xref: /aosp_15_r20/external/cronet/base/hash/hash.cc (revision 6777b5387eb2ff775bb5750e3f5d96f37fb7352b)
1 // Copyright 2014 The Chromium Authors
2 // Use of this source code is governed by a BSD-style license that can be
3 // found in the LICENSE file.
4 
5 #include "base/hash/hash.h"
6 
7 #include <string_view>
8 
9 #include "base/check_op.h"
10 #include "base/notreached.h"
11 #include "base/rand_util.h"
12 #include "base/third_party/cityhash/city.h"
13 #include "build/build_config.h"
14 
15 // Definition in base/third_party/superfasthash/superfasthash.c. (Third-party
16 // code did not come with its own header file, so declaring the function here.)
17 // Note: This algorithm is also in Blink under Source/wtf/StringHasher.h.
18 extern "C" uint32_t SuperFastHash(const char* data, int len);
19 
20 namespace base {
21 
22 namespace {
23 
FastHashImpl(base::span<const uint8_t> data)24 size_t FastHashImpl(base::span<const uint8_t> data) {
25   // We use the updated CityHash within our namespace (not the deprecated
26   // version from third_party/smhasher).
27   if constexpr (sizeof(size_t) > 4) {
28     return base::internal::cityhash_v111::CityHash64(
29         reinterpret_cast<const char*>(data.data()), data.size());
30   } else {
31     return base::internal::cityhash_v111::CityHash32(
32         reinterpret_cast<const char*>(data.data()), data.size());
33   }
34 }
35 
36 // Implement hashing for pairs of at-most 32 bit integer values.
37 // When size_t is 32 bits, we turn the 64-bit hash code into 32 bits by using
38 // multiply-add hashing. This algorithm, as described in
39 // Theorem 4.3.3 of the thesis "Über die Komplexität der Multiplikation in
40 // eingeschränkten Branchingprogrammmodellen" by Woelfel, is:
41 //
42 //   h32(x32, y32) = (h64(x32, y32) * rand_odd64 + rand16 * 2^16) % 2^64 / 2^32
43 //
44 // Contact [email protected] for any questions.
HashInts32Impl(uint32_t value1,uint32_t value2)45 size_t HashInts32Impl(uint32_t value1, uint32_t value2) {
46   uint64_t value1_64 = value1;
47   uint64_t hash64 = (value1_64 << 32) | value2;
48 
49   if (sizeof(size_t) >= sizeof(uint64_t))
50     return static_cast<size_t>(hash64);
51 
52   uint64_t odd_random = 481046412LL << 32 | 1025306955LL;
53   uint32_t shift_random = 10121U << 16;
54 
55   hash64 = hash64 * odd_random + shift_random;
56   size_t high_bits =
57       static_cast<size_t>(hash64 >> (8 * (sizeof(uint64_t) - sizeof(size_t))));
58   return high_bits;
59 }
60 
61 // Implement hashing for pairs of up-to 64-bit integer values.
62 // We use the compound integer hash method to produce a 64-bit hash code, by
63 // breaking the two 64-bit inputs into 4 32-bit values:
64 // http://opendatastructures.org/versions/edition-0.1d/ods-java/node33.html#SECTION00832000000000000000
65 // Then we reduce our result to 32 bits if required, similar to above.
HashInts64Impl(uint64_t value1,uint64_t value2)66 size_t HashInts64Impl(uint64_t value1, uint64_t value2) {
67   uint32_t short_random1 = 842304669U;
68   uint32_t short_random2 = 619063811U;
69   uint32_t short_random3 = 937041849U;
70   uint32_t short_random4 = 3309708029U;
71 
72   uint32_t value1a = static_cast<uint32_t>(value1 & 0xffffffff);
73   uint32_t value1b = static_cast<uint32_t>((value1 >> 32) & 0xffffffff);
74   uint32_t value2a = static_cast<uint32_t>(value2 & 0xffffffff);
75   uint32_t value2b = static_cast<uint32_t>((value2 >> 32) & 0xffffffff);
76 
77   uint64_t product1 = static_cast<uint64_t>(value1a) * short_random1;
78   uint64_t product2 = static_cast<uint64_t>(value1b) * short_random2;
79   uint64_t product3 = static_cast<uint64_t>(value2a) * short_random3;
80   uint64_t product4 = static_cast<uint64_t>(value2b) * short_random4;
81 
82   uint64_t hash64 = product1 + product2 + product3 + product4;
83 
84   if (sizeof(size_t) >= sizeof(uint64_t))
85     return static_cast<size_t>(hash64);
86 
87   uint64_t odd_random = 1578233944LL << 32 | 194370989LL;
88   uint32_t shift_random = 20591U << 16;
89 
90   hash64 = hash64 * odd_random + shift_random;
91   size_t high_bits =
92       static_cast<size_t>(hash64 >> (8 * (sizeof(uint64_t) - sizeof(size_t))));
93   return high_bits;
94 }
95 
96 // The random seed is used to perturb the output of base::FastHash() and
97 // base::HashInts() so that it is only deterministic within the lifetime of a
98 // process. This prevents inadvertent dependencies on the underlying
99 // implementation, e.g. anything that persists the hash value and expects it to
100 // be unchanging will break.
101 //
102 // Note: this is the same trick absl uses to generate a random seed. This is
103 // more robust than using base::RandBytes(), which can fail inside a sandboxed
104 // environment. Note that without ASLR, the seed won't be quite as random...
105 #if DCHECK_IS_ON()
106 constexpr const void* kSeed = &kSeed;
107 #endif
108 
109 template <typename T>
Scramble(T input)110 T Scramble(T input) {
111 #if DCHECK_IS_ON()
112   return HashInts64Impl(input, reinterpret_cast<uintptr_t>(kSeed));
113 #else
114   return input;
115 #endif
116 }
117 
118 }  // namespace
119 
FastHash(base::span<const uint8_t> data)120 size_t FastHash(base::span<const uint8_t> data) {
121   return Scramble(FastHashImpl(data));
122 }
123 
Hash(base::span<const uint8_t> data)124 uint32_t Hash(base::span<const uint8_t> data) {
125   // Currently our in-memory hash is the same as the persistent hash. The
126   // split between in-memory and persistent hash functions is maintained to
127   // allow the in-memory hash function to be updated in the future.
128   return PersistentHash(data);
129 }
130 
Hash(const std::string & str)131 uint32_t Hash(const std::string& str) {
132   return PersistentHash(as_byte_span(str));
133 }
134 
PersistentHash(span<const uint8_t> data)135 uint32_t PersistentHash(span<const uint8_t> data) {
136   // This hash function must not change, since it is designed to be persistable
137   // to disk.
138   if (data.size() > static_cast<size_t>(std::numeric_limits<int>::max())) {
139     NOTREACHED();
140     return 0;
141   }
142   return ::SuperFastHash(reinterpret_cast<const char*>(data.data()),
143                          static_cast<int>(data.size()));
144 }
145 
PersistentHash(const void * data,size_t length)146 uint32_t PersistentHash(const void* data, size_t length) {
147   return PersistentHash(make_span(static_cast<const uint8_t*>(data), length));
148 }
149 
PersistentHash(std::string_view str)150 uint32_t PersistentHash(std::string_view str) {
151   return PersistentHash(as_bytes(make_span(str)));
152 }
153 
HashInts32(uint32_t value1,uint32_t value2)154 size_t HashInts32(uint32_t value1, uint32_t value2) {
155   return Scramble(HashInts32Impl(value1, value2));
156 }
157 
HashInts64(uint64_t value1,uint64_t value2)158 size_t HashInts64(uint64_t value1, uint64_t value2) {
159   return Scramble(HashInts64Impl(value1, value2));
160 }
161 
162 }  // namespace base
163