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randombit / botan / 16399247596

19 Jul 2025 11:30PM UTC coverage: 90.635% (-0.07%) from 90.708%
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Merge pull request #4998 from randombit/jack/fix-clang-tidy-readability-isolate-declaration

Enable and fix clang-tidy warning readability-isolate-declaration

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84.5
/src/tests/test_rng_behavior.cpp
1
/*
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* (C) 2014,2015,2017 Jack Lloyd
3
* (C) 2016 René Korthaus, Rohde & Schwarz Cybersecurity
4
*
5
* Botan is released under the Simplified BSD License (see license.txt)
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*/
7

8
#include "test_rng.h"
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#include "tests.h"
10

11
#include <botan/internal/target_info.h>
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13
#if defined(BOTAN_HAS_STATEFUL_RNG)
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   #include <botan/stateful_rng.h>
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#endif
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#if defined(BOTAN_HAS_HMAC_DRBG)
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   #include <botan/hmac_drbg.h>
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#endif
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#if defined(BOTAN_HAS_AUTO_RNG)
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   #include <botan/auto_rng.h>
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#endif
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#if defined(BOTAN_HAS_CHACHA_RNG)
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   #include <botan/chacha_rng.h>
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#endif
28

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#if defined(BOTAN_HAS_SYSTEM_RNG)
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   #include <botan/system_rng.h>
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#endif
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33
#if defined(BOTAN_HAS_PROCESSOR_RNG)
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   #include <botan/processor_rng.h>
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#endif
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#if defined(BOTAN_HAS_ENTROPY_SOURCE)
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   #include <botan/entropy_src.h>
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#endif
40

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#if defined(BOTAN_TARGET_OS_HAS_POSIX1)
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   #include <sys/wait.h>
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   #include <unistd.h>
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#endif
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46
namespace Botan_Tests {
47

48
namespace {
49

50
#if defined(BOTAN_HAS_STATEFUL_RNG)
51

52
class Stateful_RNG_Tests : public Test {
2✔
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   public:
54
      std::vector<Test::Result> run() override {
2✔
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         std::vector<Test::Result> results;
2✔
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         results.push_back(test_reseed_kat());
4✔
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         results.push_back(test_reseed());
4✔
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         results.push_back(test_reseed_interval_limits());
4✔
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         results.push_back(test_max_number_of_bytes_per_request());
4✔
60
         results.push_back(test_broken_entropy_input());
4✔
61
         results.push_back(test_check_nonce());
4✔
62
         results.push_back(test_prediction_resistance());
4✔
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         results.push_back(test_randomize_with_ts_input());
4✔
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         results.push_back(test_security_level());
4✔
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         results.push_back(test_input_output_edge_cases());
4✔
66

67
         /*
68
         * This test uses the library in both parent and child processes. But
69
         * this causes a race with other threads, where if any other test thread
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         * is holding the mlock pool mutex, it is killed after the fork. Then,
71
         * in the child, any attempt to allocate or free memory will cause a
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         * deadlock.
73
         */
74
         if(Test::options().test_threads() == 1) {
2✔
75
            results.push_back(test_fork_safety());
×
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         }
77

78
         return results;
2✔
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      }
×
80

81
   protected:
82
      virtual std::string rng_name() const = 0;
83

84
      virtual std::unique_ptr<Botan::Stateful_RNG> create_rng(Botan::RandomNumberGenerator* underlying_rng,
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                                                              Botan::Entropy_Sources* underlying_es,
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                                                              size_t reseed_interval) = 0;
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      std::unique_ptr<Botan::Stateful_RNG> make_rng(Botan::RandomNumberGenerator& underlying_rng,
14✔
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                                                    size_t reseed_interval = 1024) {
90
         return create_rng(&underlying_rng, nullptr, reseed_interval);
14✔
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      }
92

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      std::unique_ptr<Botan::Stateful_RNG> make_rng(Botan::Entropy_Sources& underlying_srcs,
4✔
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                                                    size_t reseed_interval = 1024) {
95
         return create_rng(nullptr, &underlying_srcs, reseed_interval);
4✔
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      }
97

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      std::unique_ptr<Botan::Stateful_RNG> make_rng(Botan::RandomNumberGenerator& underlying_rng,
6✔
99
                                                    Botan::Entropy_Sources& underlying_srcs,
100
                                                    size_t reseed_interval = 1024) {
101
         return create_rng(&underlying_rng, &underlying_srcs, reseed_interval);
6✔
102
      }
103

104
      virtual Test::Result test_reseed_kat() = 0;
105

106
      virtual Test::Result test_security_level() = 0;
107

108
      virtual Test::Result test_max_number_of_bytes_per_request() = 0;
109

110
      virtual Test::Result test_reseed_interval_limits() = 0;
111

112
   private:
113
      Test::Result test_reseed() {
2✔
114
         Test::Result result(rng_name() + " Reseed");
4✔
115

116
         // test reseed_interval is enforced
117
         Request_Counting_RNG counting_rng;
2✔
118

119
         auto rng = make_rng(counting_rng, 2);
2✔
120

121
         rng->random_vec(7);
2✔
122
         result.test_eq("initial seeding", counting_rng.randomize_count(), 1);
2✔
123
         rng->random_vec(9);
2✔
124
         result.test_eq("still initial seed", counting_rng.randomize_count(), 1);
2✔
125

126
         rng->random_vec(1);
2✔
127
         result.test_eq("first reseed", counting_rng.randomize_count(), 2);
2✔
128
         rng->random_vec(15);
2✔
129
         result.test_eq("still first reseed", counting_rng.randomize_count(), 2);
2✔
130

131
         rng->random_vec(15);
2✔
132
         result.test_eq("second reseed", counting_rng.randomize_count(), 3);
2✔
133
         rng->random_vec(1);
2✔
134
         result.test_eq("still second reseed", counting_rng.randomize_count(), 3);
2✔
135

136
         if(rng->max_number_of_bytes_per_request() > 0) {
2✔
137
            // request > max_number_of_bytes_per_request, do reseeds occur?
138
            rng->random_vec(64 * 1024 + 1);
1✔
139
            result.test_eq("request exceeds output limit", counting_rng.randomize_count(), 4);
1✔
140

141
            rng->random_vec(9 * 64 * 1024 + 1);
1✔
142
            result.test_eq("request exceeds output limit", counting_rng.randomize_count(), 9);
2✔
143
         }
144

145
         return result;
4✔
146
      }
2✔
147

148
      Test::Result test_broken_entropy_input() {
2✔
149
         Test::Result result(rng_name() + " Broken Entropy Input");
4✔
150

151
   #if defined(BOTAN_HAS_ENTROPY_SOURCE)
152
         class Broken_Entropy_Source final : public Botan::Entropy_Source {
2✔
153
            public:
154
               std::string name() const override { return "Broken Entropy Source"; }
×
155

156
               size_t poll(Botan::RandomNumberGenerator& /*rng*/) override {
4✔
157
                  throw Botan::Not_Implemented("polling not available");
4✔
158
               }
159
         };
160

161
         class Insufficient_Entropy_Source final : public Botan::Entropy_Source {
2✔
162
            public:
163
               std::string name() const override { return "Insufficient Entropy Source"; }
×
164

165
               size_t poll(Botan::RandomNumberGenerator& /*rng*/) override { return 0; }
2✔
166
         };
167
   #endif
168

169
         // make sure no output is generated when the entropy input source is broken
170

171
         // underlying_rng throws exception
172
         Botan::Null_RNG broken_entropy_input_rng;
2✔
173
         result.test_eq("Null_RNG not seeded", broken_entropy_input_rng.is_seeded(), false);
2✔
174
         auto rng_with_broken_rng = make_rng(broken_entropy_input_rng);
2✔
175

176
         result.test_throws("broken underlying rng", [&rng_with_broken_rng]() { rng_with_broken_rng->random_vec(16); });
6✔
177

178
   #if defined(BOTAN_HAS_ENTROPY_SOURCE)
179

180
         // entropy_sources throw exception
181
         auto broken_entropy_source_1 = std::make_unique<Broken_Entropy_Source>();
2✔
182
         auto broken_entropy_source_2 = std::make_unique<Broken_Entropy_Source>();
2✔
183

184
         Botan::Entropy_Sources broken_entropy_sources;
2✔
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         broken_entropy_sources.add_source(std::move(broken_entropy_source_1));
2✔
186
         broken_entropy_sources.add_source(std::move(broken_entropy_source_2));
2✔
187

188
         auto rng_with_broken_es = make_rng(broken_entropy_sources);
2✔
189
         result.test_throws("broken entropy sources", [&rng_with_broken_es]() { rng_with_broken_es->random_vec(16); });
6✔
190

191
         // entropy source returns insufficient entropy
192
         Botan::Entropy_Sources insufficient_entropy_sources;
2✔
193
         auto insufficient_entropy_source = std::make_unique<Insufficient_Entropy_Source>();
2✔
194
         insufficient_entropy_sources.add_source(std::move(insufficient_entropy_source));
2✔
195

196
         auto rng_with_insufficient_es = make_rng(insufficient_entropy_sources);
2✔
197
         result.test_throws("insufficient entropy source",
4✔
198
                            [&rng_with_insufficient_es]() { rng_with_insufficient_es->random_vec(16); });
4✔
199

200
         // one of or both underlying_rng and entropy_sources throw exception
201

202
         auto rng_with_broken_rng_and_good_es =
2✔
203
            make_rng(broken_entropy_input_rng, Botan::Entropy_Sources::global_sources());
2✔
204

205
         result.test_throws("broken underlying rng but good entropy sources",
4✔
206
                            [&rng_with_broken_rng_and_good_es]() { rng_with_broken_rng_and_good_es->random_vec(16); });
4✔
207

208
         auto rng_with_good_rng_and_broken_es = make_rng(this->rng(), broken_entropy_sources);
2✔
209

210
         result.test_throws("good underlying rng but broken entropy sources",
4✔
211
                            [&rng_with_good_rng_and_broken_es]() { rng_with_good_rng_and_broken_es->random_vec(16); });
4✔
212

213
         auto rng_with_broken_rng_and_broken_es = make_rng(broken_entropy_input_rng, broken_entropy_sources);
2✔
214

215
         result.test_throws("underlying rng and entropy sources broken", [&rng_with_broken_rng_and_broken_es]() {
4✔
216
            rng_with_broken_rng_and_broken_es->random_vec(16);
2✔
217
         });
×
218
   #endif
219

220
         return result;
4✔
221
      }
12✔
222

223
      Test::Result test_check_nonce() {
2✔
224
         Test::Result result(rng_name() + " Nonce Check");
4✔
225

226
         // make sure the nonce has at least security_strength bits
227
         auto rng = create_rng(nullptr, nullptr, 0);
2✔
228

229
         for(size_t nonce_size : {0, 4, 8, 16, 31, 32, 34, 64}) {
18✔
230
            rng->clear();
16✔
231
            result.test_eq("not seeded", rng->is_seeded(), false);
16✔
232

233
            const std::vector<uint8_t> nonce(nonce_size);
16✔
234
            rng->initialize_with(nonce.data(), nonce.size());
16✔
235

236
            if(nonce_size < rng->security_level() / 8) {
16✔
237
               result.test_eq("not seeded", rng->is_seeded(), false);
10✔
238
               result.test_throws("invalid nonce size", [&rng]() { rng->random_vec(32); });
40✔
239
            } else {
240
               result.test_eq("is seeded", rng->is_seeded(), true);
6✔
241
               rng->random_vec(32);
12✔
242
            }
243
         }
16✔
244

245
         return result;
2✔
246
      }
2✔
247

248
      Test::Result test_prediction_resistance() {
2✔
249
         Test::Result result(rng_name() + " Prediction Resistance");
4✔
250

251
         // set reseed_interval = 1, forcing a reseed for every RNG request
252
         Request_Counting_RNG counting_rng;
2✔
253
         auto rng = make_rng(counting_rng, 1);
2✔
254

255
         rng->random_vec(16);
2✔
256
         result.test_eq("first request", counting_rng.randomize_count(), size_t(1));
2✔
257

258
         rng->random_vec(16);
2✔
259
         result.test_eq("second request", counting_rng.randomize_count(), size_t(2));
2✔
260

261
         rng->random_vec(16);
2✔
262
         result.test_eq("third request", counting_rng.randomize_count(), size_t(3));
2✔
263

264
         return result;
4✔
265
      }
2✔
266

267
      Test::Result test_fork_safety() {
×
268
         Test::Result result(rng_name() + " Fork Safety");
×
269

270
   #if defined(BOTAN_TARGET_OS_HAS_POSIX1)
271
         const size_t reseed_interval = 1024;
×
272

273
         // make sure rng is reseeded after every fork
274
         Request_Counting_RNG counting_rng;
×
275
         auto rng = make_rng(counting_rng, reseed_interval);
×
276

277
         rng->random_vec(16);
×
278
         result.test_eq("first request", counting_rng.randomize_count(), size_t(1));
×
279

280
         // fork and request from parent and child, both should output different sequences
281
         size_t count = counting_rng.randomize_count();
×
282
         Botan::secure_vector<uint8_t> parent_bytes(16);
×
283
         Botan::secure_vector<uint8_t> child_bytes(16);
×
284
         int fd[2];
×
285
         int rc = ::pipe(fd);
×
286
         if(rc != 0) {
×
287
            result.test_failure("failed to create pipe");
×
288
         }
289

290
         pid_t pid = ::fork();
×
291
         if(pid == -1) {
×
292
      #if defined(BOTAN_TARGET_OS_IS_EMSCRIPTEN)
293
            result.test_note("failed to fork process");
294
      #else
295
            result.test_failure("failed to fork process");
×
296
      #endif
297
            return result;
×
298
         } else if(pid != 0) {
×
299
            // parent process, wait for randomize_count from child's rng
300
            ::close(fd[1]);  // close write end in parent
×
301
            ssize_t got = ::read(fd[0], &count, sizeof(count));
×
302

303
            if(got > 0) {
×
304
               result.test_eq("expected bytes from child", got, sizeof(count));
×
305
               result.test_eq("parent not reseeded", counting_rng.randomize_count(), 1);
×
306
               result.test_eq("child reseed occurred", count, 2);
×
307
            } else {
308
               result.test_failure("Failed to read count size from child process");
×
309
            }
310

311
            parent_bytes = rng->random_vec(16);
×
312
            got = ::read(fd[0], child_bytes.data(), child_bytes.size());
×
313

314
            if(got > 0) {
×
315
               result.test_eq("expected bytes from child", got, child_bytes.size());
×
316
               result.test_ne("parent and child output sequences differ", parent_bytes, child_bytes);
×
317
            } else {
318
               result.test_failure("Failed to read RNG bytes from child process");
×
319
            }
320
            ::close(fd[0]);  // close read end in parent
×
321

322
            // wait for the child to exit
323
            int status = 0;
×
324
            ::waitpid(pid, &status, 0);
×
325
         } else {
326
            // child process, send randomize_count and first output sequence back to parent
327
            ::close(fd[0]);  // close read end in child
×
328
            rng->randomize(child_bytes.data(), child_bytes.size());
×
329
            count = counting_rng.randomize_count();
×
330
            ssize_t written = ::write(fd[1], &count, sizeof(count));
×
331
            BOTAN_UNUSED(written);
×
332
            try {
×
333
               rng->randomize(child_bytes.data(), child_bytes.size());
×
334
            } catch(std::exception& e) {
×
335
               static_cast<void>(fprintf(stderr, "%s", e.what()));  // NOLINT(*-vararg)
×
336
            }
×
337
            written = ::write(fd[1], child_bytes.data(), child_bytes.size());
×
338
            BOTAN_UNUSED(written);
×
339
            ::close(fd[1]);  // close write end in child
×
340

341
            /*
342
            * We can't call exit because it causes the mlock pool to be freed (#602)
343
            * We can't call _exit because it makes valgrind think we leaked memory.
344
            * So instead we execute something that will return 0 for us.
345
            */
346
            ::execl("/bin/true", "true", NULL);  // NOLINT(*-vararg)
×
347
            ::_exit(0);                          // just in case /bin/true isn't available (sandbox?)
×
348
         }
349
   #endif
350
         return result;
×
351
      }
×
352

353
      Test::Result test_randomize_with_ts_input() {
2✔
354
         Test::Result result(rng_name() + " Randomize With Timestamp Input");
4✔
355

356
         const size_t request_bytes = 64;
2✔
357
         const std::vector<uint8_t> seed(128);
2✔
358

359
         // check that randomize_with_ts_input() creates different output based on a timestamp
360
         // and possibly additional data, such as process id even with identical seeds
361
         Fixed_Output_RNG fixed_output_rng1(seed);
2✔
362
         Fixed_Output_RNG fixed_output_rng2(seed);
2✔
363

364
         auto rng1 = make_rng(fixed_output_rng1);
2✔
365
         auto rng2 = make_rng(fixed_output_rng2);
2✔
366

367
         Botan::secure_vector<uint8_t> output1(request_bytes);
2✔
368
         Botan::secure_vector<uint8_t> output2(request_bytes);
2✔
369

370
         rng1->randomize(output1.data(), output1.size());
2✔
371
         rng2->randomize(output2.data(), output2.size());
2✔
372

373
         result.test_eq("equal output due to same seed", output1, output2);
4✔
374

375
         rng1->randomize_with_ts_input(output1.data(), output1.size());
2✔
376
         rng2->randomize_with_ts_input(output2.data(), output2.size());
2✔
377

378
         result.test_ne("output differs due to different timestamp", output1, output2);
4✔
379

380
         return result;
2✔
381
      }
10✔
382

383
      Test::Result test_input_output_edge_cases() {
2✔
384
         Test::Result result(rng_name() + " randomize");
4✔
385

386
         const std::vector<uint8_t> seed(128);
2✔
387
         Fixed_Output_RNG fixed_output_rng(seed);
2✔
388

389
         auto rng = make_rng(fixed_output_rng);
2✔
390

391
         for(size_t i = 0; i != 4096; ++i) {
8,194✔
392
            std::vector<uint8_t> buf(i);
8,192✔
393
            rng->randomize(buf.data(), buf.size());
8,192✔
394
            rng->add_entropy(buf.data(), buf.size());
8,192✔
395

396
            result.test_success("RNG accepted input and output length");
16,384✔
397
         }
8,192✔
398

399
         return result;
2✔
400
      }
4✔
401
};
402

403
#endif
404

405
#if defined(BOTAN_HAS_HMAC_DRBG) && defined(BOTAN_HAS_SHA2_32)
406

407
class HMAC_DRBG_Unit_Tests final : public Stateful_RNG_Tests {
×
408
   public:
409
      std::string rng_name() const override { return "HMAC_DRBG"; }
6✔
410

411
      std::unique_ptr<Botan::Stateful_RNG> create_rng(Botan::RandomNumberGenerator* underlying_rng,
13✔
412
                                                      Botan::Entropy_Sources* underlying_es,
413
                                                      size_t reseed_interval) override {
414
         std::unique_ptr<Botan::MessageAuthenticationCode> mac =
13✔
415
            Botan::MessageAuthenticationCode::create("HMAC(SHA-256)");
13✔
416

417
         if(underlying_rng != nullptr && underlying_es != nullptr) {
13✔
418
            return std::make_unique<Botan::HMAC_DRBG>(std::move(mac), *underlying_rng, *underlying_es, reseed_interval);
3✔
419
         } else if(underlying_rng != nullptr) {
10✔
420
            return std::make_unique<Botan::HMAC_DRBG>(std::move(mac), *underlying_rng, reseed_interval);
7✔
421
         } else if(underlying_es != nullptr) {
3✔
422
            return std::make_unique<Botan::HMAC_DRBG>(std::move(mac), *underlying_es, reseed_interval);
2✔
423
         } else if(reseed_interval == 0) {
1✔
424
            return std::make_unique<Botan::HMAC_DRBG>(std::move(mac));
1✔
425
         } else {
426
            throw Test_Error("Invalid reseed interval in HMAC_DRBG unit test");
×
427
         }
428
      }
13✔
429

430
      Test::Result test_max_number_of_bytes_per_request() override {
1✔
431
         Test::Result result("HMAC_DRBG max_number_of_bytes_per_request");
1✔
432

433
         const std::string mac_string = "HMAC(SHA-256)";
1✔
434

435
         Request_Counting_RNG counting_rng;
1✔
436

437
         result.test_throws(
2✔
438
            "HMAC_DRBG does not accept 0 for max_number_of_bytes_per_request", [&mac_string, &counting_rng]() {
1✔
439
               Botan::HMAC_DRBG failing_rng(Botan::MessageAuthenticationCode::create(mac_string), counting_rng, 2, 0);
1✔
440
            });
×
441

442
         result.test_throws("HMAC_DRBG does not accept values higher than 64KB for max_number_of_bytes_per_request",
2✔
443
                            [&mac_string, &counting_rng]() {
1✔
444
                               Botan::HMAC_DRBG failing_rng(
1✔
445
                                  Botan::MessageAuthenticationCode::create(mac_string), counting_rng, 2, 64 * 1024 + 1);
1✔
446
                            });
×
447

448
         // set reseed_interval to 1 so we can test that a long request is split
449
         // into multiple, max_number_of_bytes_per_request long requests
450
         // for each smaller request, reseed_check() calls counting_rng::randomize(),
451
         // which we can compare with
452
         Botan::HMAC_DRBG rng(Botan::MessageAuthenticationCode::create(mac_string), counting_rng, 1, 64);
1✔
453

454
         rng.random_vec(63);
1✔
455
         result.test_eq("one request", counting_rng.randomize_count(), 1);
1✔
456

457
         rng.clear();
1✔
458
         counting_rng.clear();
1✔
459

460
         rng.random_vec(64);
1✔
461
         result.test_eq("one request", counting_rng.randomize_count(), 1);
1✔
462

463
         rng.clear();
1✔
464
         counting_rng.clear();
1✔
465

466
         rng.random_vec(65);
1✔
467
         result.test_eq("two requests", counting_rng.randomize_count(), 2);
1✔
468

469
         rng.clear();
1✔
470
         counting_rng.clear();
1✔
471

472
         rng.random_vec(1025);
1✔
473
         result.test_eq("17 requests", counting_rng.randomize_count(), 17);
1✔
474

475
         return result;
2✔
476
      }
1✔
477

478
      Test::Result test_reseed_interval_limits() override {
1✔
479
         Test::Result result("HMAC_DRBG reseed_interval limits");
1✔
480

481
         const std::string mac_string = "HMAC(SHA-256)";
1✔
482

483
         Request_Counting_RNG counting_rng;
1✔
484

485
         result.test_throws("HMAC_DRBG does not accept 0 for reseed_interval", [&mac_string, &counting_rng]() {
2✔
486
            Botan::HMAC_DRBG failing_rng(Botan::MessageAuthenticationCode::create(mac_string), counting_rng, 0);
1✔
487
         });
×
488

489
         result.test_throws("HMAC_DRBG does not accept values higher than 2^24 for reseed_interval",
2✔
490
                            [&mac_string, &counting_rng]() {
1✔
491
                               Botan::HMAC_DRBG failing_rng(Botan::MessageAuthenticationCode::create(mac_string),
2✔
492
                                                            counting_rng,
1✔
493
                                                            (static_cast<size_t>(1) << 24) + 1);
1✔
494
                            });
×
495

496
         return result;
1✔
497
      }
1✔
498

499
      Test::Result test_security_level() override {
1✔
500
         Test::Result result("HMAC_DRBG Security Level");
1✔
501

502
         std::vector<std::string> approved_hash_fns{"SHA-1", "SHA-224", "SHA-256", "SHA-512/256", "SHA-384", "SHA-512"};
7✔
503
         std::vector<uint32_t> security_strengths{128, 192, 256, 256, 256, 256};
2✔
504

505
         for(size_t i = 0; i < approved_hash_fns.size(); ++i) {
7✔
506
            const auto& hash_fn = approved_hash_fns[i];
6✔
507
            const size_t expected_security_level = security_strengths[i];
6✔
508

509
            const std::string mac_name = "HMAC(" + hash_fn + ")";
12✔
510
            auto mac = Botan::MessageAuthenticationCode::create(mac_name);
6✔
511
            if(!mac) {
6✔
512
               result.note_missing(mac_name);
1✔
513
               continue;
1✔
514
            }
515

516
            Botan::HMAC_DRBG rng(std::move(mac));
5✔
517
            result.test_eq(hash_fn + " security level", rng.security_level(), expected_security_level);
5✔
518
         }
6✔
519

520
         return result;
1✔
521
      }
3✔
522

523
      Test::Result test_reseed_kat() override {
1✔
524
         Test::Result result("HMAC_DRBG Reseed KAT");
1✔
525

526
         Request_Counting_RNG counting_rng;
1✔
527
         auto rng = make_rng(counting_rng, 2);
1✔
528

529
         const Botan::secure_vector<uint8_t> seed_input(
1✔
530
            {0x00, 0x11, 0x22, 0x33, 0x44, 0x55, 0x66, 0x77, 0x88, 0x99, 0xAA, 0xBB, 0xCC, 0xDD, 0xEE, 0xFF,
531
             0x00, 0x11, 0x22, 0x33, 0x44, 0x55, 0x66, 0x77, 0x88, 0x99, 0xAA, 0xBB, 0xCC, 0xDD, 0xEE, 0xFF});
1✔
532

533
         result.test_eq("is_seeded", rng->is_seeded(), false);
1✔
534

535
         rng->initialize_with(seed_input.data(), seed_input.size());
1✔
536

537
         Botan::secure_vector<uint8_t> out(32);
1✔
538

539
         rng->randomize(out.data(), out.size());
1✔
540
         result.test_eq("underlying RNG calls", counting_rng.randomize_count(), size_t(0));
1✔
541
         result.test_eq("out before reseed", out, "48D3B45AAB65EF92CCFCB9427EF20C90297065ECC1B8A525BFE4DC6FF36D0E38");
1✔
542

543
         // reseed must happen here
544
         rng->randomize(out.data(), out.size());
1✔
545
         result.test_eq("underlying RNG calls", counting_rng.randomize_count(), size_t(1));
1✔
546
         result.test_eq("out after reseed", out, "2F8FCA696832C984781123FD64F4B20C7379A25C87AB29A21C9BF468B0081CE2");
1✔
547

548
         return result;
2✔
549
      }
3✔
550
};
551

552
std::vector<Test::Result> hmac_drbg_multiple_requests() {
1✔
553
   auto null_rng = Botan::Null_RNG();
1✔
554
   constexpr auto rng_max_output = 1024;
1✔
555
   const auto seed = Botan::hex_decode("deadbeefbaadcafedeadbeefbaadcafedeadbeefbaadcafedeadbeefbaadcafe");
1✔
556

557
   auto make_seeded_rng = [&](size_t reseed_interval) {
5✔
558
      auto rng = std::make_unique<Botan::HMAC_DRBG>(Botan::MessageAuthenticationCode::create("HMAC(SHA-256)"),
×
559
                                                    null_rng,
560
                                                    reseed_interval + 1 /* off by one */,
8✔
561
                                                    rng_max_output);
4✔
562
      rng->add_entropy(seed);
4✔
563
      return rng;
4✔
564
   };
×
565

566
   return {CHECK("bulk and split output without input",
1✔
567
                 [&](auto& result) {
1✔
568
                    auto rng1 = make_seeded_rng(2);
1✔
569
                    auto rng2 = make_seeded_rng(2);
1✔
570

571
                    result.confirm("RNG 1 is seeded and ready to go", rng1->is_seeded());
2✔
572
                    result.confirm("RNG 2 is seeded and ready to go", rng2->is_seeded());
2✔
573

574
                    auto bulk = rng1->random_vec<std::vector<uint8_t>>(2 * rng_max_output);
1✔
575

576
                    auto split1 = rng2->random_vec<std::vector<uint8_t>>(rng_max_output);
1✔
577
                    auto split2 = rng2->random_vec<std::vector<uint8_t>>(rng_max_output);
1✔
578
                    split1.insert(split1.end(), split2.begin(), split2.end());
1✔
579

580
                    result.test_eq("Output is equal, regardless bulk request", bulk, split1);
2✔
581

582
                    return result;
2✔
583
                 }),
3✔
584

585
           CHECK("bulk and split output with input", [&](auto& result) {
1✔
586
              auto rng1 = make_seeded_rng(3);
1✔
587
              auto rng2 = make_seeded_rng(3);
1✔
588

589
              result.confirm("RNG 1 is seeded and ready to go", rng1->is_seeded());
2✔
590
              result.confirm("RNG 2 is seeded and ready to go", rng2->is_seeded());
2✔
591

592
              std::vector<uint8_t> bulk(3 * rng_max_output);
1✔
593
              rng1->randomize_with_input(bulk, seed);
2✔
594

595
              std::vector<uint8_t> split(3 * rng_max_output);
1✔
596
              std::span<uint8_t> split_span(split);
1✔
597
              rng2->randomize_with_input(split_span.subspan(0, rng_max_output), seed);
2✔
598
              rng2->randomize_with_input(split_span.subspan(rng_max_output, rng_max_output), {});
2✔
599
              rng2->randomize_with_input(split_span.subspan(2 * rng_max_output), {});
2✔
600

601
              result.test_eq("Output is equal, regardless bulk request", bulk, split);
2✔
602

603
              return result;
2✔
604
           })};
6✔
605
}
2✔
606

607
BOTAN_REGISTER_TEST("rng", "hmac_drbg_unit", HMAC_DRBG_Unit_Tests);
608
BOTAN_REGISTER_TEST_FN("rng", "hmac_drbg_multi_requst", hmac_drbg_multiple_requests);
609

610
#endif
611

612
#if defined(BOTAN_HAS_CHACHA_RNG)
613

614
class ChaCha_RNG_Unit_Tests final : public Stateful_RNG_Tests {
×
615
   public:
616
      std::string rng_name() const override { return "ChaCha_RNG"; }
6✔
617

618
      std::unique_ptr<Botan::Stateful_RNG> create_rng(Botan::RandomNumberGenerator* underlying_rng,
13✔
619
                                                      Botan::Entropy_Sources* underlying_es,
620
                                                      size_t reseed_interval) override {
621
         if(underlying_rng != nullptr && underlying_es != nullptr) {
13✔
622
            return std::make_unique<Botan::ChaCha_RNG>(*underlying_rng, *underlying_es, reseed_interval);
3✔
623
         } else if(underlying_rng != nullptr) {
10✔
624
            return std::make_unique<Botan::ChaCha_RNG>(*underlying_rng, reseed_interval);
7✔
625
         } else if(underlying_es != nullptr) {
3✔
626
            return std::make_unique<Botan::ChaCha_RNG>(*underlying_es, reseed_interval);
2✔
627
         } else if(reseed_interval == 0) {
1✔
628
            return std::make_unique<Botan::ChaCha_RNG>();
1✔
629
         } else {
630
            throw Test_Error("Invalid reseed interval in ChaCha_RNG unit test");
×
631
         }
632
      }
633

634
      Test::Result test_security_level() override {
1✔
635
         Test::Result result("ChaCha_RNG Security Level");
1✔
636
         Botan::ChaCha_RNG rng;
1✔
637
         result.test_eq("Expected security level", rng.security_level(), size_t(256));
1✔
638
         return result;
1✔
639
      }
1✔
640

641
      Test::Result test_max_number_of_bytes_per_request() override {
1✔
642
         Test::Result result("ChaCha_RNG max_number_of_bytes_per_request");
1✔
643
         // ChaCha_RNG doesn't have this notion
644
         return result;
1✔
645
      }
646

647
      Test::Result test_reseed_interval_limits() override {
1✔
648
         Test::Result result("ChaCha_RNG reseed_interval limits");
1✔
649
         // ChaCha_RNG doesn't apply any limits to reseed_interval
650
         return result;
1✔
651
      }
652

653
      Test::Result test_reseed_kat() override {
1✔
654
         Test::Result result("ChaCha_RNG Reseed KAT");
1✔
655

656
         Request_Counting_RNG counting_rng;
1✔
657
         auto rng = make_rng(counting_rng, 2);
1✔
658

659
         const Botan::secure_vector<uint8_t> seed_input(32);
1✔
660

661
         result.test_eq("is_seeded", rng->is_seeded(), false);
1✔
662

663
         rng->initialize_with(seed_input.data(), seed_input.size());
1✔
664

665
         Botan::secure_vector<uint8_t> out(32);
1✔
666

667
         rng->randomize(out.data(), out.size());
1✔
668
         result.test_eq("underlying RNG calls", counting_rng.randomize_count(), size_t(0));
1✔
669
         result.test_eq("out before reseed", out, "1F0E6F13429D5073B59C057C37CBE9587740A0A894D247E2596C393CE91DDC6F");
1✔
670

671
         // reseed must happen here
672
         rng->randomize(out.data(), out.size());
1✔
673
         result.test_eq("underlying RNG calls", counting_rng.randomize_count(), size_t(1));
1✔
674
         result.test_eq("out after reseed", out, "F2CAE73F22684D5D773290B48FDCDA0E6C0661EBA0A854AFEC922832BDBB9C49");
1✔
675

676
         return result;
2✔
677
      }
3✔
678
};
679

680
BOTAN_REGISTER_TEST("rng", "chacha_rng_unit", ChaCha_RNG_Unit_Tests);
681

682
#endif
683

684
#if defined(BOTAN_HAS_AUTO_RNG)
685

686
class AutoSeeded_RNG_Tests final : public Test {
×
687
   private:
688
      static Test::Result auto_rng_tests() {
1✔
689
         Test::Result result("AutoSeeded_RNG");
1✔
690

691
         Botan::Null_RNG null_rng;
1✔
692

693
         result.test_eq("Null_RNG is null", null_rng.is_seeded(), false);
1✔
694

695
         try {
1✔
696
            Botan::AutoSeeded_RNG rng(null_rng);
1✔
697
         } catch(Botan::PRNG_Unseeded&) {
1✔
698
            result.test_success("AutoSeeded_RNG rejected useless RNG");
1✔
699
         }
1✔
700

701
   #if defined(BOTAN_HAS_ENTROPY_SOURCE)
702
         Botan::Entropy_Sources no_entropy_for_you;
1✔
703

704
         try {
1✔
705
            Botan::AutoSeeded_RNG rng(no_entropy_for_you);
1✔
706
            result.test_failure("AutoSeeded_RNG should have rejected useless entropy source");
×
707
         } catch(Botan::PRNG_Unseeded&) {
1✔
708
            result.test_success("AutoSeeded_RNG rejected empty entropy source");
1✔
709
         }
1✔
710

711
         try {
1✔
712
            Botan::AutoSeeded_RNG rng(null_rng, no_entropy_for_you);
1✔
713
         } catch(Botan::PRNG_Unseeded&) {
1✔
714
            result.test_success("AutoSeeded_RNG rejected useless RNG+entropy sources");
1✔
715
         }
1✔
716
   #endif
717

718
         Botan::AutoSeeded_RNG rng;
1✔
719

720
         result.confirm("AutoSeeded_RNG::name", rng.name().starts_with("HMAC_DRBG(HMAC(SHA-"));
3✔
721

722
         result.confirm("AutoSeeded_RNG starts seeded", rng.is_seeded());
2✔
723
         rng.random_vec(16);  // generate and discard output
1✔
724
         rng.clear();
1✔
725
         result.test_eq("AutoSeeded_RNG unseeded after calling clear", rng.is_seeded(), false);
1✔
726

727
         // AutoSeeded_RNG automatically reseeds as required:
728
         rng.random_vec(16);
1✔
729
         result.confirm("AutoSeeded_RNG can be reseeded", rng.is_seeded());
2✔
730

731
         result.confirm("AutoSeeded_RNG ", rng.is_seeded());
2✔
732
         rng.random_vec(16);  // generate and discard output
1✔
733
         rng.clear();
1✔
734
         result.test_eq("AutoSeeded_RNG unseeded after calling clear", rng.is_seeded(), false);
1✔
735

736
   #if defined(BOTAN_HAS_ENTROPY_SOURCE)
737
         const size_t no_entropy_bits = rng.reseed(no_entropy_for_you, 256, std::chrono::milliseconds(300));
1✔
738
         result.test_eq("AutoSeeded_RNG can't reseed from nothing", no_entropy_bits, 0);
1✔
739
         result.test_eq("AutoSeeded_RNG still unseeded", rng.is_seeded(), false);
1✔
740
   #endif
741

742
         rng.random_vec(16);  // generate and discard output
1✔
743
         result.confirm("AutoSeeded_RNG can be reseeded", rng.is_seeded());
2✔
744

745
         for(size_t i = 0; i != 4096; ++i) {
4,097✔
746
            std::vector<uint8_t> buf(i);
4,096✔
747
            rng.randomize(buf.data(), buf.size());
4,096✔
748
            rng.add_entropy(buf.data(), buf.size());
4,096✔
749

750
            result.test_success("AutoSeeded_RNG accepted input and output length");
8,192✔
751
         }
4,096✔
752

753
         rng.clear();
1✔
754

755
         return result;
1✔
756
      }
1✔
757

758
   public:
759
      std::vector<Test::Result> run() override {
1✔
760
         std::vector<Test::Result> results;
1✔
761
         results.push_back(auto_rng_tests());
2✔
762
         return results;
1✔
763
      }
×
764
};
765

766
BOTAN_REGISTER_TEST("rng", "auto_rng_unit", AutoSeeded_RNG_Tests);
767

768
#endif
769

770
#if defined(BOTAN_HAS_SYSTEM_RNG)
771

772
class System_RNG_Tests final : public Test {
×
773
   public:
774
      std::vector<Test::Result> run() override {
1✔
775
         Test::Result result("System_RNG");
1✔
776

777
         Botan::System_RNG rng;
1✔
778

779
         result.test_gte("Some non-empty name is returned", rng.name().size(), 1);
3✔
780

781
         result.confirm("System RNG always seeded", rng.is_seeded());
3✔
782
         rng.clear();  // clear is a noop for system rng
1✔
783
         result.confirm("System RNG always seeded", rng.is_seeded());
3✔
784

785
   #if defined(BOTAN_HAS_ENTROPY_SOURCE)
786
         rng.reseed(Botan::Entropy_Sources::global_sources(), 256, std::chrono::milliseconds(100));
1✔
787
   #endif
788

789
         for(size_t i = 0; i != 128; ++i) {
129✔
790
            std::vector<uint8_t> out_buf(i);
128✔
791
            rng.randomize(out_buf.data(), out_buf.size());
128✔
792
            rng.add_entropy(out_buf.data(), out_buf.size());
128✔
793
         }
128✔
794

795
         if(Test::run_long_tests() && Test::run_memory_intensive_tests() && (sizeof(size_t) > 4)) {
1✔
796
            // Pass buffer with a size greater than 32bit
797
            const size_t size32BitsMax = std::numeric_limits<uint32_t>::max();
1✔
798
            const size_t checkSize = 1024;
1✔
799
            std::vector<uint8_t> large_buf(size32BitsMax + checkSize);
1✔
800
            std::memset(large_buf.data() + size32BitsMax, 0xFE, checkSize);
1✔
801

802
            rng.randomize(large_buf.data(), large_buf.size());
1✔
803

804
            std::vector<uint8_t> check_buf(checkSize, 0xFE);
1✔
805

806
            result.confirm("System RNG failed to write after 4GB boundry",
2✔
807
                           std::memcmp(large_buf.data() + size32BitsMax, check_buf.data(), checkSize) != 0);
1✔
808
         }
2✔
809

810
         return std::vector<Test::Result>{result};
2✔
811
      }
2✔
812
};
813

814
BOTAN_REGISTER_TEST("rng", "system_rng", System_RNG_Tests);
815

816
#endif
817

818
#if defined(BOTAN_HAS_PROCESSOR_RNG)
819

820
class Processor_RNG_Tests final : public Test {
×
821
   public:
822
      std::vector<Test::Result> run() override {
1✔
823
         Test::Result result("Processor_RNG");
1✔
824

825
         if(Botan::Processor_RNG::available()) {
1✔
826
            Botan::Processor_RNG rng;
1✔
827

828
            result.test_ne("Has a name", rng.name(), "");
2✔
829
            result.confirm("CPU RNG always seeded", rng.is_seeded());
2✔
830
            rng.clear();  // clear is a noop for rdrand
1✔
831
            result.confirm("CPU RNG always seeded", rng.is_seeded());
2✔
832

833
   #if defined(BOTAN_HAS_ENTROPY_SOURCE)
834
            size_t reseed_bits = rng.reseed(Botan::Entropy_Sources::global_sources(), 256, std::chrono::seconds(1));
1✔
835
            result.test_eq("CPU RNG cannot consume inputs", reseed_bits, size_t(0));
1✔
836
   #endif
837

838
            /*
839
            Processor_RNG ignores add_entropy calls - confirm this by passing
840
            an invalid ptr/length field to add_entropy. If it examined its
841
            arguments, it would crash...
842
            */
843
            // NOLINTNEXTLINE(*-no-int-to-ptr)
844
            const uint8_t* invalid_ptr = reinterpret_cast<const uint8_t*>(static_cast<uintptr_t>(0xDEADC0DE));
1✔
845
            const size_t invalid_ptr_len = 64 * 1024;
1✔
846
            rng.add_entropy(invalid_ptr, invalid_ptr_len);
1✔
847

848
            for(size_t i = 0; i != 128; ++i) {
129✔
849
               std::vector<uint8_t> out_buf(i);
128✔
850
               rng.randomize(out_buf.data(), out_buf.size());
128✔
851
            }
128✔
852
         } else {
1✔
853
            result.test_throws("Processor_RNG throws if instruction not available", []() { Botan::Processor_RNG rng; });
×
854
         }
855

856
         return std::vector<Test::Result>{result};
3✔
857
      }
2✔
858
};
859

860
BOTAN_REGISTER_TEST("rng", "processor_rng", Processor_RNG_Tests);
861

862
#endif
863

864
}  // namespace
865

866
}  // namespace Botan_Tests
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