Coverage Report

Created: 2026-06-03 10:44

next uncovered line (L), next uncovered region (R), next uncovered branch (B)
/tmp/bitcoin/src/checkqueue.h
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
#ifndef BITCOIN_CHECKQUEUE_H
6
#define BITCOIN_CHECKQUEUE_H
7
8
#include <sync.h>
9
#include <tinyformat.h>
10
#include <util/log.h>
11
#include <util/threadnames.h>
12
13
#include <algorithm>
14
#include <iterator>
15
#include <optional>
16
#include <vector>
17
18
/**
19
 * Queue for verifications that have to be performed.
20
  * The verifications are represented by a type T, which must provide an
21
  * operator(), returning an std::optional<R>.
22
  *
23
  * The overall result of the computation is std::nullopt if all invocations
24
  * return std::nullopt, or one of the other results otherwise.
25
  *
26
  * One thread (the master) is assumed to push batches of verifications
27
  * onto the queue, where they are processed by N-1 worker threads. When
28
  * the master is done adding work, it temporarily joins the worker pool
29
  * as an N'th worker, until all jobs are done.
30
  *
31
  */
32
template <typename T, typename R = std::remove_cvref_t<decltype(std::declval<T>()().value())>>
33
class CCheckQueue
34
{
35
private:
36
    //! Mutex to protect the inner state
37
    Mutex m_mutex;
38
39
    //! Worker threads block on this when out of work
40
    std::condition_variable m_worker_cv;
41
42
    //! Master thread blocks on this when out of work
43
    std::condition_variable m_master_cv;
44
45
    //! The queue of elements to be processed.
46
    //! As the order of booleans doesn't matter, it is used as a LIFO (stack)
47
    std::vector<T> queue GUARDED_BY(m_mutex);
48
49
    //! The number of workers (including the master) that are idle.
50
    int nIdle GUARDED_BY(m_mutex){0};
51
52
    //! The total number of workers (including the master).
53
    int nTotal GUARDED_BY(m_mutex){0};
54
55
    //! The temporary evaluation result.
56
    std::optional<R> m_result GUARDED_BY(m_mutex);
57
58
    /**
59
     * Number of verifications that haven't completed yet.
60
     * This includes elements that are no longer queued, but still in the
61
     * worker's own batches.
62
     */
63
    unsigned int nTodo GUARDED_BY(m_mutex){0};
64
65
    //! The maximum number of elements to be processed in one batch
66
    const unsigned int nBatchSize;
67
68
    std::vector<std::thread> m_worker_threads;
69
    bool m_request_stop GUARDED_BY(m_mutex){false};
70
71
    /// \anchor checkqueue
72
    /** Internal function that does bulk of the verification work. If fMaster, return the final result. */
73
    std::optional<R> Loop(bool fMaster) EXCLUSIVE_LOCKS_REQUIRED(!m_mutex)
74
157k
    {
75
157k
        std::condition_variable& cond = fMaster ? m_master_cv : m_worker_cv;
76
157k
        std::vector<T> vChecks;
77
157k
        vChecks.reserve(nBatchSize);
78
157k
        unsigned int nNow = 0;
79
157k
        std::optional<R> local_result;
80
157k
        bool do_work;
81
6.22M
        do {
82
6.22M
            {
83
6.22M
                WAIT_LOCK(m_mutex, lock);
84
                // first do the clean-up of the previous loop run (allowing us to do it in the same critsect)
85
6.22M
                if (nNow) {
86
6.06M
                    if (local_result.has_value() && !m_result.has_value()) {
87
3.63k
                        std::swap(local_result, m_result);
88
3.63k
                    }
89
6.06M
                    nTodo -= nNow;
90
6.06M
                    if (nTodo == 0 && !fMaster) {
91
                        // We processed the last element; inform the master it can exit and return the result
92
1.09M
                        m_master_cv.notify_one();
93
1.09M
                    }
94
6.06M
                } else {
95
                    // first iteration
96
157k
                    nTotal++;
97
157k
                }
98
                // logically, the do loop starts here
99
9.52M
                while (queue.empty() && !m_request_stop) {
100
3.45M
                    if (fMaster && nTodo == 0) {
101
156k
                        nTotal--;
102
156k
                        std::optional<R> to_return = std::move(m_result);
103
                        // reset the status for new work later
104
156k
                        m_result = std::nullopt;
105
                        // return the current status
106
156k
                        return to_return;
107
156k
                    }
108
3.30M
                    nIdle++;
109
3.30M
                    cond.wait(lock); // wait
110
3.30M
                    nIdle--;
111
3.30M
                }
112
6.07M
                if (m_request_stop) {
113
                    // return value does not matter, because m_request_stop is only set in the destructor.
114
1.41k
                    return std::nullopt;
115
1.41k
                }
116
117
                // Decide how many work units to process now.
118
                // * Do not try to do everything at once, but aim for increasingly smaller batches so
119
                //   all workers finish approximately simultaneously.
120
                // * Try to account for idle jobs which will instantly start helping.
121
                // * Don't do batches smaller than 1 (duh), or larger than nBatchSize.
122
6.06M
                nNow = std::max(1U, std::min(nBatchSize, (unsigned int)queue.size() / (nTotal + nIdle + 1)));
123
6.06M
                auto start_it = queue.end() - nNow;
124
6.06M
                vChecks.assign(std::make_move_iterator(start_it), std::make_move_iterator(queue.end()));
125
6.06M
                queue.erase(start_it, queue.end());
126
                // Check whether we need to do work at all
127
6.06M
                do_work = !m_result.has_value();
128
6.06M
            }
129
            // execute work
130
6.06M
            if (do_work) {
131
11.7M
                for (T& check : vChecks) {
132
11.7M
                    local_result = check();
133
11.7M
                    if (local_result.has_value()) break;
134
11.7M
                }
135
6.05M
            }
136
6.06M
            vChecks.clear();
137
6.06M
        } while (true);
138
157k
    }
CCheckQueue<FakeCheck, int>::Loop(bool)
Line
Count
Source
74
7
    {
75
7
        std::condition_variable& cond = fMaster ? m_master_cv : m_worker_cv;
76
7
        std::vector<T> vChecks;
77
7
        vChecks.reserve(nBatchSize);
78
7
        unsigned int nNow = 0;
79
7
        std::optional<R> local_result;
80
7
        bool do_work;
81
7
        do {
82
7
            {
83
7
                WAIT_LOCK(m_mutex, lock);
84
                // first do the clean-up of the previous loop run (allowing us to do it in the same critsect)
85
7
                if (nNow) {
86
0
                    if (local_result.has_value() && !m_result.has_value()) {
87
0
                        std::swap(local_result, m_result);
88
0
                    }
89
0
                    nTodo -= nNow;
90
0
                    if (nTodo == 0 && !fMaster) {
91
                        // We processed the last element; inform the master it can exit and return the result
92
0
                        m_master_cv.notify_one();
93
0
                    }
94
7
                } else {
95
                    // first iteration
96
7
                    nTotal++;
97
7
                }
98
                // logically, the do loop starts here
99
10
                while (queue.empty() && !m_request_stop) {
100
7
                    if (fMaster && nTodo == 0) {
101
4
                        nTotal--;
102
4
                        std::optional<R> to_return = std::move(m_result);
103
                        // reset the status for new work later
104
4
                        m_result = std::nullopt;
105
                        // return the current status
106
4
                        return to_return;
107
4
                    }
108
3
                    nIdle++;
109
3
                    cond.wait(lock); // wait
110
3
                    nIdle--;
111
3
                }
112
3
                if (m_request_stop) {
113
                    // return value does not matter, because m_request_stop is only set in the destructor.
114
3
                    return std::nullopt;
115
3
                }
116
117
                // Decide how many work units to process now.
118
                // * Do not try to do everything at once, but aim for increasingly smaller batches so
119
                //   all workers finish approximately simultaneously.
120
                // * Try to account for idle jobs which will instantly start helping.
121
                // * Don't do batches smaller than 1 (duh), or larger than nBatchSize.
122
0
                nNow = std::max(1U, std::min(nBatchSize, (unsigned int)queue.size() / (nTotal + nIdle + 1)));
123
0
                auto start_it = queue.end() - nNow;
124
0
                vChecks.assign(std::make_move_iterator(start_it), std::make_move_iterator(queue.end()));
125
0
                queue.erase(start_it, queue.end());
126
                // Check whether we need to do work at all
127
0
                do_work = !m_result.has_value();
128
0
            }
129
            // execute work
130
0
            if (do_work) {
131
0
                for (T& check : vChecks) {
132
0
                    local_result = check();
133
0
                    if (local_result.has_value()) break;
134
0
                }
135
0
            }
136
0
            vChecks.clear();
137
0
        } while (true);
138
7
    }
CCheckQueue<FakeCheckCheckCompletion, int>::Loop(bool)
Line
Count
Source
74
221
    {
75
221
        std::condition_variable& cond = fMaster ? m_master_cv : m_worker_cv;
76
221
        std::vector<T> vChecks;
77
221
        vChecks.reserve(nBatchSize);
78
221
        unsigned int nNow = 0;
79
221
        std::optional<R> local_result;
80
221
        bool do_work;
81
5.16M
        do {
82
5.16M
            {
83
5.16M
                WAIT_LOCK(m_mutex, lock);
84
                // first do the clean-up of the previous loop run (allowing us to do it in the same critsect)
85
5.16M
                if (nNow) {
86
5.16M
                    if (local_result.has_value() && !m_result.has_value()) {
87
0
                        std::swap(local_result, m_result);
88
0
                    }
89
5.16M
                    nTodo -= nNow;
90
5.16M
                    if (nTodo == 0 && !fMaster) {
91
                        // We processed the last element; inform the master it can exit and return the result
92
907k
                        m_master_cv.notify_one();
93
907k
                    }
94
18.4E
                } else {
95
                    // first iteration
96
18.4E
                    nTotal++;
97
18.4E
                }
98
                // logically, the do loop starts here
99
7.93M
                while (queue.empty() && !m_request_stop) {
100
2.77M
                    if (fMaster && nTodo == 0) {
101
210
                        nTotal--;
102
210
                        std::optional<R> to_return = std::move(m_result);
103
                        // reset the status for new work later
104
210
                        m_result = std::nullopt;
105
                        // return the current status
106
210
                        return to_return;
107
210
                    }
108
2.77M
                    nIdle++;
109
2.77M
                    cond.wait(lock); // wait
110
2.77M
                    nIdle--;
111
2.77M
                }
112
5.16M
                if (m_request_stop) {
113
                    // return value does not matter, because m_request_stop is only set in the destructor.
114
12
                    return std::nullopt;
115
12
                }
116
117
                // Decide how many work units to process now.
118
                // * Do not try to do everything at once, but aim for increasingly smaller batches so
119
                //   all workers finish approximately simultaneously.
120
                // * Try to account for idle jobs which will instantly start helping.
121
                // * Don't do batches smaller than 1 (duh), or larger than nBatchSize.
122
5.16M
                nNow = std::max(1U, std::min(nBatchSize, (unsigned int)queue.size() / (nTotal + nIdle + 1)));
123
5.16M
                auto start_it = queue.end() - nNow;
124
5.16M
                vChecks.assign(std::make_move_iterator(start_it), std::make_move_iterator(queue.end()));
125
5.16M
                queue.erase(start_it, queue.end());
126
                // Check whether we need to do work at all
127
5.16M
                do_work = !m_result.has_value();
128
5.16M
            }
129
            // execute work
130
5.16M
            if (do_work) {
131
10.6M
                for (T& check : vChecks) {
132
10.6M
                    local_result = check();
133
10.6M
                    if (local_result.has_value()) break;
134
10.6M
                }
135
5.16M
            }
136
5.16M
            vChecks.clear();
137
5.16M
        } while (true);
138
221
    }
CCheckQueue<FixedCheck, int>::Loop(bool)
Line
Count
Source
74
1.02k
    {
75
1.02k
        std::condition_variable& cond = fMaster ? m_master_cv : m_worker_cv;
76
1.02k
        std::vector<T> vChecks;
77
1.02k
        vChecks.reserve(nBatchSize);
78
1.02k
        unsigned int nNow = 0;
79
1.02k
        std::optional<R> local_result;
80
1.02k
        bool do_work;
81
403k
        do {
82
403k
            {
83
403k
                WAIT_LOCK(m_mutex, lock);
84
                // first do the clean-up of the previous loop run (allowing us to do it in the same critsect)
85
403k
                if (nNow) {
86
402k
                    if (local_result.has_value() && !m_result.has_value()) {
87
1.01k
                        std::swap(local_result, m_result);
88
1.01k
                    }
89
402k
                    nTodo -= nNow;
90
402k
                    if (nTodo == 0 && !fMaster) {
91
                        // We processed the last element; inform the master it can exit and return the result
92
78.1k
                        m_master_cv.notify_one();
93
78.1k
                    }
94
402k
                } else {
95
                    // first iteration
96
1.02k
                    nTotal++;
97
1.02k
                }
98
                // logically, the do loop starts here
99
632k
                while (queue.empty() && !m_request_stop) {
100
230k
                    if (fMaster && nTodo == 0) {
101
1.02k
                        nTotal--;
102
1.02k
                        std::optional<R> to_return = std::move(m_result);
103
                        // reset the status for new work later
104
1.02k
                        m_result = std::nullopt;
105
                        // return the current status
106
1.02k
                        return to_return;
107
1.02k
                    }
108
229k
                    nIdle++;
109
229k
                    cond.wait(lock); // wait
110
229k
                    nIdle--;
111
229k
                }
112
402k
                if (m_request_stop) {
113
                    // return value does not matter, because m_request_stop is only set in the destructor.
114
6
                    return std::nullopt;
115
6
                }
116
117
                // Decide how many work units to process now.
118
                // * Do not try to do everything at once, but aim for increasingly smaller batches so
119
                //   all workers finish approximately simultaneously.
120
                // * Try to account for idle jobs which will instantly start helping.
121
                // * Don't do batches smaller than 1 (duh), or larger than nBatchSize.
122
402k
                nNow = std::max(1U, std::min(nBatchSize, (unsigned int)queue.size() / (nTotal + nIdle + 1)));
123
402k
                auto start_it = queue.end() - nNow;
124
402k
                vChecks.assign(std::make_move_iterator(start_it), std::make_move_iterator(queue.end()));
125
402k
                queue.erase(start_it, queue.end());
126
                // Check whether we need to do work at all
127
402k
                do_work = !m_result.has_value();
128
402k
            }
129
            // execute work
130
402k
            if (do_work) {
131
418k
                for (T& check : vChecks) {
132
418k
                    local_result = check();
133
418k
                    if (local_result.has_value()) break;
134
418k
                }
135
392k
            }
136
402k
            vChecks.clear();
137
402k
        } while (true);
138
1.02k
    }
CCheckQueue<UniqueCheck, int>::Loop(bool)
Line
Count
Source
74
4
    {
75
4
        std::condition_variable& cond = fMaster ? m_master_cv : m_worker_cv;
76
4
        std::vector<T> vChecks;
77
4
        vChecks.reserve(nBatchSize);
78
4
        unsigned int nNow = 0;
79
4
        std::optional<R> local_result;
80
4
        bool do_work;
81
809
        do {
82
809
            {
83
809
                WAIT_LOCK(m_mutex, lock);
84
                // first do the clean-up of the previous loop run (allowing us to do it in the same critsect)
85
809
                if (nNow) {
86
805
                    if (local_result.has_value() && !m_result.has_value()) {
87
0
                        std::swap(local_result, m_result);
88
0
                    }
89
805
                    nTodo -= nNow;
90
805
                    if (nTodo == 0 && !fMaster) {
91
                        // We processed the last element; inform the master it can exit and return the result
92
1
                        m_master_cv.notify_one();
93
1
                    }
94
805
                } else {
95
                    // first iteration
96
4
                    nTotal++;
97
4
                }
98
                // logically, the do loop starts here
99
813
                while (queue.empty() && !m_request_stop) {
100
5
                    if (fMaster && nTodo == 0) {
101
1
                        nTotal--;
102
1
                        std::optional<R> to_return = std::move(m_result);
103
                        // reset the status for new work later
104
1
                        m_result = std::nullopt;
105
                        // return the current status
106
1
                        return to_return;
107
1
                    }
108
4
                    nIdle++;
109
4
                    cond.wait(lock); // wait
110
4
                    nIdle--;
111
4
                }
112
808
                if (m_request_stop) {
113
                    // return value does not matter, because m_request_stop is only set in the destructor.
114
3
                    return std::nullopt;
115
3
                }
116
117
                // Decide how many work units to process now.
118
                // * Do not try to do everything at once, but aim for increasingly smaller batches so
119
                //   all workers finish approximately simultaneously.
120
                // * Try to account for idle jobs which will instantly start helping.
121
                // * Don't do batches smaller than 1 (duh), or larger than nBatchSize.
122
805
                nNow = std::max(1U, std::min(nBatchSize, (unsigned int)queue.size() / (nTotal + nIdle + 1)));
123
805
                auto start_it = queue.end() - nNow;
124
805
                vChecks.assign(std::make_move_iterator(start_it), std::make_move_iterator(queue.end()));
125
805
                queue.erase(start_it, queue.end());
126
                // Check whether we need to do work at all
127
805
                do_work = !m_result.has_value();
128
805
            }
129
            // execute work
130
805
            if (do_work) {
131
99.9k
                for (T& check : vChecks) {
132
99.9k
                    local_result = check();
133
99.9k
                    if (local_result.has_value()) break;
134
99.9k
                }
135
805
            }
136
805
            vChecks.clear();
137
805
        } while (true);
138
4
    }
CCheckQueue<MemoryCheck, int>::Loop(bool)
Line
Count
Source
74
1.00k
    {
75
1.00k
        std::condition_variable& cond = fMaster ? m_master_cv : m_worker_cv;
76
1.00k
        std::vector<T> vChecks;
77
1.00k
        vChecks.reserve(nBatchSize);
78
1.00k
        unsigned int nNow = 0;
79
1.00k
        std::optional<R> local_result;
80
1.00k
        bool do_work;
81
474k
        do {
82
474k
            {
83
474k
                WAIT_LOCK(m_mutex, lock);
84
                // first do the clean-up of the previous loop run (allowing us to do it in the same critsect)
85
474k
                if (nNow) {
86
473k
                    if (local_result.has_value() && !m_result.has_value()) {
87
0
                        std::swap(local_result, m_result);
88
0
                    }
89
473k
                    nTodo -= nNow;
90
473k
                    if (nTodo == 0 && !fMaster) {
91
                        // We processed the last element; inform the master it can exit and return the result
92
93.1k
                        m_master_cv.notify_one();
93
93.1k
                    }
94
473k
                } else {
95
                    // first iteration
96
983
                    nTotal++;
97
983
                }
98
                // logically, the do loop starts here
99
750k
                while (queue.empty() && !m_request_stop) {
100
276k
                    if (fMaster && nTodo == 0) {
101
1.00k
                        nTotal--;
102
1.00k
                        std::optional<R> to_return = std::move(m_result);
103
                        // reset the status for new work later
104
1.00k
                        m_result = std::nullopt;
105
                        // return the current status
106
1.00k
                        return to_return;
107
1.00k
                    }
108
275k
                    nIdle++;
109
275k
                    cond.wait(lock); // wait
110
275k
                    nIdle--;
111
275k
                }
112
473k
                if (m_request_stop) {
113
                    // return value does not matter, because m_request_stop is only set in the destructor.
114
3
                    return std::nullopt;
115
3
                }
116
117
                // Decide how many work units to process now.
118
                // * Do not try to do everything at once, but aim for increasingly smaller batches so
119
                //   all workers finish approximately simultaneously.
120
                // * Try to account for idle jobs which will instantly start helping.
121
                // * Don't do batches smaller than 1 (duh), or larger than nBatchSize.
122
473k
                nNow = std::max(1U, std::min(nBatchSize, (unsigned int)queue.size() / (nTotal + nIdle + 1)));
123
473k
                auto start_it = queue.end() - nNow;
124
473k
                vChecks.assign(std::make_move_iterator(start_it), std::make_move_iterator(queue.end()));
125
473k
                queue.erase(start_it, queue.end());
126
                // Check whether we need to do work at all
127
473k
                do_work = !m_result.has_value();
128
473k
            }
129
            // execute work
130
473k
            if (do_work) {
131
499k
                for (T& check : vChecks) {
132
499k
                    local_result = check();
133
499k
                    if (local_result.has_value()) break;
134
499k
                }
135
473k
            }
136
473k
            vChecks.clear();
137
473k
        } while (true);
138
1.00k
    }
CCheckQueue<FrozenCleanupCheck, int>::Loop(bool)
Line
Count
Source
74
4
    {
75
4
        std::condition_variable& cond = fMaster ? m_master_cv : m_worker_cv;
76
4
        std::vector<T> vChecks;
77
4
        vChecks.reserve(nBatchSize);
78
4
        unsigned int nNow = 0;
79
4
        std::optional<R> local_result;
80
4
        bool do_work;
81
5
        do {
82
5
            {
83
5
                WAIT_LOCK(m_mutex, lock);
84
                // first do the clean-up of the previous loop run (allowing us to do it in the same critsect)
85
5
                if (nNow) {
86
1
                    if (local_result.has_value() && !m_result.has_value()) {
87
0
                        std::swap(local_result, m_result);
88
0
                    }
89
1
                    nTodo -= nNow;
90
1
                    if (nTodo == 0 && !fMaster) {
91
                        // We processed the last element; inform the master it can exit and return the result
92
1
                        m_master_cv.notify_one();
93
1
                    }
94
4
                } else {
95
                    // first iteration
96
4
                    nTotal++;
97
4
                }
98
                // logically, the do loop starts here
99
9
                while (queue.empty() && !m_request_stop) {
100
5
                    if (fMaster && nTodo == 0) {
101
1
                        nTotal--;
102
1
                        std::optional<R> to_return = std::move(m_result);
103
                        // reset the status for new work later
104
1
                        m_result = std::nullopt;
105
                        // return the current status
106
1
                        return to_return;
107
1
                    }
108
4
                    nIdle++;
109
4
                    cond.wait(lock); // wait
110
4
                    nIdle--;
111
4
                }
112
4
                if (m_request_stop) {
113
                    // return value does not matter, because m_request_stop is only set in the destructor.
114
3
                    return std::nullopt;
115
3
                }
116
117
                // Decide how many work units to process now.
118
                // * Do not try to do everything at once, but aim for increasingly smaller batches so
119
                //   all workers finish approximately simultaneously.
120
                // * Try to account for idle jobs which will instantly start helping.
121
                // * Don't do batches smaller than 1 (duh), or larger than nBatchSize.
122
1
                nNow = std::max(1U, std::min(nBatchSize, (unsigned int)queue.size() / (nTotal + nIdle + 1)));
123
1
                auto start_it = queue.end() - nNow;
124
1
                vChecks.assign(std::make_move_iterator(start_it), std::make_move_iterator(queue.end()));
125
1
                queue.erase(start_it, queue.end());
126
                // Check whether we need to do work at all
127
1
                do_work = !m_result.has_value();
128
1
            }
129
            // execute work
130
1
            if (do_work) {
131
1
                for (T& check : vChecks) {
132
1
                    local_result = check();
133
1
                    if (local_result.has_value()) break;
134
1
                }
135
1
            }
136
1
            vChecks.clear();
137
1
        } while (true);
138
4
    }
CCheckQueue<CScriptCheck, std::pair<ScriptError_t, std::__cxx11::basic_string<char, std::char_traits<char>, std::allocator<char>>>>::Loop(bool)
Line
Count
Source
74
155k
    {
75
155k
        std::condition_variable& cond = fMaster ? m_master_cv : m_worker_cv;
76
155k
        std::vector<T> vChecks;
77
155k
        vChecks.reserve(nBatchSize);
78
155k
        unsigned int nNow = 0;
79
155k
        std::optional<R> local_result;
80
155k
        bool do_work;
81
185k
        do {
82
185k
            {
83
185k
                WAIT_LOCK(m_mutex, lock);
84
                // first do the clean-up of the previous loop run (allowing us to do it in the same critsect)
85
185k
                if (nNow) {
86
30.2k
                    if (local_result.has_value() && !m_result.has_value()) {
87
2.62k
                        std::swap(local_result, m_result);
88
2.62k
                    }
89
30.2k
                    nTodo -= nNow;
90
30.2k
                    if (nTodo == 0 && !fMaster) {
91
                        // We processed the last element; inform the master it can exit and return the result
92
20.9k
                        m_master_cv.notify_one();
93
20.9k
                    }
94
155k
                } else {
95
                    // first iteration
96
155k
                    nTotal++;
97
155k
                }
98
                // logically, the do loop starts here
99
212k
                while (queue.empty() && !m_request_stop) {
100
180k
                    if (fMaster && nTodo == 0) {
101
154k
                        nTotal--;
102
154k
                        std::optional<R> to_return = std::move(m_result);
103
                        // reset the status for new work later
104
154k
                        m_result = std::nullopt;
105
                        // return the current status
106
154k
                        return to_return;
107
154k
                    }
108
26.7k
                    nIdle++;
109
26.7k
                    cond.wait(lock); // wait
110
26.7k
                    nIdle--;
111
26.7k
                }
112
31.5k
                if (m_request_stop) {
113
                    // return value does not matter, because m_request_stop is only set in the destructor.
114
1.38k
                    return std::nullopt;
115
1.38k
                }
116
117
                // Decide how many work units to process now.
118
                // * Do not try to do everything at once, but aim for increasingly smaller batches so
119
                //   all workers finish approximately simultaneously.
120
                // * Try to account for idle jobs which will instantly start helping.
121
                // * Don't do batches smaller than 1 (duh), or larger than nBatchSize.
122
30.1k
                nNow = std::max(1U, std::min(nBatchSize, (unsigned int)queue.size() / (nTotal + nIdle + 1)));
123
30.1k
                auto start_it = queue.end() - nNow;
124
30.1k
                vChecks.assign(std::make_move_iterator(start_it), std::make_move_iterator(queue.end()));
125
30.1k
                queue.erase(start_it, queue.end());
126
                // Check whether we need to do work at all
127
30.1k
                do_work = !m_result.has_value();
128
30.1k
            }
129
            // execute work
130
30.1k
            if (do_work) {
131
48.4k
                for (T& check : vChecks) {
132
48.4k
                    local_result = check();
133
48.4k
                    if (local_result.has_value()) break;
134
48.4k
                }
135
29.2k
            }
136
30.1k
            vChecks.clear();
137
30.1k
        } while (true);
138
155k
    }
139
140
public:
141
    //! Mutex to ensure only one concurrent CCheckQueueControl
142
    Mutex m_control_mutex;
143
144
    //! Create a new check queue
145
    explicit CCheckQueue(unsigned int batch_size, int worker_threads_num)
146
1.21k
        : nBatchSize(batch_size)
147
1.21k
    {
148
1.21k
        LogInfo("Script verification uses %d additional threads", worker_threads_num);
149
1.21k
        m_worker_threads.reserve(worker_threads_num);
150
2.63k
        for (int n = 0; n < worker_threads_num; ++n) {
151
1.41k
            m_worker_threads.emplace_back([this, n]() {
152
1.41k
                util::ThreadRename(strprintf("scriptch.%i", n));
153
1.41k
                Loop(false /* worker thread */);
154
1.41k
            });
CCheckQueue<FakeCheckCheckCompletion, int>::CCheckQueue(unsigned int, int)::'lambda'()::operator()() const
Line
Count
Source
151
12
            m_worker_threads.emplace_back([this, n]() {
152
12
                util::ThreadRename(strprintf("scriptch.%i", n));
153
12
                Loop(false /* worker thread */);
154
12
            });
CCheckQueue<FixedCheck, int>::CCheckQueue(unsigned int, int)::'lambda'()::operator()() const
Line
Count
Source
151
6
            m_worker_threads.emplace_back([this, n]() {
152
6
                util::ThreadRename(strprintf("scriptch.%i", n));
153
6
                Loop(false /* worker thread */);
154
6
            });
CCheckQueue<UniqueCheck, int>::CCheckQueue(unsigned int, int)::'lambda'()::operator()() const
Line
Count
Source
151
3
            m_worker_threads.emplace_back([this, n]() {
152
3
                util::ThreadRename(strprintf("scriptch.%i", n));
153
3
                Loop(false /* worker thread */);
154
3
            });
CCheckQueue<MemoryCheck, int>::CCheckQueue(unsigned int, int)::'lambda'()::operator()() const
Line
Count
Source
151
3
            m_worker_threads.emplace_back([this, n]() {
152
3
                util::ThreadRename(strprintf("scriptch.%i", n));
153
3
                Loop(false /* worker thread */);
154
3
            });
CCheckQueue<FrozenCleanupCheck, int>::CCheckQueue(unsigned int, int)::'lambda'()::operator()() const
Line
Count
Source
151
3
            m_worker_threads.emplace_back([this, n]() {
152
3
                util::ThreadRename(strprintf("scriptch.%i", n));
153
3
                Loop(false /* worker thread */);
154
3
            });
CCheckQueue<FakeCheck, int>::CCheckQueue(unsigned int, int)::'lambda'()::operator()() const
Line
Count
Source
151
3
            m_worker_threads.emplace_back([this, n]() {
152
3
                util::ThreadRename(strprintf("scriptch.%i", n));
153
3
                Loop(false /* worker thread */);
154
3
            });
CCheckQueue<CScriptCheck, std::pair<ScriptError_t, std::__cxx11::basic_string<char, std::char_traits<char>, std::allocator<char>>>>::CCheckQueue(unsigned int, int)::'lambda'()::operator()() const
Line
Count
Source
151
1.38k
            m_worker_threads.emplace_back([this, n]() {
152
1.38k
                util::ThreadRename(strprintf("scriptch.%i", n));
153
1.38k
                Loop(false /* worker thread */);
154
1.38k
            });
155
1.41k
        }
156
1.21k
    }
CCheckQueue<FakeCheckCheckCompletion, int>::CCheckQueue(unsigned int, int)
Line
Count
Source
146
4
        : nBatchSize(batch_size)
147
4
    {
148
4
        LogInfo("Script verification uses %d additional threads", worker_threads_num);
149
4
        m_worker_threads.reserve(worker_threads_num);
150
16
        for (int n = 0; n < worker_threads_num; ++n) {
151
12
            m_worker_threads.emplace_back([this, n]() {
152
12
                util::ThreadRename(strprintf("scriptch.%i", n));
153
12
                Loop(false /* worker thread */);
154
12
            });
155
12
        }
156
4
    }
CCheckQueue<FixedCheck, int>::CCheckQueue(unsigned int, int)
Line
Count
Source
146
2
        : nBatchSize(batch_size)
147
2
    {
148
2
        LogInfo("Script verification uses %d additional threads", worker_threads_num);
149
2
        m_worker_threads.reserve(worker_threads_num);
150
8
        for (int n = 0; n < worker_threads_num; ++n) {
151
6
            m_worker_threads.emplace_back([this, n]() {
152
6
                util::ThreadRename(strprintf("scriptch.%i", n));
153
6
                Loop(false /* worker thread */);
154
6
            });
155
6
        }
156
2
    }
CCheckQueue<UniqueCheck, int>::CCheckQueue(unsigned int, int)
Line
Count
Source
146
1
        : nBatchSize(batch_size)
147
1
    {
148
1
        LogInfo("Script verification uses %d additional threads", worker_threads_num);
149
1
        m_worker_threads.reserve(worker_threads_num);
150
4
        for (int n = 0; n < worker_threads_num; ++n) {
151
3
            m_worker_threads.emplace_back([this, n]() {
152
3
                util::ThreadRename(strprintf("scriptch.%i", n));
153
3
                Loop(false /* worker thread */);
154
3
            });
155
3
        }
156
1
    }
CCheckQueue<MemoryCheck, int>::CCheckQueue(unsigned int, int)
Line
Count
Source
146
1
        : nBatchSize(batch_size)
147
1
    {
148
1
        LogInfo("Script verification uses %d additional threads", worker_threads_num);
149
1
        m_worker_threads.reserve(worker_threads_num);
150
4
        for (int n = 0; n < worker_threads_num; ++n) {
151
3
            m_worker_threads.emplace_back([this, n]() {
152
3
                util::ThreadRename(strprintf("scriptch.%i", n));
153
3
                Loop(false /* worker thread */);
154
3
            });
155
3
        }
156
1
    }
CCheckQueue<FrozenCleanupCheck, int>::CCheckQueue(unsigned int, int)
Line
Count
Source
146
1
        : nBatchSize(batch_size)
147
1
    {
148
1
        LogInfo("Script verification uses %d additional threads", worker_threads_num);
149
1
        m_worker_threads.reserve(worker_threads_num);
150
4
        for (int n = 0; n < worker_threads_num; ++n) {
151
3
            m_worker_threads.emplace_back([this, n]() {
152
3
                util::ThreadRename(strprintf("scriptch.%i", n));
153
3
                Loop(false /* worker thread */);
154
3
            });
155
3
        }
156
1
    }
CCheckQueue<FakeCheck, int>::CCheckQueue(unsigned int, int)
Line
Count
Source
146
1
        : nBatchSize(batch_size)
147
1
    {
148
1
        LogInfo("Script verification uses %d additional threads", worker_threads_num);
149
1
        m_worker_threads.reserve(worker_threads_num);
150
4
        for (int n = 0; n < worker_threads_num; ++n) {
151
3
            m_worker_threads.emplace_back([this, n]() {
152
3
                util::ThreadRename(strprintf("scriptch.%i", n));
153
3
                Loop(false /* worker thread */);
154
3
            });
155
3
        }
156
1
    }
CCheckQueue<CScriptCheck, std::pair<ScriptError_t, std::__cxx11::basic_string<char, std::char_traits<char>, std::allocator<char>>>>::CCheckQueue(unsigned int, int)
Line
Count
Source
146
1.20k
        : nBatchSize(batch_size)
147
1.20k
    {
148
1.20k
        LogInfo("Script verification uses %d additional threads", worker_threads_num);
149
1.20k
        m_worker_threads.reserve(worker_threads_num);
150
2.59k
        for (int n = 0; n < worker_threads_num; ++n) {
151
1.38k
            m_worker_threads.emplace_back([this, n]() {
152
1.38k
                util::ThreadRename(strprintf("scriptch.%i", n));
153
1.38k
                Loop(false /* worker thread */);
154
1.38k
            });
155
1.38k
        }
156
1.20k
    }
157
158
    // Since this class manages its own resources, which is a thread
159
    // pool `m_worker_threads`, copy and move operations are not appropriate.
160
    CCheckQueue(const CCheckQueue&) = delete;
161
    CCheckQueue& operator=(const CCheckQueue&) = delete;
162
    CCheckQueue(CCheckQueue&&) = delete;
163
    CCheckQueue& operator=(CCheckQueue&&) = delete;
164
165
    //! Join the execution until completion. If at least one evaluation wasn't successful, return
166
    //! its error.
167
    std::optional<R> Complete() EXCLUSIVE_LOCKS_REQUIRED(!m_mutex)
168
156k
    {
169
156k
        return Loop(true /* master thread */);
170
156k
    }
CCheckQueue<FakeCheck, int>::Complete()
Line
Count
Source
168
4
    {
169
4
        return Loop(true /* master thread */);
170
4
    }
CCheckQueue<FakeCheckCheckCompletion, int>::Complete()
Line
Count
Source
168
210
    {
169
210
        return Loop(true /* master thread */);
170
210
    }
CCheckQueue<FixedCheck, int>::Complete()
Line
Count
Source
168
1.02k
    {
169
1.02k
        return Loop(true /* master thread */);
170
1.02k
    }
CCheckQueue<UniqueCheck, int>::Complete()
Line
Count
Source
168
1
    {
169
1
        return Loop(true /* master thread */);
170
1
    }
CCheckQueue<MemoryCheck, int>::Complete()
Line
Count
Source
168
1.00k
    {
169
1.00k
        return Loop(true /* master thread */);
170
1.00k
    }
CCheckQueue<FrozenCleanupCheck, int>::Complete()
Line
Count
Source
168
1
    {
169
1
        return Loop(true /* master thread */);
170
1
    }
CCheckQueue<CScriptCheck, std::pair<ScriptError_t, std::__cxx11::basic_string<char, std::char_traits<char>, std::allocator<char>>>>::Complete()
Line
Count
Source
168
154k
    {
169
154k
        return Loop(true /* master thread */);
170
154k
    }
171
172
    //! Add a batch of checks to the queue
173
    void Add(std::vector<T>&& vChecks) EXCLUSIVE_LOCKS_REQUIRED(!m_mutex)
174
2.68M
    {
175
2.68M
        if (vChecks.empty()) {
176
293k
            return;
177
293k
        }
178
179
2.39M
        {
180
2.39M
            LOCK(m_mutex);
181
2.39M
            queue.insert(queue.end(), std::make_move_iterator(vChecks.begin()), std::make_move_iterator(vChecks.end()));
182
2.39M
            nTodo += vChecks.size();
183
2.39M
        }
184
185
2.39M
        if (vChecks.size() == 1) {
186
285k
            m_worker_cv.notify_one();
187
2.11M
        } else {
188
2.11M
            m_worker_cv.notify_all();
189
2.11M
        }
190
2.39M
    }
CCheckQueue<FakeCheckCheckCompletion, int>::Add(std::vector<FakeCheckCheckCompletion, std::allocator<FakeCheckCheckCompletion>>&&)
Line
Count
Source
174
2.37M
    {
175
2.37M
        if (vChecks.empty()) {
176
236k
            return;
177
236k
        }
178
179
2.14M
        {
180
2.14M
            LOCK(m_mutex);
181
2.14M
            queue.insert(queue.end(), std::make_move_iterator(vChecks.begin()), std::make_move_iterator(vChecks.end()));
182
2.14M
            nTodo += vChecks.size();
183
2.14M
        }
184
185
2.14M
        if (vChecks.size() == 1) {
186
237k
            m_worker_cv.notify_one();
187
1.90M
        } else {
188
1.90M
            m_worker_cv.notify_all();
189
1.90M
        }
190
2.14M
    }
CCheckQueue<FixedCheck, int>::Add(std::vector<FixedCheck, std::allocator<FixedCheck>>&&)
Line
Count
Source
174
111k
    {
175
111k
        if (vChecks.empty()) {
176
11.0k
            return;
177
11.0k
        }
178
179
100k
        {
180
100k
            LOCK(m_mutex);
181
100k
            queue.insert(queue.end(), std::make_move_iterator(vChecks.begin()), std::make_move_iterator(vChecks.end()));
182
100k
            nTodo += vChecks.size();
183
100k
        }
184
185
100k
        if (vChecks.size() == 1) {
186
11.4k
            m_worker_cv.notify_one();
187
89.3k
        } else {
188
89.3k
            m_worker_cv.notify_all();
189
89.3k
        }
190
100k
    }
CCheckQueue<UniqueCheck, int>::Add(std::vector<UniqueCheck, std::allocator<UniqueCheck>>&&)
Line
Count
Source
174
22.2k
    {
175
22.2k
        if (vChecks.empty()) {
176
2.20k
            return;
177
2.20k
        }
178
179
20.0k
        {
180
20.0k
            LOCK(m_mutex);
181
20.0k
            queue.insert(queue.end(), std::make_move_iterator(vChecks.begin()), std::make_move_iterator(vChecks.end()));
182
20.0k
            nTodo += vChecks.size();
183
20.0k
        }
184
185
20.0k
        if (vChecks.size() == 1) {
186
2.29k
            m_worker_cv.notify_one();
187
17.7k
        } else {
188
17.7k
            m_worker_cv.notify_all();
189
17.7k
        }
190
20.0k
    }
CCheckQueue<MemoryCheck, int>::Add(std::vector<MemoryCheck, std::allocator<MemoryCheck>>&&)
Line
Count
Source
174
111k
    {
175
111k
        if (vChecks.empty()) {
176
11.0k
            return;
177
11.0k
        }
178
179
100k
        {
180
100k
            LOCK(m_mutex);
181
100k
            queue.insert(queue.end(), std::make_move_iterator(vChecks.begin()), std::make_move_iterator(vChecks.end()));
182
100k
            nTodo += vChecks.size();
183
100k
        }
184
185
100k
        if (vChecks.size() == 1) {
186
11.4k
            m_worker_cv.notify_one();
187
89.1k
        } else {
188
89.1k
            m_worker_cv.notify_all();
189
89.1k
        }
190
100k
    }
CCheckQueue<FrozenCleanupCheck, int>::Add(std::vector<FrozenCleanupCheck, std::allocator<FrozenCleanupCheck>>&&)
Line
Count
Source
174
1
    {
175
1
        if (vChecks.empty()) {
176
0
            return;
177
0
        }
178
179
1
        {
180
1
            LOCK(m_mutex);
181
1
            queue.insert(queue.end(), std::make_move_iterator(vChecks.begin()), std::make_move_iterator(vChecks.end()));
182
1
            nTodo += vChecks.size();
183
1
        }
184
185
1
        if (vChecks.size() == 1) {
186
1
            m_worker_cv.notify_one();
187
1
        } else {
188
0
            m_worker_cv.notify_all();
189
0
        }
190
1
    }
CCheckQueue<CScriptCheck, std::pair<ScriptError_t, std::__cxx11::basic_string<char, std::char_traits<char>, std::allocator<char>>>>::Add(std::vector<CScriptCheck, std::allocator<CScriptCheck>>&&)
Line
Count
Source
174
65.4k
    {
175
65.4k
        if (vChecks.empty()) {
176
32.1k
            return;
177
32.1k
        }
178
179
33.3k
        {
180
33.3k
            LOCK(m_mutex);
181
33.3k
            queue.insert(queue.end(), std::make_move_iterator(vChecks.begin()), std::make_move_iterator(vChecks.end()));
182
33.3k
            nTodo += vChecks.size();
183
33.3k
        }
184
185
33.3k
        if (vChecks.size() == 1) {
186
22.6k
            m_worker_cv.notify_one();
187
22.6k
        } else {
188
10.6k
            m_worker_cv.notify_all();
189
10.6k
        }
190
33.3k
    }
191
192
    ~CCheckQueue()
193
1.21k
    {
194
1.21k
        WITH_LOCK(m_mutex, m_request_stop = true);
195
1.21k
        m_worker_cv.notify_all();
196
1.41k
        for (std::thread& t : m_worker_threads) {
197
1.41k
            t.join();
198
1.41k
        }
199
1.21k
    }
CCheckQueue<FakeCheckCheckCompletion, int>::~CCheckQueue()
Line
Count
Source
193
4
    {
194
4
        WITH_LOCK(m_mutex, m_request_stop = true);
195
4
        m_worker_cv.notify_all();
196
12
        for (std::thread& t : m_worker_threads) {
197
12
            t.join();
198
12
        }
199
4
    }
CCheckQueue<FixedCheck, int>::~CCheckQueue()
Line
Count
Source
193
2
    {
194
2
        WITH_LOCK(m_mutex, m_request_stop = true);
195
2
        m_worker_cv.notify_all();
196
6
        for (std::thread& t : m_worker_threads) {
197
6
            t.join();
198
6
        }
199
2
    }
CCheckQueue<UniqueCheck, int>::~CCheckQueue()
Line
Count
Source
193
1
    {
194
1
        WITH_LOCK(m_mutex, m_request_stop = true);
195
1
        m_worker_cv.notify_all();
196
3
        for (std::thread& t : m_worker_threads) {
197
3
            t.join();
198
3
        }
199
1
    }
CCheckQueue<MemoryCheck, int>::~CCheckQueue()
Line
Count
Source
193
1
    {
194
1
        WITH_LOCK(m_mutex, m_request_stop = true);
195
1
        m_worker_cv.notify_all();
196
3
        for (std::thread& t : m_worker_threads) {
197
3
            t.join();
198
3
        }
199
1
    }
CCheckQueue<FrozenCleanupCheck, int>::~CCheckQueue()
Line
Count
Source
193
1
    {
194
1
        WITH_LOCK(m_mutex, m_request_stop = true);
195
1
        m_worker_cv.notify_all();
196
3
        for (std::thread& t : m_worker_threads) {
197
3
            t.join();
198
3
        }
199
1
    }
CCheckQueue<FakeCheck, int>::~CCheckQueue()
Line
Count
Source
193
1
    {
194
1
        WITH_LOCK(m_mutex, m_request_stop = true);
195
1
        m_worker_cv.notify_all();
196
3
        for (std::thread& t : m_worker_threads) {
197
3
            t.join();
198
3
        }
199
1
    }
CCheckQueue<CScriptCheck, std::pair<ScriptError_t, std::__cxx11::basic_string<char, std::char_traits<char>, std::allocator<char>>>>::~CCheckQueue()
Line
Count
Source
193
1.20k
    {
194
1.20k
        WITH_LOCK(m_mutex, m_request_stop = true);
195
1.20k
        m_worker_cv.notify_all();
196
1.38k
        for (std::thread& t : m_worker_threads) {
197
1.38k
            t.join();
198
1.38k
        }
199
1.20k
    }
200
201
154k
    bool HasThreads() const { return !m_worker_threads.empty(); }
202
};
203
204
/**
205
 * RAII-style controller object for a CCheckQueue that guarantees the passed
206
 * queue is finished before continuing.
207
 */
208
template <typename T, typename R = std::remove_cvref_t<decltype(std::declval<T>()().value())>>
209
class SCOPED_LOCKABLE CCheckQueueControl
210
{
211
private:
212
    CCheckQueue<T, R>& m_queue;
213
    UniqueLock<Mutex> m_lock;
214
    bool fDone;
215
216
public:
217
    CCheckQueueControl() = delete;
218
    CCheckQueueControl(const CCheckQueueControl&) = delete;
219
    CCheckQueueControl& operator=(const CCheckQueueControl&) = delete;
220
156k
    explicit CCheckQueueControl(CCheckQueue<T>& queueIn) EXCLUSIVE_LOCK_FUNCTION(queueIn.m_control_mutex) : m_queue(queueIn), m_lock(LOCK_ARGS(queueIn.m_control_mutex)), fDone(false) {}
CCheckQueueControl<FakeCheck, int>::CCheckQueueControl(CCheckQueue<FakeCheck, int>&)
Line
Count
Source
220
4
    explicit CCheckQueueControl(CCheckQueue<T>& queueIn) EXCLUSIVE_LOCK_FUNCTION(queueIn.m_control_mutex) : m_queue(queueIn), m_lock(LOCK_ARGS(queueIn.m_control_mutex)), fDone(false) {}
CCheckQueueControl<FakeCheckCheckCompletion, int>::CCheckQueueControl(CCheckQueue<FakeCheckCheckCompletion, int>&)
Line
Count
Source
220
210
    explicit CCheckQueueControl(CCheckQueue<T>& queueIn) EXCLUSIVE_LOCK_FUNCTION(queueIn.m_control_mutex) : m_queue(queueIn), m_lock(LOCK_ARGS(queueIn.m_control_mutex)), fDone(false) {}
CCheckQueueControl<FixedCheck, int>::CCheckQueueControl(CCheckQueue<FixedCheck, int>&)
Line
Count
Source
220
1.02k
    explicit CCheckQueueControl(CCheckQueue<T>& queueIn) EXCLUSIVE_LOCK_FUNCTION(queueIn.m_control_mutex) : m_queue(queueIn), m_lock(LOCK_ARGS(queueIn.m_control_mutex)), fDone(false) {}
CCheckQueueControl<UniqueCheck, int>::CCheckQueueControl(CCheckQueue<UniqueCheck, int>&)
Line
Count
Source
220
1
    explicit CCheckQueueControl(CCheckQueue<T>& queueIn) EXCLUSIVE_LOCK_FUNCTION(queueIn.m_control_mutex) : m_queue(queueIn), m_lock(LOCK_ARGS(queueIn.m_control_mutex)), fDone(false) {}
CCheckQueueControl<MemoryCheck, int>::CCheckQueueControl(CCheckQueue<MemoryCheck, int>&)
Line
Count
Source
220
1.00k
    explicit CCheckQueueControl(CCheckQueue<T>& queueIn) EXCLUSIVE_LOCK_FUNCTION(queueIn.m_control_mutex) : m_queue(queueIn), m_lock(LOCK_ARGS(queueIn.m_control_mutex)), fDone(false) {}
CCheckQueueControl<FrozenCleanupCheck, int>::CCheckQueueControl(CCheckQueue<FrozenCleanupCheck, int>&)
Line
Count
Source
220
1
    explicit CCheckQueueControl(CCheckQueue<T>& queueIn) EXCLUSIVE_LOCK_FUNCTION(queueIn.m_control_mutex) : m_queue(queueIn), m_lock(LOCK_ARGS(queueIn.m_control_mutex)), fDone(false) {}
CCheckQueueControl<CScriptCheck, std::pair<ScriptError_t, std::__cxx11::basic_string<char, std::char_traits<char>, std::allocator<char>>>>::CCheckQueueControl(CCheckQueue<CScriptCheck, std::pair<ScriptError_t, std::__cxx11::basic_string<char, std::char_traits<char>, std::allocator<char>>>>&)
Line
Count
Source
220
154k
    explicit CCheckQueueControl(CCheckQueue<T>& queueIn) EXCLUSIVE_LOCK_FUNCTION(queueIn.m_control_mutex) : m_queue(queueIn), m_lock(LOCK_ARGS(queueIn.m_control_mutex)), fDone(false) {}
221
222
    std::optional<R> Complete()
223
156k
    {
224
156k
        auto ret = m_queue.Complete();
225
156k
        fDone = true;
226
156k
        return ret;
227
156k
    }
CCheckQueueControl<FakeCheck, int>::Complete()
Line
Count
Source
223
4
    {
224
4
        auto ret = m_queue.Complete();
225
4
        fDone = true;
226
4
        return ret;
227
4
    }
CCheckQueueControl<FakeCheckCheckCompletion, int>::Complete()
Line
Count
Source
223
210
    {
224
210
        auto ret = m_queue.Complete();
225
210
        fDone = true;
226
210
        return ret;
227
210
    }
CCheckQueueControl<FixedCheck, int>::Complete()
Line
Count
Source
223
1.02k
    {
224
1.02k
        auto ret = m_queue.Complete();
225
1.02k
        fDone = true;
226
1.02k
        return ret;
227
1.02k
    }
CCheckQueueControl<UniqueCheck, int>::Complete()
Line
Count
Source
223
1
    {
224
1
        auto ret = m_queue.Complete();
225
1
        fDone = true;
226
1
        return ret;
227
1
    }
CCheckQueueControl<MemoryCheck, int>::Complete()
Line
Count
Source
223
1.00k
    {
224
1.00k
        auto ret = m_queue.Complete();
225
1.00k
        fDone = true;
226
1.00k
        return ret;
227
1.00k
    }
CCheckQueueControl<FrozenCleanupCheck, int>::Complete()
Line
Count
Source
223
1
    {
224
1
        auto ret = m_queue.Complete();
225
1
        fDone = true;
226
1
        return ret;
227
1
    }
CCheckQueueControl<CScriptCheck, std::pair<ScriptError_t, std::__cxx11::basic_string<char, std::char_traits<char>, std::allocator<char>>>>::Complete()
Line
Count
Source
223
154k
    {
224
154k
        auto ret = m_queue.Complete();
225
154k
        fDone = true;
226
154k
        return ret;
227
154k
    }
228
229
    void Add(std::vector<T>&& vChecks)
230
2.68M
    {
231
2.68M
        m_queue.Add(std::move(vChecks));
232
2.68M
    }
CCheckQueueControl<FakeCheckCheckCompletion, int>::Add(std::vector<FakeCheckCheckCompletion, std::allocator<FakeCheckCheckCompletion>>&&)
Line
Count
Source
230
2.37M
    {
231
2.37M
        m_queue.Add(std::move(vChecks));
232
2.37M
    }
CCheckQueueControl<FixedCheck, int>::Add(std::vector<FixedCheck, std::allocator<FixedCheck>>&&)
Line
Count
Source
230
111k
    {
231
111k
        m_queue.Add(std::move(vChecks));
232
111k
    }
CCheckQueueControl<UniqueCheck, int>::Add(std::vector<UniqueCheck, std::allocator<UniqueCheck>>&&)
Line
Count
Source
230
22.2k
    {
231
22.2k
        m_queue.Add(std::move(vChecks));
232
22.2k
    }
CCheckQueueControl<MemoryCheck, int>::Add(std::vector<MemoryCheck, std::allocator<MemoryCheck>>&&)
Line
Count
Source
230
111k
    {
231
111k
        m_queue.Add(std::move(vChecks));
232
111k
    }
CCheckQueueControl<FrozenCleanupCheck, int>::Add(std::vector<FrozenCleanupCheck, std::allocator<FrozenCleanupCheck>>&&)
Line
Count
Source
230
1
    {
231
1
        m_queue.Add(std::move(vChecks));
232
1
    }
CCheckQueueControl<CScriptCheck, std::pair<ScriptError_t, std::__cxx11::basic_string<char, std::char_traits<char>, std::allocator<char>>>>::Add(std::vector<CScriptCheck, std::allocator<CScriptCheck>>&&)
Line
Count
Source
230
65.4k
    {
231
65.4k
        m_queue.Add(std::move(vChecks));
232
65.4k
    }
233
234
    ~CCheckQueueControl() UNLOCK_FUNCTION()
235
156k
    {
236
156k
        if (!fDone)
237
1.00k
            Complete();
238
156k
    }
CCheckQueueControl<FakeCheck, int>::~CCheckQueueControl()
Line
Count
Source
235
4
    {
236
4
        if (!fDone)
237
4
            Complete();
238
4
    }
CCheckQueueControl<FakeCheckCheckCompletion, int>::~CCheckQueueControl()
Line
Count
Source
235
210
    {
236
210
        if (!fDone)
237
0
            Complete();
238
210
    }
CCheckQueueControl<FixedCheck, int>::~CCheckQueueControl()
Line
Count
Source
235
1.02k
    {
236
1.02k
        if (!fDone)
237
0
            Complete();
238
1.02k
    }
CCheckQueueControl<UniqueCheck, int>::~CCheckQueueControl()
Line
Count
Source
235
1
    {
236
1
        if (!fDone)
237
1
            Complete();
238
1
    }
CCheckQueueControl<MemoryCheck, int>::~CCheckQueueControl()
Line
Count
Source
235
1.00k
    {
236
1.00k
        if (!fDone)
237
1.00k
            Complete();
238
1.00k
    }
CCheckQueueControl<FrozenCleanupCheck, int>::~CCheckQueueControl()
Line
Count
Source
235
1
    {
236
1
        if (!fDone)
237
0
            Complete();
238
1
    }
CCheckQueueControl<CScriptCheck, std::pair<ScriptError_t, std::__cxx11::basic_string<char, std::char_traits<char>, std::allocator<char>>>>::~CCheckQueueControl()
Line
Count
Source
235
154k
    {
236
154k
        if (!fDone)
237
0
            Complete();
238
154k
    }
239
};
240
241
#endif // BITCOIN_CHECKQUEUE_H