Coverage Report

Created: 2026-09-14 20:36

next uncovered line (L), next uncovered region (R), next uncovered branch (B)
/tmp/bitcoin/src/coins.cpp
Line
Count
Source
1
// Copyright (c) 2012-present 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 <coins.h>
6
7
#include <consensus/consensus.h>
8
#include <primitives/block.h>
9
#include <random.h>
10
#include <uint256.h>
11
#include <util/log.h>
12
#include <util/threadpool.h>
13
#include <util/trace.h>
14
15
#include <ranges>
16
#include <unordered_set>
17
18
TRACEPOINT_SEMAPHORE(utxocache, add);
19
TRACEPOINT_SEMAPHORE(utxocache, spent);
20
TRACEPOINT_SEMAPHORE(utxocache, uncache);
21
22
SaltedCoinsCacheHasher::SaltedCoinsCacheHasher(bool deterministic)
23
451k
    : m_hasher{
24
451k
          deterministic ? 0x8e819f2607a18de6 : FastRandomContext().rand64(),
25
451k
          deterministic ? 0xf4020d2e3983b0eb : FastRandomContext().rand64()}
26
451k
{
27
451k
}
28
29
CoinsViewEmpty& CoinsViewEmpty::Get()
30
100k
{
31
100k
    static CoinsViewEmpty instance;
32
100k
    return instance;
33
100k
}
34
35
std::optional<Coin> CCoinsViewCache::PeekCoin(const COutPoint& outpoint) const
36
449k
{
37
449k
    if (auto it{cacheCoins.find(outpoint)}; it != cacheCoins.end()) {
38
58.0k
        return it->second.coin.IsSpent() ? std::nullopt : std::optional{it->second.coin};
39
58.0k
    }
40
391k
    return base->PeekCoin(outpoint);
41
449k
}
42
43
CCoinsViewCache::CCoinsViewCache(CCoinsView* in_base, bool deterministic) :
44
438k
    CCoinsViewBacked(in_base), m_deterministic(deterministic),
45
438k
    cacheCoins(0, SaltedCoinsCacheHasher{/*deterministic=*/deterministic}, CCoinsMap::key_equal{}, &m_cache_coins_memory_resource)
46
438k
{
47
438k
    m_sentinel.second.SelfRef(m_sentinel);
48
438k
}
49
50
995k
size_t CCoinsViewCache::DynamicMemoryUsage() const {
51
995k
    return memusage::DynamicUsage(cacheCoins) + cachedCoinsUsage;
52
995k
}
53
54
std::optional<Coin> CCoinsViewCache::FetchCoinFromBase(const COutPoint& outpoint) const
55
40.2M
{
56
40.2M
    return base->GetCoin(outpoint);
57
40.2M
}
58
59
88.4M
CCoinsMap::iterator CCoinsViewCache::FetchCoin(const COutPoint &outpoint) const {
60
88.4M
    const auto [ret, inserted] = cacheCoins.try_emplace(outpoint);
61
88.4M
    if (inserted) {
62
40.6M
        if (auto coin{FetchCoinFromBase(outpoint)}) {
63
11.7M
            ret->second.coin = std::move(*coin);
64
11.7M
            cachedCoinsUsage += ret->second.coin.DynamicMemoryUsage();
65
11.7M
            Assert(!ret->second.coin.IsSpent());
66
28.8M
        } else {
67
28.8M
            cacheCoins.erase(ret);
68
28.8M
            return cacheCoins.end();
69
28.8M
        }
70
40.6M
    }
71
59.5M
    return ret;
72
88.4M
}
73
74
std::optional<Coin> CCoinsViewCache::GetCoin(const COutPoint& outpoint) const
75
28.5M
{
76
28.5M
    if (auto it{FetchCoin(outpoint)}; it != cacheCoins.end() && !it->second.coin.IsSpent()) return it->second.coin;
77
16.9M
    return std::nullopt;
78
28.5M
}
79
80
17.6M
void CCoinsViewCache::AddCoin(const COutPoint &outpoint, Coin&& coin, bool possible_overwrite) {
81
17.6M
    assert(!coin.IsSpent());
82
17.6M
    if (coin.out.scriptPubKey.IsUnspendable()) return;
83
17.3M
    CCoinsMap::iterator it;
84
17.3M
    bool inserted;
85
17.3M
    std::tie(it, inserted) = cacheCoins.emplace(std::piecewise_construct, std::forward_as_tuple(outpoint), std::tuple<>());
86
17.3M
    bool fresh = false;
87
17.3M
    if (!possible_overwrite) {
88
17.1M
        if (!it->second.coin.IsSpent()) {
89
17
            throw std::logic_error("Attempted to overwrite an unspent coin (when possible_overwrite is false)");
90
17
        }
91
        // If the coin exists in this cache as a spent coin and is DIRTY, then
92
        // its spentness hasn't been flushed to the parent cache. We're
93
        // re-adding the coin to this cache now but we can't mark it as FRESH.
94
        // If we mark it FRESH and then spend it before the cache is flushed
95
        // we would remove it from this cache and would never flush spentness
96
        // to the parent cache.
97
        //
98
        // Re-adding a spent coin can happen in the case of a re-org (the coin
99
        // is 'spent' when the block adding it is disconnected and then
100
        // re-added when it is also added in a newly connected block).
101
        //
102
        // If the coin doesn't exist in the current cache, or is spent but not
103
        // DIRTY, then it can be marked FRESH.
104
17.1M
        fresh = !it->second.IsDirty();
105
17.1M
    }
106
17.3M
    if (!inserted) {
107
11.2k
        Assume(TrySub(m_dirty_count, it->second.IsDirty()));
108
11.2k
        Assume(TrySub(cachedCoinsUsage, it->second.coin.DynamicMemoryUsage()));
109
11.2k
    }
110
17.3M
    it->second.coin = std::move(coin);
111
17.3M
    CCoinsCacheEntry::SetDirty(*it, m_sentinel);
112
17.3M
    ++m_dirty_count;
113
17.3M
    if (fresh) CCoinsCacheEntry::SetFresh(*it, m_sentinel);
114
17.3M
    cachedCoinsUsage += it->second.coin.DynamicMemoryUsage();
115
17.3M
    TRACEPOINT(utxocache, add,
116
17.3M
           outpoint.hash.data(),
117
17.3M
           (uint32_t)outpoint.n,
118
17.3M
           (uint32_t)it->second.coin.nHeight,
119
17.3M
           (int64_t)it->second.coin.out.nValue,
120
17.3M
           (bool)it->second.coin.IsCoinBase());
121
17.3M
}
122
123
25.1k
void CCoinsViewCache::EmplaceCoinInternalDANGER(const COutPoint& outpoint, Coin&& coin) {
124
25.1k
    const auto mem_usage{coin.DynamicMemoryUsage()};
125
25.1k
    auto [it, inserted] = cacheCoins.try_emplace(outpoint, std::move(coin));
126
25.1k
    if (inserted) {
127
25.1k
        CCoinsCacheEntry::SetDirty(*it, m_sentinel);
128
25.1k
        ++m_dirty_count;
129
25.1k
        cachedCoinsUsage += mem_usage;
130
25.1k
    }
131
25.1k
}
132
133
8.96M
void AddCoins(CCoinsViewCache& cache, const CTransaction &tx, int nHeight, bool check_for_overwrite) {
134
8.96M
    bool fCoinbase = tx.IsCoinBase();
135
8.96M
    const Txid& txid = tx.GetHash();
136
26.4M
    for (size_t i = 0; i < tx.vout.size(); ++i) {
137
17.5M
        bool overwrite = check_for_overwrite ? cache.HaveCoin(COutPoint(txid, i)) : fCoinbase;
138
        // Coinbase transactions can always be overwritten, in order to correctly
139
        // deal with the pre-BIP30 occurrences of duplicate coinbase transactions.
140
17.5M
        cache.AddCoin(COutPoint(txid, i), Coin(tx.vout[i], nHeight, fCoinbase), overwrite);
141
17.5M
    }
142
8.96M
}
143
144
11.6M
bool CCoinsViewCache::SpendCoin(const COutPoint &outpoint, Coin* moveout) {
145
11.6M
    CCoinsMap::iterator it = FetchCoin(outpoint);
146
11.6M
    if (it == cacheCoins.end()) return false;
147
11.6M
    Assume(TrySub(m_dirty_count, it->second.IsDirty()));
148
11.6M
    Assume(TrySub(cachedCoinsUsage, it->second.coin.DynamicMemoryUsage()));
149
11.6M
    TRACEPOINT(utxocache, spent,
150
11.6M
           outpoint.hash.data(),
151
11.6M
           (uint32_t)outpoint.n,
152
11.6M
           (uint32_t)it->second.coin.nHeight,
153
11.6M
           (int64_t)it->second.coin.out.nValue,
154
11.6M
           (bool)it->second.coin.IsCoinBase());
155
11.6M
    if (moveout) {
156
172k
        *moveout = std::move(it->second.coin);
157
172k
    }
158
11.6M
    if (it->second.IsFresh()) {
159
387k
        cacheCoins.erase(it);
160
11.2M
    } else {
161
11.2M
        CCoinsCacheEntry::SetDirty(*it, m_sentinel);
162
11.2M
        ++m_dirty_count;
163
11.2M
        it->second.coin.Clear();
164
11.2M
    }
165
11.6M
    return true;
166
11.6M
}
167
168
static const Coin coinEmpty;
169
170
23.5M
const Coin& CCoinsViewCache::AccessCoin(const COutPoint &outpoint) const {
171
23.5M
    CCoinsMap::const_iterator it = FetchCoin(outpoint);
172
23.5M
    if (it == cacheCoins.end()) {
173
10.6M
        return coinEmpty;
174
12.8M
    } else {
175
12.8M
        return it->second.coin;
176
12.8M
    }
177
23.5M
}
178
179
bool CCoinsViewCache::HaveCoin(const COutPoint& outpoint) const
180
24.6M
{
181
24.6M
    CCoinsMap::const_iterator it = FetchCoin(outpoint);
182
24.6M
    return (it != cacheCoins.end() && !it->second.coin.IsSpent());
183
24.6M
}
184
185
306k
bool CCoinsViewCache::HaveCoinInCache(const COutPoint &outpoint) const {
186
306k
    CCoinsMap::const_iterator it = cacheCoins.find(outpoint);
187
306k
    return (it != cacheCoins.end() && !it->second.coin.IsSpent());
188
306k
}
189
190
482k
uint256 CCoinsViewCache::GetBestBlock() const {
191
482k
    if (m_block_hash.IsNull())
192
211k
        m_block_hash = base->GetBestBlock();
193
482k
    return m_block_hash;
194
482k
}
195
196
void CCoinsViewCache::SetBestBlock(const uint256& in_block_hash)
197
767k
{
198
767k
    m_block_hash = in_block_hash;
199
767k
}
200
201
void CCoinsViewCache::BatchWrite(CoinsViewCacheCursor& cursor, const uint256& in_block_hash)
202
116k
{
203
616k
    for (auto it{cursor.Begin()}; it != cursor.End(); it = cursor.NextAndMaybeErase(*it)) {
204
499k
        if (!it->second.IsDirty()) { // TODO a cursor can only contain dirty entries
205
18
            continue;
206
18
        }
207
499k
        auto [itUs, inserted]{cacheCoins.try_emplace(it->first)};
208
499k
        if (inserted) {
209
393k
            if (it->second.IsFresh() && it->second.coin.IsSpent()) {
210
1
                cacheCoins.erase(itUs); // TODO fresh coins should have been removed at spend
211
393k
            } else {
212
                // The parent cache does not have an entry, while the child cache does.
213
                // Move the data up and mark it as dirty.
214
393k
                CCoinsCacheEntry& entry{itUs->second};
215
393k
                assert(entry.coin.DynamicMemoryUsage() == 0);
216
393k
                if (cursor.WillErase(*it)) {
217
                    // Since this entry will be erased,
218
                    // we can move the coin into us instead of copying it
219
379k
                    entry.coin = std::move(it->second.coin);
220
379k
                } else {
221
13.7k
                    entry.coin = it->second.coin;
222
13.7k
                }
223
393k
                CCoinsCacheEntry::SetDirty(*itUs, m_sentinel);
224
393k
                ++m_dirty_count;
225
393k
                cachedCoinsUsage += entry.coin.DynamicMemoryUsage();
226
                // We can mark it FRESH in the parent if it was FRESH in the child
227
                // Otherwise it might have just been flushed from the parent's cache
228
                // and already exist in the grandparent
229
393k
                if (it->second.IsFresh()) CCoinsCacheEntry::SetFresh(*itUs, m_sentinel);
230
393k
            }
231
393k
        } else {
232
            // Found the entry in the parent cache
233
106k
            if (it->second.IsFresh() && !itUs->second.coin.IsSpent()) {
234
                // The coin was marked FRESH in the child cache, but the coin
235
                // exists in the parent cache. If this ever happens, it means
236
                // the FRESH flag was misapplied and there is a logic error in
237
                // the calling code.
238
8
                throw std::logic_error("FRESH flag misapplied to coin that exists in parent cache");
239
8
            }
240
241
106k
            if (itUs->second.IsFresh() && it->second.coin.IsSpent()) {
242
                // The grandparent cache does not have an entry, and the coin
243
                // has been spent. We can just delete it from the parent cache.
244
37.0k
                Assume(TrySub(m_dirty_count, itUs->second.IsDirty()));
245
37.0k
                Assume(TrySub(cachedCoinsUsage, itUs->second.coin.DynamicMemoryUsage()));
246
37.0k
                cacheCoins.erase(itUs);
247
69.1k
            } else {
248
                // A normal modification.
249
69.1k
                Assume(TrySub(cachedCoinsUsage, itUs->second.coin.DynamicMemoryUsage()));
250
69.1k
                if (cursor.WillErase(*it)) {
251
                    // Since this entry will be erased,
252
                    // we can move the coin into us instead of copying it
253
67.6k
                    itUs->second.coin = std::move(it->second.coin);
254
67.6k
                } else {
255
1.53k
                    itUs->second.coin = it->second.coin;
256
1.53k
                }
257
69.1k
                cachedCoinsUsage += itUs->second.coin.DynamicMemoryUsage();
258
69.1k
                if (!itUs->second.IsDirty()) {
259
46.6k
                    CCoinsCacheEntry::SetDirty(*itUs, m_sentinel);
260
46.6k
                    ++m_dirty_count;
261
46.6k
                }
262
                // NOTE: It isn't safe to mark the coin as FRESH in the parent
263
                // cache. If it already existed and was spent in the parent
264
                // cache then marking it FRESH would prevent that spentness
265
                // from being flushed to the grandparent.
266
69.1k
            }
267
106k
        }
268
499k
    }
269
116k
    SetBestBlock(in_block_hash);
270
116k
}
271
272
void CCoinsViewCache::Flush(bool reallocate_cache)
273
119k
{
274
119k
    auto cursor{CoinsViewCacheCursor(m_dirty_count, m_sentinel, cacheCoins, /*will_erase=*/true)};
275
119k
    base->BatchWrite(cursor, m_block_hash);
276
119k
    Assume(m_dirty_count == 0);
277
119k
    cacheCoins.clear();
278
119k
    if (reallocate_cache) {
279
3.33k
        ReallocateCache();
280
3.33k
    }
281
119k
    cachedCoinsUsage = 0;
282
119k
}
283
284
void CCoinsViewCache::Sync()
285
1.50k
{
286
1.50k
    auto cursor{CoinsViewCacheCursor(m_dirty_count, m_sentinel, cacheCoins, /*will_erase=*/false)};
287
1.50k
    base->BatchWrite(cursor, m_block_hash);
288
1.50k
    Assume(m_dirty_count == 0);
289
1.50k
    if (m_sentinel.second.Next() != &m_sentinel) {
290
        /* BatchWrite must clear flags of all entries */
291
0
        throw std::logic_error("Not all unspent flagged entries were cleared");
292
0
    }
293
1.50k
}
294
295
void CCoinsViewCache::Reset() noexcept
296
108k
{
297
108k
    cacheCoins.clear();
298
108k
    cachedCoinsUsage = 0;
299
108k
    m_dirty_count = 0;
300
108k
    SetBestBlock(uint256::ZERO);
301
108k
}
302
303
void CCoinsViewCache::Uncache(const COutPoint& hash)
304
22.9k
{
305
22.9k
    CCoinsMap::iterator it = cacheCoins.find(hash);
306
22.9k
    if (it != cacheCoins.end() && !it->second.IsDirty()) {
307
9.89k
        Assume(TrySub(cachedCoinsUsage, it->second.coin.DynamicMemoryUsage()));
308
9.89k
        TRACEPOINT(utxocache, uncache,
309
9.89k
               hash.hash.data(),
310
9.89k
               (uint32_t)hash.n,
311
9.89k
               (uint32_t)it->second.coin.nHeight,
312
9.89k
               (int64_t)it->second.coin.out.nValue,
313
9.89k
               (bool)it->second.coin.IsCoinBase());
314
9.89k
        cacheCoins.erase(it);
315
9.89k
    }
316
22.9k
}
317
318
493k
unsigned int CCoinsViewCache::GetCacheSize() const {
319
493k
    return cacheCoins.size();
320
493k
}
321
322
bool CCoinsViewCache::HaveInputs(const CTransaction& tx) const
323
8.81M
{
324
8.81M
    if (!tx.IsCoinBase()) {
325
20.4M
        for (unsigned int i = 0; i < tx.vin.size(); i++) {
326
11.5M
            if (!HaveCoin(tx.vin[i].prevout)) {
327
322
                return false;
328
322
            }
329
11.5M
        }
330
8.81M
    }
331
8.81M
    return true;
332
8.81M
}
333
334
void CCoinsViewCache::ReallocateCache()
335
3.33k
{
336
    // Cache should be empty when we're calling this.
337
3.33k
    assert(cacheCoins.size() == 0);
338
3.33k
    cacheCoins.~CCoinsMap();
339
3.33k
    m_cache_coins_memory_resource.~CCoinsMapMemoryResource();
340
3.33k
    ::new (&m_cache_coins_memory_resource) CCoinsMapMemoryResource{};
341
3.33k
    ::new (&cacheCoins) CCoinsMap{0, SaltedCoinsCacheHasher{/*deterministic=*/m_deterministic}, CCoinsMap::key_equal{}, &m_cache_coins_memory_resource};
342
3.33k
}
343
344
void CCoinsViewCache::SanityCheck() const
345
342
{
346
342
    size_t recomputed_usage = 0;
347
342
    size_t count_dirty = 0;
348
510k
    for (const auto& [_, entry] : cacheCoins) {
349
510k
        if (entry.coin.IsSpent()) {
350
23.4k
            assert(entry.IsDirty() && !entry.IsFresh()); // A spent coin must be dirty and cannot be fresh
351
487k
        } else {
352
487k
            assert(entry.IsDirty() || !entry.IsFresh()); // An unspent coin must not be fresh if not dirty
353
487k
        }
354
355
        // Recompute cachedCoinsUsage.
356
510k
        recomputed_usage += entry.coin.DynamicMemoryUsage();
357
358
        // Count the number of entries we expect in the linked list.
359
510k
        if (entry.IsDirty()) ++count_dirty;
360
510k
    }
361
    // Iterate over the linked list of flagged entries.
362
342
    size_t count_linked = 0;
363
60.6k
    for (auto it = m_sentinel.second.Next(); it != &m_sentinel; it = it->second.Next()) {
364
        // Verify linked list integrity.
365
60.3k
        assert(it->second.Next()->second.Prev() == it);
366
60.3k
        assert(it->second.Prev()->second.Next() == it);
367
        // Verify they are actually flagged.
368
60.3k
        assert(it->second.IsDirty());
369
        // Count the number of entries actually in the list.
370
60.3k
        ++count_linked;
371
60.3k
    }
372
342
    assert(count_dirty == count_linked && count_dirty == m_dirty_count);
373
342
    assert(recomputed_usage == cachedCoinsUsage);
374
342
}
375
376
CCoinsViewCache::ResetGuard CoinsViewOverlay::StartFetching(const CBlock& block LIFETIMEBOUND) noexcept
377
108k
{
378
108k
    Assert(m_futures.empty());
379
108k
    Assert(m_inputs.empty());
380
108k
    Assert(m_input_head.load(std::memory_order_relaxed) == 0);
381
108k
    Assert(m_input_tail == 0);
382
108k
    if (const auto workers_count{m_thread_pool->WorkersCount()}; workers_count > 0 && block.vtx.size() > 1) {
383
        // Loop through the block inputs and set their prevouts in the queue.
384
        // Filter inputs that spend outputs created earlier in the same block. These outputs will be created
385
        // directly in the cache from the tx that creates them, so they will not be requested from a base view.
386
9.47k
        std::unordered_set<Txid, SaltedCoinsCacheHasher> earlier_txids;
387
9.47k
        earlier_txids.reserve(block.vtx.size());
388
9.47k
        earlier_txids.emplace(block.vtx[0]->GetHash());
389
53.8k
        for (const auto& tx : block.vtx | std::views::drop(1)) {
390
86.2k
            for (const auto& input : tx->vin) {
391
86.2k
                if (!earlier_txids.contains(input.prevout.hash)) m_inputs.emplace_back(input.prevout);
392
86.2k
            }
393
53.8k
            earlier_txids.emplace(tx->GetHash());
394
53.8k
        }
395
        // Only submit tasks if we have something to fetch.
396
9.47k
        if (m_inputs.size()) {
397
25.4k
            std::vector<std::function<void()>> tasks(workers_count, [this] {
398
80.1k
                while (ProcessInput()) {}
399
25.4k
            });
400
9.47k
            if (auto futures{m_thread_pool->Submit(std::move(tasks))}) {
401
9.46k
                m_futures = std::move(*futures);
402
9.46k
            } else {
403
                // Submit can fail if a shared owner of the thread pool outside of this class calls Stop() or
404
                // Interrupt() on a different thread after we call WorkersCount() above. In that case parallel
405
                // fetching will not make progress, so we clear the inputs to fall back to single threaded fetching.
406
1
                LogWarning("Failed to submit prevout fetch tasks (%s); falling back to single-threaded fetching for this block.", SubmitErrorString(futures.error()));
407
1
                m_inputs.clear();
408
1
                StopFetching(); // Assert nothing changed if we failed to start tasks.
409
1
            }
410
9.47k
        }
411
9.47k
    }
412
108k
    return CreateResetGuard();
413
108k
}
414
415
static const uint64_t MIN_TRANSACTION_OUTPUT_WEIGHT{WITNESS_SCALE_FACTOR * ::GetSerializeSize(CTxOut())};
416
static const uint64_t MAX_OUTPUTS_PER_BLOCK{MAX_BLOCK_WEIGHT / MIN_TRANSACTION_OUTPUT_WEIGHT};
417
418
const Coin& AccessByTxid(const CCoinsViewCache& view, const Txid& txid)
419
181
{
420
181
    COutPoint iter(txid, 0);
421
9.88M
    while (iter.n < MAX_OUTPUTS_PER_BLOCK) {
422
9.88M
        const Coin& alternate = view.AccessCoin(iter);
423
9.88M
        if (!alternate.IsSpent()) return alternate;
424
9.88M
        ++iter.n;
425
9.88M
    }
426
89
    return coinEmpty;
427
181
}
428
429
template <typename ReturnType, typename Func>
430
static ReturnType ExecuteBackedWrapper(Func func, const std::vector<std::function<void()>>& err_callbacks)
431
1.30M
{
432
1.30M
    try {
433
1.30M
        return func();
434
1.30M
    } catch(const std::runtime_error& e) {
435
0
        for (const auto& f : err_callbacks) {
436
0
            f();
437
0
        }
438
0
        LogError("Error reading from database: %s\n", e.what());
439
        // Starting the shutdown sequence and returning false to the caller would be
440
        // interpreted as 'entry not found' (as opposed to unable to read data), and
441
        // could lead to invalid interpretation. Just exit immediately, as we can't
442
        // continue anyway, and all writes should be atomic.
443
0
        std::abort();
444
0
    }
445
1.30M
}
coins.cpp:std::optional<Coin> ExecuteBackedWrapper<std::optional<Coin>, CCoinsViewErrorCatcher::GetCoin(COutPoint const&) const::$_0>(CCoinsViewErrorCatcher::GetCoin(COutPoint const&) const::$_0, std::vector<std::function<void ()>, std::allocator<std::function<void ()>>> const&)
Line
Count
Source
431
911k
{
432
911k
    try {
433
911k
        return func();
434
911k
    } catch(const std::runtime_error& e) {
435
0
        for (const auto& f : err_callbacks) {
436
0
            f();
437
0
        }
438
0
        LogError("Error reading from database: %s\n", e.what());
439
        // Starting the shutdown sequence and returning false to the caller would be
440
        // interpreted as 'entry not found' (as opposed to unable to read data), and
441
        // could lead to invalid interpretation. Just exit immediately, as we can't
442
        // continue anyway, and all writes should be atomic.
443
0
        std::abort();
444
0
    }
445
911k
}
Unexecuted instantiation: coins.cpp:bool ExecuteBackedWrapper<bool, CCoinsViewErrorCatcher::HaveCoin(COutPoint const&) const::$_0>(CCoinsViewErrorCatcher::HaveCoin(COutPoint const&) const::$_0, std::vector<std::function<void ()>, std::allocator<std::function<void ()>>> const&)
coins.cpp:std::optional<Coin> ExecuteBackedWrapper<std::optional<Coin>, CCoinsViewErrorCatcher::PeekCoin(COutPoint const&) const::$_0>(CCoinsViewErrorCatcher::PeekCoin(COutPoint const&) const::$_0, std::vector<std::function<void ()>, std::allocator<std::function<void ()>>> const&)
Line
Count
Source
431
390k
{
432
390k
    try {
433
390k
        return func();
434
390k
    } catch(const std::runtime_error& e) {
435
0
        for (const auto& f : err_callbacks) {
436
0
            f();
437
0
        }
438
0
        LogError("Error reading from database: %s\n", e.what());
439
        // Starting the shutdown sequence and returning false to the caller would be
440
        // interpreted as 'entry not found' (as opposed to unable to read data), and
441
        // could lead to invalid interpretation. Just exit immediately, as we can't
442
        // continue anyway, and all writes should be atomic.
443
0
        std::abort();
444
0
    }
445
390k
}
446
447
std::optional<Coin> CCoinsViewErrorCatcher::GetCoin(const COutPoint& outpoint) const
448
911k
{
449
911k
    return ExecuteBackedWrapper<std::optional<Coin>>([&]() { return CCoinsViewBacked::GetCoin(outpoint); }, m_err_callbacks);
450
911k
}
451
452
bool CCoinsViewErrorCatcher::HaveCoin(const COutPoint& outpoint) const
453
0
{
454
0
    return ExecuteBackedWrapper<bool>([&]() { return CCoinsViewBacked::HaveCoin(outpoint); }, m_err_callbacks);
455
0
}
456
457
std::optional<Coin> CCoinsViewErrorCatcher::PeekCoin(const COutPoint& outpoint) const
458
390k
{
459
390k
    return ExecuteBackedWrapper<std::optional<Coin>>([&]() { return CCoinsViewBacked::PeekCoin(outpoint); }, m_err_callbacks);
460
390k
}