Bitcoin Core 28.0.0
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cuckoocache_tests.cpp
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1// Copyright (c) 2012-2021 The Bitcoin Core developers
2// Distributed under the MIT software license, see the accompanying
3// file COPYING or http://www.opensource.org/licenses/mit-license.php.
4
5#include <cuckoocache.h>
6#include <random.h>
7#include <script/sigcache.h>
8#include <test/util/random.h>
10
11#include <boost/test/unit_test.hpp>
12
13#include <deque>
14#include <mutex>
15#include <shared_mutex>
16#include <thread>
17#include <vector>
18
32BOOST_AUTO_TEST_SUITE(cuckoocache_tests);
33
34/* Test that no values not inserted into the cache are read out of it.
35 *
36 * There are no repeats in the first 200000 InsecureRand256() calls
37 */
38BOOST_AUTO_TEST_CASE(test_cuckoocache_no_fakes)
39{
42 size_t megabytes = 4;
43 cc.setup_bytes(megabytes << 20);
44 for (int x = 0; x < 100000; ++x) {
45 cc.insert(InsecureRand256());
46 }
47 for (int x = 0; x < 100000; ++x) {
48 BOOST_CHECK(!cc.contains(InsecureRand256(), false));
49 }
50};
51
55template <typename Cache>
56static double test_cache(size_t megabytes, double load)
57{
59 std::vector<uint256> hashes;
60 Cache set{};
61 size_t bytes = megabytes * (1 << 20);
62 set.setup_bytes(bytes);
63 uint32_t n_insert = static_cast<uint32_t>(load * (bytes / sizeof(uint256)));
64 hashes.resize(n_insert);
65 for (uint32_t i = 0; i < n_insert; ++i) {
66 uint32_t* ptr = (uint32_t*)hashes[i].begin();
67 for (uint8_t j = 0; j < 8; ++j)
68 *(ptr++) = InsecureRand32();
69 }
74 std::vector<uint256> hashes_insert_copy = hashes;
76 for (const uint256& h : hashes_insert_copy)
77 set.insert(h);
79 uint32_t count = 0;
80 for (const uint256& h : hashes)
81 count += set.contains(h, false);
82 double hit_rate = ((double)count) / ((double)n_insert);
83 return hit_rate;
84}
85
103static double normalize_hit_rate(double hits, double load)
104{
105 return hits * std::max(load, 1.0);
106}
107
109BOOST_AUTO_TEST_CASE(cuckoocache_hit_rate_ok)
110{
114 double HitRateThresh = 0.98;
115 size_t megabytes = 4;
116 for (double load = 0.1; load < 2; load *= 2) {
118 BOOST_CHECK(normalize_hit_rate(hits, load) > HitRateThresh);
119 }
120}
121
122
125template <typename Cache>
126static void test_cache_erase(size_t megabytes)
127{
128 double load = 1;
130 std::vector<uint256> hashes;
131 Cache set{};
132 size_t bytes = megabytes * (1 << 20);
133 set.setup_bytes(bytes);
134 uint32_t n_insert = static_cast<uint32_t>(load * (bytes / sizeof(uint256)));
135 hashes.resize(n_insert);
136 for (uint32_t i = 0; i < n_insert; ++i) {
137 uint32_t* ptr = (uint32_t*)hashes[i].begin();
138 for (uint8_t j = 0; j < 8; ++j)
139 *(ptr++) = InsecureRand32();
140 }
145 std::vector<uint256> hashes_insert_copy = hashes;
146
148 for (uint32_t i = 0; i < (n_insert / 2); ++i)
149 set.insert(hashes_insert_copy[i]);
151 for (uint32_t i = 0; i < (n_insert / 4); ++i)
152 BOOST_CHECK(set.contains(hashes[i], true));
154 for (uint32_t i = (n_insert / 2); i < n_insert; ++i)
155 set.insert(hashes_insert_copy[i]);
156
158 size_t count_erased_but_contained = 0;
160 size_t count_stale = 0;
162 size_t count_fresh = 0;
163
164 for (uint32_t i = 0; i < (n_insert / 4); ++i)
165 count_erased_but_contained += set.contains(hashes[i], false);
166 for (uint32_t i = (n_insert / 4); i < (n_insert / 2); ++i)
167 count_stale += set.contains(hashes[i], false);
168 for (uint32_t i = (n_insert / 2); i < n_insert; ++i)
169 count_fresh += set.contains(hashes[i], false);
170
171 double hit_rate_erased_but_contained = double(count_erased_but_contained) / (double(n_insert) / 4.0);
172 double hit_rate_stale = double(count_stale) / (double(n_insert) / 4.0);
173 double hit_rate_fresh = double(count_fresh) / (double(n_insert) / 2.0);
174
175 // Check that our hit_rate_fresh is perfect
176 BOOST_CHECK_EQUAL(hit_rate_fresh, 1.0);
177 // Check that we have a more than 2x better hit rate on stale elements than
178 // erased elements.
179 BOOST_CHECK(hit_rate_stale > 2 * hit_rate_erased_but_contained);
180}
181
182BOOST_AUTO_TEST_CASE(cuckoocache_erase_ok)
183{
184 size_t megabytes = 4;
186}
187
188template <typename Cache>
189static void test_cache_erase_parallel(size_t megabytes)
190{
191 double load = 1;
193 std::vector<uint256> hashes;
194 Cache set{};
195 size_t bytes = megabytes * (1 << 20);
196 set.setup_bytes(bytes);
197 uint32_t n_insert = static_cast<uint32_t>(load * (bytes / sizeof(uint256)));
198 hashes.resize(n_insert);
199 for (uint32_t i = 0; i < n_insert; ++i) {
200 uint32_t* ptr = (uint32_t*)hashes[i].begin();
201 for (uint8_t j = 0; j < 8; ++j)
202 *(ptr++) = InsecureRand32();
203 }
208 std::vector<uint256> hashes_insert_copy = hashes;
209 std::shared_mutex mtx;
210
211 {
213 std::unique_lock<std::shared_mutex> l(mtx);
215 for (uint32_t i = 0; i < (n_insert / 2); ++i)
216 set.insert(hashes_insert_copy[i]);
217 }
218
221 std::vector<std::thread> threads;
223 for (uint32_t x = 0; x < 3; ++x)
226 threads.emplace_back([&, x] {
227 std::shared_lock<std::shared_mutex> l(mtx);
228 size_t ntodo = (n_insert/4)/3;
229 size_t start = ntodo*x;
230 size_t end = ntodo*(x+1);
231 for (uint32_t i = start; i < end; ++i) {
232 bool contains = set.contains(hashes[i], true);
233 assert(contains);
234 }
235 });
236
239 for (std::thread& t : threads)
240 t.join();
242 std::unique_lock<std::shared_mutex> l(mtx);
244 for (uint32_t i = (n_insert / 2); i < n_insert; ++i)
245 set.insert(hashes_insert_copy[i]);
246
248 size_t count_erased_but_contained = 0;
250 size_t count_stale = 0;
252 size_t count_fresh = 0;
253
254 for (uint32_t i = 0; i < (n_insert / 4); ++i)
255 count_erased_but_contained += set.contains(hashes[i], false);
256 for (uint32_t i = (n_insert / 4); i < (n_insert / 2); ++i)
257 count_stale += set.contains(hashes[i], false);
258 for (uint32_t i = (n_insert / 2); i < n_insert; ++i)
259 count_fresh += set.contains(hashes[i], false);
260
261 double hit_rate_erased_but_contained = double(count_erased_but_contained) / (double(n_insert) / 4.0);
262 double hit_rate_stale = double(count_stale) / (double(n_insert) / 4.0);
263 double hit_rate_fresh = double(count_fresh) / (double(n_insert) / 2.0);
264
265 // Check that our hit_rate_fresh is perfect
266 BOOST_CHECK_EQUAL(hit_rate_fresh, 1.0);
267 // Check that we have a more than 2x better hit rate on stale elements than
268 // erased elements.
269 BOOST_CHECK(hit_rate_stale > 2 * hit_rate_erased_but_contained);
270}
271BOOST_AUTO_TEST_CASE(cuckoocache_erase_parallel_ok)
272{
273 size_t megabytes = 4;
275}
276
277
278template <typename Cache>
280{
281 // This test checks that for a simulation of network activity, the fresh hit
282 // rate is never below 99%, and the number of times that it is worse than
283 // 99.9% are less than 1% of the time.
284 double min_hit_rate = 0.99;
285 double tight_hit_rate = 0.999;
286 double max_rate_less_than_tight_hit_rate = 0.01;
287 // A cache that meets this specification is therefore shown to have a hit
288 // rate of at least tight_hit_rate * (1 - max_rate_less_than_tight_hit_rate) +
289 // min_hit_rate*max_rate_less_than_tight_hit_rate = 0.999*99%+0.99*1% == 99.89%
290 // hit rate with low variance.
291
292 // We use deterministic values, but this test has also passed on many
293 // iterations with non-deterministic values, so it isn't "overfit" to the
294 // specific entropy in FastRandomContext(true) and implementation of the
295 // cache.
297
298 // block_activity models a chunk of network activity. n_insert elements are
299 // added to the cache. The first and last n/4 are stored for removal later
300 // and the middle n/2 are not stored. This models a network which uses half
301 // the signatures of recently (since the last block) added transactions
302 // immediately and never uses the other half.
303 struct block_activity {
304 std::vector<uint256> reads;
305 block_activity(uint32_t n_insert, Cache& c) : reads()
306 {
307 std::vector<uint256> inserts;
308 inserts.resize(n_insert);
309 reads.reserve(n_insert / 2);
310 for (uint32_t i = 0; i < n_insert; ++i) {
311 uint32_t* ptr = (uint32_t*)inserts[i].begin();
312 for (uint8_t j = 0; j < 8; ++j)
313 *(ptr++) = InsecureRand32();
314 }
315 for (uint32_t i = 0; i < n_insert / 4; ++i)
316 reads.push_back(inserts[i]);
317 for (uint32_t i = n_insert - (n_insert / 4); i < n_insert; ++i)
318 reads.push_back(inserts[i]);
319 for (const auto& h : inserts)
320 c.insert(h);
321 }
322 };
323
324 const uint32_t BLOCK_SIZE = 1000;
325 // We expect window size 60 to perform reasonably given that each epoch
326 // stores 45% of the cache size (~472k).
327 const uint32_t WINDOW_SIZE = 60;
328 const uint32_t POP_AMOUNT = (BLOCK_SIZE / WINDOW_SIZE) / 2;
329 const double load = 10;
330 const size_t megabytes = 4;
331 const size_t bytes = megabytes * (1 << 20);
332 const uint32_t n_insert = static_cast<uint32_t>(load * (bytes / sizeof(uint256)));
333
334 std::vector<block_activity> hashes;
335 Cache set{};
336 set.setup_bytes(bytes);
337 hashes.reserve(n_insert / BLOCK_SIZE);
338 std::deque<block_activity> last_few;
339 uint32_t out_of_tight_tolerance = 0;
340 uint32_t total = n_insert / BLOCK_SIZE;
341 // we use the deque last_few to model a sliding window of blocks. at each
342 // step, each of the last WINDOW_SIZE block_activities checks the cache for
343 // POP_AMOUNT of the hashes that they inserted, and marks these erased.
344 for (uint32_t i = 0; i < total; ++i) {
345 if (last_few.size() == WINDOW_SIZE)
346 last_few.pop_front();
347 last_few.emplace_back(BLOCK_SIZE, set);
348 uint32_t count = 0;
349 for (auto& act : last_few)
350 for (uint32_t k = 0; k < POP_AMOUNT; ++k) {
351 count += set.contains(act.reads.back(), true);
352 act.reads.pop_back();
353 }
354 // We use last_few.size() rather than WINDOW_SIZE for the correct
355 // behavior on the first WINDOW_SIZE iterations where the deque is not
356 // full yet.
357 double hit = (double(count)) / (last_few.size() * POP_AMOUNT);
358 // Loose Check that hit rate is above min_hit_rate
359 BOOST_CHECK(hit > min_hit_rate);
360 // Tighter check, count number of times we are less than tight_hit_rate
361 // (and implicitly, greater than min_hit_rate)
362 out_of_tight_tolerance += hit < tight_hit_rate;
363 }
364 // Check that being out of tolerance happens less than
365 // max_rate_less_than_tight_hit_rate of the time
366 BOOST_CHECK(double(out_of_tight_tolerance) / double(total) < max_rate_less_than_tight_hit_rate);
367}
372
cache implements a cache with properties similar to a cuckoo-set.
std::pair< uint32_t, size_t > setup_bytes(size_t bytes)
setup_bytes is a convenience function which accounts for internal memory usage when deciding how many...
256-bit opaque blob.
Definition uint256.h:178
BOOST_AUTO_TEST_CASE(test_cuckoocache_no_fakes)
static void test_cache_erase_parallel(size_t megabytes)
static void test_cache_erase(size_t megabytes)
This helper checks that erased elements are preferentially inserted onto and that the hit rate of "fr...
static void test_cache_generations()
BOOST_AUTO_TEST_SUITE(cuckoocache_tests)
Test Suite for CuckooCache.
BOOST_AUTO_TEST_SUITE_END()
static double test_cache(size_t megabytes, double load)
This helper returns the hit rate when megabytes*load worth of entries are inserted into a megabytes s...
static double normalize_hit_rate(double hits, double load)
The normalized hit rate for a given load.
#define BOOST_CHECK_EQUAL(v1, v2)
Definition object.cpp:18
#define BOOST_CHECK(expr)
Definition object.cpp:17
void SeedRandomForTest(SeedRand seedtype)
Seed the RNG for testing.
Definition random.cpp:18
@ ZEROS
Seed with a compile time constant of zeros.
static uint256 InsecureRand256()
Definition random.h:35
static uint32_t InsecureRand32()
Definition random.h:30
static int count