null;
345 
346   std::shared_ptr<int> shared1(&i, DummyDeleter());
347   std::shared_ptr<int> shared2(&i, DummyDeleter());
348   std::shared_ptr<int> shared_other(&j, DummyDeleter());
349   std::shared_ptr<int> shared_null;
350 
351   // Sanity check of the Eq function.
352   ASSERT_TRUE(SmartPointerEq{}(unique1, shared1));
353   ASSERT_FALSE(SmartPointerEq{}(unique1, shared_other));
354   ASSERT_TRUE(SmartPointerEq{}(unique_null, nullptr));
355   ASSERT_FALSE(SmartPointerEq{}(shared2, nullptr));
356 
357   EXPECT_TRUE(absl::VerifyTypeImplementsAbslHashCorrectly(
358       std::forward_as_tuple(&i, nullptr,                    //
359                             unique1, unique2, unique_null,  //
360                             absl::make_unique<int>(),       //
361                             shared1, shared2, shared_null,  //
362                             std::make_shared<int>()),
363       SmartPointerEq{}));
364 }
365 
TEST(HashValueTest,FunctionPointer)366 TEST(HashValueTest, FunctionPointer) {
367   using Func = int (*)();
368   EXPECT_TRUE(is_hashable<Func>::value);
369 
370   Func p1 = [] { return 2; }, p2 = [] { return 1; };
371   EXPECT_TRUE(absl::VerifyTypeImplementsAbslHashCorrectly(
372       std::make_tuple(p1, p2, nullptr)));
373 }
374 
375 struct WrapInTuple {
376   template <typename T>
operator ()__anon29191fe00111::WrapInTuple377   std::tuple<int, T, size_t> operator()(const T& t) const {
378     return std::make_tuple(7, t, 0xdeadbeef);
379   }
380 };
381 
FlatCord(absl::string_view sv)382 absl::Cord FlatCord(absl::string_view sv) {
383   absl::Cord c(sv);
384   c.Flatten();
385   return c;
386 }
387 
FragmentedCord(absl::string_view sv)388 absl::Cord FragmentedCord(absl::string_view sv) {
389   if (sv.size() < 2) {
390     return absl::Cord(sv);
391   }
392   size_t halfway = sv.size() / 2;
393   std::vector<absl::string_view> parts = {sv.substr(0, halfway),
394                                           sv.substr(halfway)};
395   return absl::MakeFragmentedCord(parts);
396 }
397 
398 #ifdef ABSL_HAVE_INTRINSIC_INT128
TEST(HashValueTest,TestIntrinsicInt128)399 TEST(HashValueTest, TestIntrinsicInt128) {
400   EXPECT_TRUE((is_hashable<__int128_t>::value));
401   EXPECT_TRUE((is_hashable<__uint128_t>::value));
402 
403   absl::flat_hash_set<size_t> hashes;
404   std::vector<__uint128_t> values;
405   for (int i = 0; i < 128; ++i) {
406     // Some arbitrary pattern to check if changing each bit changes the hash.
407     static constexpr __uint128_t kPattern =
408         __uint128_t{0x0123456789abcdef} |
409         (__uint128_t{0x0123456789abcdef} << 64);
410     const __uint128_t value = kPattern ^ (__uint128_t{1} << i);
411     const __int128_t as_signed = static_cast<__int128_t>(value);
412 
413     values.push_back(value);
414     hashes.insert(absl::Hash<__uint128_t>{}(value));
415 
416     // Verify that the fast-path for MixingHashState does not break the hash.
417     EXPECT_EQ(absl::HashOf(value), absl::Hash<__uint128_t>{}(value));
418     EXPECT_EQ(absl::HashOf(as_signed), absl::Hash<__int128_t>{}(as_signed));
419   }
420   EXPECT_THAT(hashes, SizeIs(128));
421 
422   EXPECT_TRUE(absl::VerifyTypeImplementsAbslHashCorrectly(values));
423   EXPECT_TRUE(absl::VerifyTypeImplementsAbslHashCorrectly(
424       std::vector<__int128_t>(values.begin(), values.end())));
425 }
426 #endif  // ABSL_HAVE_INTRINSIC_INT128
427 
TEST(HashValueTest,Strings)428 TEST(HashValueTest, Strings) {
429   EXPECT_TRUE((is_hashable<std::string>::value));
430 
431   const std::string small = "foo";
432   const std::string dup = "foofoo";
433   const std::string large = std::string(2048, 'x');  // multiple of chunk size
434   const std::string huge = std::string(5000, 'a');   // not a multiple
435 
436   EXPECT_TRUE(absl::VerifyTypeImplementsAbslHashCorrectly(std::make_tuple(
437       std::string(), absl::string_view(), absl::Cord(), std::string(""),
438       absl::string_view(""), absl::Cord(""), std::string(small),
439       absl::string_view(small), absl::Cord(small), FragmentedCord(small),
440       std::string(dup), absl::string_view(dup), absl::Cord(dup),
441       std::string(large), absl::string_view(large), absl::Cord(large),
442       std::string(huge), absl::string_view(huge), FlatCord(huge),
443       FragmentedCord(huge))));
444 
445   // Also check that nested types maintain the same hash.
446   const WrapInTuple t{};
447   EXPECT_TRUE(absl::VerifyTypeImplementsAbslHashCorrectly(std::make_tuple(
448       t(std::string()), t(absl::string_view()), t(absl::Cord()),
449       t(std::string("")), t(absl::string_view("")), t(absl::Cord("")),
450       t(std::string(small)), t(absl::string_view(small)), t(absl::Cord(small)),
451       t(FragmentedCord(small)), t(std::string(dup)), t(absl::string_view(dup)),
452       t(absl::Cord(dup)), t(std::string(large)), t(absl::string_view(large)),
453       t(absl::Cord(large)), t(std::string(huge)), t(absl::string_view(huge)),
454       t(FlatCord(huge)), t(FragmentedCord(huge)))));
455 
456   // Make sure that hashing a `const char*` does not use its string-value.
457   EXPECT_NE(SpyHash(static_cast<const char*>("ABC")),
458             SpyHash(absl::string_view("ABC")));
459 }
460 
TEST(HashValueTest,StringsVector)461 TEST(HashValueTest, StringsVector) {
462   using Vec = std::vector<std::string>;
463   EXPECT_TRUE(absl::VerifyTypeImplementsAbslHashCorrectly(std::make_tuple(
464       Vec{"abc", "def"}, Vec{"abcde", "f"},
465       Vec{"abcdefghijklmnopqrstuvwxyz", "ABCDEFGHIJKLMNOPQRSTUVWXYZ"},
466       Vec{"abcdefghijklmnopqrstuvwxyzABCDEFGHIJKLMNOPQRSTUVWXY", "Z"})));
467 }
468 
TEST(HashValueTest,WString)469 TEST(HashValueTest, WString) {
470   EXPECT_TRUE((is_hashable<std::wstring>::value));
471 
472   EXPECT_TRUE(absl::VerifyTypeImplementsAbslHashCorrectly(std::make_tuple(
473       std::wstring(), std::wstring(L"ABC"), std::wstring(L"ABC"),
474       std::wstring(L"Some other different string"),
475       std::wstring(L"Iñtërnâtiônàlizætiøn"))));
476 }
477 
TEST(HashValueTest,U16String)478 TEST(HashValueTest, U16String) {
479   EXPECT_TRUE((is_hashable<std::u16string>::value));
480 
481   EXPECT_TRUE(absl::VerifyTypeImplementsAbslHashCorrectly(std::make_tuple(
482       std::u16string(), std::u16string(u"ABC"), std::u16string(u"ABC"),
483       std::u16string(u"Some other different string"),
484       std::u16string(u"Iñtërnâtiônàlizætiøn"))));
485 }
486 
TEST(HashValueTest,U32String)487 TEST(HashValueTest, U32String) {
488   EXPECT_TRUE((is_hashable<std::u32string>::value));
489 
490   EXPECT_TRUE(absl::VerifyTypeImplementsAbslHashCorrectly(std::make_tuple(
491       std::u32string(), std::u32string(U"ABC"), std::u32string(U"ABC"),
492       std::u32string(U"Some other different string"),
493       std::u32string(U"Iñtërnâtiônàlizætiøn"))));
494 }
495 
TEST(HashValueTest,WStringView)496 TEST(HashValueTest, WStringView) {
497 #ifndef ABSL_HAVE_STD_STRING_VIEW
498   GTEST_SKIP();
499 #else
500   EXPECT_TRUE((is_hashable<std::wstring_view>::value));
501 
502   EXPECT_TRUE(absl::VerifyTypeImplementsAbslHashCorrectly(std::make_tuple(
503       std::wstring_view(), std::wstring_view(L"ABC"), std::wstring_view(L"ABC"),
504       std::wstring_view(L"Some other different string_view"),
505       std::wstring_view(L"Iñtërnâtiônàlizætiøn"))));
506 #endif
507 }
508 
TEST(HashValueTest,U16StringView)509 TEST(HashValueTest, U16StringView) {
510 #ifndef ABSL_HAVE_STD_STRING_VIEW
511   GTEST_SKIP();
512 #else
513   EXPECT_TRUE((is_hashable<std::u16string_view>::value));
514 
515   EXPECT_TRUE(absl::VerifyTypeImplementsAbslHashCorrectly(
516       std::make_tuple(std::u16string_view(), std::u16string_view(u"ABC"),
517                       std::u16string_view(u"ABC"),
518                       std::u16string_view(u"Some other different string_view"),
519                       std::u16string_view(u"Iñtërnâtiônàlizætiøn"))));
520 #endif
521 }
522 
TEST(HashValueTest,U32StringView)523 TEST(HashValueTest, U32StringView) {
524 #ifndef ABSL_HAVE_STD_STRING_VIEW
525   GTEST_SKIP();
526 #else
527   EXPECT_TRUE((is_hashable<std::u32string_view>::value));
528 
529   EXPECT_TRUE(absl::VerifyTypeImplementsAbslHashCorrectly(
530       std::make_tuple(std::u32string_view(), std::u32string_view(U"ABC"),
531                       std::u32string_view(U"ABC"),
532                       std::u32string_view(U"Some other different string_view"),
533                       std::u32string_view(U"Iñtërnâtiônàlizætiøn"))));
534 #endif
535 }
536 
TEST(HashValueTest,StdFilesystemPath)537 TEST(HashValueTest, StdFilesystemPath) {
538 #ifndef ABSL_INTERNAL_STD_FILESYSTEM_PATH_HASH_AVAILABLE
539   GTEST_SKIP() << "std::filesystem::path is unavailable on this platform";
540 #else
541   EXPECT_TRUE((is_hashable<std::filesystem::path>::value));
542 
543   // clang-format off
544   const auto kTestCases = std::make_tuple(
545       std::filesystem::path(),
546       std::filesystem::path("/"),
547 #ifndef __GLIBCXX__
548       // libstdc++ has a known issue normalizing "//".
549       // https://gcc.gnu.org/bugzilla/show_bug.cgi?id=106452
550       std::filesystem::path("//"),
551 #endif
552       std::filesystem::path("/a/b"),
553       std::filesystem::path("/a//b"),
554       std::filesystem::path("a/b"),
555       std::filesystem::path("a/b/"),
556       std::filesystem::path("a//b"),
557       std::filesystem::path("a//b/"),
558       std::filesystem::path("c:/"),
559       std::filesystem::path("c:\\"),
560       std::filesystem::path("c:\\/"),
561       std::filesystem::path("c:\\//"),
562       std::filesystem::path("c://"),
563       std::filesystem::path("c://\\"),
564       std::filesystem::path("/e/p"),
565       std::filesystem::path("/s/../e/p"),
566       std::filesystem::path("e/p"),
567       std::filesystem::path("s/../e/p"));
568   // clang-format on
569 
570   EXPECT_TRUE(absl::VerifyTypeImplementsAbslHashCorrectly(kTestCases));
571 #endif
572 }
573 
TEST(HashValueTest,StdArray)574 TEST(HashValueTest, StdArray) {
575   EXPECT_TRUE((is_hashable<std::array<int, 3>>::value));
576 
577   EXPECT_TRUE(absl::VerifyTypeImplementsAbslHashCorrectly(
578       std::make_tuple(std::array<int, 3>{}, std::array<int, 3>{{0, 23, 42}})));
579 }
580 
TEST(HashValueTest,StdBitset)581 TEST(HashValueTest, StdBitset) {
582   EXPECT_TRUE((is_hashable<std::bitset<257>>::value));
583 
584   EXPECT_TRUE(absl::VerifyTypeImplementsAbslHashCorrectly(
585       {std::bitset<2>("00"), std::bitset<2>("01"), std::bitset<2>("10"),
586        std::bitset<2>("11")}));
587   EXPECT_TRUE(absl::VerifyTypeImplementsAbslHashCorrectly(
588       {std::bitset<5>("10101"), std::bitset<5>("10001"), std::bitset<5>()}));
589 
590   constexpr int kNumBits = 256;
591   std::array<std::string, 6> bit_strings;
592   bit_strings.fill(std::string(kNumBits, '1'));
593   bit_strings[1][0] = '0';
594   bit_strings[2][1] = '0';
595   bit_strings[3][kNumBits / 3] = '0';
596   bit_strings[4][kNumBits - 2] = '0';
597   bit_strings[5][kNumBits - 1] = '0';
598   EXPECT_TRUE(absl::VerifyTypeImplementsAbslHashCorrectly(
599       {std::bitset<kNumBits>(bit_strings[0].c_str()),
600        std::bitset<kNumBits>(bit_strings[1].c_str()),
601        std::bitset<kNumBits>(bit_strings[2].c_str()),
602        std::bitset<kNumBits>(bit_strings[3].c_str()),
603        std::bitset<kNumBits>(bit_strings[4].c_str()),
604        std::bitset<kNumBits>(bit_strings[5].c_str())}));
605 }  // namespace
606 
607 // Private type that only supports AbslHashValue to make sure our chosen hash
608 // implementation is recursive within absl::Hash.
609 // It uses std::abs() on the value to provide different bitwise representations
610 // of the same logical value.
611 struct Private {
612   int i;
613   template <typename H>
AbslHashValue(H h,Private p)614   friend H AbslHashValue(H h, Private p) {
615     return H::combine(std::move(h), std::abs(p.i));
616   }
617 
operator ==(Private a,Private b)618   friend bool operator==(Private a, Private b) {
619     return std::abs(a.i) == std::abs(b.i);
620   }
621 
operator <<(std::ostream & o,Private p)622   friend std::ostream& operator<<(std::ostream& o, Private p) {
623     return o << p.i;
624   }
625 };
626 
627 // Test helper for combine_piecewise_buffer.  It holds a string_view to the
628 // buffer-to-be-hashed.  Its AbslHashValue specialization will split up its
629 // contents at the character offsets requested.
630 class PiecewiseHashTester {
631  public:
632   // Create a hash view of a buffer to be hashed contiguously.
PiecewiseHashTester(absl::string_view buf)633   explicit PiecewiseHashTester(absl::string_view buf)
634       : buf_(buf), piecewise_(false), split_locations_() {}
635 
636   // Create a hash view of a buffer to be hashed piecewise, with breaks at the
637   // given locations.
PiecewiseHashTester(absl::string_view buf,std::set<size_t> split_locations)638   PiecewiseHashTester(absl::string_view buf, std::set<size_t> split_locations)
639       : buf_(buf),
640         piecewise_(true),
641         split_locations_(std::move(split_locations)) {}
642 
643   template <typename H>
AbslHashValue(H h,const PiecewiseHashTester & p)644   friend H AbslHashValue(H h, const PiecewiseHashTester& p) {
645     if (!p.piecewise_) {
646       return H::combine_contiguous(std::move(h), p.buf_.data(), p.buf_.size());
647     }
648     absl::hash_internal::PiecewiseCombiner combiner;
649     if (p.split_locations_.empty()) {
650       h = combiner.add_buffer(std::move(h), p.buf_.data(), p.buf_.size());
651       return combiner.finalize(std::move(h));
652     }
653     size_t begin = 0;
654     for (size_t next : p.split_locations_) {
655       absl::string_view chunk = p.buf_.substr(begin, next - begin);
656       h = combiner.add_buffer(std::move(h), chunk.data(), chunk.size());
657       begin = next;
658     }
659     absl::string_view last_chunk = p.buf_.substr(begin);
660     if (!last_chunk.empty()) {
661       h = combiner.add_buffer(std::move(h), last_chunk.data(),
662                               last_chunk.size());
663     }
664     return combiner.finalize(std::move(h));
665   }
666 
667  private:
668   absl::string_view buf_;
669   bool piecewise_;
670   std::set<size_t> split_locations_;
671 };
672 
673 // Dummy object that hashes as two distinct contiguous buffers, "foo" followed
674 // by "bar"
675 struct DummyFooBar {
676   template <typename H>
AbslHashValue(H h,const DummyFooBar &)677   friend H AbslHashValue(H h, const DummyFooBar&) {
678     const char* foo = "foo";
679     const char* bar = "bar";
680     h = H::combine_contiguous(std::move(h), foo, 3);
681     h = H::combine_contiguous(std::move(h), bar, 3);
682     return h;
683   }
684 };
685 
TEST(HashValueTest,CombinePiecewiseBuffer)686 TEST(HashValueTest, CombinePiecewiseBuffer) {
687   absl::Hash<PiecewiseHashTester> hash;
688 
689   // Check that hashing an empty buffer through the piecewise API works.
690   EXPECT_EQ(hash(PiecewiseHashTester("")), hash(PiecewiseHashTester("", {})));
691 
692   // Similarly, small buffers should give consistent results
693   EXPECT_EQ(hash(PiecewiseHashTester("foobar")),
694             hash(PiecewiseHashTester("foobar", {})));
695   EXPECT_EQ(hash(PiecewiseHashTester("foobar")),
696             hash(PiecewiseHashTester("foobar", {3})));
697 
698   // But hashing "foobar" in pieces gives a different answer than hashing "foo"
699   // contiguously, then "bar" contiguously.
700   EXPECT_NE(hash(PiecewiseHashTester("foobar", {3})),
701             absl::Hash<DummyFooBar>()(DummyFooBar{}));
702 
703   // Test hashing a large buffer incrementally, broken up in several different
704   // ways.  Arrange for breaks on and near the stride boundaries to look for
705   // off-by-one errors in the implementation.
706   //
707   // This test is run on a buffer that is a multiple of the stride size, and one
708   // that isn't.
709   for (size_t big_buffer_size : {1024u * 2 + 512u, 1024u * 3}) {
710     SCOPED_TRACE(big_buffer_size);
711     std::string big_buffer;
712     for (size_t i = 0; i < big_buffer_size; ++i) {
713       // Arbitrary string
714       big_buffer.push_back(32 + (i * (i / 3)) % 64);
715     }
716     auto big_buffer_hash = hash(PiecewiseHashTester(big_buffer));
717 
718     const int possible_breaks = 9;
719     size_t breaks[possible_breaks] = {1,    512,  1023, 1024, 1025,
720                                       1536, 2047, 2048, 2049};
721     for (unsigned test_mask = 0; test_mask < (1u << possible_breaks);
722          ++test_mask) {
723       SCOPED_TRACE(test_mask);
724       std::set<size_t> break_locations;
725       for (int j = 0; j < possible_breaks; ++j) {
726         if (test_mask & (1u << j)) {
727           break_locations.insert(breaks[j]);
728         }
729       }
730       EXPECT_EQ(
731           hash(PiecewiseHashTester(big_buffer, std::move(break_locations))),
732           big_buffer_hash);
733     }
734   }
735 }
736 
TEST(HashValueTest,PrivateSanity)737 TEST(HashValueTest, PrivateSanity) {
738   // Sanity check that Private is working as the tests below expect it to work.
739   EXPECT_TRUE(is_hashable<Private>::value);
740   EXPECT_NE(SpyHash(Private{0}), SpyHash(Private{1}));
741   EXPECT_EQ(SpyHash(Private{1}), SpyHash(Private{1}));
742 }
743 
TEST(HashValueTest,Optional)744 TEST(HashValueTest, Optional) {
745   EXPECT_TRUE(is_hashable<absl::optional<Private>>::value);
746 
747   using O = absl::optional<Private>;
748   EXPECT_TRUE(absl::VerifyTypeImplementsAbslHashCorrectly(
749       std::make_tuple(O{}, O{{1}}, O{{-1}}, O{{10}})));
750 }
751 
TEST(HashValueTest,Variant)752 TEST(HashValueTest, Variant) {
753   using V = absl::variant<Private, std::string>;
754   EXPECT_TRUE(is_hashable<V>::value);
755 
756   EXPECT_TRUE(absl::VerifyTypeImplementsAbslHashCorrectly(std::make_tuple(
757       V(Private{1}), V(Private{-1}), V(Private{2}), V("ABC"), V("BCD"))));
758 
759 #if ABSL_META_INTERNAL_STD_HASH_SFINAE_FRIENDLY_
760   struct S {};
761   EXPECT_FALSE(is_hashable<absl::variant<S>>::value);
762 #endif
763 }
764 
TEST(HashValueTest,ReferenceWrapper)765 TEST(HashValueTest, ReferenceWrapper) {
766   EXPECT_TRUE(is_hashable<std::reference_wrapper<Private>>::value);
767 
768   Private p1{1}, p10{10};
769   EXPECT_TRUE(absl::VerifyTypeImplementsAbslHashCorrectly(std::make_tuple(
770       p1, p10, std::ref(p1), std::ref(p10), std::cref(p1), std::cref(p10))));
771 
772   EXPECT_TRUE(is_hashable<std::reference_wrapper<int>>::value);
773   int one = 1, ten = 10;
774   EXPECT_TRUE(absl::VerifyTypeImplementsAbslHashCorrectly(std::make_tuple(
775       one, ten, std::ref(one), std::ref(ten), std::cref(one), std::cref(ten))));
776 
777   EXPECT_TRUE(absl::VerifyTypeImplementsAbslHashCorrectly(
778       std::make_tuple(std::tuple<std::reference_wrapper<int>>(std::ref(one)),
779                       std::tuple<std::reference_wrapper<int>>(std::ref(ten)),
780                       std::tuple<int>(one), std::tuple<int>(ten))));
781 }
782 
783 template <typename T, typename = void>
784 struct IsHashCallable : std::false_type {};
785 
786 template <typename T>
787 struct IsHashCallable<T, absl::void_t<decltype(std::declval<absl::Hash<T>>()(
788                             std::declval<const T&>()))>> : std::true_type {};
789 
790 template <typename T, typename = void>
791 struct IsAggregateInitializable : std::false_type {};
792 
793 template <typename T>
794 struct IsAggregateInitializable<T, absl::void_t<decltype(T{})>>
795     : std::true_type {};
796 
TEST(IsHashableTest,ValidHash)797 TEST(IsHashableTest, ValidHash) {
798   EXPECT_TRUE((is_hashable<int>::value));
799   EXPECT_TRUE(std::is_default_constructible<absl::Hash<int>>::value);
800   EXPECT_TRUE(std::is_copy_constructible<absl::Hash<int>>::value);
801   EXPECT_TRUE(std::is_move_constructible<absl::Hash<int>>::value);
802   EXPECT_TRUE(absl::is_copy_assignable<absl::Hash<int>>::value);
803   EXPECT_TRUE(absl::is_move_assignable<absl::Hash<int>>::value);
804   EXPECT_TRUE(IsHashCallable<int>::value);
805   EXPECT_TRUE(IsAggregateInitializable<absl::Hash<int>>::value);
806 }
807 
808 #if ABSL_META_INTERNAL_STD_HASH_SFINAE_FRIENDLY_
TEST(IsHashableTest,PoisonHash)809 TEST(IsHashableTest, PoisonHash) {
810   struct X {};
811   EXPECT_FALSE((is_hashable<X>::value));
812   EXPECT_FALSE(std::is_default_constructible<absl::Hash<X>>::value);
813   EXPECT_FALSE(std::is_copy_constructible<absl::Hash<X>>::value);
814   EXPECT_FALSE(std::is_move_constructible<absl::Hash<X>>::value);
815   EXPECT_FALSE(absl::is_copy_assignable<absl::Hash<X>>::value);
816   EXPECT_FALSE(absl::is_move_assignable<absl::Hash<X>>::value);
817   EXPECT_FALSE(IsHashCallable<X>::value);
818 #if !defined(__GNUC__) || defined(__clang__)
819   // TODO(b/144368551): As of GCC 8.4 this does not compile.
820   EXPECT_FALSE(IsAggregateInitializable<absl::Hash<X>>::value);
821 #endif
822 }
823 #endif  // ABSL_META_INTERNAL_STD_HASH_SFINAE_FRIENDLY_
824 
825 // Hashable types
826 //
827 // These types exist simply to exercise various AbslHashValue behaviors, so
828 // they are named by what their AbslHashValue overload does.
829 struct NoOp {
830   template <typename HashCode>
AbslHashValue(HashCode h,NoOp n)831   friend HashCode AbslHashValue(HashCode h, NoOp n) {
832     return h;
833   }
834 };
835 
836 struct EmptyCombine {
837   template <typename HashCode>
AbslHashValue(HashCode h,EmptyCombine e)838   friend HashCode AbslHashValue(HashCode h, EmptyCombine e) {
839     return HashCode::combine(std::move(h));
840   }
841 };
842 
843 template <typename Int>
844 struct CombineIterative {
845   template <typename HashCode>
AbslHashValue(HashCode h,CombineIterative c)846   friend HashCode AbslHashValue(HashCode h, CombineIterative c) {
847     for (int i = 0; i < 5; ++i) {
848       h = HashCode::combine(std::move(h), Int(i));
849     }
850     return h;
851   }
852 };
853 
854 template <typename Int>
855 struct CombineVariadic {
856   template <typename HashCode>
AbslHashValue(HashCode h,CombineVariadic c)857   friend HashCode AbslHashValue(HashCode h, CombineVariadic c) {
858     return HashCode::combine(std::move(h), Int(0), Int(1), Int(2), Int(3),
859                              Int(4));
860   }
861 };
862 enum class InvokeTag {
863   kUniquelyRepresented,
864   kHashValue,
865 #if ABSL_HASH_INTERNAL_SUPPORT_LEGACY_HASH_
866   kLegacyHash,
867 #endif  // ABSL_HASH_INTERNAL_SUPPORT_LEGACY_HASH_
868   kStdHash,
869   kNone
870 };
871 
872 template <InvokeTag T>
873 using InvokeTagConstant = std::integral_constant<InvokeTag, T>;
874 
875 template <InvokeTag... Tags>
876 struct MinTag;
877 
878 template <InvokeTag a, InvokeTag b, InvokeTag... Tags>
879 struct MinTag<a, b, Tags...> : MinTag<(a < b ? a : b), Tags...> {};
880 
881 template <InvokeTag a>
882 struct MinTag<a> : InvokeTagConstant<a> {};
883 
884 template <InvokeTag... Tags>
885 struct CustomHashType {
CustomHashType__anon29191fe00111::CustomHashType886   explicit CustomHashType(size_t val) : value(val) {}
887   size_t value;
888 };
889 
890 template <InvokeTag allowed, InvokeTag... tags>
891 struct EnableIfContained
892     : std::enable_if<absl::disjunction<
893           std::integral_constant<bool, allowed == tags>...>::value> {};
894 
895 template <
896     typename H, InvokeTag... Tags,
897     typename = typename EnableIfContained<InvokeTag::kHashValue, Tags...>::type>
AbslHashValue(H state,CustomHashType<Tags...> t)898 H AbslHashValue(H state, CustomHashType<Tags...> t) {
899   static_assert(MinTag<Tags...>::value == InvokeTag::kHashValue, "");
900   return H::combine(std::move(state),
901                     t.value + static_cast<int>(InvokeTag::kHashValue));
902 }
903 
904 }  // namespace
905 
906 namespace absl {
907 ABSL_NAMESPACE_BEGIN
908 namespace hash_internal {
909 template <InvokeTag... Tags>
910 struct is_uniquely_represented<
911     CustomHashType<Tags...>,
912     typename EnableIfContained<InvokeTag::kUniquelyRepresented, Tags...>::type>
913     : std::true_type {};
914 }  // namespace hash_internal
915 ABSL_NAMESPACE_END
916 }  // namespace absl
917 
918 #if ABSL_HASH_INTERNAL_SUPPORT_LEGACY_HASH_
919 namespace ABSL_INTERNAL_LEGACY_HASH_NAMESPACE {
920 template <InvokeTag... Tags>
921 struct hash<CustomHashType<Tags...>> {
922   template <InvokeTag... TagsIn, typename = typename EnableIfContained<
923                                      InvokeTag::kLegacyHash, TagsIn...>::type>
operator ()ABSL_INTERNAL_LEGACY_HASH_NAMESPACE::hash924   size_t operator()(CustomHashType<TagsIn...> t) const {
925     static_assert(MinTag<Tags...>::value == InvokeTag::kLegacyHash, "");
926     return t.value + static_cast<int>(InvokeTag::kLegacyHash);
927   }
928 };
929 }  // namespace ABSL_INTERNAL_LEGACY_HASH_NAMESPACE
930 #endif  // ABSL_HASH_INTERNAL_SUPPORT_LEGACY_HASH_
931 
932 namespace std {
933 template <InvokeTag... Tags>  // NOLINT
934 struct hash<CustomHashType<Tags...>> {
935   template <InvokeTag... TagsIn, typename = typename EnableIfContained<
936                                      InvokeTag::kStdHash, TagsIn...>::type>
operator ()std::hash937   size_t operator()(CustomHashType<TagsIn...> t) const {
938     static_assert(MinTag<Tags...>::value == InvokeTag::kStdHash, "");
939     return t.value + static_cast<int>(InvokeTag::kStdHash);
940   }
941 };
942 }  // namespace std
943 
944 namespace {
945 
946 template <typename... T>
TestCustomHashType(InvokeTagConstant<InvokeTag::kNone>,T...)947 void TestCustomHashType(InvokeTagConstant<InvokeTag::kNone>, T...) {
948   using type = CustomHashType<T::value...>;
949   SCOPED_TRACE(testing::PrintToString(std::vector<InvokeTag>{T::value...}));
950   EXPECT_TRUE(is_hashable<type>());
951   EXPECT_TRUE(is_hashable<const type>());
952   EXPECT_TRUE(is_hashable<const type&>());
953 
954   const size_t offset = static_cast<int>(std::min({T::value...}));
955   EXPECT_EQ(SpyHash(type(7)), SpyHash(size_t{7 + offset}));
956 }
957 
TestCustomHashType(InvokeTagConstant<InvokeTag::kNone>)958 void TestCustomHashType(InvokeTagConstant<InvokeTag::kNone>) {
959 #if ABSL_META_INTERNAL_STD_HASH_SFINAE_FRIENDLY_
960   // is_hashable is false if we don't support any of the hooks.
961   using type = CustomHashType<>;
962   EXPECT_FALSE(is_hashable<type>());
963   EXPECT_FALSE(is_hashable<const type>());
964   EXPECT_FALSE(is_hashable<const type&>());
965 #endif  // ABSL_META_INTERNAL_STD_HASH_SFINAE_FRIENDLY_
966 }
967 
968 template <InvokeTag Tag, typename... T>
TestCustomHashType(InvokeTagConstant<Tag> tag,T...t)969 void TestCustomHashType(InvokeTagConstant<Tag> tag, T... t) {
970   constexpr auto next = static_cast<InvokeTag>(static_cast<int>(Tag) + 1);
971   TestCustomHashType(InvokeTagConstant<next>(), tag, t...);
972   TestCustomHashType(InvokeTagConstant<next>(), t...);
973 }
974 
TEST(HashTest,CustomHashType)975 TEST(HashTest, CustomHashType) {
976   TestCustomHashType(InvokeTagConstant<InvokeTag{}>());
977 }
978 
TEST(HashTest,NoOpsAreEquivalent)979 TEST(HashTest, NoOpsAreEquivalent) {
980   EXPECT_EQ(Hash<NoOp>()({}), Hash<NoOp>()({}));
981   EXPECT_EQ(Hash<NoOp>()({}), Hash<EmptyCombine>()({}));
982 }
983 
984 template <typename T>
985 class HashIntTest : public testing::Test {
986 };
987 TYPED_TEST_SUITE_P(HashIntTest);
988 
TYPED_TEST_P(HashIntTest,BasicUsage)989 TYPED_TEST_P(HashIntTest, BasicUsage) {
990   EXPECT_NE(Hash<NoOp>()({}), Hash<TypeParam>()(0));
991   EXPECT_NE(Hash<NoOp>()({}),
992             Hash<TypeParam>()(std::numeric_limits<TypeParam>::max()));
993   if (std::numeric_limits<TypeParam>::min() != 0) {
994     EXPECT_NE(Hash<NoOp>()({}),
995               Hash<TypeParam>()(std::numeric_limits<TypeParam>::min()));
996   }
997 
998   EXPECT_EQ(Hash<CombineIterative<TypeParam>>()({}),
999             Hash<CombineVariadic<TypeParam>>()({}));
1000 }
1001 
1002 REGISTER_TYPED_TEST_SUITE_P(HashIntTest, BasicUsage);
1003 using IntTypes = testing::Types<unsigned char, char, int, int32_t, int64_t,
1004                                 uint32_t, uint64_t, size_t>;
1005 INSTANTIATE_TYPED_TEST_SUITE_P(My, HashIntTest, IntTypes);
1006 
1007 struct StructWithPadding {
1008   char c;
1009   int i;
1010 
1011   template <typename H>
AbslHashValue(H hash_state,const StructWithPadding & s)1012   friend H AbslHashValue(H hash_state, const StructWithPadding& s) {
1013     return H::combine(std::move(hash_state), s.c, s.i);
1014   }
1015 };
1016 
1017 static_assert(sizeof(StructWithPadding) > sizeof(char) + sizeof(int),
1018               "StructWithPadding doesn't have padding");
1019 static_assert(std::is_standard_layout<StructWithPadding>::value, "");
1020 
1021 // This check has to be disabled because libstdc++ doesn't support it.
1022 // static_assert(std::is_trivially_constructible<StructWithPadding>::value, "");
1023 
1024 template <typename T>
1025 struct ArraySlice {
1026   T* begin;
1027   T* end;
1028 
1029   template <typename H>
AbslHashValue(H hash_state,const ArraySlice & slice)1030   friend H AbslHashValue(H hash_state, const ArraySlice& slice) {
1031     for (auto t = slice.begin; t != slice.end; ++t) {
1032       hash_state = H::combine(std::move(hash_state), *t);
1033     }
1034     return hash_state;
1035   }
1036 };
1037 
TEST(HashTest,HashNonUniquelyRepresentedType)1038 TEST(HashTest, HashNonUniquelyRepresentedType) {
1039   // Create equal StructWithPadding objects that are known to have non-equal
1040   // padding bytes.
1041   static const size_t kNumStructs = 10;
1042   unsigned char buffer1[kNumStructs * sizeof(StructWithPadding)];
1043   std::memset(buffer1, 0, sizeof(buffer1));
1044   auto* s1 = reinterpret_cast<StructWithPadding*>(buffer1);
1045 
1046   unsigned char buffer2[kNumStructs * sizeof(StructWithPadding)];
1047   std::memset(buffer2, 255, sizeof(buffer2));
1048   auto* s2 = reinterpret_cast<StructWithPadding*>(buffer2);
1049   for (size_t i = 0; i < kNumStructs; ++i) {
1050     SCOPED_TRACE(i);
1051     s1[i].c = s2[i].c = static_cast<char>('0' + i);
1052     s1[i].i = s2[i].i = static_cast<int>(i);
1053     ASSERT_FALSE(memcmp(buffer1 + i * sizeof(StructWithPadding),
1054                         buffer2 + i * sizeof(StructWithPadding),
1055                         sizeof(StructWithPadding)) == 0)
1056         << "Bug in test code: objects do not have unequal"
1057         << " object representations";
1058   }
1059 
1060   EXPECT_EQ(Hash<StructWithPadding>()(s1[0]), Hash<StructWithPadding>()(s2[0]));
1061   EXPECT_EQ(Hash<ArraySlice<StructWithPadding>>()({s1, s1 + kNumStructs}),
1062             Hash<ArraySlice<StructWithPadding>>()({s2, s2 + kNumStructs}));
1063 }
1064 
TEST(HashTest,StandardHashContainerUsage)1065 TEST(HashTest, StandardHashContainerUsage) {
1066   std::unordered_map<int, std::string, Hash<int>> map = {{0, "foo"},
1067                                                          {42, "bar"}};
1068 
1069   EXPECT_NE(map.find(0), map.end());
1070   EXPECT_EQ(map.find(1), map.end());
1071   EXPECT_NE(map.find(0u), map.end());
1072 }
1073 
1074 struct ConvertibleFromNoOp {
ConvertibleFromNoOp__anon29191fe00411::ConvertibleFromNoOp1075   ConvertibleFromNoOp(NoOp) {}  // NOLINT(runtime/explicit)
1076 
1077   template <typename H>
AbslHashValue(H hash_state,ConvertibleFromNoOp)1078   friend H AbslHashValue(H hash_state, ConvertibleFromNoOp) {
1079     return H::combine(std::move(hash_state), 1);
1080   }
1081 };
1082 
TEST(HashTest,HeterogeneousCall)1083 TEST(HashTest, HeterogeneousCall) {
1084   EXPECT_NE(Hash<ConvertibleFromNoOp>()(NoOp()),
1085             Hash<NoOp>()(NoOp()));
1086 }
1087 
TEST(IsUniquelyRepresentedTest,SanityTest)1088 TEST(IsUniquelyRepresentedTest, SanityTest) {
1089   using absl::hash_internal::is_uniquely_represented;
1090 
1091   EXPECT_TRUE(is_uniquely_represented<unsigned char>::value);
1092   EXPECT_TRUE(is_uniquely_represented<int>::value);
1093   EXPECT_FALSE(is_uniquely_represented<bool>::value);
1094   EXPECT_FALSE(is_uniquely_represented<int*>::value);
1095 }
1096 
1097 struct IntAndString {
1098   int i;
1099   std::string s;
1100 
1101   template <typename H>
AbslHashValue(H hash_state,IntAndString int_and_string)1102   friend H AbslHashValue(H hash_state, IntAndString int_and_string) {
1103     return H::combine(std::move(hash_state), int_and_string.s,
1104                       int_and_string.i);
1105   }
1106 };
1107 
TEST(HashTest,SmallValueOn64ByteBoundary)1108 TEST(HashTest, SmallValueOn64ByteBoundary) {
1109   Hash<IntAndString>()(IntAndString{0, std::string(63, '0')});
1110 }
1111 
TEST(HashTest,TypeErased)1112 TEST(HashTest, TypeErased) {
1113   EXPECT_TRUE((is_hashable<TypeErasedValue<size_t>>::value));
1114   EXPECT_TRUE((is_hashable<std::pair<TypeErasedValue<size_t>, int>>::value));
1115 
1116   EXPECT_EQ(SpyHash(TypeErasedValue<size_t>(7)), SpyHash(size_t{7}));
1117   EXPECT_NE(SpyHash(TypeErasedValue<size_t>(7)), SpyHash(size_t{13}));
1118 
1119   EXPECT_EQ(SpyHash(std::make_pair(TypeErasedValue<size_t>(7), 17)),
1120             SpyHash(std::make_pair(size_t{7}, 17)));
1121 
1122   absl::flat_hash_set<absl::flat_hash_set<int>> ss = {{1, 2}, {3, 4}};
1123   TypeErasedContainer<absl::flat_hash_set<absl::flat_hash_set<int>>> es = {
1124       absl::flat_hash_set<int>{1, 2}, {3, 4}};
1125   absl::flat_hash_set<TypeErasedContainer<absl::flat_hash_set<int>>> se = {
1126       {1, 2}, {3, 4}};
1127   EXPECT_EQ(SpyHash(ss), SpyHash(es));
1128   EXPECT_EQ(SpyHash(ss), SpyHash(se));
1129 }
1130 
1131 struct ValueWithBoolConversion {
operator bool__anon29191fe00411::ValueWithBoolConversion1132   operator bool() const { return false; }
1133   int i;
1134 };
1135 
1136 }  // namespace
1137 namespace std {
1138 template <>
1139 struct hash<ValueWithBoolConversion> {
operator ()std::hash1140   size_t operator()(ValueWithBoolConversion v) {
1141     return static_cast<size_t>(v.i);
1142   }
1143 };
1144 }  // namespace std
1145 
1146 namespace {
1147 
TEST(HashTest,DoesNotUseImplicitConversionsToBool)1148 TEST(HashTest, DoesNotUseImplicitConversionsToBool) {
1149   EXPECT_NE(absl::Hash<ValueWithBoolConversion>()(ValueWithBoolConversion{0}),
1150             absl::Hash<ValueWithBoolConversion>()(ValueWithBoolConversion{1}));
1151 }
1152 
TEST(HashOf,MatchesHashForSingleArgument)1153 TEST(HashOf, MatchesHashForSingleArgument) {
1154   std::string s = "forty two";
1155   double d = 42.0;
1156   std::tuple<int, int> t{4, 2};
1157   int i = 42;
1158   int neg_i = -42;
1159   int16_t i16 = 42;
1160   int16_t neg_i16 = -42;
1161   int8_t i8 = 42;
1162   int8_t neg_i8 = -42;
1163 
1164   EXPECT_EQ(absl::HashOf(s), absl::Hash<std::string>{}(s));
1165   EXPECT_EQ(absl::HashOf(d), absl::Hash<double>{}(d));
1166   EXPECT_EQ(absl::HashOf(t), (absl::Hash<std::tuple<int, int>>{}(t)));
1167   EXPECT_EQ(absl::HashOf(i), absl::Hash<int>{}(i));
1168   EXPECT_EQ(absl::HashOf(neg_i), absl::Hash<int>{}(neg_i));
1169   EXPECT_EQ(absl::HashOf(i16), absl::Hash<int16_t>{}(i16));
1170   EXPECT_EQ(absl::HashOf(neg_i16), absl::Hash<int16_t>{}(neg_i16));
1171   EXPECT_EQ(absl::HashOf(i8), absl::Hash<int8_t>{}(i8));
1172   EXPECT_EQ(absl::HashOf(neg_i8), absl::Hash<int8_t>{}(neg_i8));
1173 }
1174 
TEST(HashOf,MatchesHashOfTupleForMultipleArguments)1175 TEST(HashOf, MatchesHashOfTupleForMultipleArguments) {
1176   std::string hello = "hello";
1177   std::string world = "world";
1178 
1179   EXPECT_EQ(absl::HashOf(), absl::HashOf(std::make_tuple()));
1180   EXPECT_EQ(absl::HashOf(hello), absl::HashOf(std::make_tuple(hello)));
1181   EXPECT_EQ(absl::HashOf(hello, world),
1182             absl::HashOf(std::make_tuple(hello, world)));
1183 }
1184 
1185 template <typename T>
1186 std::true_type HashOfExplicitParameter(decltype(absl::HashOf<T>(0))) {
1187   return {};
1188 }
1189 template <typename T>
HashOfExplicitParameter(size_t)1190 std::false_type HashOfExplicitParameter(size_t) {
1191   return {};
1192 }
1193 
TEST(HashOf,CantPassExplicitTemplateParameters)1194 TEST(HashOf, CantPassExplicitTemplateParameters) {
1195   EXPECT_FALSE(HashOfExplicitParameter<int>(0));
1196 }
1197 
1198 struct TypeErasedHashStateUser {
1199   int a;
1200   std::string b;
1201 
1202   template <typename H>
AbslHashValue(H state,const TypeErasedHashStateUser & value)1203   friend H AbslHashValue(H state, const TypeErasedHashStateUser& value) {
1204     absl::HashState type_erased_state = absl::HashState::Create(&state);
1205     absl::HashState::combine(std::move(type_erased_state), value.a, value.b);
1206     return state;
1207   }
1208 };
1209 
TEST(HashOf,MatchesTypeErasedHashState)1210 TEST(HashOf, MatchesTypeErasedHashState) {
1211   std::string s = "s";
1212   EXPECT_EQ(absl::HashOf(1, s), absl::Hash<TypeErasedHashStateUser>{}(
1213                                     TypeErasedHashStateUser{1, s}));
1214 }
1215 
1216 }  // namespace
1217