• Home
  • Features
  • Pricing
  • Docs
  • Announcements
  • Sign In

randombit / botan / 13597425450

28 Feb 2025 10:16PM UTC coverage: 91.687% (-0.006%) from 91.693%
13597425450

push

github

web-flow
Merge pull request #4728 from randombit/jack/use-std-endian

Use std::endian more, remove endian checks in `CPUID`

95836 of 104525 relevant lines covered (91.69%)

11717992.75 hits per line

Source File
Press 'n' to go to next uncovered line, 'b' for previous

95.46
/src/tests/test_utils.cpp
1
/*
2
* (C) 2015,2018,2024 Jack Lloyd
3
* (C) 2016 Daniel Neus, Rohde & Schwarz Cybersecurity
4
* (C) 2017 René Korthaus, Rohde & Schwarz Cybersecurity
5
*
6
* Botan is released under the Simplified BSD License (see license.txt)
7
*/
8

9
#include "tests.h"
10
#include <botan/version.h>
11
#include <botan/internal/bit_ops.h>
12
#include <botan/internal/calendar.h>
13
#include <botan/internal/charset.h>
14
#include <botan/internal/fmt.h>
15
#include <botan/internal/int_utils.h>
16
#include <botan/internal/loadstor.h>
17
#include <botan/internal/parsing.h>
18
#include <botan/internal/rounding.h>
19
#include <botan/internal/stl_util.h>
20
#include <botan/internal/target_info.h>
21

22
#include <bit>
23
#include <ctime>
24
#include <functional>
25

26
#if defined(BOTAN_HAS_CPUID)
27
   #include <botan/internal/cpuid.h>
28
#endif
29

30
#if defined(BOTAN_HAS_POLY_DBL)
31
   #include <botan/internal/poly_dbl.h>
32
#endif
33

34
#if defined(BOTAN_HAS_UUID)
35
   #include <botan/uuid.h>
36
#endif
37

38
namespace Botan_Tests {
39

40
namespace {
41

42
class Utility_Function_Tests final : public Test {
×
43
   public:
44
      std::vector<Test::Result> run() override {
1✔
45
         std::vector<Test::Result> results;
1✔
46

47
         results.push_back(test_checked_add());
2✔
48
         results.push_back(test_checked_mul());
2✔
49
         results.push_back(test_checked_cast());
2✔
50
         results.push_back(test_round_up());
2✔
51
         results.push_back(test_loadstore());
2✔
52
         results.push_back(test_loadstore_ambiguity());
2✔
53
         results.push_back(test_loadstore_fallback());
2✔
54
         results.push_back(test_loadstore_constexpr());
2✔
55
         return Botan::concat(results, test_copy_out_be_le());
3✔
56
      }
1✔
57

58
   private:
59
      Test::Result test_checked_add() {
1✔
60
         Test::Result result("checked_add");
1✔
61

62
         const size_t large = static_cast<size_t>(-5);
1✔
63
         const size_t zero = 0;
1✔
64

65
         for(int si = -15; si != 15; ++si) {
31✔
66
            const size_t i = static_cast<size_t>(si);
30✔
67
            auto sum1 = Botan::checked_add<size_t>(i, zero, zero, zero, large);
30✔
68
            auto sum2 = Botan::checked_add<size_t>(large, zero, zero, zero, i);
30✔
69

70
            result.confirm("checked_add looks at all args", sum1 == sum2);
90✔
71

72
            if(i < 5) {
30✔
73
               result.test_eq("checked_add worked", sum1.value(), i + large);
10✔
74
            } else {
75
               result.confirm("checked_add did not return a result", !sum1.has_value());
50✔
76
            }
77
         }
78

79
         auto& rng = Test::rng();
1✔
80

81
         for(size_t i = 0; i != 100; ++i) {
101✔
82
            const uint16_t x = Botan::make_uint16(rng.next_byte(), rng.next_byte());
100✔
83
            const uint16_t y = Botan::make_uint16(rng.next_byte(), rng.next_byte());
100✔
84

85
            const uint32_t ref = static_cast<uint32_t>(x) + y;
100✔
86

87
            if(auto z = Botan::checked_add(x, y)) {
200✔
88
               result.test_int_eq("checked_add adds", z.value(), ref);
106✔
89
            } else {
90
               result.confirm("checked_add checks", (ref >> 16) > 0);
94✔
91
            }
92
         }
93

94
         return result;
1✔
95
      }
×
96

97
      Test::Result test_checked_mul() {
1✔
98
         Test::Result result("checked_mul");
1✔
99

100
         auto& rng = Test::rng();
1✔
101

102
         for(size_t i = 0; i != 100; ++i) {
101✔
103
            const uint16_t x = Botan::make_uint16(rng.next_byte(), rng.next_byte());
100✔
104
            const uint16_t y = Botan::make_uint16(rng.next_byte(), rng.next_byte());
100✔
105

106
            const uint32_t ref = static_cast<uint32_t>(x) * y;
100✔
107

108
            if(auto z = Botan::checked_mul(x, y)) {
200✔
109
               result.test_int_eq("checked_mul multiplies", z.value(), ref);
×
110
            } else {
111
               result.confirm("checked_mul checks", (ref >> 16) > 0);
200✔
112
            }
113
         }
114

115
         return result;
1✔
116
      }
×
117

118
      Test::Result test_checked_cast() {
1✔
119
         Test::Result result("checked_cast");
1✔
120

121
         const uint32_t large = static_cast<uint32_t>(-1);
1✔
122
         const uint32_t is_16_bits = 0x8123;
1✔
123
         const uint32_t is_8_bits = 0x89;
1✔
124

125
         result.test_throws("checked_cast checks", [&] { Botan::checked_cast_to<uint16_t>(large); });
3✔
126
         result.test_throws("checked_cast checks", [&] { Botan::checked_cast_to<uint8_t>(large); });
3✔
127

128
         result.test_int_eq("checked_cast converts", Botan::checked_cast_to<uint32_t>(large), large);
2✔
129
         result.test_int_eq("checked_cast converts", Botan::checked_cast_to<uint16_t>(is_16_bits), 0x8123);
2✔
130
         result.test_int_eq("checked_cast converts", Botan::checked_cast_to<uint8_t>(is_8_bits), 0x89);
2✔
131

132
         return result;
1✔
133
      }
×
134

135
      Test::Result test_round_up() {
1✔
136
         Test::Result result("Util round_up");
1✔
137

138
         // clang-format off
139
         const std::vector<size_t> inputs = {
1✔
140
            0, 1, 2, 3, 4, 9, 10, 32, 99, 100, 101, 255, 256, 1000, 10000,
141
            65535, 65536, 65537,
142
         };
1✔
143

144
         const std::vector<size_t> alignments = {
1✔
145
            1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 16, 32, 50, 64, 100, 512, 521,
146
            1000, 1023, 1024, 1025, 10000, 65535, 65536
147
         };
1✔
148
         // clang-format on
149

150
         for(size_t i : inputs) {
19✔
151
            for(size_t m : alignments) {
450✔
152
               try {
432✔
153
                  const size_t z = Botan::round_up(i, m);
432✔
154

155
                  result.confirm("z % m == 0", z % m == 0);
864✔
156
                  result.confirm("z >= i", z >= i);
864✔
157
                  result.confirm("z <= i + m", z <= i + m);
864✔
158
               } catch(Botan::Exception& e) {
×
159
                  result.test_failure(Botan::fmt("round_up({},{})", i, m), e.what());
×
160
               }
×
161
            }
162
         }
163

164
         result.test_throws("Integer overflow is detected", []() { Botan::round_up(static_cast<size_t>(-1), 1024); });
2✔
165

166
         return result;
1✔
167
      }
1✔
168

169
      using TestInt64 = Botan::Strong<uint64_t, struct TestInt64_>;
170
      using TestInt32 = Botan::Strong<uint32_t, struct TestInt64_>;
171
      using TestVectorSink = Botan::Strong<std::vector<uint8_t>, struct TestVectorSink_>;
172

173
      enum class TestEnum64 : uint64_t {
174
         _1 = 0x1234567890ABCDEF,
175
         _2 = 0xEFCDAB9078563412,
176
      };
177

178
      enum class TestEnum32 : uint32_t {
179
         _1 = 0x12345678,
180
         _2 = 0x78563412,
181
      };
182

183
      static Test::Result test_loadstore() {
1✔
184
         Test::Result result("Util load/store");
1✔
185

186
         const std::vector<uint8_t> membuf = Botan::hex_decode("00112233445566778899AABBCCDDEEFF");
1✔
187
         const uint8_t* mem = membuf.data();
1✔
188

189
         const uint16_t in16 = 0x1234;
1✔
190
         const uint32_t in32 = 0xA0B0C0D0;
1✔
191
         const uint64_t in64 = 0xABCDEF0123456789;
1✔
192

193
         result.test_is_eq<uint8_t>(Botan::get_byte<0>(in32), 0xA0);
1✔
194
         result.test_is_eq<uint8_t>(Botan::get_byte<1>(in32), 0xB0);
1✔
195
         result.test_is_eq<uint8_t>(Botan::get_byte<2>(in32), 0xC0);
1✔
196
         result.test_is_eq<uint8_t>(Botan::get_byte<3>(in32), 0xD0);
1✔
197

198
         result.test_is_eq<uint16_t>(Botan::make_uint16(0xAA, 0xBB), 0xAABB);
1✔
199
         result.test_is_eq<uint32_t>(Botan::make_uint32(0x01, 0x02, 0x03, 0x04), 0x01020304);
1✔
200

201
         result.test_is_eq<uint16_t>(Botan::load_be<uint16_t>(mem, 0), 0x0011);
1✔
202
         result.test_is_eq<uint16_t>(Botan::load_be<uint16_t>(mem, 1), 0x2233);
1✔
203
         result.test_is_eq<uint16_t>(Botan::load_be<uint16_t>(mem, 2), 0x4455);
1✔
204
         result.test_is_eq<uint16_t>(Botan::load_be<uint16_t>(mem, 3), 0x6677);
1✔
205

206
         result.test_is_eq<uint16_t>(Botan::load_le<uint16_t>(mem, 0), 0x1100);
1✔
207
         result.test_is_eq<uint16_t>(Botan::load_le<uint16_t>(mem, 1), 0x3322);
1✔
208
         result.test_is_eq<uint16_t>(Botan::load_le<uint16_t>(mem, 2), 0x5544);
1✔
209
         result.test_is_eq<uint16_t>(Botan::load_le<uint16_t>(mem, 3), 0x7766);
1✔
210

211
         result.test_is_eq<uint32_t>(Botan::load_be<uint32_t>(mem, 0), 0x00112233);
1✔
212
         result.test_is_eq<uint32_t>(Botan::load_be<uint32_t>(mem, 1), 0x44556677);
1✔
213
         result.test_is_eq<uint32_t>(Botan::load_be<uint32_t>(mem, 2), 0x8899AABB);
1✔
214
         result.test_is_eq<uint32_t>(Botan::load_be<uint32_t>(mem, 3), 0xCCDDEEFF);
1✔
215

216
         result.test_is_eq<uint32_t>(Botan::load_le<uint32_t>(mem, 0), 0x33221100);
1✔
217
         result.test_is_eq<uint32_t>(Botan::load_le<uint32_t>(mem, 1), 0x77665544);
1✔
218
         result.test_is_eq<uint32_t>(Botan::load_le<uint32_t>(mem, 2), 0xBBAA9988);
1✔
219
         result.test_is_eq<uint32_t>(Botan::load_le<uint32_t>(mem, 3), 0xFFEEDDCC);
1✔
220

221
         result.test_is_eq<uint64_t>(Botan::load_be<uint64_t>(mem, 0), 0x0011223344556677);
1✔
222
         result.test_is_eq<uint64_t>(Botan::load_be<uint64_t>(mem, 1), 0x8899AABBCCDDEEFF);
1✔
223

224
         result.test_is_eq<uint64_t>(Botan::load_le<uint64_t>(mem, 0), 0x7766554433221100);
1✔
225
         result.test_is_eq<uint64_t>(Botan::load_le<uint64_t>(mem, 1), 0xFFEEDDCCBBAA9988);
1✔
226

227
         // Check misaligned loads:
228
         result.test_is_eq<uint16_t>(Botan::load_be<uint16_t>(mem + 1, 0), 0x1122);
1✔
229
         result.test_is_eq<uint16_t>(Botan::load_le<uint16_t>(mem + 3, 0), 0x4433);
1✔
230

231
         result.test_is_eq<uint32_t>(Botan::load_be<uint32_t>(mem + 1, 1), 0x55667788);
1✔
232
         result.test_is_eq<uint32_t>(Botan::load_le<uint32_t>(mem + 3, 1), 0xAA998877);
1✔
233

234
         result.test_is_eq<uint64_t>(Botan::load_be<uint64_t>(mem + 1, 0), 0x1122334455667788);
1✔
235
         result.test_is_eq<uint64_t>(Botan::load_le<uint64_t>(mem + 7, 0), 0xEEDDCCBBAA998877);
1✔
236
         result.test_is_eq<uint64_t>(Botan::load_le<uint64_t>(mem + 5, 0), 0xCCBBAA9988776655);
1✔
237

238
         uint8_t outbuf[16] = {0};
1✔
239

240
         for(size_t offset = 0; offset != 7; ++offset) {
8✔
241
            uint8_t* out = outbuf + offset;
7✔
242

243
            Botan::store_be(in16, out);
7✔
244
            result.test_is_eq<uint8_t>(out[0], 0x12);
7✔
245
            result.test_is_eq<uint8_t>(out[1], 0x34);
7✔
246

247
            Botan::store_le(in16, out);
7✔
248
            result.test_is_eq<uint8_t>(out[0], 0x34);
7✔
249
            result.test_is_eq<uint8_t>(out[1], 0x12);
7✔
250

251
            Botan::store_be(in32, out);
7✔
252
            result.test_is_eq<uint8_t>(out[0], 0xA0);
7✔
253
            result.test_is_eq<uint8_t>(out[1], 0xB0);
7✔
254
            result.test_is_eq<uint8_t>(out[2], 0xC0);
7✔
255
            result.test_is_eq<uint8_t>(out[3], 0xD0);
7✔
256

257
            Botan::store_le(in32, out);
7✔
258
            result.test_is_eq<uint8_t>(out[0], 0xD0);
7✔
259
            result.test_is_eq<uint8_t>(out[1], 0xC0);
7✔
260
            result.test_is_eq<uint8_t>(out[2], 0xB0);
7✔
261
            result.test_is_eq<uint8_t>(out[3], 0xA0);
7✔
262

263
            Botan::store_be(in64, out);
7✔
264
            result.test_is_eq<uint8_t>(out[0], 0xAB);
7✔
265
            result.test_is_eq<uint8_t>(out[1], 0xCD);
7✔
266
            result.test_is_eq<uint8_t>(out[2], 0xEF);
7✔
267
            result.test_is_eq<uint8_t>(out[3], 0x01);
7✔
268
            result.test_is_eq<uint8_t>(out[4], 0x23);
7✔
269
            result.test_is_eq<uint8_t>(out[5], 0x45);
7✔
270
            result.test_is_eq<uint8_t>(out[6], 0x67);
7✔
271
            result.test_is_eq<uint8_t>(out[7], 0x89);
7✔
272

273
            Botan::store_le(in64, out);
7✔
274
            result.test_is_eq<uint8_t>(out[0], 0x89);
7✔
275
            result.test_is_eq<uint8_t>(out[1], 0x67);
7✔
276
            result.test_is_eq<uint8_t>(out[2], 0x45);
7✔
277
            result.test_is_eq<uint8_t>(out[3], 0x23);
7✔
278
            result.test_is_eq<uint8_t>(out[4], 0x01);
7✔
279
            result.test_is_eq<uint8_t>(out[5], 0xEF);
7✔
280
            result.test_is_eq<uint8_t>(out[6], 0xCD);
7✔
281
            result.test_is_eq<uint8_t>(out[7], 0xAB);
7✔
282
         }
283

284
         std::array<uint8_t, 8> outarr;
1✔
285
         uint16_t i0, i1, i2, i3;
1✔
286
         Botan::store_be(in64, outarr);
1✔
287

288
         Botan::load_be(outarr, i0, i1, i2, i3);
1✔
289
         result.test_is_eq<uint16_t>(i0, 0xABCD);
1✔
290
         result.test_is_eq<uint16_t>(i1, 0xEF01);
1✔
291
         result.test_is_eq<uint16_t>(i2, 0x2345);
1✔
292
         result.test_is_eq<uint16_t>(i3, 0x6789);
1✔
293

294
         Botan::load_le(std::span{outarr}.first<6>(), i0, i1, i2);
1✔
295
         result.test_is_eq<uint16_t>(i0, 0xCDAB);
1✔
296
         result.test_is_eq<uint16_t>(i1, 0x01EF);
1✔
297
         result.test_is_eq<uint16_t>(i2, 0x4523);
1✔
298
         result.test_is_eq<uint16_t>(i3, 0x6789);  // remains unchanged
1✔
299

300
         Botan::store_le(in64, outarr);
1✔
301

302
         Botan::load_le(outarr, i0, i1, i2, i3);
1✔
303
         result.test_is_eq<uint16_t>(i0, 0x6789);
1✔
304
         result.test_is_eq<uint16_t>(i1, 0x2345);
1✔
305
         result.test_is_eq<uint16_t>(i2, 0xEF01);
1✔
306
         result.test_is_eq<uint16_t>(i3, 0xABCD);
1✔
307

308
         Botan::load_be(std::span{outarr}.first<6>(), i0, i1, i2);
1✔
309
         result.test_is_eq<uint16_t>(i0, 0x8967);
1✔
310
         result.test_is_eq<uint16_t>(i1, 0x4523);
1✔
311
         result.test_is_eq<uint16_t>(i2, 0x01EF);
1✔
312
         result.test_is_eq<uint16_t>(i3, 0xABCD);  // remains unchanged
1✔
313

314
         i0 = 0xAA11;
1✔
315
         i1 = 0xBB22;
1✔
316
         i2 = 0xCC33;
1✔
317
         i3 = 0xDD44;
1✔
318
         Botan::store_be(outarr, i0, i1, i2, i3);
1✔
319
         result.test_is_eq(outarr, {0xAA, 0x11, 0xBB, 0x22, 0xCC, 0x33, 0xDD, 0x44});
1✔
320
         std::vector<uint8_t> outvec(8);
1✔
321
         Botan::store_be(outvec, i0, i1, i2, i3);
1✔
322
         result.test_is_eq(outvec, Botan::hex_decode("AA11BB22CC33DD44"));
1✔
323

324
         Botan::store_le(outarr, i0, i1, i2, i3);
1✔
325
         result.test_is_eq(outarr, {0x11, 0xAA, 0x22, 0xBB, 0x33, 0xCC, 0x44, 0xDD});
1✔
326
         Botan::store_le(outvec, i0, i1, i2, i3);
1✔
327
         result.test_is_eq(outvec, Botan::hex_decode("11AA22BB33CC44DD"));
1✔
328

329
#if !defined(BOTAN_TERMINATE_ON_ASSERTS)
330
         std::vector<uint8_t> sink56bits(7);
331
         std::vector<uint8_t> sink72bits(9);
332
         result.test_throws("store_le with a buffer that is too small",
333
                            [&] { Botan::store_le(sink56bits, i0, i1, i2, i3); });
334
         result.test_throws("store_le with a buffer that is too big",
335
                            [&] { Botan::store_le(sink72bits, i0, i1, i2, i3); });
336
         result.test_throws("store_be with a buffer that is too small",
337
                            [&] { Botan::store_be(sink56bits, i0, i1, i2, i3); });
338
         result.test_throws("store_be with a buffer that is too big",
339
                            [&] { Botan::store_be(sink72bits, i0, i1, i2, i3); });
340
#endif
341

342
         // can store multiple values straight into a collection
343
         auto out64_array_be = Botan::store_be(i0, i1, i2, i3);
1✔
344
         auto out64_vec_be = Botan::store_be<std::vector<uint8_t>>(i0, i1, i2, i3);
1✔
345
         auto out64_strong_be = Botan::store_be<TestVectorSink>(i0, i1, i2, i3);
1✔
346
         result.test_is_eq(out64_array_be, {0xAA, 0x11, 0xBB, 0x22, 0xCC, 0x33, 0xDD, 0x44});
1✔
347
         result.test_is_eq(out64_vec_be, Botan::hex_decode("AA11BB22CC33DD44"));
1✔
348
         result.test_is_eq(out64_strong_be, TestVectorSink(Botan::hex_decode("AA11BB22CC33DD44")));
2✔
349
         auto out64_array_le = Botan::store_le(i0, i1, i2, i3);
1✔
350
         auto out64_vec_le = Botan::store_le<std::vector<uint8_t>>(i0, i1, i2, i3);
1✔
351
         auto out64_strong_le = Botan::store_le<TestVectorSink>(i0, i1, i2, i3);
1✔
352
         result.test_is_eq(out64_array_le, {0x11, 0xAA, 0x22, 0xBB, 0x33, 0xCC, 0x44, 0xDD});
1✔
353
         result.test_is_eq(out64_vec_le, Botan::hex_decode("11AA22BB33CC44DD"));
1✔
354
         result.test_is_eq(out64_strong_le, TestVectorSink(Botan::hex_decode("11AA22BB33CC44DD")));
2✔
355

356
         result.test_is_eq(in16, Botan::load_be(Botan::store_be(in16)));
1✔
357
         result.test_is_eq(in32, Botan::load_be(Botan::store_be(in32)));
1✔
358
         result.test_is_eq(in64, Botan::load_be(Botan::store_be(in64)));
1✔
359

360
         result.test_is_eq(in16, Botan::load_le(Botan::store_le(in16)));
1✔
361
         result.test_is_eq(in32, Botan::load_le(Botan::store_le(in32)));
1✔
362
         result.test_is_eq(in64, Botan::load_le(Botan::store_le(in64)));
1✔
363

364
         // Test that the runtime detects incompatible range sizes
365
#if !defined(BOTAN_TERMINATE_ON_ASSERTS)
366
         std::vector<uint16_t> too_big16(4);
367
         std::vector<uint16_t> too_small16(1);
368
         result.test_throws("load_le with incompatible buffers",
369
                            [&] { Botan::load_le(too_big16, Botan::hex_decode("BAADB00B")); });
370
         result.test_throws("load_le with incompatible buffers",
371
                            [&] { Botan::load_le(too_small16, Botan::hex_decode("BAADB00B")); });
372
         result.test_throws("load_be with incompatible buffers",
373
                            [&] { Botan::load_be(too_big16, Botan::hex_decode("BAADB00B")); });
374
         result.test_throws("load_be with incompatible buffers",
375
                            [&] { Botan::load_be(too_small16, Botan::hex_decode("BAADB00B")); });
376

377
         std::vector<uint8_t> too_big8(4);
378
         std::vector<uint8_t> too_small8(1);
379
         result.test_throws("store_le with incompatible buffers",
380
                            [&] { Botan::store_le(too_big8, std::array<uint16_t, 1>{}); });
381
         result.test_throws("store_le with incompatible buffers",
382
                            [&] { Botan::store_le(too_small8, std::array<uint16_t, 1>{}); });
383
         result.test_throws("store_be with incompatible buffers",
384
                            [&] { Botan::store_be(too_big8, std::array<uint16_t, 1>{}); });
385
         result.test_throws("store_be with incompatible buffers",
386
                            [&] { Botan::store_be(too_small8, std::array<uint16_t, 1>{}); });
387
#endif
388

389
         // Test store of entire ranges
390
         std::array<uint16_t, 2> in16_array = {0x0A0B, 0x0C0D};
1✔
391
         result.test_is_eq(Botan::store_be<std::vector<uint8_t>>(in16_array), Botan::hex_decode("0A0B0C0D"));
3✔
392
         result.test_is_eq(Botan::store_le<std::vector<uint8_t>>(in16_array), Botan::hex_decode("0B0A0D0C"));
3✔
393

394
         std::vector<uint16_t> in16_vector = {0x0A0B, 0x0C0D};
1✔
395
         result.test_is_eq(Botan::store_be<std::vector<uint8_t>>(in16_vector), Botan::hex_decode("0A0B0C0D"));
3✔
396
         result.test_is_eq(Botan::store_le<std::vector<uint8_t>>(in16_vector), Botan::hex_decode("0B0A0D0C"));
3✔
397

398
         std::array<uint8_t, 4> out_array;
1✔
399
         Botan::store_be(out_array, in16_array);
1✔
400
         result.test_is_eq(out_array, std::array<uint8_t, 4>{0x0A, 0x0B, 0x0C, 0x0D});
1✔
401
         Botan::store_le(out_array, in16_array);
1✔
402
         result.test_is_eq(out_array, std::array<uint8_t, 4>{0x0B, 0x0A, 0x0D, 0x0C});
1✔
403

404
         const auto be_inferred = Botan::store_be(in16_array);
1✔
405
         result.test_is_eq(be_inferred, std::array<uint8_t, 4>{0x0A, 0x0B, 0x0C, 0x0D});
1✔
406
         const auto le_inferred = Botan::store_le(in16_array);
1✔
407
         result.test_is_eq(le_inferred, std::array<uint8_t, 4>{0x0B, 0x0A, 0x0D, 0x0C});
1✔
408

409
         // Test load of entire ranges
410
         const auto in_buffer = Botan::hex_decode("AABBCCDD");
1✔
411
         auto out16_array_be = Botan::load_be<std::array<uint16_t, 2>>(in_buffer);
1✔
412
         result.test_is_eq<uint16_t>(out16_array_be[0], 0xAABB);
1✔
413
         result.test_is_eq<uint16_t>(out16_array_be[1], 0xCCDD);
1✔
414
         auto out16_vec_be = Botan::load_be<std::vector<uint16_t>>(in_buffer);
1✔
415
         result.test_eq_sz("be-vector has expected size", out16_vec_be.size(), 2);
1✔
416
         result.test_is_eq<uint16_t>(out16_vec_be[0], 0xAABB);
1✔
417
         result.test_is_eq<uint16_t>(out16_vec_be[1], 0xCCDD);
1✔
418

419
         auto out16_array_le = Botan::load_le<std::array<uint16_t, 2>>(in_buffer);
1✔
420
         result.test_is_eq<uint16_t>(out16_array_le[0], 0xBBAA);
1✔
421
         result.test_is_eq<uint16_t>(out16_array_le[1], 0xDDCC);
1✔
422
         auto out16_vec_le = Botan::load_le<Botan::secure_vector<uint16_t>>(in_buffer);
1✔
423
         result.test_eq_sz("le-vector has expected size", out16_vec_be.size(), 2);
1✔
424
         result.test_is_eq<uint16_t>(out16_vec_le[0], 0xBBAA);
1✔
425
         result.test_is_eq<uint16_t>(out16_vec_le[1], 0xDDCC);
1✔
426

427
         // Test loading/storing of strong type integers
428
         const TestInt64 in64_strong{0xABCDEF0123456789};
1✔
429
         const TestInt32 in32_strong{0xABCDEF01};
1✔
430

431
         result.test_is_eq(Botan::store_be<std::vector<uint8_t>>(in64_strong), Botan::hex_decode("ABCDEF0123456789"));
3✔
432
         result.test_is_eq(Botan::store_le<std::vector<uint8_t>>(in64_strong), Botan::hex_decode("8967452301EFCDAB"));
3✔
433
         result.test_is_eq(Botan::store_be<std::vector<uint8_t>>(in32_strong), Botan::hex_decode("ABCDEF01"));
3✔
434
         result.test_is_eq(Botan::store_le<std::vector<uint8_t>>(in32_strong), Botan::hex_decode("01EFCDAB"));
3✔
435

436
         result.test_is_eq(Botan::load_be<TestInt64>(Botan::hex_decode("ABCDEF0123456789")), in64_strong);
2✔
437
         result.test_is_eq(Botan::load_le<TestInt64>(Botan::hex_decode("8967452301EFCDAB")), in64_strong);
2✔
438
         result.test_is_eq(Botan::load_be<TestInt32>(Botan::hex_decode("ABCDEF01")), in32_strong);
2✔
439
         result.test_is_eq(Botan::load_le<TestInt32>(Botan::hex_decode("01EFCDAB")), in32_strong);
2✔
440

441
         std::vector<TestInt64> some_in64_strongs{TestInt64{0xABCDEF0123456789}, TestInt64{0x0123456789ABCDEF}};
1✔
442
         result.test_is_eq(Botan::store_be<std::vector<uint8_t>>(some_in64_strongs),
3✔
443
                           Botan::hex_decode("ABCDEF01234567890123456789ABCDEF"));
1✔
444
         result.test_is_eq(Botan::store_le<std::vector<uint8_t>>(some_in64_strongs),
3✔
445
                           Botan::hex_decode("8967452301EFCDABEFCDAB8967452301"));
1✔
446

447
         const auto in64_strongs_le =
1✔
448
            Botan::load_le<std::array<TestInt64, 2>>(Botan::hex_decode("8967452301EFCDABEFCDAB8967452301"));
2✔
449
         result.test_is_eq(in64_strongs_le[0], TestInt64{0xABCDEF0123456789});
1✔
450
         result.test_is_eq(in64_strongs_le[1], TestInt64{0x0123456789ABCDEF});
1✔
451

452
         const auto in64_strongs_be =
1✔
453
            Botan::load_be<std::vector<TestInt64>>(Botan::hex_decode("ABCDEF01234567890123456789ABCDEF"));
2✔
454
         result.test_is_eq(in64_strongs_be[0], TestInt64{0xABCDEF0123456789});
1✔
455
         result.test_is_eq(in64_strongs_be[1], TestInt64{0x0123456789ABCDEF});
1✔
456

457
         // Test loading/storing of enum types with different endianness
458
         const auto in64_enum_le = Botan::load_le<TestEnum64>(Botan::hex_decode("1234567890ABCDEF"));
2✔
459
         result.test_is_eq(in64_enum_le, TestEnum64::_2);
1✔
460
         const auto in64_enum_be = Botan::load_be<TestEnum64>(Botan::hex_decode("1234567890ABCDEF"));
2✔
461
         result.test_is_eq(in64_enum_be, TestEnum64::_1);
1✔
462
         result.test_is_eq(Botan::store_le<std::vector<uint8_t>>(TestEnum64::_1),
2✔
463
                           Botan::hex_decode("EFCDAB9078563412"));
1✔
464
         result.test_is_eq<std::array<uint8_t, 8>>(Botan::store_be(TestEnum64::_2),
1✔
465
                                                   {0xEF, 0xCD, 0xAB, 0x90, 0x78, 0x56, 0x34, 0x12});
466

467
         const auto in32_enum_le = Botan::load_le<TestEnum32>(Botan::hex_decode("78563412"));
2✔
468
         result.test_is_eq(in32_enum_le, TestEnum32::_1);
1✔
469
         const auto in32_enum_be = Botan::load_be<TestEnum32>(Botan::hex_decode("78563412"));
2✔
470
         result.test_is_eq(in32_enum_be, TestEnum32::_2);
1✔
471
         result.test_is_eq(Botan::store_le<std::vector<uint8_t>>(TestEnum32::_1), Botan::hex_decode("78563412"));
2✔
472
         result.test_is_eq<std::array<uint8_t, 4>>(Botan::store_be(TestEnum32::_2), {0x78, 0x56, 0x34, 0x12});
1✔
473

474
         return result;
2✔
475
      }
11✔
476

477
      template <std::unsigned_integral T>
478
      static T fb_load_be(std::array<const uint8_t, sizeof(T)> in) {
3✔
479
         return Botan::detail::fallback_load_any<Botan::detail::Endianness::Big, T>(in);
3✔
480
      }
481

482
      template <std::unsigned_integral T>
483
      static T fb_load_le(std::array<const uint8_t, sizeof(T)> in) {
3✔
484
         return Botan::detail::fallback_load_any<Botan::detail::Endianness::Little, T>(in);
3✔
485
      }
486

487
      template <std::unsigned_integral T>
488
      static decltype(auto) fb_store_be(const T in) {
3✔
489
         std::array<uint8_t, sizeof(T)> out;
490
         Botan::detail::fallback_store_any<Botan::detail::Endianness::Big, T>(in, out);
1✔
491
         return out;
2✔
492
      }
493

494
      template <std::unsigned_integral T>
495
      static decltype(auto) fb_store_le(const T in) {
3✔
496
         std::array<uint8_t, sizeof(T)> out;
497
         Botan::detail::fallback_store_any<Botan::detail::Endianness::Little, T>(in, out);
1✔
498
         return out;
2✔
499
      }
500

501
      template <size_t N>
502
      using a = std::array<uint8_t, N>;
503

504
      static Test::Result test_loadstore_ambiguity() {
1✔
505
         // This is a regression test for a (probable) compiler bug in Xcode 15
506
         // where it would fail to compile the load/store functions for size_t
507
         //
508
         // It seems that this platform defines uint64_t as "unsigned long long"
509
         // and size_t as "unsigned long". Both are 64-bits but the compiler
510
         // was unable to disambiguate the two in reverse_bytes in bswap.h
511

512
         const uint32_t in32 = 0x01234567;
1✔
513
         const uint64_t in64 = 0x0123456789ABCDEF;
1✔
514
         const size_t inszt = 0x87654321;
1✔
515

516
         Test::Result result("Util load/store ambiguity");
1✔
517
         const auto out_be_32 = Botan::store_be(in32);
1✔
518
         const auto out_le_32 = Botan::store_le(in32);
1✔
519
         const auto out_be_64 = Botan::store_be(in64);
1✔
520
         const auto out_le_64 = Botan::store_le(in64);
1✔
521
         const auto out_be_szt = Botan::store_be(inszt);
1✔
522
         const auto out_le_szt = Botan::store_le(inszt);
1✔
523

524
         result.test_is_eq<uint32_t>("be 32", Botan::load_be<uint32_t>(out_be_32), in32);
1✔
525
         result.test_is_eq<uint32_t>("le 32", Botan::load_le<uint32_t>(out_le_32), in32);
1✔
526
         result.test_is_eq<uint64_t>("be 64", Botan::load_be<uint64_t>(out_be_64), in64);
1✔
527
         result.test_is_eq<uint64_t>("le 64", Botan::load_le<uint64_t>(out_le_64), in64);
1✔
528
         result.test_is_eq<size_t>("be szt", Botan::load_be<size_t>(out_be_szt), inszt);
1✔
529
         result.test_is_eq<size_t>("le szt", Botan::load_le<size_t>(out_le_szt), inszt);
1✔
530

531
         return result;
1✔
532
      }
×
533

534
      static Test::Result test_loadstore_fallback() {
1✔
535
         // The fallback implementation is only used if we don't know the
536
         // endianness of the target at compile time. This makes sure that the
537
         // fallback implementation is correct. On all typical platforms it
538
         // won't be called in production.
539
         Test::Result result("Util load/store fallback");
1✔
540

541
         result.test_is_eq<uint16_t>("lLE 16", fb_load_le<uint16_t>({1, 2}), 0x0201);
1✔
542
         result.test_is_eq<uint32_t>("lLE 32", fb_load_le<uint32_t>({1, 2, 3, 4}), 0x04030201);
1✔
543
         result.test_is_eq<uint64_t>("lLE 64", fb_load_le<uint64_t>({1, 2, 3, 4, 5, 6, 7, 8}), 0x0807060504030201);
1✔
544

545
         result.test_is_eq<uint16_t>("lBE 16", fb_load_be<uint16_t>({1, 2}), 0x0102);
1✔
546
         result.test_is_eq<uint32_t>("lBE 32", fb_load_be<uint32_t>({1, 2, 3, 4}), 0x01020304);
1✔
547
         result.test_is_eq<uint64_t>("lBE 64", fb_load_be<uint64_t>({1, 2, 3, 4, 5, 6, 7, 8}), 0x0102030405060708);
1✔
548

549
         result.test_is_eq<a<2>>("sLE 16", fb_store_le<uint16_t>(0x0201), {1, 2});
1✔
550
         result.test_is_eq<a<4>>("sLE 32", fb_store_le<uint32_t>(0x04030201), {1, 2, 3, 4});
1✔
551
         result.test_is_eq<a<8>>("sLE 64", fb_store_le<uint64_t>(0x0807060504030201), {1, 2, 3, 4, 5, 6, 7, 8});
1✔
552

553
         result.test_is_eq<a<2>>("sBE 16", fb_store_be<uint16_t>(0x0102), {1, 2});
1✔
554
         result.test_is_eq<a<4>>("sBE 32", fb_store_be<uint32_t>(0x01020304), {1, 2, 3, 4});
1✔
555
         result.test_is_eq<a<8>>("sBE 64", fb_store_be<uint64_t>(0x0102030405060708), {1, 2, 3, 4, 5, 6, 7, 8});
1✔
556

557
         return result;
1✔
558
      }
×
559

560
      static Test::Result test_loadstore_constexpr() {
1✔
561
         Test::Result result("Util load/store constexpr");
1✔
562

563
         constexpr uint16_t in16 = 0x1234;
1✔
564
         constexpr uint32_t in32 = 0xA0B0C0D0;
1✔
565
         constexpr uint64_t in64 = 0xABCDEF0123456789;
1✔
566

567
         // clang-format off
568
         constexpr std::array<uint8_t, 16> cex_mem = {
1✔
569
            0x00, 0x11, 0x22, 0x33, 0x44, 0x55, 0x66, 0x77, 0x88, 0x99, 0xAA, 0xBB, 0xCC, 0xDD, 0xEE, 0xFF,
570
         };
571
         // clang-format on
572

573
         // get_byte<> w/ 16bit
574
         constexpr auto cex_byte_16_0 = Botan::get_byte<0>(in16);
1✔
575
         result.test_is_eq<uint8_t>(cex_byte_16_0, 0x12);
1✔
576
         constexpr auto cex_byte_16_1 = Botan::get_byte<1>(in16);
1✔
577
         result.test_is_eq<uint8_t>(cex_byte_16_1, 0x34);
1✔
578

579
         // get_byte<> w/ 32bit
580
         constexpr auto cex_byte_32_0 = Botan::get_byte<0>(in32);
1✔
581
         result.test_is_eq<uint8_t>(cex_byte_32_0, 0xA0);
1✔
582
         constexpr auto cex_byte_32_1 = Botan::get_byte<1>(in32);
1✔
583
         result.test_is_eq<uint8_t>(cex_byte_32_1, 0xB0);
1✔
584
         constexpr auto cex_byte_32_2 = Botan::get_byte<2>(in32);
1✔
585
         result.test_is_eq<uint8_t>(cex_byte_32_2, 0xC0);
1✔
586
         constexpr auto cex_byte_32_3 = Botan::get_byte<3>(in32);
1✔
587
         result.test_is_eq<uint8_t>(cex_byte_32_3, 0xD0);
1✔
588

589
         // get_byte<> w/ 64bit
590
         constexpr auto cex_byte_64_0 = Botan::get_byte<0>(in64);
1✔
591
         result.test_is_eq<uint8_t>(cex_byte_64_0, 0xAB);
1✔
592
         constexpr auto cex_byte_64_1 = Botan::get_byte<1>(in64);
1✔
593
         result.test_is_eq<uint8_t>(cex_byte_64_1, 0xCD);
1✔
594
         constexpr auto cex_byte_64_2 = Botan::get_byte<2>(in64);
1✔
595
         result.test_is_eq<uint8_t>(cex_byte_64_2, 0xEF);
1✔
596
         constexpr auto cex_byte_64_3 = Botan::get_byte<3>(in64);
1✔
597
         result.test_is_eq<uint8_t>(cex_byte_64_3, 0x01);
1✔
598
         constexpr auto cex_byte_64_4 = Botan::get_byte<4>(in64);
1✔
599
         result.test_is_eq<uint8_t>(cex_byte_64_4, 0x23);
1✔
600
         constexpr auto cex_byte_64_5 = Botan::get_byte<5>(in64);
1✔
601
         result.test_is_eq<uint8_t>(cex_byte_64_5, 0x45);
1✔
602
         constexpr auto cex_byte_64_6 = Botan::get_byte<6>(in64);
1✔
603
         result.test_is_eq<uint8_t>(cex_byte_64_6, 0x67);
1✔
604
         constexpr auto cex_byte_64_7 = Botan::get_byte<7>(in64);
1✔
605
         result.test_is_eq<uint8_t>(cex_byte_64_7, 0x89);
1✔
606

607
         // make_uintXX()
608
         constexpr auto cex_uint16_t = Botan::make_uint16(0x12, 0x34);
1✔
609
         result.test_is_eq<uint16_t>(cex_uint16_t, in16);
1✔
610
         constexpr auto cex_uint32_t = Botan::make_uint32(0xA0, 0xB0, 0xC0, 0xD0);
1✔
611
         result.test_is_eq<uint32_t>(cex_uint32_t, in32);
1✔
612
         constexpr auto cex_uint64_t = Botan::make_uint64(0xAB, 0xCD, 0xEF, 0x01, 0x23, 0x45, 0x67, 0x89);
1✔
613
         result.test_is_eq<uint64_t>(cex_uint64_t, in64);
1✔
614

615
         // store_le/be with a single integer
616
         constexpr std::array<uint8_t, 2> cex_store_le16 = Botan::store_le(in16);
1✔
617
         result.test_is_eq(cex_store_le16, std::array<uint8_t, 2>{0x34, 0x12});
1✔
618
         constexpr std::array<uint8_t, 4> cex_store_le32 = Botan::store_le(in32);
1✔
619
         result.test_is_eq(cex_store_le32, std::array<uint8_t, 4>{0xD0, 0xC0, 0xB0, 0xA0});
1✔
620
         constexpr std::array<uint8_t, 8> cex_store_le64 = Botan::store_le(in64);
1✔
621
         result.test_is_eq(cex_store_le64, std::array<uint8_t, 8>{0x89, 0x67, 0x45, 0x23, 0x01, 0xEF, 0xCD, 0xAB});
1✔
622

623
         constexpr std::array<uint8_t, 2> cex_store_be16 = Botan::store_be(in16);
1✔
624
         result.test_is_eq(cex_store_be16, std::array<uint8_t, 2>{0x12, 0x34});
1✔
625
         constexpr std::array<uint8_t, 4> cex_store_be32 = Botan::store_be(in32);
1✔
626
         result.test_is_eq(cex_store_be32, std::array<uint8_t, 4>{0xA0, 0xB0, 0xC0, 0xD0});
1✔
627
         constexpr std::array<uint8_t, 8> cex_store_be64 = Botan::store_be(in64);
1✔
628
         result.test_is_eq(cex_store_be64, std::array<uint8_t, 8>{0xAB, 0xCD, 0xEF, 0x01, 0x23, 0x45, 0x67, 0x89});
1✔
629

630
         // store_le/be with multiple integers, both as a parameter pack and a range (std::array for constexpr)
631
         constexpr std::array<uint8_t, 16> cex_store_le16s =
1✔
632
            Botan::store_le(in16, in16, in16, in16, in16, in16, in16, in16);
633
         constexpr std::array<uint8_t, 16> cex_store_le16s2 =
1✔
634
            Botan::store_le(std::array{in16, in16, in16, in16, in16, in16, in16, in16});
635
         result.test_is_eq(
1✔
636
            cex_store_le16s,
637
            {0x34, 0x12, 0x34, 0x12, 0x34, 0x12, 0x34, 0x12, 0x34, 0x12, 0x34, 0x12, 0x34, 0x12, 0x34, 0x12});
638
         result.test_is_eq(cex_store_le16s, cex_store_le16s2);
1✔
639
         constexpr std::array<uint8_t, 16> cex_store_le32s = Botan::store_le(in32, in32, in32, in32);
1✔
640
         constexpr std::array<uint8_t, 16> cex_store_le32s2 = Botan::store_le(std::array{in32, in32, in32, in32});
1✔
641
         result.test_is_eq(
1✔
642
            cex_store_le32s,
643
            {0xD0, 0xC0, 0xB0, 0xA0, 0xD0, 0xC0, 0xB0, 0xA0, 0xD0, 0xC0, 0xB0, 0xA0, 0xD0, 0xC0, 0xB0, 0xA0});
644
         result.test_is_eq(cex_store_le32s, cex_store_le32s2);
1✔
645
         constexpr std::array<uint8_t, 16> cex_store_le64s = Botan::store_le(in64, in64);
1✔
646
         constexpr std::array<uint8_t, 16> cex_store_le64s2 = Botan::store_le(std::array{in64, in64});
1✔
647
         result.test_is_eq(
1✔
648
            cex_store_le64s,
649
            {0x89, 0x67, 0x45, 0x23, 0x01, 0xEF, 0xCD, 0xAB, 0x89, 0x67, 0x45, 0x23, 0x01, 0xEF, 0xCD, 0xAB});
650
         result.test_is_eq(cex_store_le64s, cex_store_le64s2);
1✔
651

652
         constexpr std::array<uint8_t, 16> cex_store_be16s =
1✔
653
            Botan::store_be(in16, in16, in16, in16, in16, in16, in16, in16);
654
         constexpr std::array<uint8_t, 16> cex_store_be16s2 =
1✔
655
            Botan::store_be(std::array{in16, in16, in16, in16, in16, in16, in16, in16});
656
         result.test_is_eq(
1✔
657
            cex_store_be16s,
658
            {0x12, 0x34, 0x12, 0x34, 0x12, 0x34, 0x12, 0x34, 0x12, 0x34, 0x12, 0x34, 0x12, 0x34, 0x12, 0x34});
659
         result.test_is_eq(cex_store_be16s, cex_store_be16s2);
1✔
660
         constexpr std::array<uint8_t, 16> cex_store_be32s = Botan::store_be(in32, in32, in32, in32);
1✔
661
         constexpr std::array<uint8_t, 16> cex_store_be32s2 = Botan::store_be(std::array{in32, in32, in32, in32});
1✔
662
         result.test_is_eq(
1✔
663
            cex_store_be32s,
664
            {0xA0, 0xB0, 0xC0, 0xD0, 0xA0, 0xB0, 0xC0, 0xD0, 0xA0, 0xB0, 0xC0, 0xD0, 0xA0, 0xB0, 0xC0, 0xD0});
665
         result.test_is_eq(cex_store_be32s, cex_store_be32s2);
1✔
666
         constexpr std::array<uint8_t, 16> cex_store_be64s = Botan::store_be(in64, in64);
1✔
667
         constexpr std::array<uint8_t, 16> cex_store_be64s2 = Botan::store_be(std::array{in64, in64});
1✔
668
         result.test_is_eq(
1✔
669
            cex_store_be64s,
670
            {0xAB, 0xCD, 0xEF, 0x01, 0x23, 0x45, 0x67, 0x89, 0xAB, 0xCD, 0xEF, 0x01, 0x23, 0x45, 0x67, 0x89});
671
         result.test_is_eq(cex_store_be64s, cex_store_be64s2);
1✔
672

673
         // load_le/be a single integer
674
         constexpr uint16_t cex_load_le16 = Botan::load_le<uint16_t>(cex_store_le16);
1✔
675
         result.test_is_eq(cex_load_le16, in16);
1✔
676
         constexpr uint32_t cex_load_le32 = Botan::load_le<uint32_t>(cex_store_le32);
1✔
677
         result.test_is_eq(cex_load_le32, in32);
1✔
678
         constexpr uint64_t cex_load_le64 = Botan::load_le<uint64_t>(cex_store_le64);
1✔
679
         result.test_is_eq(cex_load_le64, in64);
1✔
680

681
         constexpr uint16_t cex_load_be16 = Botan::load_be<uint16_t>(cex_store_be16);
1✔
682
         result.test_is_eq(cex_load_be16, in16);
1✔
683
         constexpr uint32_t cex_load_be32 = Botan::load_be<uint32_t>(cex_store_be32);
1✔
684
         result.test_is_eq(cex_load_be32, in32);
1✔
685
         constexpr uint64_t cex_load_be64 = Botan::load_be<uint64_t>(cex_store_be64);
1✔
686
         result.test_is_eq(cex_load_be64, in64);
1✔
687

688
         // load_le/be multiple integers into a std::array for constexpr
689
         constexpr auto cex_load_le16s = Botan::load_le<std::array<uint16_t, cex_mem.size() / 2>>(cex_mem);
1✔
690
         result.test_is_eq(cex_load_le16s, {0x1100, 0x3322, 0x5544, 0x7766, 0x9988, 0xBBAA, 0xDDCC, 0xFFEE});
1✔
691
         constexpr auto cex_load_le32s = Botan::load_le<std::array<uint32_t, cex_mem.size() / 4>>(cex_mem);
1✔
692
         result.test_is_eq(cex_load_le32s, {0x33221100, 0x77665544, 0xBBAA9988, 0xFFEEDDCC});
1✔
693
         constexpr auto cex_load_le64s = Botan::load_le<std::array<uint64_t, cex_mem.size() / 8>>(cex_mem);
1✔
694
         result.test_is_eq(cex_load_le64s, {0x7766554433221100, 0xFFEEDDCCBBAA9988});
1✔
695

696
         constexpr auto cex_load_be16s = Botan::load_be<std::array<uint16_t, cex_mem.size() / 2>>(cex_mem);
1✔
697
         result.test_is_eq(cex_load_be16s, {0x0011, 0x2233, 0x4455, 0x6677, 0x8899, 0xAABB, 0xCCDD, 0xEEFF});
1✔
698
         constexpr auto cex_load_be32s = Botan::load_be<std::array<uint32_t, cex_mem.size() / 4>>(cex_mem);
1✔
699
         result.test_is_eq(cex_load_be32s, {0x00112233, 0x44556677, 0x8899AABB, 0xCCDDEEFF});
1✔
700
         constexpr auto cex_load_be64s = Botan::load_be<std::array<uint64_t, cex_mem.size() / 8>>(cex_mem);
1✔
701
         result.test_is_eq(cex_load_be64s, {0x0011223344556677, 0x8899AABBCCDDEEFF});
1✔
702

703
         return result;
1✔
704
      }
×
705

706
      static std::vector<Test::Result> test_copy_out_be_le() {
1✔
707
         return {
1✔
708
            CHECK("copy_out_be with 16bit input (word aligned)",
709
                  [&](auto& result) {
1✔
710
                     std::vector<uint8_t> out_vector(4);
1✔
711
                     const std::array<uint16_t, 2> in_array = {0x0A0B, 0x0C0D};
1✔
712
                     Botan::copy_out_be(out_vector, in_array);
1✔
713
                     result.test_is_eq(out_vector, Botan::hex_decode("0A0B0C0D"));
2✔
714
                  }),
1✔
715

716
            CHECK("copy_out_be with 16bit input (partial words)",
717
                  [&](auto& result) {
1✔
718
                     std::vector<uint8_t> out_vector(3);
1✔
719
                     const std::array<uint16_t, 2> in_array = {0x0A0B, 0x0C0D};
1✔
720
                     Botan::copy_out_be(out_vector, in_array);
1✔
721
                     result.test_is_eq(out_vector, Botan::hex_decode("0A0B0C"));
2✔
722
                  }),
1✔
723

724
            CHECK("copy_out_le with 16bit input (word aligned)",
725
                  [&](auto& result) {
1✔
726
                     std::vector<uint8_t> out_vector(4);
1✔
727
                     const std::array<uint16_t, 2> in_array = {0x0A0B, 0x0C0D};
1✔
728
                     Botan::copy_out_le(out_vector, in_array);
1✔
729
                     result.test_is_eq(out_vector, Botan::hex_decode("0B0A0D0C"));
2✔
730
                  }),
1✔
731

732
            CHECK("copy_out_le with 16bit input (partial words)",
733
                  [&](auto& result) {
1✔
734
                     std::vector<uint8_t> out_vector(3);
1✔
735
                     const std::array<uint16_t, 2> in_array = {0x0A0B, 0x0C0D};
1✔
736
                     Botan::copy_out_le(out_vector, in_array);
1✔
737
                     result.test_is_eq(out_vector, Botan::hex_decode("0B0A0D"));
2✔
738
                  }),
739

740
            CHECK("copy_out_be with 64bit input (word aligned)",
741
                  [&](auto& result) {
1✔
742
                     std::vector<uint8_t> out_vector(16);
1✔
743
                     const std::array<uint64_t, 2> in_array = {0x0A0B0C0D0E0F1011, 0x1213141516171819};
1✔
744
                     Botan::copy_out_be(out_vector, in_array);
1✔
745
                     result.test_is_eq(out_vector, Botan::hex_decode("0A0B0C0D0E0F10111213141516171819"));
2✔
746
                  }),
1✔
747

748
            CHECK("copy_out_le with 64bit input (word aligned)",
749
                  [&](auto& result) {
1✔
750
                     std::vector<uint8_t> out_vector(16);
1✔
751
                     const std::array<uint64_t, 2> in_array = {0x0A0B0C0D0E0F1011, 0x1213141516171819};
1✔
752
                     Botan::copy_out_le(out_vector, in_array);
1✔
753
                     result.test_is_eq(out_vector, Botan::hex_decode("11100F0E0D0C0B0A1918171615141312"));
2✔
754
                  }),
1✔
755

756
            CHECK("copy_out_be with 64bit input (partial words)",
757
                  [&](auto& result) {
1✔
758
                     std::vector<uint8_t> out_vector(15);
1✔
759
                     const std::array<uint64_t, 2> in_array = {0x0A0B0C0D0E0F1011, 0x1213141516171819};
1✔
760
                     Botan::copy_out_be(out_vector, in_array);
1✔
761
                     result.test_is_eq(out_vector, Botan::hex_decode("0A0B0C0D0E0F101112131415161718"));
2✔
762
                  }),
1✔
763

764
            CHECK("copy_out_le with 64bit input (partial words)",
765
                  [&](auto& result) {
1✔
766
                     std::vector<uint8_t> out_vector(15);
1✔
767
                     const std::array<uint64_t, 2> in_array = {0x0A0B0C0D0E0F1011, 0x1213141516171819};
1✔
768
                     Botan::copy_out_le(out_vector, in_array);
1✔
769
                     result.test_is_eq(out_vector, Botan::hex_decode("11100F0E0D0C0B0A19181716151413"));
2✔
770
                  }),
1✔
771
         };
9✔
772
      }
1✔
773
};
774

775
BOTAN_REGISTER_SMOKE_TEST("utils", "util", Utility_Function_Tests);
776

777
class BitOps_Tests final : public Test {
×
778
   public:
779
      std::vector<Test::Result> run() override {
1✔
780
         std::vector<Test::Result> results;
1✔
781

782
         results.push_back(test_power_of_2());
2✔
783
         results.push_back(test_ctz());
2✔
784
         results.push_back(test_sig_bytes());
2✔
785
         results.push_back(test_popcount());
2✔
786
         results.push_back(test_reverse_bits());
2✔
787

788
         return results;
1✔
789
      }
×
790

791
   private:
792
      template <typename T>
793
      void test_ctz(Test::Result& result, T val, size_t expected) {
6✔
794
         result.test_eq("ctz(" + std::to_string(val) + ")", Botan::ctz<T>(val), expected);
24✔
795
      }
6✔
796

797
      Test::Result test_ctz() {
1✔
798
         Test::Result result("ctz");
1✔
799
         test_ctz<uint32_t>(result, 0, 32);
1✔
800
         test_ctz<uint32_t>(result, 1, 0);
1✔
801
         test_ctz<uint32_t>(result, 0x80, 7);
1✔
802
         test_ctz<uint32_t>(result, 0x8000000, 27);
1✔
803
         test_ctz<uint32_t>(result, 0x8100000, 20);
1✔
804
         test_ctz<uint32_t>(result, 0x80000000, 31);
1✔
805

806
         return result;
1✔
807
      }
×
808

809
      template <typename T>
810
      void test_sig_bytes(Test::Result& result, T val, size_t expected) {
14✔
811
         result.test_eq("significant_bytes(" + std::to_string(val) + ")", Botan::significant_bytes<T>(val), expected);
56✔
812
      }
14✔
813

814
      Test::Result test_sig_bytes() {
1✔
815
         Test::Result result("significant_bytes");
1✔
816
         test_sig_bytes<uint32_t>(result, 0, 0);
1✔
817
         test_sig_bytes<uint32_t>(result, 1, 1);
1✔
818
         test_sig_bytes<uint32_t>(result, 0x80, 1);
1✔
819
         test_sig_bytes<uint32_t>(result, 255, 1);
1✔
820
         test_sig_bytes<uint32_t>(result, 256, 2);
1✔
821
         test_sig_bytes<uint32_t>(result, 65535, 2);
1✔
822
         test_sig_bytes<uint32_t>(result, 65536, 3);
1✔
823
         test_sig_bytes<uint32_t>(result, 0x80000000, 4);
1✔
824

825
         test_sig_bytes<uint64_t>(result, 0, 0);
1✔
826
         test_sig_bytes<uint64_t>(result, 1, 1);
1✔
827
         test_sig_bytes<uint64_t>(result, 0x80, 1);
1✔
828
         test_sig_bytes<uint64_t>(result, 256, 2);
1✔
829
         test_sig_bytes<uint64_t>(result, 0x80000000, 4);
1✔
830
         test_sig_bytes<uint64_t>(result, 0x100000000, 5);
1✔
831

832
         return result;
1✔
833
      }
×
834

835
      template <typename T>
836
      void test_power_of_2(Test::Result& result, T val, bool expected) {
15✔
837
         result.test_eq("power_of_2(" + std::to_string(val) + ")", Botan::is_power_of_2<T>(val), expected);
75✔
838
      }
15✔
839

840
      Test::Result test_power_of_2() {
1✔
841
         Test::Result result("is_power_of_2");
1✔
842

843
         test_power_of_2<uint32_t>(result, 0, false);
1✔
844
         test_power_of_2<uint32_t>(result, 1, false);
1✔
845
         test_power_of_2<uint32_t>(result, 2, true);
1✔
846
         test_power_of_2<uint32_t>(result, 3, false);
1✔
847
         test_power_of_2<uint32_t>(result, 0x8000, true);
1✔
848
         test_power_of_2<uint32_t>(result, 0x8001, false);
1✔
849
         test_power_of_2<uint32_t>(result, 0x8000000, true);
1✔
850

851
         test_power_of_2<uint64_t>(result, 0, false);
1✔
852
         test_power_of_2<uint64_t>(result, 1, false);
1✔
853
         test_power_of_2<uint64_t>(result, 2, true);
1✔
854
         test_power_of_2<uint64_t>(result, 3, false);
1✔
855
         test_power_of_2<uint64_t>(result, 0x8000, true);
1✔
856
         test_power_of_2<uint64_t>(result, 0x8001, false);
1✔
857
         test_power_of_2<uint64_t>(result, 0x8000000, true);
1✔
858
         test_power_of_2<uint64_t>(result, 0x100000000000, true);
1✔
859

860
         return result;
1✔
861
      }
×
862

863
      template <typename T>
864
      auto pc(T val) -> decltype(Botan::ct_popcount(val)) {
2✔
865
         return Botan::ct_popcount(val);
10✔
866
      }
867

868
      template <typename T>
869
      auto random_pc(Test::Result& result) {
4✔
870
         auto n = Botan::load_le<T>(Test::rng().random_array<sizeof(T)>());
4✔
871
         result.test_is_eq<size_t>(Botan::fmt("popcount({}) == {}", n, std::popcount(n)), pc(n), std::popcount(n));
4✔
872
      }
4✔
873

874
      Test::Result test_popcount() {
1✔
875
         Test::Result result("popcount");
1✔
876

877
         result.test_is_eq<uint8_t>("popcount<uint8_t>(0)", pc<uint8_t>(0), 0);
1✔
878
         result.test_is_eq<uint8_t>("popcount<uint16_t>(0)", pc<uint16_t>(0), 0);
1✔
879
         result.test_is_eq<uint8_t>("popcount<uint32_t>(0)", pc<uint32_t>(0), 0);
1✔
880
         result.test_is_eq<uint8_t>("popcount<uint64_t>(0)", pc<uint64_t>(0), 0);
1✔
881

882
         result.test_is_eq<uint8_t>("popcount<uint8_t>(1)", pc<uint8_t>(1), 1);
1✔
883
         result.test_is_eq<uint8_t>("popcount<uint16_t>(1)", pc<uint16_t>(1), 1);
1✔
884
         result.test_is_eq<uint8_t>("popcount<uint32_t>(1)", pc<uint32_t>(1), 1);
1✔
885
         result.test_is_eq<uint8_t>("popcount<uint64_t>(1)", pc<uint64_t>(1), 1);
1✔
886

887
         result.test_is_eq<uint8_t>("popcount<uint8_t>(0xAA)", pc<uint8_t>(0xAA), 4);
1✔
888
         result.test_is_eq<uint8_t>("popcount<uint16_t>(0xAAAA)", pc<uint16_t>(0xAAAA), 8);
1✔
889
         result.test_is_eq<uint8_t>("popcount<uint32_t>(0xAAAA...)", pc<uint32_t>(0xAAAAAAAA), 16);
1✔
890
         result.test_is_eq<uint8_t>("popcount<uint64_t>(0xAAAA...)", pc<uint64_t>(0xAAAAAAAAAAAAAAAA), 32);
1✔
891

892
         result.test_is_eq<uint8_t>("popcount<uint8_t>(0xFF)", pc<uint8_t>(0xFF), 8);
1✔
893
         result.test_is_eq<uint8_t>("popcount<uint16_t>(0xFFFF)", pc<uint16_t>(0xFFFF), 16);
1✔
894
         result.test_is_eq<uint8_t>("popcount<uint32_t>(0xFFFF...)", pc<uint32_t>(0xFFFFFFFF), 32);
1✔
895
         result.test_is_eq<uint8_t>("popcount<uint64_t>(0xFFFF...)", pc<uint64_t>(0xFFFFFFFFFFFFFFFF), 64);
1✔
896

897
         random_pc<uint8_t>(result);
1✔
898
         random_pc<uint16_t>(result);
1✔
899
         random_pc<uint32_t>(result);
1✔
900
         random_pc<uint64_t>(result);
1✔
901

902
         return result;
1✔
903
      }
×
904

905
      Test::Result test_reverse_bits() {
1✔
906
         Test::Result result("reverse_bits");
1✔
907

908
         result.test_is_eq<uint8_t>("rev(0u8)", Botan::ct_reverse_bits<uint8_t>(0b00000000), 0b00000000);
1✔
909
         result.test_is_eq<uint8_t>("rev(1u8)", Botan::ct_reverse_bits<uint8_t>(0b01010101), 0b10101010);
1✔
910
         result.test_is_eq<uint8_t>("rev(2u8)", Botan::ct_reverse_bits<uint8_t>(0b01001011), 0b11010010);
1✔
911

912
         result.test_is_eq<uint16_t>(
1✔
913
            "rev(0u16)", Botan::ct_reverse_bits<uint16_t>(0b0000000000000000), 0b0000000000000000);
1✔
914
         result.test_is_eq<uint16_t>(
1✔
915
            "rev(1u16)", Botan::ct_reverse_bits<uint16_t>(0b0101010101010101), 0b1010101010101010);
1✔
916
         result.test_is_eq<uint16_t>(
1✔
917
            "rev(2u16)", Botan::ct_reverse_bits<uint16_t>(0b0100101101011010), 0b0101101011010010);
1✔
918

919
         result.test_is_eq<uint32_t>("rev(0u32)", Botan::ct_reverse_bits<uint32_t>(0xFFFFFFFF), 0xFFFFFFFF);
1✔
920
         result.test_is_eq<uint32_t>("rev(1u32)", Botan::ct_reverse_bits<uint32_t>(0x55555555), 0xAAAAAAAA);
1✔
921
         result.test_is_eq<uint32_t>("rev(2u32)", Botan::ct_reverse_bits<uint32_t>(0x4B6A2C1D), 0xB83456D2);
1✔
922

923
         result.test_is_eq<uint64_t>(
1✔
924
            "rev(0u64)", Botan::ct_reverse_bits<uint64_t>(0xF0E0D0C005040302), 0x40C020A0030B070F);
1✔
925
         result.test_is_eq<uint64_t>(
1✔
926
            "rev(1u64)", Botan::ct_reverse_bits<uint64_t>(0x5555555555555555), 0xAAAAAAAAAAAAAAAA);
1✔
927
         result.test_is_eq<uint64_t>(
1✔
928
            "rev(2u64)", Botan::ct_reverse_bits<uint64_t>(0x4B6A2C1D5E7F8A90), 0x951FE7AB83456D2);
1✔
929

930
         return result;
1✔
931
      }
×
932
};
933

934
BOTAN_REGISTER_TEST("utils", "bit_ops", BitOps_Tests);
935

936
#if defined(BOTAN_HAS_POLY_DBL)
937

938
class Poly_Double_Tests final : public Text_Based_Test {
×
939
   public:
940
      Poly_Double_Tests() : Text_Based_Test("poly_dbl.vec", "In,Out") {}
2✔
941

942
      Test::Result run_one_test(const std::string& /*header*/, const VarMap& vars) override {
82✔
943
         Test::Result result("Polynomial doubling");
82✔
944
         const std::vector<uint8_t> in = vars.get_req_bin("In");
82✔
945
         const std::vector<uint8_t> out = vars.get_req_bin("Out");
82✔
946

947
         std::vector<uint8_t> b = in;
82✔
948
         Botan::poly_double_n(b.data(), b.size());
82✔
949

950
         result.test_eq("Expected value", b, out);
164✔
951
         return result;
82✔
952
      }
246✔
953
};
954

955
BOTAN_REGISTER_TEST("utils", "poly_dbl", Poly_Double_Tests);
956

957
#endif
958

959
class Version_Tests final : public Test {
×
960
   public:
961
      std::vector<Test::Result> run() override {
1✔
962
         Test::Result result("Versions");
1✔
963

964
         result.confirm("Version datestamp matches macro", Botan::version_datestamp() == BOTAN_VERSION_DATESTAMP);
2✔
965

966
         const char* version_cstr = Botan::version_cstr();
1✔
967
         std::string version_str = Botan::version_string();
1✔
968
         result.test_eq("Same version string", version_str, std::string(version_cstr));
2✔
969

970
         const char* sversion_cstr = Botan::short_version_cstr();
1✔
971
         std::string sversion_str = Botan::short_version_string();
1✔
972
         result.test_eq("Same short version string", sversion_str, std::string(sversion_cstr));
2✔
973

974
         std::string expected_sversion = std::to_string(BOTAN_VERSION_MAJOR) + "." +
3✔
975
                                         std::to_string(BOTAN_VERSION_MINOR) + "." +
3✔
976
                                         std::to_string(BOTAN_VERSION_PATCH);
2✔
977

978
#if defined(BOTAN_VERSION_SUFFIX)
979
         expected_sversion += BOTAN_VERSION_SUFFIX_STR;
980
#endif
981

982
         result.test_eq("Short version string has expected format", sversion_str, expected_sversion);
1✔
983

984
         const std::string version_check_ok =
1✔
985
            Botan::runtime_version_check(BOTAN_VERSION_MAJOR, BOTAN_VERSION_MINOR, BOTAN_VERSION_PATCH);
1✔
986

987
         result.confirm("Correct version no warning", version_check_ok.empty());
2✔
988

989
         const std::string version_check_bad = Botan::runtime_version_check(1, 19, 42);
1✔
990

991
         const std::string expected_error =
1✔
992
            "Warning: linked version (" + sversion_str + ") does not match version built against (1.19.42)\n";
2✔
993

994
         result.test_eq("Expected warning text", version_check_bad, expected_error);
1✔
995

996
         return {result};
3✔
997
      }
2✔
998
};
999

1000
BOTAN_REGISTER_TEST("utils", "versioning", Version_Tests);
1001

1002
class Date_Format_Tests final : public Text_Based_Test {
×
1003
   public:
1004
      Date_Format_Tests() : Text_Based_Test("dates.vec", "Date") {}
2✔
1005

1006
      static std::vector<uint32_t> parse_date(const std::string& s) {
11✔
1007
         const std::vector<std::string> parts = Botan::split_on(s, ',');
11✔
1008
         if(parts.size() != 6) {
11✔
1009
            throw Test_Error("Bad date format '" + s + "'");
×
1010
         }
1011

1012
         std::vector<uint32_t> u32s;
11✔
1013
         u32s.reserve(parts.size());
11✔
1014
         for(const auto& sub : parts) {
77✔
1015
            u32s.push_back(Botan::to_u32bit(sub));
66✔
1016
         }
1017
         return u32s;
11✔
1018
      }
11✔
1019

1020
      Test::Result run_one_test(const std::string& type, const VarMap& vars) override {
11✔
1021
         const std::string date_str = vars.get_req_str("Date");
11✔
1022
         Test::Result result("Date parsing");
11✔
1023

1024
         const std::vector<uint32_t> d = parse_date(date_str);
11✔
1025

1026
         if(type == "valid" || type == "valid.not_std" || type == "valid.64_bit_time_t") {
11✔
1027
            Botan::calendar_point c(d[0], d[1], d[2], d[3], d[4], d[5]);
11✔
1028
            result.test_is_eq(date_str + " year", c.year(), d[0]);
11✔
1029
            result.test_is_eq(date_str + " month", c.month(), d[1]);
11✔
1030
            result.test_is_eq(date_str + " day", c.day(), d[2]);
11✔
1031
            result.test_is_eq(date_str + " hour", c.hour(), d[3]);
11✔
1032
            result.test_is_eq(date_str + " minute", c.minutes(), d[4]);
11✔
1033
            result.test_is_eq(date_str + " second", c.seconds(), d[5]);
11✔
1034

1035
            if(type == "valid.not_std" ||
11✔
1036
               (type == "valid.64_bit_time_t" && c.year() > 2037 && sizeof(std::time_t) == 4)) {
1037
               result.test_throws("valid but out of std::timepoint range", [c]() { c.to_std_timepoint(); });
12✔
1038
            } else {
1039
               Botan::calendar_point c2(c.to_std_timepoint());
8✔
1040
               result.test_is_eq(date_str + " year", c2.year(), d[0]);
8✔
1041
               result.test_is_eq(date_str + " month", c2.month(), d[1]);
8✔
1042
               result.test_is_eq(date_str + " day", c2.day(), d[2]);
8✔
1043
               result.test_is_eq(date_str + " hour", c2.hour(), d[3]);
8✔
1044
               result.test_is_eq(date_str + " minute", c2.minutes(), d[4]);
8✔
1045
               result.test_is_eq(date_str + " second", c2.seconds(), d[5]);
16✔
1046
            }
1047
         } else if(type == "invalid") {
×
1048
            result.test_throws("invalid date", [d]() { Botan::calendar_point c(d[0], d[1], d[2], d[3], d[4], d[5]); });
×
1049
         } else {
1050
            throw Test_Error("Unexpected header '" + type + "' in date format tests");
×
1051
         }
1052

1053
         return result;
22✔
1054
      }
11✔
1055

1056
      std::vector<Test::Result> run_final_tests() override {
1✔
1057
         Test::Result result("calendar_point::to_string");
1✔
1058
         Botan::calendar_point d(2008, 5, 15, 9, 30, 33);
1✔
1059
         // desired format: <YYYY>-<MM>-<dd>T<HH>:<mm>:<ss>
1060
         result.test_eq("calendar_point::to_string", d.to_string(), "2008-05-15T09:30:33");
2✔
1061
         return {result};
3✔
1062
      }
2✔
1063
};
1064

1065
BOTAN_REGISTER_TEST("utils", "util_dates", Date_Format_Tests);
1066

1067
class Charset_Tests final : public Text_Based_Test {
×
1068
   public:
1069
      Charset_Tests() : Text_Based_Test("charset.vec", "In,Out") {}
2✔
1070

1071
      Test::Result run_one_test(const std::string& type, const VarMap& vars) override {
8✔
1072
         Test::Result result("Charset");
8✔
1073

1074
         const std::vector<uint8_t> in = vars.get_req_bin("In");
8✔
1075
         const std::vector<uint8_t> expected = vars.get_req_bin("Out");
8✔
1076

1077
         std::string converted;
8✔
1078

1079
         if(type == "UCS2-UTF8") {
8✔
1080
            converted = Botan::ucs2_to_utf8(in.data(), in.size());
4✔
1081
         } else if(type == "UCS4-UTF8") {
4✔
1082
            converted = Botan::ucs4_to_utf8(in.data(), in.size());
1✔
1083
         } else if(type == "LATIN1-UTF8") {
3✔
1084
            converted = Botan::latin1_to_utf8(in.data(), in.size());
3✔
1085
         } else {
1086
            throw Test_Error("Unexpected header '" + type + "' in charset tests");
×
1087
         }
1088

1089
         result.test_eq(
16✔
1090
            "string converted successfully", std::vector<uint8_t>(converted.begin(), converted.end()), expected);
8✔
1091

1092
         return result;
8✔
1093
      }
24✔
1094
};
1095

1096
BOTAN_REGISTER_TEST("utils", "charset", Charset_Tests);
1097

1098
class Hostname_Tests final : public Text_Based_Test {
×
1099
   public:
1100
      Hostname_Tests() : Text_Based_Test("hostnames.vec", "Issued,Hostname") {}
2✔
1101

1102
      Test::Result run_one_test(const std::string& type, const VarMap& vars) override {
44✔
1103
         Test::Result result("Hostname Matching");
44✔
1104

1105
         const std::string issued = vars.get_req_str("Issued");
44✔
1106
         const std::string hostname = vars.get_req_str("Hostname");
44✔
1107
         const bool expected = (type == "Invalid") ? false : true;
44✔
1108

1109
         const std::string what = hostname + ((expected == true) ? " matches " : " does not match ") + issued;
88✔
1110
         result.test_eq(what, Botan::host_wildcard_match(issued, hostname), expected);
44✔
1111

1112
         return result;
44✔
1113
      }
44✔
1114
};
1115

1116
BOTAN_REGISTER_TEST("utils", "hostname", Hostname_Tests);
1117

1118
class IPv4_Parsing_Tests final : public Text_Based_Test {
×
1119
   public:
1120
      IPv4_Parsing_Tests() : Text_Based_Test("utils/ipv4.vec", "IPv4") {}
2✔
1121

1122
      Test::Result run_one_test(const std::string& status, const VarMap& vars) override {
47✔
1123
         Test::Result result("IPv4 parsing");
47✔
1124

1125
         const std::string input = vars.get_req_str("IPv4");
47✔
1126
         const bool valid = (status == "Valid");
47✔
1127

1128
         auto ipv4 = Botan::string_to_ipv4(input);
47✔
1129

1130
         result.test_eq("string_to_ipv4 accepts only valid", valid, ipv4.has_value());
47✔
1131

1132
         if(ipv4) {
47✔
1133
            const std::string rt = Botan::ipv4_to_string(ipv4.value());
13✔
1134
            result.test_eq("ipv4_to_string and string_to_ipv4 round trip", input, rt);
26✔
1135
         }
13✔
1136

1137
         return result;
47✔
1138
      }
47✔
1139
};
1140

1141
BOTAN_REGISTER_TEST("utils", "ipv4_parse", IPv4_Parsing_Tests);
1142

1143
class ReadKV_Tests final : public Text_Based_Test {
×
1144
   public:
1145
      ReadKV_Tests() : Text_Based_Test("utils/read_kv.vec", "Input,Expected") {}
2✔
1146

1147
      Test::Result run_one_test(const std::string& status, const VarMap& vars) override {
16✔
1148
         Test::Result result("read_kv");
16✔
1149

1150
         const bool is_valid = (status == "Valid");
16✔
1151

1152
         const std::string input = vars.get_req_str("Input");
16✔
1153
         const std::string expected = vars.get_req_str("Expected");
16✔
1154

1155
         if(is_valid) {
16✔
1156
            confirm_kv(result, Botan::read_kv(input), split_group(expected));
14✔
1157
         } else {
1158
            // In this case "expected" is the expected exception message
1159
            result.test_throws("Invalid key value input throws exception", expected, [&]() { Botan::read_kv(input); });
36✔
1160
         }
1161
         return result;
16✔
1162
      }
16✔
1163

1164
   private:
1165
      static std::vector<std::string> split_group(const std::string& str) {
7✔
1166
         std::vector<std::string> elems;
7✔
1167
         if(str.empty()) {
7✔
1168
            return elems;
1169
         }
1170

1171
         std::string substr;
6✔
1172
         for(auto i = str.begin(); i != str.end(); ++i) {
115✔
1173
            if(*i == '|') {
109✔
1174
               elems.push_back(substr);
16✔
1175
               substr.clear();
16✔
1176
            } else {
1177
               substr += *i;
202✔
1178
            }
1179
         }
1180

1181
         if(!substr.empty()) {
6✔
1182
            elems.push_back(substr);
6✔
1183
         }
1184

1185
         return elems;
6✔
1186
      }
6✔
1187

1188
      static void confirm_kv(Test::Result& result,
7✔
1189
                             const std::map<std::string, std::string>& kv,
1190
                             const std::vector<std::string>& expected) {
1191
         if(!result.test_eq("expected size", expected.size() % 2, size_t(0))) {
7✔
1192
            return;
1193
         }
1194

1195
         for(size_t i = 0; i != expected.size(); i += 2) {
18✔
1196
            auto j = kv.find(expected[i]);
11✔
1197
            if(result.confirm("Found key", j != kv.end())) {
22✔
1198
               result.test_eq("Matching value", j->second, expected[i + 1]);
22✔
1199
            }
1200
         }
1201

1202
         result.test_eq("KV has same size as expected", kv.size(), expected.size() / 2);
14✔
1203
      }
1204
};
1205

1206
BOTAN_REGISTER_TEST("utils", "util_read_kv", ReadKV_Tests);
1207

1208
#if defined(BOTAN_HAS_CPUID)
1209

1210
class CPUID_Tests final : public Test {
×
1211
   public:
1212
      std::vector<Test::Result> run() override {
1✔
1213
         Test::Result result("CPUID");
1✔
1214

1215
         const std::string cpuid_string = Botan::CPUID::to_string();
1✔
1216
         result.test_success("CPUID::to_string doesn't crash");
1✔
1217

1218
   #if defined(BOTAN_TARGET_CPU_IS_X86_FAMILY)
1219

1220
         if(Botan::CPUID::has_sse2()) {
1✔
1221
            result.confirm("Output string includes sse2", cpuid_string.find("sse2") != std::string::npos);
2✔
1222

1223
            Botan::CPUID::clear_cpuid_bit(Botan::CPUID::CPUID_SSE2_BIT);
1✔
1224

1225
            result.test_eq("After clearing cpuid bit, has_sse2 returns false", Botan::CPUID::has_sse2(), false);
1✔
1226

1227
            Botan::CPUID::initialize();  // reset state
1✔
1228
            result.test_eq("After reinitializing, has_sse2 returns true", Botan::CPUID::has_sse2(), true);
2✔
1229
         }
1230
   #endif
1231

1232
         return {result};
3✔
1233
      }
2✔
1234
};
1235

1236
BOTAN_REGISTER_SERIALIZED_TEST("utils", "cpuid", CPUID_Tests);
1237

1238
#endif
1239

1240
#if defined(BOTAN_HAS_UUID)
1241

1242
class UUID_Tests : public Test {
×
1243
   public:
1244
      std::vector<Test::Result> run() override {
1✔
1245
         Test::Result result("UUID");
1✔
1246

1247
         const Botan::UUID empty_uuid;
1✔
1248
         const Botan::UUID random_uuid1(this->rng());
1✔
1249
         const Botan::UUID random_uuid2(this->rng());
1✔
1250
         const Botan::UUID loaded_uuid(std::vector<uint8_t>(16, 4));
1✔
1251

1252
         result.test_throws("Cannot load wrong number of bytes", []() { Botan::UUID u(std::vector<uint8_t>(15)); });
3✔
1253

1254
         result.test_eq("Empty UUID is empty", empty_uuid.is_valid(), false);
1✔
1255
         result.confirm("Empty UUID equals another empty UUID", empty_uuid == Botan::UUID());
2✔
1256

1257
         result.test_throws("Empty UUID cannot become a string", [&]() { empty_uuid.to_string(); });
3✔
1258

1259
         result.test_eq("Random UUID not empty", random_uuid1.is_valid(), true);
1✔
1260
         result.test_eq("Random UUID not empty", random_uuid2.is_valid(), true);
1✔
1261

1262
         result.confirm("Random UUIDs are distinct", random_uuid1 != random_uuid2);
2✔
1263
         result.confirm("Random UUIDs not equal to empty", random_uuid1 != empty_uuid);
2✔
1264

1265
         const std::string uuid4_str = loaded_uuid.to_string();
1✔
1266
         result.test_eq("String matches expected", uuid4_str, "04040404-0404-0404-0404-040404040404");
2✔
1267

1268
         const std::string uuid_r1_str = random_uuid1.to_string();
1✔
1269
         result.confirm("UUID from string matches", Botan::UUID(uuid_r1_str) == random_uuid1);
2✔
1270

1271
         class AllSame_RNG : public Botan::RandomNumberGenerator {
×
1272
            public:
1273
               explicit AllSame_RNG(uint8_t b) : m_val(b) {}
2✔
1274

1275
               void fill_bytes_with_input(std::span<uint8_t> output, std::span<const uint8_t> /* ignored */) override {
2✔
1276
                  for(auto& byte : output) {
34✔
1277
                     byte = m_val;
32✔
1278
                  }
1279
               }
2✔
1280

1281
               std::string name() const override { return "zeros"; }
×
1282

1283
               bool accepts_input() const override { return false; }
×
1284

1285
               void clear() override {}
×
1286

1287
               bool is_seeded() const override { return true; }
×
1288

1289
            private:
1290
               uint8_t m_val;
1291
         };
1292

1293
         AllSame_RNG zeros(0x00);
1✔
1294
         const Botan::UUID zero_uuid(zeros);
1✔
1295
         result.test_eq("Zero UUID matches expected", zero_uuid.to_string(), "00000000-0000-4000-8000-000000000000");
2✔
1296

1297
         AllSame_RNG ones(0xFF);
1✔
1298
         const Botan::UUID ones_uuid(ones);
1✔
1299
         result.test_eq("Ones UUID matches expected", ones_uuid.to_string(), "FFFFFFFF-FFFF-4FFF-BFFF-FFFFFFFFFFFF");
2✔
1300

1301
         return {result};
3✔
1302
      }
6✔
1303
};
1304

1305
BOTAN_REGISTER_TEST("utils", "uuid", UUID_Tests);
1306

1307
#endif
1308

1309
class Formatter_Tests : public Test {
×
1310
   public:
1311
      std::vector<Test::Result> run() override {
1✔
1312
         Test::Result result("Format utility");
1✔
1313

1314
         /*
1315
         In a number of these tests, we are not strictly depending on the
1316
         behavior, for instance checking `fmt("{}") == "{}"` is more about
1317
         checking that we don't crash, rather than we return that precise string.
1318
         */
1319

1320
         result.test_eq("test 1", Botan::fmt("hi"), "hi");
2✔
1321
         result.test_eq("test 2", Botan::fmt("ignored", 5), "ignored");
2✔
1322
         result.test_eq("test 3", Botan::fmt("answer is {}", 42), "answer is 42");
2✔
1323
         result.test_eq("test 4", Botan::fmt("{", 5), "{");
2✔
1324
         result.test_eq("test 4", Botan::fmt("{}"), "{}");
2✔
1325
         result.test_eq("test 5", Botan::fmt("{} == '{}'", 5, "five"), "5 == 'five'");
2✔
1326

1327
         return {result};
3✔
1328
      }
2✔
1329
};
1330

1331
BOTAN_REGISTER_TEST("utils", "fmt", Formatter_Tests);
1332

1333
class ScopedCleanup_Tests : public Test {
×
1334
   public:
1335
      std::vector<Test::Result> run() override {
1✔
1336
         return {
1✔
1337
            CHECK("leaving a scope results in cleanup",
1338
                  [](Test::Result& result) {
1✔
1339
                     bool ran = false;
1✔
1340
                     {
1✔
1341
                        auto clean = Botan::scoped_cleanup([&] { ran = true; });
1✔
1342
                     }
1✔
1343
                     result.confirm("cleanup ran", ran);
2✔
1344
                  }),
1✔
1345

1346
            CHECK("leaving a function, results in cleanup",
1347
                  [](Test::Result& result) {
1✔
1348
                     bool ran = false;
1✔
1349
                     bool fn_called = false;
1✔
1350
                     auto fn = [&] {
2✔
1351
                        auto clean = Botan::scoped_cleanup([&] { ran = true; });
1✔
1352
                        fn_called = true;
1✔
1353
                     };
2✔
1354

1355
                     result.confirm("cleanup not yet ran", !ran);
2✔
1356
                     fn();
1✔
1357
                     result.confirm("fn called", fn_called);
2✔
1358
                     result.confirm("cleanup ran", ran);
2✔
1359
                  }),
1✔
1360

1361
            CHECK("stack unwinding results in cleanup",
1362
                  [](Test::Result& result) {
1✔
1363
                     bool ran = false;
1✔
1364
                     bool fn_called = false;
1✔
1365
                     bool exception_caught = false;
1✔
1366
                     auto fn = [&] {
2✔
1367
                        auto clean = Botan::scoped_cleanup([&] { ran = true; });
1✔
1368
                        fn_called = true;
1✔
1369
                        throw std::runtime_error("test");
1✔
1370
                     };
2✔
1371

1372
                     result.confirm("cleanup not yet ran", !ran);
2✔
1373
                     try {
1✔
1374
                        fn();
1✔
1375
                     } catch(const std::exception&) {
1✔
1376
                        exception_caught = true;
1✔
1377
                     }
1✔
1378

1379
                     result.confirm("fn called", fn_called);
2✔
1380
                     result.confirm("cleanup ran", ran);
2✔
1381
                     result.confirm("exception caught", exception_caught);
2✔
1382
                  }),
1✔
1383

1384
            CHECK("cleanup isn't called after disengaging",
1385
                  [](Test::Result& result) {
1✔
1386
                     bool ran = false;
1✔
1387
                     {
1✔
1388
                        auto clean = Botan::scoped_cleanup([&] { ran = true; });
1✔
1389
                        clean.disengage();
1✔
1390
                     }
1✔
1391
                     result.confirm("cleanup not ran", !ran);
2✔
1392
                  }),
1✔
1393

1394
         };
5✔
1395
      }
1✔
1396
};
1397

1398
BOTAN_REGISTER_TEST("utils", "scoped_cleanup", ScopedCleanup_Tests);
1399

1400
}  // namespace
1401

1402
}  // namespace Botan_Tests
STATUS · Troubleshooting · Open an Issue · Sales · Support · CAREERS · ENTERPRISE · START FREE · SCHEDULE DEMO
ANNOUNCEMENTS · TWITTER · TOS & SLA · Supported CI Services · What's a CI service? · Automated Testing

© 2026 Coveralls, Inc