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realm / realm-core / nicola.cabiddu_1042

27 Sep 2023 06:04PM UTC coverage: 91.085% (-1.8%) from 92.915%
nicola.cabiddu_1042

Pull #6766

Evergreen

nicola-cab
Fix logic for dictionaries
Pull Request #6766: Client Reset for collections in mixed / nested collections

97276 of 178892 branches covered (0.0%)

1994 of 2029 new or added lines in 7 files covered. (98.28%)

4556 existing lines in 112 files now uncovered.

237059 of 260260 relevant lines covered (91.09%)

6321099.55 hits per line

Source File
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93.27
/src/realm/db.cpp
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/*************************************************************************
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 *
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 * Copyright 2016 Realm Inc.
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 *
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 * Licensed under the Apache License, Version 2.0 (the "License");
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 * you may not use this file except in compliance with the License.
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 * You may obtain a copy of the License at
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 *
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 * http://www.apache.org/licenses/LICENSE-2.0
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 *
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 * Unless required by applicable law or agreed to in writing, software
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 * distributed under the License is distributed on an "AS IS" BASIS,
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 * WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
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 * See the License for the specific language governing permissions and
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 * limitations under the License.
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 *
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 **************************************************************************/
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#include <realm/transaction.hpp>
20

21
#include <algorithm>
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#include <atomic>
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#include <cerrno>
24
#include <fcntl.h>
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#include <iostream>
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#include <mutex>
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#include <sstream>
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#include <type_traits>
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#include <random>
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#include <deque>
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#include <thread>
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#include <chrono>
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#include <condition_variable>
34

35
#include <realm/disable_sync_to_disk.hpp>
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#include <realm/group_writer.hpp>
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#include <realm/impl/simulated_failure.hpp>
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#include <realm/replication.hpp>
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#include <realm/util/errno.hpp>
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#include <realm/util/features.h>
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#include <realm/util/file_mapper.hpp>
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#include <realm/util/safe_int_ops.hpp>
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#include <realm/util/scope_exit.hpp>
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#include <realm/util/thread.hpp>
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#include <realm/util/to_string.hpp>
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#ifndef _WIN32
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#include <sys/wait.h>
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#include <sys/time.h>
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#include <unistd.h>
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#else
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#include <windows.h>
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#include <process.h>
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#endif
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// #define REALM_ENABLE_LOGFILE
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58

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using namespace realm;
60
using namespace realm::util;
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using Durability = DBOptions::Durability;
62

63
namespace {
64

65
// value   change
66
// --------------------
67
//  4      Unknown
68
//  5      Introduction of SharedInfo::file_format_version and
69
//         SharedInfo::history_type.
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//  6      Using new robust mutex emulation where applicable
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//  7      Introducing `commit_in_critical_phase` and `sync_agent_present`, and
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//         changing `daemon_started` and `daemon_ready` from 1-bit to 8-bit
73
//         fields.
74
//  8      Placing the commitlog history inside the Realm file.
75
//  9      Fair write transactions requires an additional condition variable,
76
//         `write_fairness`
77
// 10      Introducing SharedInfo::history_schema_version.
78
// 11      New impl of InterprocessCondVar on windows.
79
// 12      Change `number_of_versions` to an atomic rather than guarding it
80
//         with a lock.
81
// 13      New impl of VersionList and added mutex for it (former RingBuffer)
82
// 14      Added field for tracking ongoing encrypted writes
83
const uint_fast16_t g_shared_info_version = 14;
84

85

86
struct VersionList {
87
    // the VersionList is an array of ReadCount structures.
88
    // it is placed in the "lock-file" and accessed via memory mapping
89
    struct ReadCount {
90
        uint64_t version;
91
        uint64_t filesize;
92
        uint64_t current_top;
93
        uint32_t count_live;
94
        uint32_t count_frozen;
95
        uint32_t count_full;
96
        bool is_active()
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        {
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            return version != 0;
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        }
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        void deactivate()
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        {
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            version = 0;
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            count_live = count_frozen = count_full = 0;
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        }
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        void activate(uint64_t v)
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        {
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            version = v;
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        }
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    };
110

111
    void reserve(uint32_t size) noexcept
112
    {
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        for (auto i = entries; i < size; ++i)
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            data()[i].deactivate();
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        if (size > entries) {
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            // Fence preventing downward motion of above writes
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            std::atomic_signal_fence(std::memory_order_release);
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            entries = size;
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        }
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    }
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122
    VersionList() noexcept
123
    {
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        newest = nil; // empty
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        entries = 0;
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        reserve(init_readers_size);
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    }
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129
    static size_t compute_required_space(uint_fast32_t num_entries) noexcept
130
    {
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        // get space required for given number of entries beyond the initial count.
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        // NB: this not the size of the VersionList, it is the size minus whatever was
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        // the initial size.
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        return sizeof(ReadCount) * (num_entries - init_readers_size);
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    }
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137
    unsigned int capacity() const noexcept
138
    {
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        return entries;
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    }
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142
    ReadCount& get(uint_fast32_t idx) noexcept
143
    {
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        return data()[idx];
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    }
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147
    ReadCount& get_newest() noexcept
148
    {
×
149
        return get(newest);
×
150
    }
×
151
    // returns nullptr if all entries are in use
152
    ReadCount* try_allocate_entry(uint64_t top, uint64_t size, uint64_t version)
153
    {
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        auto i = allocating.load();
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        if (i == newest.load()) {
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            // if newest != allocating we are recovering from a crash and MUST complete the earlier allocation
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            // but if not, find lowest free entry by linear search.
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            uint32_t k = 0;
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            while (k < entries && data()[k].is_active()) {
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                ++k;
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            }
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            if (k == entries)
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                return nullptr;     // no free entries
18✔
164
            allocating.exchange(k); // barrier: prevent upward movement of instructions below
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            i = k;
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        }
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        auto& rc = data()[i];
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168
        REALM_ASSERT(rc.count_frozen == 0);
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169
        REALM_ASSERT(rc.count_live == 0);
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170
        REALM_ASSERT(rc.count_full == 0);
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171
        rc.current_top = top;
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172
        rc.filesize = size;
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        rc.activate(version);
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        newest.store(i); // barrier: prevent downward movement of instructions above
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        return &rc;
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176
    }
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177

178
    uint32_t index_of(const ReadCount& rc) noexcept
179
    {
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        return (uint32_t)(&rc - data());
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    }
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182

183
    void free_entry(ReadCount* rc) noexcept
184
    {
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        rc->current_top = rc->filesize = -1ULL; // easy to recognize in debugger
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186
        rc->deactivate();
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    }
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188

189
    // This method resets the version list to an empty state, then allocates an entry.
190
    // Precondition: This should *only* be done if the caller has established that she
191
    // is the only thread/process that has access to the VersionList. It is currently
192
    // called from init_versioning(), which is called by DB::open() under the
193
    // condition that it is the session initiator and under guard by the control mutex,
194
    // thus ensuring the precondition. It is also called from compact() in a similar situation.
195
    // It is most likely not suited for any other use.
196
    ReadCount& init_versioning(uint64_t top, uint64_t filesize, uint64_t version) noexcept
197
    {
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        newest = nil;
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199
        allocating = 0;
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200
        auto t_free = entries;
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        entries = 0;
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        reserve(t_free);
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        return *try_allocate_entry(top, filesize, version);
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    }
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206
    void purge_versions(uint64_t& oldest_live_v, TopRefMap& top_refs, bool& any_new_unreachables)
207
    {
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        oldest_live_v = std::numeric_limits<uint64_t>::max();
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        auto oldest_full_v = std::numeric_limits<uint64_t>::max();
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        any_new_unreachables = false;
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        // correct case where an earlier crash may have left the entry at 'allocating' partially initialized:
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        const auto index_of_newest = newest.load();
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213
        if (auto a = allocating.load(); a != index_of_newest) {
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            data()[a].deactivate();
×
215
        }
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216
        // determine fully locked versions - after one of those all versions are considered live.
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217
        for (auto* rc = data(); rc < data() + entries; ++rc) {
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            if (!rc->is_active())
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219
                continue;
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            if (rc->count_full) {
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                if (rc->version < oldest_full_v)
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222
                    oldest_full_v = rc->version;
×
223
            }
×
224
        }
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        // collect reachable versions and determine oldest live reachable version
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        // (oldest reachable version is the first entry in the top_refs map, so no need to find it explicitly)
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        for (auto* rc = data(); rc < data() + entries; ++rc) {
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            if (!rc->is_active())
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                continue;
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            if (rc->count_frozen || rc->count_live || rc->version >= oldest_full_v) {
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                // entry is still reachable
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                top_refs.emplace(rc->version, VersionInfo{to_ref(rc->current_top), to_ref(rc->filesize)});
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            }
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            if (rc->count_live || rc->version >= oldest_full_v) {
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                if (rc->version < oldest_live_v)
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                    oldest_live_v = rc->version;
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            }
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        }
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        // we must have found at least one reachable version
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240
        REALM_ASSERT(top_refs.size());
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        // free unreachable entries and determine if we want to trigger backdating
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        uint64_t oldest_v = top_refs.begin()->first;
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        for (auto* rc = data(); rc < data() + entries; ++rc) {
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            if (!rc->is_active())
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                continue;
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            if (rc->count_frozen == 0 && rc->count_live == 0 && rc->version < oldest_full_v) {
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                // entry is becoming unreachable.
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                // if it is also younger than a reachable version, then set 'any_new_unreachables' to trigger
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                // backdating
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                if (rc->version > oldest_v) {
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                    any_new_unreachables = true;
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                }
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                REALM_ASSERT(index_of(*rc) != index_of_newest);
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                free_entry(rc);
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            }
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        }
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        REALM_ASSERT(oldest_v != std::numeric_limits<uint64_t>::max());
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        REALM_ASSERT(oldest_live_v != std::numeric_limits<uint64_t>::max());
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259
    }
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261
#if REALM_DEBUG
262
    void dump()
263
    {
×
264
        util::format(std::cout, "VersionList has %1 entries: \n", entries);
×
265
        for (auto* rc = data(); rc < data() + entries; ++rc) {
×
266
            util::format(std::cout, "[%1]: version %2, live: %3, full: %4, frozen: %5\n", index_of(*rc), rc->version,
×
267
                         rc->count_live, rc->count_full, rc->count_frozen);
×
268
        }
×
269
    }
×
270
#endif // REALM_DEBUG
271

272
    constexpr static uint32_t nil = (uint32_t)-1;
273
    const static int init_readers_size = 32;
274
    uint32_t entries;
275
    std::atomic<uint32_t> allocating; // atomic for crash safety, not threading
276
    std::atomic<uint32_t> newest;     // atomic for crash safety, not threading
277

278
    // IMPORTANT: The actual data comprising the version list MUST BE PLACED LAST in
279
    // the VersionList structure, as the data area is extended at run time.
280
    // Similarly, the VersionList must be the final element of the SharedInfo structure.
281
    // IMPORTANT II:
282
    // To ensure proper alignment across all platforms, the SharedInfo structure
283
    // should NOT have a stricter alignment requirement than the ReadCount structure.
284
    ReadCount m_data[init_readers_size];
285

286
    // Silence UBSan errors about out-of-bounds reads on m_data by casting to a pointer
287
    ReadCount* data() noexcept
288
    {
160,847,076✔
289
        return m_data;
160,847,076✔
290
    }
160,847,076✔
291
    const ReadCount* data() const noexcept
292
    {
×
293
        return m_data;
×
294
    }
×
295
};
296

297
// Using lambda rather than function so that shared_ptr shared state doesn't need to hold a function pointer.
298
constexpr auto TransactionDeleter = [](Transaction* t) {
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299
    t->close();
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300
    delete t;
2,694,675✔
301
};
2,694,675✔
302

303
template <typename... Args>
304
TransactionRef make_transaction_ref(Args&&... args)
305
{
2,699,931✔
306
    return TransactionRef(new Transaction(std::forward<Args>(args)...), TransactionDeleter);
2,699,931✔
307
}
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308

309
} // anonymous namespace
310

311
namespace realm {
312

313
/// The structure of the contents of the per session `.lock` file. Note that
314
/// this file is transient in that it is recreated/reinitialized at the
315
/// beginning of every session. A session is any sequence of temporally
316
/// overlapping openings of a particular Realm file via DB objects. For
317
/// example, if there are two DB objects, A and B, and the file is
318
/// first opened via A, then opened via B, then closed via A, and finally closed
319
/// via B, then the session streaches from the opening via A to the closing via
320
/// B.
321
///
322
/// IMPORTANT: Remember to bump `g_shared_info_version` if anything is changed
323
/// in the memory layout of this class, or if the meaning of any of the stored
324
/// values change.
325
///
326
/// Members `init_complete`, `shared_info_version`, `size_of_mutex`, and
327
/// `size_of_condvar` may only be modified only while holding an exclusive lock
328
/// on the file, and may be read only while holding a shared (or exclusive) lock
329
/// on the file. All other members (except for the VersionList which has its own mutex)
330
/// may be accessed only while holding a lock on `controlmutex`.
331
///
332
/// SharedInfo must be 8-byte aligned. On 32-bit Apple platforms, mutexes store their
333
/// alignment as part of the mutex state. We're copying the SharedInfo (including
334
/// embedded but alway unlocked mutexes) and it must retain the same alignment
335
/// throughout.
336
struct alignas(8) DB::SharedInfo {
337
    /// Indicates that initialization of the lock file was completed
338
    /// sucessfully.
339
    ///
340
    /// CAUTION: This member must never move or change type, as that would
341
    /// compromize safety of the the session initiation process.
342
    std::atomic<uint8_t> init_complete; // Offset 0
343

344
    /// The size in bytes of a mutex member of SharedInfo. This allows all
345
    /// session participants to be in agreement. Obviously, a size match is not
346
    /// enough to guarantee identical layout internally in the mutex object, but
347
    /// it is hoped that it will catch some (if not most) of the cases where
348
    /// there is a layout discrepancy internally in the mutex object.
349
    uint8_t size_of_mutex; // Offset 1
350

351
    /// Like size_of_mutex, but for condition variable members of SharedInfo.
352
    uint8_t size_of_condvar; // Offset 2
353

354
    /// Set during the critical phase of a commit, when the logs, the VersionList
355
    /// and the database may be out of sync with respect to each other. If a
356
    /// writer crashes during this phase, there is no safe way of continuing
357
    /// with further write transactions. When beginning a write transaction,
358
    /// this must be checked and an exception thrown if set.
359
    ///
360
    /// Note that std::atomic<uint8_t> is guaranteed to have standard layout.
361
    std::atomic<uint8_t> commit_in_critical_phase = {0}; // Offset 3
362

363
    /// The target Realm file format version for the current session. This
364
    /// allows all session participants to be in agreement. It can only differ
365
    /// from what is returned by Group::get_file_format_version() temporarily,
366
    /// and only during the Realm file opening process. If it differs, it means
367
    /// that the file format needs to be upgraded from its current format
368
    /// (Group::get_file_format_version()), the format specified by this member
369
    /// of SharedInfo.
370
    uint8_t file_format_version; // Offset 4
371

372
    /// Stores a value of type Replication::HistoryType. Must match across all
373
    /// session participants.
374
    int8_t history_type; // Offset 5
375

376
    /// The SharedInfo layout version. This allows all session participants to
377
    /// be in agreement. Must be bumped if the layout of the SharedInfo
378
    /// structure is changed. Note, however, that only the part that lies beyond
379
    /// SharedInfoUnchangingLayout can have its layout changed.
380
    ///
381
    /// CAUTION: This member must never move or change type, as that would
382
    /// compromize version agreement checking.
383
    uint16_t shared_info_version = g_shared_info_version; // Offset 6
384

385
    uint16_t durability;           // Offset 8
386
    uint16_t free_write_slots = 0; // Offset 10
387

388
    /// Number of participating shared groups
389
    uint32_t num_participants = 0; // Offset 12
390

391
    /// Latest version number. Guarded by the controlmutex (for lock-free
392
    /// access, use get_version_of_latest_snapshot() instead)
393
    uint64_t latest_version_number; // Offset 16
394

395
    /// Pid of process initiating the session, but only if that process runs
396
    /// with encryption enabled, zero otherwise. This was used to prevent
397
    /// multiprocess encryption until support for that was added.
398
    uint64_t session_initiator_pid = 0; // Offset 24
399

400
    std::atomic<uint64_t> number_of_versions; // Offset 32
401

402
    /// True (1) if there is a sync agent present (a session participant acting
403
    /// as sync client). It is an error to have a session with more than one
404
    /// sync agent. The purpose of this flag is to prevent that from ever
405
    /// happening. If the sync agent crashes and leaves the flag set, the
406
    /// session will need to be restarted (lock file reinitialized) before a new
407
    /// sync agent can be started.
408
    uint8_t sync_agent_present = 0; // Offset 40
409

410
    /// Set when a participant decides to start the daemon, cleared by the
411
    /// daemon when it decides to exit. Participants check during open() and
412
    /// start the daemon if running in async mode.
413
    uint8_t daemon_started = 0; // Offset 41
414

415
    /// Set by the daemon when it is ready to handle commits. Participants must
416
    /// wait during open() on 'daemon_becomes_ready' for this to become true.
417
    /// Cleared by the daemon when it decides to exit.
418
    uint8_t daemon_ready = 0; // Offset 42
419

420
    uint8_t filler_1; // Offset 43
421

422
    /// Stores a history schema version (as returned by
423
    /// Replication::get_history_schema_version()). Must match across all
424
    /// session participants.
425
    uint16_t history_schema_version; // Offset 44
426

427
    uint16_t filler_2; // Offset 46
428

429
    InterprocessMutex::SharedPart shared_writemutex; // Offset 48
430
    InterprocessMutex::SharedPart shared_controlmutex;
431
    InterprocessMutex::SharedPart shared_versionlist_mutex;
432
    InterprocessCondVar::SharedPart room_to_write;
433
    InterprocessCondVar::SharedPart work_to_do;
434
    InterprocessCondVar::SharedPart daemon_becomes_ready;
435
    InterprocessCondVar::SharedPart new_commit_available;
436
    InterprocessCondVar::SharedPart pick_next_writer;
437
    std::atomic<uint32_t> next_ticket;
438
    std::atomic<uint32_t> next_served = 0;
439
    std::atomic<uint64_t> writing_page_offset;
440
    std::atomic<uint64_t> write_counter;
441

442
    // IMPORTANT: The VersionList MUST be the last field in SharedInfo - see above.
443
    VersionList readers;
444

445
    SharedInfo(Durability, Replication::HistoryType, int history_schema_version);
446
    ~SharedInfo() noexcept {}
25,344✔
447

448
    void init_versioning(ref_type top_ref, size_t file_size, uint64_t initial_version)
449
    {
140,907✔
450
        // Create our first versioning entry:
69,426✔
451
        readers.init_versioning(top_ref, file_size, initial_version);
140,907✔
452
    }
140,907✔
453
};
454

455

456
DB::SharedInfo::SharedInfo(Durability dura, Replication::HistoryType ht, int hsv)
457
    : size_of_mutex(sizeof(shared_writemutex))
458
    , size_of_condvar(sizeof(room_to_write))
459
    , shared_writemutex()   // Throws
460
    , shared_controlmutex() // Throws
461
{
139,443✔
462
    durability = static_cast<uint16_t>(dura); // durability level is fixed from creation
139,443✔
463
    REALM_ASSERT(!util::int_cast_has_overflow<decltype(history_type)>(ht + 0));
139,443✔
464
    REALM_ASSERT(!util::int_cast_has_overflow<decltype(history_schema_version)>(hsv));
139,443✔
465
    history_type = ht;
139,443✔
466
    history_schema_version = static_cast<uint16_t>(hsv);
139,443✔
467
    InterprocessCondVar::init_shared_part(new_commit_available); // Throws
139,443✔
468
    InterprocessCondVar::init_shared_part(pick_next_writer);     // Throws
139,443✔
469
    next_ticket = 0;
139,443✔
470

68,787✔
471
// IMPORTANT: The offsets, types (, and meanings) of these members must
68,787✔
472
// never change, not even when the SharedInfo layout version is bumped. The
68,787✔
473
// eternal constancy of this part of the layout is what ensures that a
68,787✔
474
// joining session participant can reliably verify that the actual format is
68,787✔
475
// as expected.
68,787✔
476
#ifndef _WIN32
139,443✔
477
#pragma GCC diagnostic push
139,443✔
478
#pragma GCC diagnostic ignored "-Winvalid-offsetof"
139,443✔
479
#endif
139,443✔
480
    static_assert(offsetof(SharedInfo, init_complete) == 0 && ATOMIC_BOOL_LOCK_FREE == 2 &&
139,443✔
481
                      std::is_same<decltype(init_complete), std::atomic<uint8_t>>::value &&
139,443✔
482
                      offsetof(SharedInfo, shared_info_version) == 6 &&
139,443✔
483
                      std::is_same<decltype(shared_info_version), uint16_t>::value,
139,443✔
484
                  "Forbidden change in SharedInfo layout");
139,443✔
485

68,787✔
486
    // Try to catch some of the memory layout changes that requires bumping of
68,787✔
487
    // the SharedInfo file format version (shared_info_version).
68,787✔
488
    static_assert(
139,443✔
489
        offsetof(SharedInfo, size_of_mutex) == 1 && std::is_same<decltype(size_of_mutex), uint8_t>::value &&
139,443✔
490
            offsetof(SharedInfo, size_of_condvar) == 2 && std::is_same<decltype(size_of_condvar), uint8_t>::value &&
139,443✔
491
            offsetof(SharedInfo, commit_in_critical_phase) == 3 &&
139,443✔
492
            std::is_same<decltype(commit_in_critical_phase), std::atomic<uint8_t>>::value &&
139,443✔
493
            offsetof(SharedInfo, file_format_version) == 4 &&
139,443✔
494
            std::is_same<decltype(file_format_version), uint8_t>::value && offsetof(SharedInfo, history_type) == 5 &&
139,443✔
495
            std::is_same<decltype(history_type), int8_t>::value && offsetof(SharedInfo, durability) == 8 &&
139,443✔
496
            std::is_same<decltype(durability), uint16_t>::value && offsetof(SharedInfo, free_write_slots) == 10 &&
139,443✔
497
            std::is_same<decltype(free_write_slots), uint16_t>::value &&
139,443✔
498
            offsetof(SharedInfo, num_participants) == 12 &&
139,443✔
499
            std::is_same<decltype(num_participants), uint32_t>::value &&
139,443✔
500
            offsetof(SharedInfo, latest_version_number) == 16 &&
139,443✔
501
            std::is_same<decltype(latest_version_number), uint64_t>::value &&
139,443✔
502
            offsetof(SharedInfo, session_initiator_pid) == 24 &&
139,443✔
503
            std::is_same<decltype(session_initiator_pid), uint64_t>::value &&
139,443✔
504
            offsetof(SharedInfo, number_of_versions) == 32 &&
139,443✔
505
            std::is_same<decltype(number_of_versions), std::atomic<uint64_t>>::value &&
139,443✔
506
            offsetof(SharedInfo, sync_agent_present) == 40 &&
139,443✔
507
            std::is_same<decltype(sync_agent_present), uint8_t>::value &&
139,443✔
508
            offsetof(SharedInfo, daemon_started) == 41 && std::is_same<decltype(daemon_started), uint8_t>::value &&
139,443✔
509
            offsetof(SharedInfo, daemon_ready) == 42 && std::is_same<decltype(daemon_ready), uint8_t>::value &&
139,443✔
510
            offsetof(SharedInfo, filler_1) == 43 && std::is_same<decltype(filler_1), uint8_t>::value &&
139,443✔
511
            offsetof(SharedInfo, history_schema_version) == 44 &&
139,443✔
512
            std::is_same<decltype(history_schema_version), uint16_t>::value && offsetof(SharedInfo, filler_2) == 46 &&
139,443✔
513
            std::is_same<decltype(filler_2), uint16_t>::value && offsetof(SharedInfo, shared_writemutex) == 48 &&
139,443✔
514
            std::is_same<decltype(shared_writemutex), InterprocessMutex::SharedPart>::value,
139,443✔
515
        "Caught layout change requiring SharedInfo file format bumping");
139,443✔
516
    static_assert(std::atomic<uint64_t>::is_always_lock_free);
139,443✔
517
#ifndef _WIN32
139,443✔
518
#pragma GCC diagnostic pop
139,443✔
519
#endif
139,443✔
520
}
139,443✔
521

522
class DB::VersionManager {
523
public:
524
    VersionManager(util::InterprocessMutex& mutex)
525
        : m_mutex(mutex)
526
    {
165,276✔
527
    }
165,276✔
528
    virtual ~VersionManager() {}
165,276✔
529

530
    void cleanup_versions(uint64_t& oldest_live_version, TopRefMap& top_refs, bool& any_new_unreachables)
531
        REQUIRES(!m_info_mutex)
532
    {
1,362,636✔
533
        std::lock_guard lock(m_mutex);
1,362,636✔
534
        util::CheckedLockGuard info_lock(m_info_mutex);
1,362,636✔
535
        ensure_reader_mapping();
1,362,636✔
536
        m_info->readers.purge_versions(oldest_live_version, top_refs, any_new_unreachables);
1,362,636✔
537
    }
1,362,636✔
538

539
    version_type get_newest_version() REQUIRES(!m_local_readers_mutex, !m_info_mutex)
540
    {
1,362,630✔
541
        return get_version_id_of_latest_snapshot().version;
1,362,630✔
542
    }
1,362,630✔
543

544
    VersionID get_version_id_of_latest_snapshot() REQUIRES(!m_local_readers_mutex, !m_info_mutex)
545
    {
7,513,701✔
546
        {
7,513,701✔
547
            // First check the local cache. This is an unlocked read, so it may
6,656,544✔
548
            // race with adding a new version. If this happens we'll either see
6,656,544✔
549
            // a stale value (acceptable for a racing write on one thread and
6,656,544✔
550
            // a read on another), or a new value which is guaranteed to not
6,656,544✔
551
            // be an active index in the local cache.
6,656,544✔
552
            util::CheckedLockGuard lock(m_local_readers_mutex);
7,513,701✔
553
            util::CheckedLockGuard info_lock(m_info_mutex);
7,513,701✔
554
            auto index = m_info->readers.newest.load();
7,513,701✔
555
            if (index < m_local_readers.size()) {
7,513,701✔
556
                auto& r = m_local_readers[index];
7,513,641✔
557
                if (r.is_active()) {
7,513,641✔
558
                    return {r.version, index};
7,509,633✔
559
                }
7,509,633✔
560
            }
4,068✔
561
        }
4,068✔
562

2,124✔
563
        std::lock_guard lock(m_mutex);
4,068✔
564
        util::CheckedLockGuard info_lock(m_info_mutex);
4,068✔
565
        auto index = m_info->readers.newest.load();
4,068✔
566
        ensure_reader_mapping(index);
4,068✔
567
        return {m_info->readers.get(index).version, index};
4,068✔
568
    }
4,068✔
569

570
    void release_read_lock(const ReadLockInfo& read_lock) REQUIRES(!m_local_readers_mutex, !m_info_mutex)
571
    {
6,588,414✔
572
        {
6,588,414✔
573
            util::CheckedLockGuard lock(m_local_readers_mutex);
6,588,414✔
574
            REALM_ASSERT(read_lock.m_reader_idx < m_local_readers.size());
6,588,414✔
575
            auto& r = m_local_readers[read_lock.m_reader_idx];
6,588,414✔
576
            auto& f = field_for_type(r, read_lock.m_type);
6,588,414✔
577
            REALM_ASSERT(f > 0);
6,588,414✔
578
            if (--f > 0)
6,588,414✔
579
                return;
3,484,362✔
580
            if (r.count_live == 0 && r.count_full == 0 && r.count_frozen == 0)
3,104,052✔
581
                r.version = 0;
3,078,900✔
582
        }
3,104,052✔
583

1,562,691✔
584
        std::lock_guard lock(m_mutex);
3,104,052✔
585
        util::CheckedLockGuard info_lock(m_info_mutex);
3,104,052✔
586
        // we should not need to call ensure_full_reader_mapping,
1,562,691✔
587
        // since releasing a read lock means it has been grabbed
1,562,691✔
588
        // earlier - and hence must reside in mapped memory:
1,562,691✔
589
        REALM_ASSERT(read_lock.m_reader_idx < m_local_max_entry);
3,104,052✔
590
        auto& r = m_info->readers.get(read_lock.m_reader_idx);
3,104,052✔
591
        REALM_ASSERT(read_lock.m_version == r.version);
3,104,052✔
592
        --field_for_type(r, read_lock.m_type);
3,104,052✔
593
    }
3,104,052✔
594

595
    ReadLockInfo grab_read_lock(ReadLockInfo::Type type, VersionID version_id = {})
596
        REQUIRES(!m_local_readers_mutex, !m_info_mutex)
597
    {
6,588,108✔
598
        ReadLockInfo read_lock;
6,588,108✔
599
        if (try_grab_local_read_lock(read_lock, type, version_id))
6,588,108✔
600
            return read_lock;
3,484,314✔
601

1,562,454✔
602
        {
3,103,794✔
603
            const bool pick_specific = version_id.version != VersionID().version;
3,103,794✔
604
            std::lock_guard lock(m_mutex);
3,103,794✔
605
            util::CheckedLockGuard info_lock(m_info_mutex);
3,103,794✔
606
            auto newest = m_info->readers.newest.load();
3,103,794✔
607
            REALM_ASSERT(newest != VersionList::nil);
3,103,794✔
608
            read_lock.m_reader_idx = pick_specific ? version_id.index : newest;
3,097,029✔
609
            ensure_reader_mapping((unsigned int)read_lock.m_reader_idx);
3,103,794✔
610
            bool picked_newest = read_lock.m_reader_idx == (unsigned)newest;
3,103,794✔
611
            auto& r = m_info->readers.get(read_lock.m_reader_idx);
3,103,794✔
612
            if (pick_specific && version_id.version != r.version)
3,103,794✔
613
                throw BadVersion(version_id.version);
72✔
614
            if (!picked_newest) {
3,103,722✔
615
                if (type == ReadLockInfo::Frozen && r.count_frozen == 0 && r.count_live == 0)
702✔
616
                    throw BadVersion(version_id.version);
×
617
                if (type != ReadLockInfo::Frozen && r.count_live == 0)
702✔
618
                    throw BadVersion(version_id.version);
60✔
619
            }
3,103,662✔
620
            populate_read_lock(read_lock, r, type);
3,103,662✔
621
        }
3,103,662✔
622

1,562,388✔
623
        {
3,103,662✔
624
            util::CheckedLockGuard local_lock(m_local_readers_mutex);
3,103,662✔
625
            grow_local_cache(read_lock.m_reader_idx + 1);
3,103,662✔
626
            auto& r2 = m_local_readers[read_lock.m_reader_idx];
3,103,662✔
627
            if (!r2.is_active()) {
3,103,662✔
628
                r2.version = read_lock.m_version;
3,078,855✔
629
                r2.filesize = read_lock.m_file_size;
3,078,855✔
630
                r2.current_top = read_lock.m_top_ref;
3,078,855✔
631
                r2.count_full = r2.count_live = r2.count_frozen = 0;
3,078,855✔
632
            }
3,078,855✔
633
            REALM_ASSERT_EX(field_for_type(r2, type) == 0, type, r2.count_full, r2.count_live, r2.count_frozen);
3,103,662✔
634
            field_for_type(r2, type) = 1;
3,103,662✔
635
        }
3,103,662✔
636

1,562,388✔
637
        return read_lock;
3,103,662✔
638
    }
3,103,662✔
639

640
    void init_versioning(ref_type top_ref, size_t file_size, uint64_t initial_version) REQUIRES(!m_info_mutex)
641
    {
115,563✔
642
        std::lock_guard lock(m_mutex);
115,563✔
643
        util::CheckedLockGuard info_lock(m_info_mutex);
115,563✔
644
        m_info->init_versioning(top_ref, file_size, initial_version);
115,563✔
645
    }
115,563✔
646

647
    void add_version(ref_type new_top_ref, size_t new_file_size, uint64_t new_version) REQUIRES(!m_info_mutex)
648
    {
1,362,618✔
649
        std::lock_guard lock(m_mutex);
1,362,618✔
650
        util::CheckedLockGuard info_lock(m_info_mutex);
1,362,618✔
651
        ensure_reader_mapping();
1,362,618✔
652
        if (m_info->readers.try_allocate_entry(new_top_ref, new_file_size, new_version)) {
1,362,618✔
653
            return;
1,362,606✔
654
        }
1,362,606✔
655
        // allocation failed, expand VersionList (and lockfile) and retry
6✔
656
        auto entries = m_info->readers.capacity();
12✔
657
        auto new_entries = entries + 32;
12✔
658
        expand_version_list(new_entries);
12✔
659
        m_local_max_entry = new_entries;
12✔
660
        m_info->readers.reserve(new_entries);
12✔
661
        auto success = m_info->readers.try_allocate_entry(new_top_ref, new_file_size, new_version);
12✔
662
        REALM_ASSERT_EX(success, new_entries, new_version);
12✔
663
    }
12✔
664

665

666
private:
667
    void grow_local_cache(size_t new_size) REQUIRES(m_local_readers_mutex)
668
    {
3,104,430✔
669
        if (new_size > m_local_readers.size())
3,104,430✔
670
            m_local_readers.resize(new_size, VersionList::ReadCount{});
282,714✔
671
    }
3,104,430✔
672

673
    void populate_read_lock(ReadLockInfo& read_lock, VersionList::ReadCount& r, ReadLockInfo::Type type)
674
    {
6,588,723✔
675
        ++field_for_type(r, type);
6,588,723✔
676
        read_lock.m_type = type;
6,588,723✔
677
        read_lock.m_version = r.version;
6,588,723✔
678
        read_lock.m_top_ref = static_cast<ref_type>(r.current_top);
6,588,723✔
679
        read_lock.m_file_size = static_cast<size_t>(r.filesize);
6,588,723✔
680
    }
6,588,723✔
681

682
    bool try_grab_local_read_lock(ReadLockInfo& read_lock, ReadLockInfo::Type type, VersionID version_id)
683
        REQUIRES(!m_local_readers_mutex, !m_info_mutex)
684
    {
6,587,634✔
685
        const bool pick_specific = version_id.version != VersionID().version;
6,587,634✔
686
        auto index = version_id.index;
6,587,634✔
687
        if (!pick_specific) {
6,587,634✔
688
            util::CheckedLockGuard lock(m_info_mutex);
6,293,601✔
689
            index = m_info->readers.newest.load();
6,293,601✔
690
        }
6,293,601✔
691
        util::CheckedLockGuard local_lock(m_local_readers_mutex);
6,587,634✔
692
        if (index >= m_local_readers.size())
6,587,634✔
693
            return false;
282,723✔
694

4,275,624✔
695
        auto& r = m_local_readers[index];
6,304,911✔
696
        if (!r.is_active())
6,304,911✔
697
            return false;
2,796,306✔
698
        if (pick_specific && r.version != version_id.version)
3,508,605✔
699
            return false;
×
700
        if (field_for_type(r, type) == 0)
3,508,605✔
701
            return false;
25,536✔
702

2,851,653✔
703
        read_lock.m_reader_idx = index;
3,483,069✔
704
        populate_read_lock(read_lock, r, type);
3,483,069✔
705
        return true;
3,483,069✔
706
    }
3,483,069✔
707

708
    static uint32_t& field_for_type(VersionList::ReadCount& r, ReadLockInfo::Type type)
709
    {
25,996,254✔
710
        switch (type) {
25,996,254✔
711
            case ReadLockInfo::Frozen:
174,489✔
712
                return r.count_frozen;
174,489✔
713
            case ReadLockInfo::Live:
25,821,633✔
714
                return r.count_live;
25,821,633✔
715
            case ReadLockInfo::Full:
✔
716
                return r.count_full;
×
717
            default:
✔
718
                REALM_UNREACHABLE(); // silence a warning
×
719
        }
25,996,254✔
720
    }
25,996,254✔
721

722
    void mark_page_for_writing(uint64_t page_offset) REQUIRES(!m_info_mutex)
723
    {
2,454✔
724
        util::CheckedLockGuard info_lock(m_info_mutex);
2,454✔
725
        m_info->writing_page_offset = page_offset + 1;
2,454✔
726
        m_info->write_counter++;
2,454✔
727
    }
2,454✔
728
    void clear_writing_marker() REQUIRES(!m_info_mutex)
729
    {
2,454✔
730
        util::CheckedLockGuard info_lock(m_info_mutex);
2,454✔
731
        m_info->write_counter++;
2,454✔
732
        m_info->writing_page_offset = 0;
2,454✔
733
    }
2,454✔
734
    // returns false if no page is marked.
735
    // if a page is marked, returns true and optionally the offset of the page marked for writing
736
    // in all cases returns optionally the write counter
737
    bool observe_writer(uint64_t* page_offset, uint64_t* write_counter) REQUIRES(!m_info_mutex)
738
    {
90✔
739
        util::CheckedLockGuard info_lock(m_info_mutex);
90✔
740
        if (write_counter) {
90✔
741
            *write_counter = m_info->write_counter;
90✔
742
        }
90✔
743
        uint64_t marked = m_info->writing_page_offset;
90✔
744
        if (marked && page_offset) {
90!
745
            *page_offset = marked - 1;
×
746
        }
×
747
        return marked != 0;
90✔
748
    }
90✔
749

750
protected:
751
    util::InterprocessMutex& m_mutex;
752
    util::CheckedMutex m_local_readers_mutex;
753
    std::vector<VersionList::ReadCount> m_local_readers GUARDED_BY(m_local_readers_mutex);
754

755
    util::CheckedMutex m_info_mutex;
756
    unsigned int m_local_max_entry GUARDED_BY(m_info_mutex) = 0;
757
    SharedInfo* m_info GUARDED_BY(m_info_mutex) = nullptr;
758

759
    virtual void ensure_reader_mapping(unsigned int required = -1) REQUIRES(m_info_mutex) = 0;
760
    virtual void expand_version_list(unsigned new_entries) REQUIRES(m_info_mutex) = 0;
761
    friend class DB::EncryptionMarkerObserver;
762
};
763

764
class DB::FileVersionManager final : public DB::VersionManager {
765
public:
766
    FileVersionManager(File& file, util::InterprocessMutex& mutex)
767
        : VersionManager(mutex)
768
        , m_file(file)
769
    {
139,932✔
770
        size_t size = 0, required_size = sizeof(SharedInfo);
139,932✔
771
        while (size < required_size) {
279,864✔
772
            // Map the file without the lock held. This could result in the
68,799✔
773
            // mapping being too small and having to remap if the file is grown
68,799✔
774
            // concurrently, but if this is the case we should always see a bigger
68,799✔
775
            // size the next time.
68,799✔
776
            auto new_size = static_cast<size_t>(m_file.get_size());
139,932✔
777
            REALM_ASSERT(new_size > size);
139,932✔
778
            size = new_size;
139,932✔
779
            m_reader_map.remap(m_file, File::access_ReadWrite, size, File::map_NoSync);
139,932✔
780
            m_info = m_reader_map.get_addr();
139,932✔
781

68,799✔
782
            std::lock_guard lock(m_mutex);
139,932✔
783
            m_local_max_entry = m_info->readers.capacity();
139,932✔
784
            required_size = sizeof(SharedInfo) + m_info->readers.compute_required_space(m_local_max_entry);
139,932✔
785
            REALM_ASSERT(required_size >= size);
139,932✔
786
        }
139,932✔
787
    }
139,932✔
788

789
    void expand_version_list(unsigned new_entries) override REQUIRES(m_info_mutex)
790
    {
18✔
791
        size_t new_info_size = sizeof(SharedInfo) + m_info->readers.compute_required_space(new_entries);
18✔
792
        m_file.prealloc(new_info_size);                                          // Throws
18✔
793
        m_reader_map.remap(m_file, util::File::access_ReadWrite, new_info_size); // Throws
18✔
794
        m_info = m_reader_map.get_addr();
18✔
795
    }
18✔
796

797
private:
798
    void ensure_reader_mapping(unsigned int required = -1) override REQUIRES(m_info_mutex)
799
    {
5,499,609✔
800
        using _impl::SimulatedFailure;
5,499,609✔
801
        SimulatedFailure::trigger(SimulatedFailure::shared_group__grow_reader_mapping); // Throws
5,499,609✔
802

2,770,587✔
803
        if (required < m_local_max_entry)
5,499,609✔
804
            return;
2,938,020✔
805

1,290,642✔
806
        auto new_max_entry = m_info->readers.capacity();
2,561,589✔
807
        if (new_max_entry > m_local_max_entry) {
2,561,589✔
808
            // handle mapping expansion if required
809
            size_t info_size = sizeof(DB::SharedInfo) + m_info->readers.compute_required_space(new_max_entry);
×
810
            m_reader_map.remap(m_file, util::File::access_ReadWrite, info_size); // Throws
×
811
            m_local_max_entry = new_max_entry;
×
812
            m_info = m_reader_map.get_addr();
×
813
        }
×
814
    }
2,561,589✔
815

816
    File& m_file;
817
    File::Map<DB::SharedInfo> m_reader_map;
818

819
    friend class DB::EncryptionMarkerObserver;
820
};
821

822
// adapter class for marking/observing encrypted writes
823
class DB::EncryptionMarkerObserver : public util::WriteMarker, public util::WriteObserver {
824
public:
825
    EncryptionMarkerObserver(DB::VersionManager& vm)
826
        : vm(vm)
827
    {
139,932✔
828
    }
139,932✔
829
    bool no_concurrent_writer_seen() override
830
    {
90✔
831
        uint64_t tmp_write_count;
90✔
832
        auto page_may_have_been_written = vm.observe_writer(nullptr, &tmp_write_count);
90✔
833
        if (tmp_write_count != last_seen_count) {
90✔
834
            page_may_have_been_written = true;
×
835
            last_seen_count = tmp_write_count;
×
836
        }
×
837
        if (page_may_have_been_written) {
90✔
838
            calls_since_last_writer_observed = 0;
×
839
            return false;
×
840
        }
×
841
        ++calls_since_last_writer_observed;
90✔
842
        constexpr size_t max_calls = 5; // an arbitrary handful, > 1
90✔
843
        return (calls_since_last_writer_observed >= max_calls);
90✔
844
    }
90✔
845
    void mark(uint64_t pos) override
846
    {
2,454✔
847
        vm.mark_page_for_writing(pos);
2,454✔
848
    }
2,454✔
849
    void unmark() override
850
    {
2,454✔
851
        vm.clear_writing_marker();
2,454✔
852
    }
2,454✔
853

854
private:
855
    DB::VersionManager& vm;
856
    uint64_t last_seen_count = 0;
857
    size_t calls_since_last_writer_observed = 0;
858
};
859

860
class DB::InMemoryVersionManager final : public DB::VersionManager {
861
public:
862
    InMemoryVersionManager(SharedInfo* info, util::InterprocessMutex& mutex)
863
        : VersionManager(mutex)
864
    {
25,344✔
865
        m_info = info;
25,344✔
866
        m_local_max_entry = m_info->readers.capacity();
25,344✔
867
    }
25,344✔
868
    void expand_version_list(unsigned) override
869
    {
×
870
        REALM_ASSERT(false);
×
871
    }
×
872

873
private:
874
    void ensure_reader_mapping(unsigned int) override {}
334,080✔
875
};
876

877
#if REALM_HAVE_STD_FILESYSTEM
878
std::string DBOptions::sys_tmp_dir = std::filesystem::temp_directory_path().string();
879
#else
880
std::string DBOptions::sys_tmp_dir = getenv("TMPDIR") ? getenv("TMPDIR") : "";
881
#endif
882

883
// NOTES ON CREATION AND DESTRUCTION OF SHARED MUTEXES:
884
//
885
// According to the 'process-sharing example' in the POSIX man page
886
// for pthread_mutexattr_init() other processes may continue to use a
887
// process-shared mutex after exit of the process that initialized
888
// it. Also, the example does not contain any call to
889
// pthread_mutex_destroy(), so apparently a process-shared mutex need
890
// not be destroyed at all, nor can it be that a process-shared mutex
891
// is associated with any resources that are local to the initializing
892
// process, because that would imply a leak.
893
//
894
// While it is not explicitly guaranteed in the man page, we shall
895
// assume that is is valid to initialize a process-shared mutex twice
896
// without an intervening call to pthread_mutex_destroy(). We need to
897
// be able to reinitialize a process-shared mutex if the first
898
// initializing process crashes and leaves the shared memory in an
899
// undefined state.
900

901
void DB::open(const std::string& path, bool no_create_file, const DBOptions& options)
902
{
139,863✔
903
    // Exception safety: Since do_open() is called from constructors, if it
68,781✔
904
    // throws, it must leave the file closed.
68,781✔
905
    using util::format;
139,863✔
906

68,781✔
907
    REALM_ASSERT(!is_attached());
139,863✔
908
    REALM_ASSERT(path.size());
139,863✔
909

68,781✔
910
    m_db_path = path;
139,863✔
911

68,781✔
912
    set_logger(options.logger);
139,863✔
913
    if (m_replication) {
139,863✔
914
        m_replication->set_logger(m_logger.get());
115,032✔
915
    }
115,032✔
916
    if (m_logger)
139,863✔
917
        m_logger->log(util::Logger::Level::detail, "Open file: %1", path);
125,553✔
918
    SlabAlloc& alloc = m_alloc;
139,863✔
919
    if (options.is_immutable) {
139,863✔
920
        SlabAlloc::Config cfg;
180✔
921
        cfg.read_only = true;
180✔
922
        cfg.no_create = true;
180✔
923
        cfg.encryption_key = options.encryption_key;
180✔
924
        auto top_ref = alloc.attach_file(path, cfg);
180✔
925
        SlabAlloc::DetachGuard dg(alloc);
180✔
926
        Group::read_only_version_check(alloc, top_ref, path);
180✔
927
        m_fake_read_lock_if_immutable = ReadLockInfo::make_fake(top_ref, m_alloc.get_baseline());
180✔
928
        dg.release();
180✔
929
        return;
180✔
930
    }
180✔
931
    std::string lockfile_path = get_core_file(path, CoreFileType::Lock);
139,683✔
932
    std::string coordination_dir = get_core_file(path, CoreFileType::Management);
139,683✔
933
    std::string lockfile_prefix = coordination_dir + "/access_control";
139,683✔
934
    m_alloc.set_read_only(false);
139,683✔
935

68,691✔
936
    Replication::HistoryType openers_hist_type = Replication::hist_None;
139,683✔
937
    int openers_hist_schema_version = 0;
139,683✔
938
    if (Replication* repl = get_replication()) {
139,683✔
939
        openers_hist_type = repl->get_history_type();
115,029✔
940
        openers_hist_schema_version = repl->get_history_schema_version();
115,029✔
941
    }
115,029✔
942

68,691✔
943
    int current_file_format_version;
139,683✔
944
    int target_file_format_version;
139,683✔
945
    int stored_hist_schema_version = -1; // Signals undetermined
139,683✔
946

68,691✔
947
    int retries_left = 10; // number of times to retry before throwing exceptions
139,683✔
948
    // in case there is something wrong with the .lock file... the retries allows
68,691✔
949
    // us to pick a new lockfile initializer in case the first one crashes without
68,691✔
950
    // completing the initialization
68,691✔
951
    std::default_random_engine random_gen;
139,683✔
952
    for (;;) {
229,500✔
953

112,341✔
954
        // if we're retrying, we first wait a random time
112,341✔
955
        if (retries_left < 10) {
229,500✔
956
            if (retries_left == 9) { // we seed it from a true random source if possible
240✔
957
                std::random_device r;
24✔
958
                random_gen.seed(r());
24✔
959
            }
24✔
960
            int max_delay = (10 - retries_left) * 10;
240✔
961
            int msecs = random_gen() % max_delay;
240✔
962
            millisleep(msecs);
240✔
963
        }
240✔
964

112,341✔
965
        m_file.open(lockfile_path, File::access_ReadWrite, File::create_Auto, 0); // Throws
229,500✔
966
        File::CloseGuard fcg(m_file);
229,500✔
967
        m_file.set_fifo_path(coordination_dir, "lock.fifo");
229,500✔
968

112,341✔
969
        if (m_file.try_rw_lock_exclusive()) { // Throws
229,500✔
970
            File::UnlockGuard ulg(m_file);
114,099✔
971

56,115✔
972
            // We're alone in the world, and it is Ok to initialize the
56,115✔
973
            // file. Start by truncating the file to zero to ensure that
56,115✔
974
            // the following resize will generate a file filled with zeroes.
56,115✔
975
            //
56,115✔
976
            // This will in particular set m_init_complete to 0.
56,115✔
977
            m_file.resize(0);
114,099✔
978
            m_file.prealloc(sizeof(SharedInfo));
114,099✔
979

56,115✔
980
            // We can crash anytime during this process. A crash prior to
56,115✔
981
            // the first resize could allow another thread which could not
56,115✔
982
            // get the exclusive lock because we hold it, and hence were
56,115✔
983
            // waiting for the shared lock instead, to observe and use an
56,115✔
984
            // old lock file.
56,115✔
985
            m_file_map.map(m_file, File::access_ReadWrite, sizeof(SharedInfo), File::map_NoSync); // Throws
114,099✔
986
            File::UnmapGuard fug(m_file_map);
114,099✔
987
            SharedInfo* info = m_file_map.get_addr();
114,099✔
988

56,115✔
989
            new (info) SharedInfo{options.durability, openers_hist_type, openers_hist_schema_version}; // Throws
114,099✔
990

56,115✔
991
            // Because init_complete is an std::atomic, it's guaranteed not to be observable by others
56,115✔
992
            // as being 1 before the entire SharedInfo header has been written.
56,115✔
993
            info->init_complete = 1;
114,099✔
994
        }
114,099✔
995

112,341✔
996
// We hold the shared lock from here until we close the file!
112,341✔
997
#if REALM_PLATFORM_APPLE
117,159✔
998
        // macOS has a bug which can cause a hang waiting to obtain a lock, even
999
        // if the lock is already open in shared mode, so we work around it by
1000
        // busy waiting. This should occur only briefly during session initialization.
1001
        while (!m_file.try_rw_lock_shared()) {
118,143✔
1002
            sched_yield();
984✔
1003
        }
984✔
1004
#else
1005
        m_file.rw_lock_shared(); // Throws
112,341✔
1006
#endif
112,341✔
1007
        File::UnlockGuard ulg(m_file);
229,500✔
1008

112,341✔
1009
        // The coordination/management dir is created as a side effect of the lock
112,341✔
1010
        // operation above if needed for lock emulation. But it may also be needed
112,341✔
1011
        // for other purposes, so make sure it exists.
112,341✔
1012
        // in worst case there'll be a race on creating this directory.
112,341✔
1013
        // This should be safe but a waste of resources.
112,341✔
1014
        // Unfortunately it cannot be created at an earlier point, because
112,341✔
1015
        // it may then be deleted during the above lock_shared() operation.
112,341✔
1016
        try_make_dir(coordination_dir);
229,500✔
1017

112,341✔
1018
        // If the file is not completely initialized at this point in time, the
112,341✔
1019
        // preceeding initialization attempt must have failed. We know that an
112,341✔
1020
        // initialization process was in progress, because this thread (or
112,341✔
1021
        // process) failed to get an exclusive lock on the file. Because this
112,341✔
1022
        // thread (or process) currently has a shared lock on the file, we also
112,341✔
1023
        // know that the initialization process can no longer be in progress, so
112,341✔
1024
        // the initialization must either have completed or failed at this time.
112,341✔
1025

112,341✔
1026
        // The file is taken to be completely initialized if it is large enough
112,341✔
1027
        // to contain the `init_complete` field, and `init_complete` is true. If
112,341✔
1028
        // the file was not completely initialized, this thread must give up its
112,341✔
1029
        // shared lock, and retry to become the initializer. Eventually, one of
112,341✔
1030
        // two things must happen; either this thread, or another thread
112,341✔
1031
        // succeeds in completing the initialization, or this thread becomes the
112,341✔
1032
        // initializer, and fails the initialization. In either case, the retry
112,341✔
1033
        // loop will eventually terminate.
112,341✔
1034

112,341✔
1035
        // An empty file is (and was) never a successfully initialized file.
112,341✔
1036
        size_t info_size = sizeof(SharedInfo);
229,500✔
1037
        {
229,500✔
1038
            auto file_size = m_file.get_size();
229,500✔
1039
            if (util::int_less_than(file_size, info_size)) {
229,500✔
1040
                if (file_size == 0)
89,364✔
1041
                    continue; // Retry
63,024✔
1042
                info_size = size_t(file_size);
26,340✔
1043
            }
26,340✔
1044
        }
229,500✔
1045

112,341✔
1046
        // Map the initial section of the SharedInfo file that corresponds to
112,341✔
1047
        // the SharedInfo struct, or less if the file is smaller. We know that
112,341✔
1048
        // we have at least one byte, and that is enough to read the
112,341✔
1049
        // `init_complete` flag.
112,341✔
1050
        m_file_map.map(m_file, File::access_ReadWrite, info_size, File::map_NoSync);
200,799✔
1051
        File::UnmapGuard fug_1(m_file_map);
166,476✔
1052
        SharedInfo* info = m_file_map.get_addr();
166,476✔
1053

78,018✔
1054
#ifndef _WIN32
166,476✔
1055
#pragma GCC diagnostic push
166,476✔
1056
#pragma GCC diagnostic ignored "-Winvalid-offsetof"
166,476✔
1057
#endif
166,476✔
1058
        static_assert(offsetof(SharedInfo, init_complete) + sizeof SharedInfo::init_complete <= 1,
166,476✔
1059
                      "Unexpected position or size of SharedInfo::init_complete");
166,476✔
1060
#ifndef _WIN32
166,476✔
1061
#pragma GCC diagnostic pop
166,476✔
1062
#endif
166,476✔
1063
        if (info->init_complete == 0)
166,476✔
1064
            continue;
26,274✔
1065
        REALM_ASSERT(info->init_complete == 1);
140,202✔
1066

68,937✔
1067
        // At this time, we know that the file was completely initialized, but
68,937✔
1068
        // we still need to verify that is was initialized with the memory
68,937✔
1069
        // layout expected by this session participant. We could find that it is
68,937✔
1070
        // initializaed with a different memory layout if other concurrent
68,937✔
1071
        // session participants use different versions of the core library.
68,937✔
1072
        if (info_size < sizeof(SharedInfo)) {
140,202✔
1073
            if (retries_left) {
66✔
1074
                --retries_left;
60✔
1075
                continue;
60✔
1076
            }
60✔
1077
            throw IncompatibleLockFile(path, format("Architecture mismatch: SharedInfo size is %1 but should be %2.",
6✔
1078
                                                    info_size, sizeof(SharedInfo)));
6✔
1079
        }
6✔
1080
        if (info->shared_info_version != g_shared_info_version) {
140,136✔
1081
            if (retries_left) {
66✔
1082
                --retries_left;
60✔
1083
                continue;
60✔
1084
            }
60✔
1085
            throw IncompatibleLockFile(path, format("Version mismatch: SharedInfo version is %1 but should be %2.",
6✔
1086
                                                    info->shared_info_version, g_shared_info_version));
6✔
1087
        }
6✔
1088
        // Validate compatible sizes of mutex and condvar types. Sizes of all
68,871✔
1089
        // other fields are architecture independent, so if condvar and mutex
68,871✔
1090
        // sizes match, the entire struct matches. The offsets of
68,871✔
1091
        // `size_of_mutex` and `size_of_condvar` are known to be as expected due
68,871✔
1092
        // to the preceeding check in `shared_info_version`.
68,871✔
1093
        if (info->size_of_mutex != sizeof info->shared_controlmutex) {
140,070✔
1094
            if (retries_left) {
66✔
1095
                --retries_left;
60✔
1096
                continue;
60✔
1097
            }
60✔
1098
            throw IncompatibleLockFile(path, format("Architecture mismatch: Mutex size is %1 but should be %2.",
6✔
1099
                                                    info->size_of_mutex, sizeof(info->shared_controlmutex)));
6✔
1100
        }
6✔
1101

68,838✔
1102
        if (info->size_of_condvar != sizeof info->room_to_write) {
140,004✔
1103
            if (retries_left) {
66✔
1104
                --retries_left;
60✔
1105
                continue;
60✔
1106
            }
60✔
1107
            throw IncompatibleLockFile(
6✔
1108
                path, format("Architecture mismatch: Condition variable size is %1 but should be %2.",
6✔
1109
                             info->size_of_condvar, sizeof(info->room_to_write)));
6✔
1110
        }
6✔
1111
        m_writemutex.set_shared_part(info->shared_writemutex, lockfile_prefix, "write");
139,938✔
1112
        m_controlmutex.set_shared_part(info->shared_controlmutex, lockfile_prefix, "control");
139,938✔
1113
        m_versionlist_mutex.set_shared_part(info->shared_versionlist_mutex, lockfile_prefix, "versions");
139,938✔
1114

68,805✔
1115
        // even though fields match wrt alignment and size, there may still be incompatibilities
68,805✔
1116
        // between implementations, so lets ask one of the mutexes if it thinks it'll work.
68,805✔
1117
        if (!m_controlmutex.is_valid()) {
139,938✔
1118
            throw IncompatibleLockFile(
×
1119
                path, "Control mutex is invalid. This suggests that incompatible pthread libraries are in use.");
×
1120
        }
×
1121

68,805✔
1122
        // OK! lock file appears valid. We can now continue operations under the protection
68,805✔
1123
        // of the controlmutex. The controlmutex protects the following activities:
68,805✔
1124
        // - attachment of the database file
68,805✔
1125
        // - start of the async daemon
68,805✔
1126
        // - stop of the async daemon
68,805✔
1127
        // - restore of a backup, if desired
68,805✔
1128
        // - backup of the realm file in preparation of file format upgrade
68,805✔
1129
        // - DB beginning/ending a session
68,805✔
1130
        // - Waiting for and signalling database changes
68,805✔
1131
        {
139,938✔
1132
            std::lock_guard<InterprocessMutex> lock(m_controlmutex); // Throws
139,938✔
1133
            auto version_manager = std::make_unique<FileVersionManager>(m_file, m_versionlist_mutex);
139,938✔
1134

68,805✔
1135
            // proceed to initialize versioning and other metadata information related to
68,805✔
1136
            // the database. Also create the database if we're beginning a new session
68,805✔
1137
            bool begin_new_session = (info->num_participants == 0);
139,938✔
1138
            SlabAlloc::Config cfg;
139,938✔
1139
            cfg.session_initiator = begin_new_session;
139,938✔
1140
            cfg.is_shared = true;
139,938✔
1141
            cfg.read_only = false;
139,938✔
1142
            cfg.skip_validate = !begin_new_session;
139,938✔
1143
            cfg.disable_sync = options.durability == Durability::MemOnly || options.durability == Durability::Unsafe;
139,938✔
1144

68,805✔
1145
            // only the session initiator is allowed to create the database, all other
68,805✔
1146
            // must assume that it already exists.
68,805✔
1147
            cfg.no_create = (begin_new_session ? no_create_file : true);
127,743✔
1148

68,805✔
1149
            // if we're opening a MemOnly file that isn't already opened by
68,805✔
1150
            // someone else then it's a file which should have been deleted on
68,805✔
1151
            // close previously, but wasn't (perhaps due to the process crashing)
68,805✔
1152
            cfg.clear_file = (options.durability == Durability::MemOnly && begin_new_session);
139,938✔
1153

68,805✔
1154
            cfg.encryption_key = options.encryption_key;
139,938✔
1155
            ref_type top_ref;
139,938✔
1156
            m_marker_observer = std::make_unique<EncryptionMarkerObserver>(*version_manager);
139,938✔
1157
            try {
139,938✔
1158
                top_ref = alloc.attach_file(path, cfg, m_marker_observer.get()); // Throws
139,938✔
1159
            }
139,938✔
1160
            catch (const SlabAlloc::Retry&) {
68,805✔
1161
                // On a SlabAlloc::Retry file mappings are already unmapped, no
1162
                // need to do more
1163
                continue;
×
1164
            }
×
1165

68,760✔
1166
            // Determine target file format version for session (upgrade
68,760✔
1167
            // required if greater than file format version of attached file).
68,760✔
1168
            current_file_format_version = alloc.get_committed_file_format_version();
139,854✔
1169
            target_file_format_version =
139,854✔
1170
                Group::get_target_file_format_version_for_session(current_file_format_version, openers_hist_type);
139,854✔
1171
            BackupHandler backup(path, options.accepted_versions, options.to_be_deleted);
139,854✔
1172
            if (backup.must_restore_from_backup(current_file_format_version)) {
139,854✔
1173
                // we need to unmap before any file ops that'll change the realm
6✔
1174
                // file:
6✔
1175
                // (only strictly needed for Windows)
6✔
1176
                alloc.detach();
12✔
1177
                backup.restore_from_backup();
12✔
1178
                // finally, retry with the restored file instead of the original
6✔
1179
                // one:
6✔
1180
                continue;
12✔
1181
            }
12✔
1182
            backup.cleanup_backups();
139,842✔
1183

68,754✔
1184
            // From here on, if we fail in any way, we must detach the
68,754✔
1185
            // allocator.
68,754✔
1186
            SlabAlloc::DetachGuard alloc_detach_guard(alloc);
139,842✔
1187
            alloc.note_reader_start(this);
139,842✔
1188
            // must come after the alloc detach guard
68,754✔
1189
            auto handler = [this, &alloc]() noexcept {
139,842✔
1190
                alloc.note_reader_end(this);
139,842✔
1191
            };
139,842✔
1192
            auto reader_end_guard = make_scope_exit(handler);
139,842✔
1193

68,754✔
1194
            // Check validity of top array (to give more meaningful errors
68,754✔
1195
            // early)
68,754✔
1196
            if (top_ref) {
139,842✔
1197
                try {
88,593✔
1198
                    alloc.note_reader_start(this);
88,593✔
1199
                    auto reader_end_guard = make_scope_exit([&]() noexcept {
88,593✔
1200
                        alloc.note_reader_end(this);
88,593✔
1201
                    });
88,593✔
1202
                    Array top{alloc};
88,593✔
1203
                    top.init_from_ref(top_ref);
88,593✔
1204
                    Group::validate_top_array(top, alloc);
88,593✔
1205
                }
88,593✔
1206
                catch (const InvalidDatabase& e) {
43,791✔
1207
                    if (e.get_path().empty()) {
×
1208
                        throw InvalidDatabase(e.what(), path);
×
1209
                    }
×
1210
                    throw;
×
1211
                }
×
1212
            }
88,593✔
1213
            if (options.backup_at_file_format_change) {
139,842✔
1214
                backup.backup_realm_if_needed(current_file_format_version, target_file_format_version);
139,833✔
1215
            }
139,833✔
1216
            using gf = _impl::GroupFriend;
139,842✔
1217
            bool file_format_ok;
139,842✔
1218
            // In shared mode (Realm file opened via a DB instance) this
68,754✔
1219
            // version of the core library is able to open Realms using file format
68,754✔
1220
            // versions listed below. Please see Group::get_file_format_version() for
68,754✔
1221
            // information about the individual file format versions.
68,754✔
1222
            if (current_file_format_version == 0) {
139,842✔
1223
                file_format_ok = (top_ref == 0);
51,249✔
1224
            }
51,249✔
1225
            else {
88,593✔
1226
                file_format_ok = backup.is_accepted_file_format(current_file_format_version);
88,593✔
1227
            }
88,593✔
1228

68,754✔
1229
            if (REALM_UNLIKELY(!file_format_ok)) {
139,842✔
1230
                throw UnsupportedFileFormatVersion(current_file_format_version);
12✔
1231
            }
12✔
1232

68,748✔
1233
            if (begin_new_session) {
139,830✔
1234
                // Determine version (snapshot number) and check history
56,814✔
1235
                // compatibility
56,814✔
1236
                version_type version = 0;
115,710✔
1237
                int stored_hist_type = 0;
115,710✔
1238
                gf::get_version_and_history_info(alloc, top_ref, version, stored_hist_type,
115,710✔
1239
                                                 stored_hist_schema_version);
115,710✔
1240
                bool good_history_type = false;
115,710✔
1241
                switch (openers_hist_type) {
115,710✔
1242
                    case Replication::hist_None:
7,062✔
1243
                        good_history_type = (stored_hist_type == Replication::hist_None);
7,062✔
1244
                        if (!good_history_type)
7,062✔
1245
                            throw IncompatibleHistories(
6✔
1246
                                util::format("Realm file at path '%1' has history type '%2', but is being opened "
6✔
1247
                                             "with replication disabled.",
6✔
1248
                                             path, Replication::history_type_name(stored_hist_type)),
6✔
1249
                                path);
6✔
1250
                        break;
7,056✔
1251
                    case Replication::hist_OutOfRealm:
3,501✔
1252
                        REALM_ASSERT(false); // No longer in use
×
1253
                        break;
×
1254
                    case Replication::hist_InRealm:
80,187✔
1255
                        good_history_type = (stored_hist_type == Replication::hist_InRealm ||
80,187✔
1256
                                             stored_hist_type == Replication::hist_None);
48,915✔
1257
                        if (!good_history_type)
80,187✔
1258
                            throw IncompatibleHistories(
6✔
1259
                                util::format("Realm file at path '%1' has history type '%2', but is being opened in "
6✔
1260
                                             "local history mode.",
6✔
1261
                                             path, Replication::history_type_name(stored_hist_type)),
6✔
1262
                                path);
6✔
1263
                        break;
80,181✔
1264
                    case Replication::hist_SyncClient:
53,169✔
1265
                        good_history_type = ((stored_hist_type == Replication::hist_SyncClient) || (top_ref == 0));
26,760✔
1266
                        if (!good_history_type)
26,760✔
1267
                            throw IncompatibleHistories(
6✔
1268
                                util::format("Realm file at path '%1' has history type '%2', but is being opened in "
6✔
1269
                                             "synchronized history mode.",
6✔
1270
                                             path, Replication::history_type_name(stored_hist_type)),
6✔
1271
                                path);
6✔
1272
                        break;
26,754✔
1273
                    case Replication::hist_SyncServer:
14,112✔
1274
                        good_history_type = ((stored_hist_type == Replication::hist_SyncServer) || (top_ref == 0));
1,701✔
1275
                        if (!good_history_type)
1,701✔
1276
                            throw IncompatibleHistories(
×
1277
                                util::format("Realm file at path '%1' has history type '%2', but is being opened in "
×
1278
                                             "server history mode.",
×
1279
                                             path, Replication::history_type_name(stored_hist_type)),
×
1280
                                path);
×
1281
                        break;
1,701✔
1282
                }
115,692✔
1283

56,805✔
1284
                REALM_ASSERT(stored_hist_schema_version >= 0);
115,692✔
1285
                if (stored_hist_schema_version > openers_hist_schema_version)
115,692✔
1286
                    throw IncompatibleHistories(
×
1287
                        util::format("Unexpected future history schema version %1, current schema %2",
×
1288
                                     stored_hist_schema_version, openers_hist_schema_version),
×
1289
                        path);
×
1290
                bool need_hist_schema_upgrade =
115,692✔
1291
                    (stored_hist_schema_version < openers_hist_schema_version && top_ref != 0);
115,692✔
1292
                if (need_hist_schema_upgrade) {
115,692✔
1293
                    Replication* repl = get_replication();
348✔
1294
                    if (!repl->is_upgradable_history_schema(stored_hist_schema_version))
348✔
1295
                        throw IncompatibleHistories(util::format("Nonupgradable history schema %1, current schema %2",
×
1296
                                                                 stored_hist_schema_version,
×
1297
                                                                 openers_hist_schema_version),
×
1298
                                                    path);
×
1299
                }
115,692✔
1300

56,805✔
1301
                bool need_file_format_upgrade =
115,692✔
1302
                    current_file_format_version < target_file_format_version && top_ref != 0;
115,692✔
1303
                if (!options.allow_file_format_upgrade && (need_hist_schema_upgrade || need_file_format_upgrade)) {
115,692✔
1304
                    throw FileFormatUpgradeRequired(m_db_path);
6✔
1305
                }
6✔
1306

56,802✔
1307
                alloc.convert_from_streaming_form(top_ref);
115,686✔
1308
                try {
115,686✔
1309
                    bool file_changed_size = alloc.align_filesize_for_mmap(top_ref, cfg);
115,686✔
1310
                    if (file_changed_size) {
115,686✔
1311
                        // we need to re-establish proper mappings after file size change.
120✔
1312
                        // we do this simply by aborting and starting all over:
120✔
1313
                        continue;
267✔
1314
                    }
267✔
1315
                }
×
1316
                // something went wrong. Retry.
1317
                catch (SlabAlloc::Retry&) {
×
1318
                    continue;
×
1319
                }
×
1320
                if (options.encryption_key) {
115,419✔
1321
#ifdef _WIN32
1322
                    uint64_t pid = GetCurrentProcessId();
1323
#else
1324
                    static_assert(sizeof(pid_t) <= sizeof(uint64_t), "process identifiers too large");
222✔
1325
                    uint64_t pid = getpid();
222✔
1326
#endif
222✔
1327
                    info->session_initiator_pid = pid;
222✔
1328
                }
222✔
1329

56,682✔
1330
                info->file_format_version = uint_fast8_t(target_file_format_version);
115,419✔
1331

56,682✔
1332
                // Initially there is a single version in the file
56,682✔
1333
                info->number_of_versions = 1;
115,419✔
1334

56,682✔
1335
                info->latest_version_number = version;
115,419✔
1336
                alloc.init_mapping_management(version);
115,419✔
1337

56,682✔
1338
                size_t file_size = 24;
115,419✔
1339
                if (top_ref) {
115,419✔
1340
                    Array top(alloc);
65,664✔
1341
                    top.init_from_ref(top_ref);
65,664✔
1342
                    file_size = Group::get_logical_file_size(top);
65,664✔
1343
                }
65,664✔
1344
                version_manager->init_versioning(top_ref, file_size, version);
115,419✔
1345
            }
115,419✔
1346
            else { // Not the session initiator
24,120✔
1347
                // Durability setting must be consistent across a session. An
11,934✔
1348
                // inconsistency is a logic error, as the user is required to
11,934✔
1349
                // make sure that all possible concurrent session participants
11,934✔
1350
                // use the same durability setting for the same Realm file.
11,934✔
1351
                if (Durability(info->durability) != options.durability)
24,120✔
1352
                    throw RuntimeError(ErrorCodes::IncompatibleSession, "Durability not consistent");
6✔
1353

11,931✔
1354
                // History type must be consistent across a session. An
11,931✔
1355
                // inconsistency is a logic error, as the user is required to
11,931✔
1356
                // make sure that all possible concurrent session participants
11,931✔
1357
                // use the same history type for the same Realm file.
11,931✔
1358
                if (info->history_type != openers_hist_type)
24,114✔
1359
                    throw RuntimeError(ErrorCodes::IncompatibleSession, "History type not consistent");
6✔
1360

11,928✔
1361
                // History schema version must be consistent across a
11,928✔
1362
                // session. An inconsistency is a logic error, as the user is
11,928✔
1363
                // required to make sure that all possible concurrent session
11,928✔
1364
                // participants use the same history schema version for the same
11,928✔
1365
                // Realm file.
11,928✔
1366
                if (info->history_schema_version != openers_hist_schema_version)
24,108✔
1367
                    throw RuntimeError(ErrorCodes::IncompatibleSession, "History schema version not consistent");
×
1368

11,928✔
1369
                // We need per session agreement among all participants on the
11,928✔
1370
                // target Realm file format. From a technical perspective, the
11,928✔
1371
                // best way to ensure that, would be to require a bumping of the
11,928✔
1372
                // SharedInfo file format version on any change that could lead
11,928✔
1373
                // to a different result from
11,928✔
1374
                // get_target_file_format_for_session() given the same current
11,928✔
1375
                // Realm file format version and the same history type, as that
11,928✔
1376
                // would prevent the outcome of the Realm opening process from
11,928✔
1377
                // depending on race conditions. However, for practical reasons,
11,928✔
1378
                // we shall instead simply check that there is agreement, and
11,928✔
1379
                // throw the same kind of exception, as would have been thrown
11,928✔
1380
                // with a bumped SharedInfo file format version, if there isn't.
11,928✔
1381
                if (info->file_format_version != target_file_format_version) {
24,108✔
1382
                    throw IncompatibleLockFile(path,
×
1383
                                               format("Version mismatch: File format version is %1 but should be %2.",
×
1384
                                                      info->file_format_version, target_file_format_version));
×
1385
                }
×
1386

11,928✔
1387
                // Even though this session participant is not the session initiator,
11,928✔
1388
                // it may be the one that has to perform the history schema upgrade.
11,928✔
1389
                // See upgrade_file_format(). However we cannot get the actual value
11,928✔
1390
                // at this point as the allocator is not synchronized with the file.
11,928✔
1391
                // The value will be read in a ReadTransaction later.
11,928✔
1392

11,928✔
1393
                // We need to setup the allocators version information, as it is needed
11,928✔
1394
                // to correctly age and later reclaim memory mappings.
11,928✔
1395
                version_type version = info->latest_version_number;
24,108✔
1396
                alloc.init_mapping_management(version);
24,108✔
1397
            }
24,108✔
1398

68,748✔
1399
            m_new_commit_available.set_shared_part(info->new_commit_available, lockfile_prefix, "new_commit",
139,665✔
1400
                                                   options.temp_dir);
139,527✔
1401
            m_pick_next_writer.set_shared_part(info->pick_next_writer, lockfile_prefix, "pick_writer",
139,527✔
1402
                                               options.temp_dir);
139,527✔
1403

68,610✔
1404
            // make our presence noted:
68,610✔
1405
            ++info->num_participants;
139,527✔
1406
            m_info = info;
139,527✔
1407

68,610✔
1408
            // Keep the mappings and file open:
68,610✔
1409
            m_version_manager = std::move(version_manager);
139,527✔
1410
            alloc_detach_guard.release();
139,527✔
1411
            fug_1.release(); // Do not unmap
139,527✔
1412
            fcg.release();   // Do not close
139,527✔
1413
        }
139,527✔
1414
        ulg.release(); // Do not release shared lock
139,527✔
1415
        break;
139,527✔
1416
    }
139,830✔
1417

68,691✔
1418
    // Upgrade file format and/or history schema
68,691✔
1419
    try {
139,608✔
1420
        if (stored_hist_schema_version == -1) {
139,527✔
1421
            // current_hist_schema_version has not been read. Read it now
11,928✔
1422
            stored_hist_schema_version = start_read()->get_history_schema_version();
24,108✔
1423
        }
24,108✔
1424
        if (current_file_format_version == 0) {
139,527✔
1425
            // If the current file format is still undecided, no upgrade is
24,957✔
1426
            // necessary, but we still need to make the chosen file format
24,957✔
1427
            // visible to the rest of the core library by updating the value
24,957✔
1428
            // that will be subsequently returned by
24,957✔
1429
            // Group::get_file_format_version(). For this to work, all session
24,957✔
1430
            // participants must adopt the chosen target Realm file format when
24,957✔
1431
            // the stored file format version is zero regardless of the version
24,957✔
1432
            // of the core library used.
24,957✔
1433
            m_file_format_version = target_file_format_version;
51,237✔
1434
        }
51,237✔
1435
        else {
88,290✔
1436
            m_file_format_version = current_file_format_version;
88,290✔
1437
            upgrade_file_format(options.allow_file_format_upgrade, target_file_format_version,
88,290✔
1438
                                stored_hist_schema_version, openers_hist_schema_version); // Throws
88,290✔
1439
        }
88,290✔
1440
    }
139,527✔
1441
    catch (...) {
68,613✔
1442
        close();
6✔
1443
        throw;
6✔
1444
    }
6✔
1445
    m_alloc.set_read_only(true);
139,521✔
1446
}
139,521✔
1447

1448
void DB::open(BinaryData buffer, bool take_ownership)
1449
{
6✔
1450
    auto top_ref = m_alloc.attach_buffer(buffer.data(), buffer.size());
6✔
1451
    m_fake_read_lock_if_immutable = ReadLockInfo::make_fake(top_ref, buffer.size());
6✔
1452
    if (take_ownership)
6✔
1453
        m_alloc.own_buffer();
×
1454
}
6✔
1455

1456
void DB::open(Replication& repl, const std::string& file, const DBOptions& options)
1457
{
115,026✔
1458
    // Exception safety: Since open() is called from constructors, if it throws,
56,364✔
1459
    // it must leave the file closed.
56,364✔
1460

56,364✔
1461
    REALM_ASSERT(!is_attached());
115,026✔
1462

56,364✔
1463
    repl.initialize(*this); // Throws
115,026✔
1464

56,364✔
1465
    set_replication(&repl);
115,026✔
1466

56,364✔
1467
    bool no_create = false;
115,026✔
1468
    open(file, no_create, options); // Throws
115,026✔
1469
}
115,026✔
1470
class DBLogger : public Logger {
1471
public:
1472
    DBLogger(const std::shared_ptr<Logger>& base_logger, unsigned hash) noexcept
1473
        : Logger(*base_logger)
1474
        , m_hash(hash)
1475
        , m_base_logger_ptr(base_logger)
1476
    {
150,885✔
1477
    }
150,885✔
1478

1479
protected:
1480
    void do_log(Level level, const std::string& message) final
1481
    {
10,599,855✔
1482
        std::ostringstream ostr;
10,599,855✔
1483
        auto id = std::this_thread::get_id();
10,599,855✔
1484
        ostr << "DB: " << m_hash << " Thread " << id << ": " << message;
10,599,855✔
1485
        Logger::do_log(*m_base_logger_ptr, level, ostr.str());
10,599,855✔
1486
    }
10,599,855✔
1487

1488
private:
1489
    unsigned m_hash;
1490
    std::shared_ptr<Logger> m_base_logger_ptr;
1491
};
1492

1493
void DB::set_logger(const std::shared_ptr<util::Logger>& logger) noexcept
1494
{
165,207✔
1495
    if (logger)
165,207✔
1496
        m_logger = std::make_unique<DBLogger>(logger, m_log_id);
150,888✔
1497
}
165,207✔
1498

1499
void DB::open(Replication& repl, const DBOptions options)
1500
{
25,344✔
1501
    REALM_ASSERT(!is_attached());
25,344✔
1502
    repl.initialize(*this); // Throws
25,344✔
1503
    set_replication(&repl);
25,344✔
1504

12,672✔
1505
    m_alloc.init_in_memory_buffer();
25,344✔
1506

12,672✔
1507
    set_logger(options.logger);
25,344✔
1508
    m_replication->set_logger(m_logger.get());
25,344✔
1509
    if (m_logger)
25,344✔
1510
        m_logger->detail("Open memory-only realm");
25,332✔
1511

12,672✔
1512
    auto hist_type = repl.get_history_type();
25,344✔
1513
    m_in_memory_info =
25,344✔
1514
        std::make_unique<SharedInfo>(DBOptions::Durability::MemOnly, hist_type, repl.get_history_schema_version());
25,344✔
1515
    SharedInfo* info = m_in_memory_info.get();
25,344✔
1516
    m_writemutex.set_shared_part(info->shared_writemutex, "", "write");
25,344✔
1517
    m_controlmutex.set_shared_part(info->shared_controlmutex, "", "control");
25,344✔
1518
    m_new_commit_available.set_shared_part(info->new_commit_available, "", "new_commit", options.temp_dir);
25,344✔
1519
    m_pick_next_writer.set_shared_part(info->pick_next_writer, "", "pick_writer", options.temp_dir);
25,344✔
1520
    m_versionlist_mutex.set_shared_part(info->shared_versionlist_mutex, "", "versions");
25,344✔
1521

12,672✔
1522
    auto target_file_format_version = uint_fast8_t(Group::get_target_file_format_version_for_session(0, hist_type));
25,344✔
1523
    info->file_format_version = target_file_format_version;
25,344✔
1524
    info->number_of_versions = 1;
25,344✔
1525
    info->latest_version_number = 1;
25,344✔
1526
    info->init_versioning(0, m_alloc.get_baseline(), 1);
25,344✔
1527
    ++info->num_participants;
25,344✔
1528

12,672✔
1529
    m_version_manager = std::make_unique<InMemoryVersionManager>(info, m_versionlist_mutex);
25,344✔
1530

12,672✔
1531
    m_file_format_version = target_file_format_version;
25,344✔
1532

12,672✔
1533
    m_info = info;
25,344✔
1534
    m_alloc.set_read_only(true);
25,344✔
1535
}
25,344✔
1536

1537
void DB::create_new_history(Replication& repl)
1538
{
36✔
1539
    Replication* old_repl = get_replication();
36✔
1540
    try {
36✔
1541
        repl.initialize(*this);
36✔
1542
        set_replication(&repl);
36✔
1543

18✔
1544
        auto tr = start_write();
36✔
1545
        tr->clear_history();
36✔
1546
        tr->replicate(tr.get(), repl);
36✔
1547
        tr->commit();
36✔
1548
    }
36✔
1549
    catch (...) {
18✔
1550
        set_replication(old_repl);
×
UNCOV
1551
        throw;
×
UNCOV
1552
    }
×
1553
}
36✔
1554

1555
void DB::create_new_history(std::unique_ptr<Replication> repl)
1556
{
36✔
1557
    create_new_history(*repl);
36✔
1558
    m_history = std::move(repl);
36✔
1559
}
36✔
1560

1561
// WARNING / FIXME: compact() should NOT be exposed publicly on Windows because it's not crash safe! It may
1562
// corrupt your database if something fails.
1563
// Tracked by https://github.com/realm/realm-core/issues/4111
1564

1565
// A note about lock ordering.
1566
// The local mutex, m_mutex, guards transaction start/stop and map/unmap of the lock file.
1567
// Except for compact(), open() and close(), it should only be held briefly.
1568
// The controlmutex guards operations which change the file size, session initialization
1569
// and session exit.
1570
// The writemutex guards the integrity of the (write) transaction data.
1571
// The controlmutex and writemutex resides in the .lock file and thus requires
1572
// the mapping of the .lock file to work. A straightforward approach would be to lock
1573
// the m_mutex whenever the other mutexes are taken or released...but that would be too
1574
// bad for performance of transaction start/stop.
1575
//
1576
// The locks are to be taken in this order: writemutex->controlmutex->m_mutex
1577
//
1578
// The .lock file is mapped during DB::create() and unmapped by a call to DB::close().
1579
// Once unmapped, it is never mapped again. Hence any observer with a valid DBRef may
1580
// only see the transition from mapped->unmapped, never the opposite.
1581
//
1582
// Trying to create a transaction if the .lock file is unmapped will result in an assert.
1583
// Unmapping (during close()) while transactions are live, is not considered an error. There
1584
// is a potential race between unmapping during close() and any operation carried out by a live
1585
// transaction. The user must ensure that this race never happens if she uses DB::close().
1586
bool DB::compact(bool bump_version_number, util::Optional<const char*> output_encryption_key)
1587
    NO_THREAD_SAFETY_ANALYSIS // this would work except for a known limitation: "No alias analysis" where clang cannot
1588
                              // tell that tr->db->m_mutex is the same thing as m_mutex
1589
{
150✔
1590
    REALM_ASSERT(!m_fake_read_lock_if_immutable);
150✔
1591
    std::string tmp_path = m_db_path + ".tmp_compaction_space";
150✔
1592

75✔
1593
    // To enter compact, the DB object must already have been attached to a file,
75✔
1594
    // since this happens in DB::create().
75✔
1595

75✔
1596
    // Verify that the lock file is still attached. There is no attempt to guard against
75✔
1597
    // a race between close() and compact().
75✔
1598
    if (is_attached() == false) {
150✔
UNCOV
1599
        throw Exception(ErrorCodes::IllegalOperation, m_db_path + ": compact must be done on an open/attached DB");
×
UNCOV
1600
    }
×
1601
    auto info = m_info;
150✔
1602
    Durability dura = Durability(info->durability);
150✔
1603
    const char* write_key = bool(output_encryption_key) ? *output_encryption_key : get_encryption_key();
144✔
1604
    {
150✔
1605
        std::unique_lock<InterprocessMutex> lock(m_controlmutex); // Throws
150✔
1606
        auto t1 = std::chrono::steady_clock::now();
150✔
1607

75✔
1608
        // We must be the ONLY DB object attached if we're to do compaction
75✔
1609
        if (info->num_participants > 1)
150✔
UNCOV
1610
            return false;
×
1611

75✔
1612
        // Holding the controlmutex prevents any other DB from attaching to the file.
75✔
1613

75✔
1614
        // Using start_read here ensures that we have access to the latest entry
75✔
1615
        // in the VersionList. We need to have access to that later to update top_ref and file_size.
75✔
1616
        // This is also needed to attach the group (get the proper top pointer, etc)
75✔
1617
        TransactionRef tr = start_read();
150✔
1618
        auto file_size_before = tr->get_logical_file_size();
150✔
1619

75✔
1620
        // local lock blocking any transaction from starting (and stopping)
75✔
1621
        CheckedLockGuard local_lock(m_mutex);
150✔
1622

75✔
1623
        // We should be the only transaction active - otherwise back out
75✔
1624
        if (m_transaction_count != 1)
150✔
1625
            return false;
6✔
1626

72✔
1627
        // group::write() will throw if the file already exists.
72✔
1628
        // To prevent this, we have to remove the file (should it exist)
72✔
1629
        // before calling group::write().
72✔
1630
        File::try_remove(tmp_path);
144✔
1631

72✔
1632
        // Compact by writing a new file holding only live data, then renaming the new file
72✔
1633
        // so it becomes the database file, replacing the old one in the process.
72✔
1634
        try {
144✔
1635
            File file;
144✔
1636
            file.open(tmp_path, File::access_ReadWrite, File::create_Must, 0);
144✔
1637
            int incr = bump_version_number ? 1 : 0;
138✔
1638
            Group::DefaultTableWriter writer;
144✔
1639
            tr->write(file, write_key, info->latest_version_number + incr, writer); // Throws
144✔
1640
            // Data needs to be flushed to the disk before renaming.
72✔
1641
            bool disable_sync = get_disable_sync_to_disk();
144✔
1642
            if (!disable_sync && dura != Durability::Unsafe)
144!
UNCOV
1643
                file.sync(); // Throws
×
1644
        }
144✔
1645
        catch (...) {
72✔
1646
            // If writing the compact version failed in any way, delete the partially written file to clean up disk
1647
            // space. This is so that we don't fail with 100% disk space used when compacting on a mostly full disk.
1648
            if (File::exists(tmp_path)) {
×
1649
                File::remove(tmp_path);
×
1650
            }
×
UNCOV
1651
            throw;
×
UNCOV
1652
        }
×
1653
        // if we've written a file with a bumped version number, we need to update the lock file to match.
72✔
1654
        if (bump_version_number) {
144✔
1655
            ++info->latest_version_number;
12✔
1656
        }
12✔
1657
        // We need to release any shared mapping *before* releasing the control mutex.
72✔
1658
        // When someone attaches to the new database file, they *must* *not* see and
72✔
1659
        // reuse any existing memory mapping of the stale file.
72✔
1660
        tr->close_read_with_lock();
144✔
1661
        m_alloc.detach();
144✔
1662

72✔
1663
        util::File::move(tmp_path, m_db_path);
144✔
1664

72✔
1665
        SlabAlloc::Config cfg;
144✔
1666
        cfg.session_initiator = true;
144✔
1667
        cfg.is_shared = true;
144✔
1668
        cfg.read_only = false;
144✔
1669
        cfg.skip_validate = false;
144✔
1670
        cfg.no_create = true;
144✔
1671
        cfg.clear_file = false;
144✔
1672
        cfg.encryption_key = write_key;
144✔
1673
        ref_type top_ref;
144✔
1674
        top_ref = m_alloc.attach_file(m_db_path, cfg, m_marker_observer.get());
144✔
1675
        m_alloc.convert_from_streaming_form(top_ref);
144✔
1676
        m_alloc.init_mapping_management(info->latest_version_number);
144✔
1677
        info->number_of_versions = 1;
144✔
1678
        size_t logical_file_size = sizeof(SlabAlloc::Header);
144✔
1679
        if (top_ref) {
144✔
1680
            Array top(m_alloc);
138✔
1681
            top.init_from_ref(top_ref);
138✔
1682
            logical_file_size = Group::get_logical_file_size(top);
138✔
1683
        }
138✔
1684
        m_version_manager->init_versioning(top_ref, logical_file_size, info->latest_version_number);
144✔
1685
        if (m_logger) {
144✔
1686
            auto t2 = std::chrono::steady_clock::now();
60✔
1687
            m_logger->log(util::Logger::Level::info, "DB compacted from: %1 to %2 in %3 us", file_size_before,
60✔
1688
                          logical_file_size, std::chrono::duration_cast<std::chrono::microseconds>(t2 - t1).count());
60✔
1689
        }
60✔
1690
    }
144✔
1691
    return true;
144✔
1692
}
144✔
1693

1694
void DB::write_copy(StringData path, const char* output_encryption_key)
1695
{
90✔
1696
    auto tr = start_read();
90✔
1697
    if (auto hist = tr->get_history()) {
90✔
1698
        if (!hist->no_pending_local_changes(tr->get_version())) {
90✔
1699
            throw Exception(ErrorCodes::IllegalOperation,
6✔
1700
                            "All client changes must be integrated in server before writing copy");
6✔
1701
        }
6✔
1702
    }
84✔
1703

42✔
1704
    class NoClientFileIdWriter : public Group::DefaultTableWriter {
84✔
1705
    public:
84✔
1706
        NoClientFileIdWriter()
84✔
1707
            : Group::DefaultTableWriter(true)
84✔
1708
        {
84✔
1709
        }
84✔
1710
        HistoryInfo write_history(_impl::OutputStream& out) override
84✔
1711
        {
81✔
1712
            auto hist = Group::DefaultTableWriter::write_history(out);
78✔
1713
            hist.sync_file_id = 0;
78✔
1714
            return hist;
78✔
1715
        }
78✔
1716
    } writer;
84✔
1717

42✔
1718
    File file;
84✔
1719
    file.open(path, File::access_ReadWrite, File::create_Must, 0);
84✔
1720
    file.resize(0);
84✔
1721

42✔
1722
    auto t1 = std::chrono::steady_clock::now();
84✔
1723
    tr->write(file, output_encryption_key, m_info->latest_version_number, writer);
84✔
1724
    if (m_logger) {
84✔
1725
        auto t2 = std::chrono::steady_clock::now();
60✔
1726
        m_logger->log(util::Logger::Level::info, "DB written to '%1' in %2 us", path,
60✔
1727
                      std::chrono::duration_cast<std::chrono::microseconds>(t2 - t1).count());
60✔
1728
    }
60✔
1729
}
84✔
1730

1731
uint_fast64_t DB::get_number_of_versions()
1732
{
381,060✔
1733
    if (m_fake_read_lock_if_immutable)
381,060✔
1734
        return 1;
6✔
1735
    return m_info->number_of_versions;
381,054✔
1736
}
381,054✔
1737

1738
size_t DB::get_allocated_size() const
1739
{
6✔
1740
    return m_alloc.get_allocated_size();
6✔
1741
}
6✔
1742

1743
DB::~DB() noexcept
1744
{
165,219✔
1745
    close();
165,219✔
1746
}
165,219✔
1747

1748
void DB::release_all_read_locks() noexcept
1749
{
164,871✔
1750
    REALM_ASSERT(!m_fake_read_lock_if_immutable);
164,871✔
1751
    CheckedLockGuard local_lock(m_mutex); // mx on m_local_locks_held
164,871✔
1752
    for (auto& read_lock : m_local_locks_held) {
81,285✔
1753
        --m_transaction_count;
6✔
1754
        m_version_manager->release_read_lock(read_lock);
6✔
1755
    }
6✔
1756
    m_local_locks_held.clear();
164,871✔
1757
    REALM_ASSERT(m_transaction_count == 0);
164,871✔
1758
}
164,871✔
1759

1760
// Note: close() and close_internal() may be called from the DB::~DB().
1761
// in that case, they will not throw. Throwing can only happen if called
1762
// directly.
1763
void DB::close(bool allow_open_read_transactions)
1764
{
165,489✔
1765
    // make helper thread(s) terminate
81,603✔
1766
    m_commit_helper.reset();
165,489✔
1767

81,603✔
1768
    if (m_fake_read_lock_if_immutable) {
165,489✔
1769
        if (!is_attached())
186✔
UNCOV
1770
            return;
×
1771
        {
186✔
1772
            CheckedLockGuard local_lock(m_mutex);
186✔
1773
            if (!allow_open_read_transactions && m_transaction_count)
186✔
UNCOV
1774
                throw WrongTransactionState("Closing with open read transactions");
×
1775
        }
186✔
1776
        if (m_alloc.is_attached())
186✔
1777
            m_alloc.detach();
186✔
1778
        m_fake_read_lock_if_immutable.reset();
186✔
1779
    }
186✔
1780
    else {
165,303✔
1781
        close_internal(std::unique_lock<InterprocessMutex>(m_controlmutex, std::defer_lock),
165,303✔
1782
                       allow_open_read_transactions);
165,303✔
1783
    }
165,303✔
1784
}
165,489✔
1785

1786
void DB::close_internal(std::unique_lock<InterprocessMutex> lock, bool allow_open_read_transactions)
1787
{
165,303✔
1788
    if (!is_attached())
165,303✔
1789
        return;
420✔
1790

81,288✔
1791
    {
164,883✔
1792
        CheckedLockGuard local_lock(m_mutex);
164,883✔
1793
        if (m_write_transaction_open)
164,883✔
1794
            throw WrongTransactionState("Closing with open write transactions");
6✔
1795
        if (!allow_open_read_transactions && m_transaction_count)
164,877✔
1796
            throw WrongTransactionState("Closing with open read transactions");
6✔
1797
    }
164,871✔
1798
    SharedInfo* info = m_info;
164,871✔
1799
    {
164,871✔
1800
        if (!lock.owns_lock())
164,871✔
1801
            lock.lock();
164,868✔
1802

81,282✔
1803
        if (m_alloc.is_attached())
164,871✔
1804
            m_alloc.detach();
164,871✔
1805

81,282✔
1806
        if (m_is_sync_agent) {
164,871✔
1807
            REALM_ASSERT(info->sync_agent_present);
1,551✔
1808
            info->sync_agent_present = 0; // Set to false
1,551✔
1809
        }
1,551✔
1810
        release_all_read_locks();
164,871✔
1811
        --info->num_participants;
164,871✔
1812
        bool end_of_session = info->num_participants == 0;
164,871✔
1813
        // std::cerr << "closing" << std::endl;
81,282✔
1814
        if (end_of_session) {
164,871✔
1815

69,345✔
1816
            // If the db file is just backing for a transient data structure,
69,345✔
1817
            // we can delete it when done.
69,345✔
1818
            if (Durability(info->durability) == Durability::MemOnly && !m_in_memory_info) {
140,739✔
1819
                try {
20,598✔
1820
                    util::File::remove(m_db_path.c_str());
20,598✔
1821
                }
20,598✔
1822
                catch (...) {
10,311✔
1823
                } // ignored on purpose.
24✔
1824
            }
20,598✔
1825
        }
140,739✔
1826
        lock.unlock();
164,871✔
1827
    }
164,871✔
1828
    {
164,871✔
1829
        CheckedLockGuard local_lock(m_mutex);
164,871✔
1830

81,282✔
1831
        m_new_commit_available.close();
164,871✔
1832
        m_pick_next_writer.close();
164,871✔
1833

81,282✔
1834
        if (m_in_memory_info) {
164,871✔
1835
            m_in_memory_info.reset();
25,344✔
1836
        }
25,344✔
1837
        else {
139,527✔
1838
            // On Windows it is important that we unmap before unlocking, else a SetEndOfFile() call from another
68,610✔
1839
            // thread may interleave which is not permitted on Windows. It is permitted on *nix.
68,610✔
1840
            m_file_map.unmap();
139,527✔
1841
            m_version_manager.reset();
139,527✔
1842
            m_file.rw_unlock();
139,527✔
1843
            // info->~SharedInfo(); // DO NOT Call destructor
68,610✔
1844
            m_file.close();
139,527✔
1845
        }
139,527✔
1846
        m_info = nullptr;
164,871✔
1847
        if (m_logger)
164,871✔
1848
            m_logger->log(util::Logger::Level::detail, "DB closed");
150,675✔
1849
    }
164,871✔
1850
}
164,871✔
1851

1852
bool DB::other_writers_waiting_for_lock() const
1853
{
64,380✔
1854
    SharedInfo* info = m_info;
64,380✔
1855

33,330✔
1856
    uint32_t next_ticket = info->next_ticket.load(std::memory_order_relaxed);
64,380✔
1857
    uint32_t next_served = info->next_served.load(std::memory_order_relaxed);
64,380✔
1858
    // When holding the write lock, next_ticket = next_served + 1, hence, if the diference between 'next_ticket' and
33,330✔
1859
    // 'next_served' is greater than 1, there is at least one thread waiting to acquire the write lock.
33,330✔
1860
    return next_ticket > next_served + 1;
64,380✔
1861
}
64,380✔
1862

1863
class DB::AsyncCommitHelper {
1864
public:
1865
    AsyncCommitHelper(DB* db)
1866
        : m_db(db)
1867
    {
126,738✔
1868
    }
126,738✔
1869
    ~AsyncCommitHelper()
1870
    {
126,738✔
1871
        {
126,738✔
1872
            std::unique_lock lg(m_mutex);
126,738✔
1873
            if (!m_running) {
126,738✔
1874
                return;
78,111✔
1875
            }
78,111✔
1876
            m_running = false;
48,627✔
1877
            m_cv_worker.notify_one();
48,627✔
1878
        }
48,627✔
1879
        m_thread.join();
48,627✔
1880
    }
48,627✔
1881

1882
    void begin_write(util::UniqueFunction<void()> fn)
1883
    {
1,614✔
1884
        std::unique_lock lg(m_mutex);
1,614✔
1885
        start_thread();
1,614✔
1886
        m_pending_writes.emplace_back(std::move(fn));
1,614✔
1887
        m_cv_worker.notify_one();
1,614✔
1888
    }
1,614✔
1889

1890
    void blocking_begin_write()
1891
    {
259,350✔
1892
        std::unique_lock lg(m_mutex);
259,350✔
1893

127,701✔
1894
        // If we support unlocking InterprocessMutex from a different thread
127,701✔
1895
        // than it was locked on, we can sometimes just begin the write on
127,701✔
1896
        // the current thread. This requires that no one is currently waiting
127,701✔
1897
        // for the worker thread to acquire the write lock, as we'll deadlock
127,701✔
1898
        // if we try to async commit while the worker is waiting for the lock.
127,701✔
1899
        bool can_lock_on_caller =
259,350✔
1900
            !InterprocessMutex::is_thread_confined && (!m_owns_write_mutex && m_pending_writes.empty() &&
259,350✔
1901
                                                       m_write_lock_claim_ticket == m_write_lock_claim_fulfilled);
131,589✔
1902

127,701✔
1903
        // If we support cross-thread unlocking and m_running is false,
127,701✔
1904
        // can_lock_on_caller should always be true or we forgot to launch the thread
127,701✔
1905
        REALM_ASSERT(can_lock_on_caller || m_running || InterprocessMutex::is_thread_confined);
259,350✔
1906

127,701✔
1907
        // If possible, just begin the write on the current thread
127,701✔
1908
        if (can_lock_on_caller) {
259,350✔
1909
            m_waiting_for_write_mutex = true;
131,589✔
1910
            lg.unlock();
131,589✔
1911
            m_db->do_begin_write();
131,589✔
1912
            lg.lock();
131,589✔
1913
            m_waiting_for_write_mutex = false;
131,589✔
1914
            m_has_write_mutex = true;
131,589✔
1915
            m_owns_write_mutex = false;
131,589✔
1916
            return;
131,589✔
1917
        }
131,589✔
1918

127,701✔
1919
        // Otherwise we have to ask the worker thread to acquire it and wait
127,701✔
1920
        // for that
127,701✔
1921
        start_thread();
127,761✔
1922
        size_t ticket = ++m_write_lock_claim_ticket;
127,761✔
1923
        m_cv_worker.notify_one();
127,761✔
1924
        m_cv_callers.wait(lg, [this, ticket] {
258,852✔
1925
            return ticket == m_write_lock_claim_fulfilled;
258,852✔
1926
        });
258,852✔
1927
    }
127,761✔
1928

1929
    void end_write()
1930
    {
54✔
1931
        std::unique_lock lg(m_mutex);
54✔
1932
        REALM_ASSERT(m_has_write_mutex);
54✔
1933
        REALM_ASSERT(m_owns_write_mutex || !InterprocessMutex::is_thread_confined);
54✔
1934

27✔
1935
        // If we acquired the write lock on the worker thread, also release it
27✔
1936
        // there even if our mutex supports unlocking cross-thread as it simplifies things.
27✔
1937
        if (m_owns_write_mutex) {
54✔
1938
            m_pending_mx_release = true;
51✔
1939
            m_cv_worker.notify_one();
51✔
1940
        }
51✔
1941
        else {
3✔
1942
            m_db->do_end_write();
3✔
1943
            m_has_write_mutex = false;
3✔
1944
        }
3✔
1945
    }
54✔
1946

1947
    bool blocking_end_write()
1948
    {
306,099✔
1949
        std::unique_lock lg(m_mutex);
306,099✔
1950
        if (!m_has_write_mutex) {
306,099✔
1951
            return false;
46,545✔
1952
        }
46,545✔
1953
        REALM_ASSERT(m_owns_write_mutex || !InterprocessMutex::is_thread_confined);
259,554✔
1954

127,761✔
1955
        // If we acquired the write lock on the worker thread, also release it
127,761✔
1956
        // there even if our mutex supports unlocking cross-thread as it simplifies things.
127,761✔
1957
        if (m_owns_write_mutex) {
259,554✔
1958
            m_pending_mx_release = true;
128,286✔
1959
            m_cv_worker.notify_one();
128,286✔
1960
            m_cv_callers.wait(lg, [this] {
256,572✔
1961
                return !m_pending_mx_release;
256,572✔
1962
            });
256,572✔
1963
        }
128,286✔
1964
        else {
131,268✔
1965
            m_db->do_end_write();
131,268✔
1966
            m_has_write_mutex = false;
131,268✔
1967

1968
            // The worker thread may have ignored a request for the write mutex
1969
            // while we were acquiring it, so we need to wake up the thread
1970
            if (has_pending_write_requests()) {
131,268✔
1971
                lg.unlock();
×
1972
                m_cv_worker.notify_one();
×
UNCOV
1973
            }
×
1974
        }
131,268✔
1975
        return true;
259,554✔
1976
    }
259,554✔
1977

1978

1979
    void sync_to_disk(util::UniqueFunction<void()> fn)
1980
    {
1,356✔
1981
        REALM_ASSERT(fn);
1,356✔
1982
        std::unique_lock lg(m_mutex);
1,356✔
1983
        REALM_ASSERT(!m_pending_sync);
1,356✔
1984
        start_thread();
1,356✔
1985
        m_pending_sync = std::move(fn);
1,356✔
1986
        m_cv_worker.notify_one();
1,356✔
1987
    }
1,356✔
1988

1989
private:
1990
    DB* m_db;
1991
    std::thread m_thread;
1992
    std::mutex m_mutex;
1993
    std::condition_variable m_cv_worker;
1994
    std::condition_variable m_cv_callers;
1995
    std::deque<util::UniqueFunction<void()>> m_pending_writes;
1996
    util::UniqueFunction<void()> m_pending_sync;
1997
    size_t m_write_lock_claim_ticket = 0;
1998
    size_t m_write_lock_claim_fulfilled = 0;
1999
    bool m_pending_mx_release = false;
2000
    bool m_running = false;
2001
    bool m_has_write_mutex = false;
2002
    bool m_owns_write_mutex = false;
2003
    bool m_waiting_for_write_mutex = false;
2004

2005
    void main();
2006

2007
    void start_thread()
2008
    {
130,731✔
2009
        if (m_running) {
130,731✔
2010
            return;
82,104✔
2011
        }
82,104✔
2012
        m_running = true;
48,627✔
2013
        m_thread = std::thread([this]() {
48,627✔
2014
            main();
48,627✔
2015
        });
48,627✔
2016
    }
48,627✔
2017

2018
    bool has_pending_write_requests()
2019
    {
382,824✔
2020
        return m_write_lock_claim_fulfilled < m_write_lock_claim_ticket || !m_pending_writes.empty();
382,824✔
2021
    }
382,824✔
2022
};
2023

2024
void DB::AsyncCommitHelper::main()
2025
{
48,627✔
2026
    std::unique_lock lg(m_mutex);
48,627✔
2027
    while (m_running) {
566,397✔
2028
#if 0 // Enable for testing purposes
2029
        std::this_thread::sleep_for(std::chrono::milliseconds(10));
2030
#endif
2031
        if (m_has_write_mutex) {
517,770✔
2032
            if (auto cb = std::move(m_pending_sync)) {
266,052✔
2033
                // Only one of sync_to_disk(), end_write(), or blocking_end_write()
306✔
2034
                // should be called, so we should never have both a pending sync
306✔
2035
                // and pending release.
306✔
2036
                REALM_ASSERT(!m_pending_mx_release);
1,356✔
2037
                lg.unlock();
1,356✔
2038
                cb();
1,356✔
2039
                cb = nullptr; // Release things captured by the callback before reacquiring the lock
1,356✔
2040
                lg.lock();
1,356✔
2041
                m_pending_mx_release = true;
1,356✔
2042
            }
1,356✔
2043
            if (m_pending_mx_release) {
266,052✔
2044
                REALM_ASSERT(!InterprocessMutex::is_thread_confined || m_owns_write_mutex);
129,693!
2045
                m_db->do_end_write();
129,693✔
2046
                m_pending_mx_release = false;
129,693✔
2047
                m_has_write_mutex = false;
129,693✔
2048
                m_owns_write_mutex = false;
129,693✔
2049

128,094✔
2050
                lg.unlock();
129,693✔
2051
                m_cv_callers.notify_all();
129,693✔
2052
                lg.lock();
129,693✔
2053
                continue;
129,693✔
2054
            }
129,693✔
2055
        }
251,718✔
2056
        else {
251,718✔
2057
            REALM_ASSERT(!m_pending_sync && !m_pending_mx_release);
251,718✔
2058

249,741✔
2059
            // Acquire the write lock if anyone has requested it, but only if
249,741✔
2060
            // another thread is not already waiting for it. If there's another
249,741✔
2061
            // thread requesting and they get it while we're waiting, we'll
249,741✔
2062
            // deadlock if they ask us to perform the sync.
249,741✔
2063
            if (!m_waiting_for_write_mutex && has_pending_write_requests()) {
251,718✔
2064
                lg.unlock();
129,375✔
2065
                m_db->do_begin_write();
129,375✔
2066
                lg.lock();
129,375✔
2067

128,094✔
2068
                REALM_ASSERT(!m_has_write_mutex);
129,375✔
2069
                m_has_write_mutex = true;
129,375✔
2070
                m_owns_write_mutex = true;
129,375✔
2071

128,094✔
2072
                // Synchronous transaction requests get priority over async
128,094✔
2073
                if (m_write_lock_claim_fulfilled < m_write_lock_claim_ticket) {
129,375✔
2074
                    ++m_write_lock_claim_fulfilled;
127,761✔
2075
                    m_cv_callers.notify_all();
127,761✔
2076
                    continue;
127,761✔
2077
                }
127,761✔
2078

393✔
2079
                REALM_ASSERT(!m_pending_writes.empty());
1,614✔
2080
                auto callback = std::move(m_pending_writes.front());
1,614✔
2081
                m_pending_writes.pop_front();
1,614✔
2082
                lg.unlock();
1,614✔
2083
                callback();
1,614✔
2084
                // Release things captured by the callback before reacquiring the lock
393✔
2085
                callback = nullptr;
1,614✔
2086
                lg.lock();
1,614✔
2087
                continue;
1,614✔
2088
            }
1,614✔
2089
        }
251,718✔
2090
        m_cv_worker.wait(lg);
258,702✔
2091
    }
258,702✔
2092
    if (m_has_write_mutex && m_owns_write_mutex) {
48,627!
UNCOV
2093
        m_db->do_end_write();
×
UNCOV
2094
    }
×
2095
}
48,627✔
2096

2097

2098
void DB::async_begin_write(util::UniqueFunction<void()> fn)
2099
{
1,614✔
2100
    REALM_ASSERT(m_commit_helper);
1,614✔
2101
    m_commit_helper->begin_write(std::move(fn));
1,614✔
2102
}
1,614✔
2103

2104
void DB::async_end_write()
2105
{
54✔
2106
    REALM_ASSERT(m_commit_helper);
54✔
2107
    m_commit_helper->end_write();
54✔
2108
}
54✔
2109

2110
void DB::async_sync_to_disk(util::UniqueFunction<void()> fn)
2111
{
1,356✔
2112
    REALM_ASSERT(m_commit_helper);
1,356✔
2113
    m_commit_helper->sync_to_disk(std::move(fn));
1,356✔
2114
}
1,356✔
2115

2116
bool DB::has_changed(TransactionRef& tr)
2117
{
5,933,364✔
2118
    if (m_fake_read_lock_if_immutable)
5,933,364✔
UNCOV
2119
        return false; // immutable doesn't change
×
2120
    bool changed = tr->m_read_lock.m_version != get_version_of_latest_snapshot();
5,933,364✔
2121
    return changed;
5,933,364✔
2122
}
5,933,364✔
2123

2124
bool DB::wait_for_change(TransactionRef& tr)
2125
{
×
2126
    REALM_ASSERT(!m_fake_read_lock_if_immutable);
×
2127
    std::lock_guard<InterprocessMutex> lock(m_controlmutex);
×
2128
    while (tr->m_read_lock.m_version == m_info->latest_version_number && m_wait_for_change_enabled) {
×
2129
        m_new_commit_available.wait(m_controlmutex, 0);
×
2130
    }
×
UNCOV
2131
    return tr->m_read_lock.m_version != m_info->latest_version_number;
×
UNCOV
2132
}
×
2133

2134

2135
void DB::wait_for_change_release()
2136
{
×
2137
    if (m_fake_read_lock_if_immutable)
×
2138
        return;
×
2139
    std::lock_guard<InterprocessMutex> lock(m_controlmutex);
×
2140
    m_wait_for_change_enabled = false;
×
UNCOV
2141
    m_new_commit_available.notify_all();
×
UNCOV
2142
}
×
2143

2144

2145
void DB::enable_wait_for_change()
2146
{
×
2147
    REALM_ASSERT(!m_fake_read_lock_if_immutable);
×
2148
    std::lock_guard<InterprocessMutex> lock(m_controlmutex);
×
UNCOV
2149
    m_wait_for_change_enabled = true;
×
UNCOV
2150
}
×
2151

2152
void DB::upgrade_file_format(bool allow_file_format_upgrade, int target_file_format_version,
2153
                             int current_hist_schema_version, int target_hist_schema_version)
2154
{
88,290✔
2155
    // In a multithreaded scenario multiple threads may initially see a need to
43,653✔
2156
    // upgrade (maybe_upgrade == true) even though one onw thread is supposed to
43,653✔
2157
    // perform the upgrade, but that is ok, because the condition is rechecked
43,653✔
2158
    // in a fully reliable way inside a transaction.
43,653✔
2159

43,653✔
2160
    // First a non-threadsafe but fast check
43,653✔
2161
    int current_file_format_version = m_file_format_version;
88,290✔
2162
    REALM_ASSERT(current_file_format_version <= target_file_format_version);
88,290✔
2163
    REALM_ASSERT(current_hist_schema_version <= target_hist_schema_version);
88,290✔
2164
    bool maybe_upgrade_file_format = (current_file_format_version < target_file_format_version);
88,290✔
2165
    bool maybe_upgrade_hist_schema = (current_hist_schema_version < target_hist_schema_version);
88,290✔
2166
    bool maybe_upgrade = maybe_upgrade_file_format || maybe_upgrade_hist_schema;
88,290✔
2167
    if (maybe_upgrade) {
88,290✔
2168

138✔
2169
#ifdef REALM_DEBUG
276✔
2170
// This sleep() only exists in order to increase the quality of the
138✔
2171
// TEST(Upgrade_Database_2_3_Writes_New_File_Format_new) unit test.
138✔
2172
// The unit test creates multiple threads that all call
138✔
2173
// upgrade_file_format() simultaneously. This sleep() then acts like
138✔
2174
// a simple thread barrier that makes sure the threads meet here, to
138✔
2175
// increase the likelyhood of detecting any potential race problems.
138✔
2176
// See the unit test for details.
138✔
2177
//
138✔
2178
// NOTE: This sleep has been disabled because no problems have been found with
138✔
2179
// this code in a long while, and it was dramatically slowing down a unit test
138✔
2180
// in realm-sync.
138✔
2181

138✔
2182
// millisleep(200);
138✔
2183
#endif
276✔
2184

138✔
2185
        // WriteTransaction wt(*this);
138✔
2186
        auto wt = start_write();
276✔
2187
        bool dirty = false;
276✔
2188

138✔
2189
        // We need to upgrade history first. We may need to access it during migration
138✔
2190
        // when processing the !OID columns
138✔
2191
        int current_hist_schema_version_2 = wt->get_history_schema_version();
276✔
2192
        // The history must either still be using its initial schema or have
138✔
2193
        // been upgraded already to the chosen target schema version via a
138✔
2194
        // concurrent DB object.
138✔
2195
        REALM_ASSERT(current_hist_schema_version_2 == current_hist_schema_version ||
276!
2196
                     current_hist_schema_version_2 == target_hist_schema_version);
276✔
2197
        bool need_hist_schema_upgrade = (current_hist_schema_version_2 < target_hist_schema_version);
276✔
2198
        if (need_hist_schema_upgrade) {
276✔
2199
            if (!allow_file_format_upgrade)
192✔
UNCOV
2200
                throw FileFormatUpgradeRequired(this->m_db_path);
×
2201

96✔
2202
            Replication* repl = get_replication();
192✔
2203
            repl->upgrade_history_schema(current_hist_schema_version_2); // Throws
192✔
2204
            wt->set_history_schema_version(target_hist_schema_version);  // Throws
192✔
2205
            dirty = true;
192✔
2206
        }
192✔
2207

138✔
2208
        // File format upgrade
138✔
2209
        int current_file_format_version_2 = m_alloc.get_committed_file_format_version();
276✔
2210
        // The file must either still be using its initial file_format or have
138✔
2211
        // been upgraded already to the chosen target file format via a
138✔
2212
        // concurrent DB object.
138✔
2213
        REALM_ASSERT(current_file_format_version_2 == current_file_format_version ||
276!
2214
                     current_file_format_version_2 == target_file_format_version);
276✔
2215
        bool need_file_format_upgrade = (current_file_format_version_2 < target_file_format_version);
276✔
2216
        if (need_file_format_upgrade) {
276✔
2217
            if (!allow_file_format_upgrade)
156✔
UNCOV
2218
                throw FileFormatUpgradeRequired(this->m_db_path);
×
2219
            wt->upgrade_file_format(target_file_format_version); // Throws
156✔
2220
            // Note: The file format version stored in the Realm file will be
78✔
2221
            // updated to the new file format version as part of the following
78✔
2222
            // commit operation. This happens in GroupWriter::commit().
78✔
2223
            if (m_upgrade_callback)
156✔
2224
                m_upgrade_callback(current_file_format_version_2, target_file_format_version); // Throws
18✔
2225
            dirty = true;
156✔
2226
        }
156✔
2227
        wt->set_file_format_version(target_file_format_version);
276✔
2228
        m_file_format_version = target_file_format_version;
276✔
2229

138✔
2230
        if (dirty)
276✔
2231
            wt->commit(); // Throws
270✔
2232
    }
276✔
2233
}
88,290✔
2234

2235
void DB::release_read_lock(ReadLockInfo& read_lock) noexcept
2236
{
6,575,307✔
2237
    // ignore if opened with immutable file (then we have no lockfile)
4,402,509✔
2238
    if (m_fake_read_lock_if_immutable)
6,575,307✔
2239
        return;
366✔
2240
    CheckedLockGuard lock(m_mutex); // mx on m_local_locks_held
6,574,941✔
2241
    do_release_read_lock(read_lock);
6,574,941✔
2242
}
6,574,941✔
2243

2244
// this is called with m_mutex locked
2245
void DB::do_release_read_lock(ReadLockInfo& read_lock) noexcept
2246
{
6,588,612✔
2247
    REALM_ASSERT(!m_fake_read_lock_if_immutable);
6,588,612✔
2248
    bool found_match = false;
6,588,612✔
2249
    // simple linear search and move-last-over if a match is found.
4,415,928✔
2250
    // common case should have only a modest number of transactions in play..
4,415,928✔
2251
    for (size_t j = 0; j < m_local_locks_held.size(); ++j) {
11,028,165✔
2252
        if (m_local_locks_held[j].m_version == read_lock.m_version) {
11,027,853✔
2253
            m_local_locks_held[j] = m_local_locks_held.back();
6,588,303✔
2254
            m_local_locks_held.pop_back();
6,588,303✔
2255
            found_match = true;
6,588,303✔
2256
            break;
6,588,303✔
2257
        }
6,588,303✔
2258
    }
11,027,853✔
2259
    if (!found_match) {
6,588,612✔
2260
        REALM_ASSERT(!is_attached());
6✔
2261
        // it's OK, someone called close() and all locks where released
3✔
2262
        return;
6✔
2263
    }
6✔
2264
    --m_transaction_count;
6,588,606✔
2265
    m_version_manager->release_read_lock(read_lock);
6,588,606✔
2266
}
6,588,606✔
2267

2268

2269
DB::ReadLockInfo DB::grab_read_lock(ReadLockInfo::Type type, VersionID version_id)
2270
{
6,533,136✔
2271
    CheckedLockGuard lock(m_mutex); // mx on m_local_locks_held
6,533,136✔
2272
    REALM_ASSERT_RELEASE(is_attached());
6,533,136✔
2273
    auto read_lock = m_version_manager->grab_read_lock(type, version_id);
6,533,136✔
2274

4,360,602✔
2275
    m_local_locks_held.emplace_back(read_lock);
6,533,136✔
2276
    ++m_transaction_count;
6,533,136✔
2277
    REALM_ASSERT(read_lock.m_file_size > read_lock.m_top_ref);
6,533,136✔
2278
    return read_lock;
6,533,136✔
2279
}
6,533,136✔
2280

2281
void DB::leak_read_lock(ReadLockInfo& read_lock) noexcept
2282
{
6✔
2283
    CheckedLockGuard lock(m_mutex); // mx on m_local_locks_held
6✔
2284
    // simple linear search and move-last-over if a match is found.
3✔
2285
    // common case should have only a modest number of transactions in play..
3✔
2286
    for (size_t j = 0; j < m_local_locks_held.size(); ++j) {
6✔
2287
        if (m_local_locks_held[j].m_version == read_lock.m_version) {
6✔
2288
            m_local_locks_held[j] = m_local_locks_held.back();
6✔
2289
            m_local_locks_held.pop_back();
6✔
2290
            --m_transaction_count;
6✔
2291
            return;
6✔
2292
        }
6✔
2293
    }
6✔
2294
}
6✔
2295

2296
bool DB::do_try_begin_write()
2297
{
84✔
2298
    // In the non-blocking case, we will only succeed if there is no contention for
42✔
2299
    // the write mutex. For this case we are trivially fair and can ignore the
42✔
2300
    // fairness machinery.
42✔
2301
    bool got_the_lock = m_writemutex.try_lock();
84✔
2302
    if (got_the_lock) {
84✔
2303
        finish_begin_write();
72✔
2304
    }
72✔
2305
    return got_the_lock;
84✔
2306
}
84✔
2307

2308
void DB::do_begin_write()
2309
{
1,386,123✔
2310
    if (m_logger) {
1,386,123✔
2311
        m_logger->log(util::Logger::Level::trace, "acquire writemutex");
307,824✔
2312
    }
307,824✔
2313

697,968✔
2314
    SharedInfo* info = m_info;
1,386,123✔
2315

697,968✔
2316
    // Get write lock - the write lock is held until do_end_write().
697,968✔
2317
    //
697,968✔
2318
    // We use a ticketing scheme to ensure fairness wrt performing write transactions.
697,968✔
2319
    // (But cannot do that on Windows until we have interprocess condition variables there)
697,968✔
2320
    uint32_t my_ticket = info->next_ticket.fetch_add(1, std::memory_order_relaxed);
1,386,123✔
2321
    m_writemutex.lock(); // Throws
1,386,123✔
2322

697,968✔
2323
    // allow for comparison even after wrap around of ticket numbering:
697,968✔
2324
    int32_t diff = int32_t(my_ticket - info->next_served.load(std::memory_order_relaxed));
1,386,123✔
2325
    bool should_yield = diff > 0; // ticket is in the future
1,386,123✔
2326
    // a) the above comparison is only guaranteed to be correct, if the distance
697,968✔
2327
    //    between my_ticket and info->next_served is less than 2^30. This will
697,968✔
2328
    //    be the case since the distance will be bounded by the number of threads
697,968✔
2329
    //    and each thread cannot ever hold more than one ticket.
697,968✔
2330
    // b) we could use 64 bit counters instead, but it is unclear if all platforms
697,968✔
2331
    //    have support for interprocess atomics for 64 bit values.
697,968✔
2332

697,968✔
2333
    timespec time_limit; // only compute the time limit if we're going to use it:
1,386,123✔
2334
    if (should_yield) {
1,386,123✔
2335
        // This clock is not monotonic, so time can move backwards. This can lead
18,273✔
2336
        // to a wrong time limit, but the only effect of a wrong time limit is that
18,273✔
2337
        // we momentarily lose fairness, so we accept it.
18,273✔
2338
        timeval tv;
18,273✔
2339
        gettimeofday(&tv, nullptr);
18,273✔
2340
        time_limit.tv_sec = tv.tv_sec;
18,273✔
2341
        time_limit.tv_nsec = tv.tv_usec * 1000;
18,273✔
2342
        time_limit.tv_nsec += 500000000;        // 500 msec wait
18,273✔
2343
        if (time_limit.tv_nsec >= 1000000000) { // overflow
18,273!
2344
            time_limit.tv_nsec -= 1000000000;
8,919✔
2345
            time_limit.tv_sec += 1;
8,919✔
2346
        }
8,919✔
2347
    }
18,273✔
2348

697,968✔
2349
    while (should_yield) {
1,521,246✔
2350

135,339✔
2351
        m_pick_next_writer.wait(m_writemutex, &time_limit);
135,339✔
2352
        timeval tv;
135,339✔
2353
        gettimeofday(&tv, nullptr);
135,339✔
2354
        if (time_limit.tv_sec < tv.tv_sec ||
135,339!
2355
            (time_limit.tv_sec == tv.tv_sec && time_limit.tv_nsec < tv.tv_usec * 1000)) {
135,339!
2356
            // Timeout!
216✔
2357
            break;
216✔
2358
        }
216✔
2359
        diff = int32_t(my_ticket - info->next_served);
135,123✔
2360
        should_yield = diff > 0; // ticket is in the future, so yield to someone else
135,123✔
2361
    }
135,123✔
2362

697,968✔
2363
    // we may get here because a) it's our turn, b) we timed out
697,968✔
2364
    // we don't distinguish, satisfied that event b) should be rare.
697,968✔
2365
    // In case b), we have to *make* it our turn. Failure to do so could leave us
697,968✔
2366
    // with 'next_served' permanently trailing 'next_ticket'.
697,968✔
2367
    //
697,968✔
2368
    // In doing so, we may bypass other waiters, hence the condition for yielding
697,968✔
2369
    // should take this situation into account by comparing with '>' instead of '!='
697,968✔
2370
    info->next_served = my_ticket;
1,386,123✔
2371
    finish_begin_write();
1,386,123✔
2372
    if (m_logger) {
1,386,123✔
2373
        m_logger->log(util::Logger::Level::trace, "writemutex acquired");
307,824✔
2374
    }
307,824✔
2375
}
1,386,123✔
2376

2377
void DB::finish_begin_write()
2378
{
1,386,171✔
2379
    if (m_info->commit_in_critical_phase) {
1,386,171✔
2380
        m_writemutex.unlock();
×
UNCOV
2381
        throw RuntimeError(ErrorCodes::BrokenInvariant, "Crash of other process detected, session restart required");
×
UNCOV
2382
    }
×
2383

698,016✔
2384

698,016✔
2385
    {
1,386,171✔
2386
        CheckedLockGuard local_lock(m_mutex);
1,386,171✔
2387
        m_write_transaction_open = true;
1,386,171✔
2388
    }
1,386,171✔
2389
    m_alloc.set_read_only(false);
1,386,171✔
2390
}
1,386,171✔
2391

2392
void DB::do_end_write() noexcept
2393
{
1,386,195✔
2394
    m_info->next_served.fetch_add(1, std::memory_order_relaxed);
1,386,195✔
2395

698,025✔
2396
    CheckedLockGuard local_lock(m_mutex);
1,386,195✔
2397
    REALM_ASSERT(m_write_transaction_open);
1,386,195✔
2398
    m_alloc.set_read_only(true);
1,386,195✔
2399
    m_write_transaction_open = false;
1,386,195✔
2400
    m_pick_next_writer.notify_all();
1,386,195✔
2401
    m_writemutex.unlock();
1,386,195✔
2402
    if (m_logger) {
1,386,195✔
2403
        m_logger->log(util::Logger::Level::trace, "writemutex released");
307,872✔
2404
    }
307,872✔
2405
}
1,386,195✔
2406

2407

2408
Replication::version_type DB::do_commit(Transaction& transaction, bool commit_to_disk)
2409
{
1,362,618✔
2410
    version_type current_version;
1,362,618✔
2411
    {
1,362,618✔
2412
        current_version = m_version_manager->get_newest_version();
1,362,618✔
2413
    }
1,362,618✔
2414
    version_type new_version = current_version + 1;
1,362,618✔
2415

686,202✔
2416
    if (!transaction.m_objects_to_delete.empty()) {
1,362,618✔
2417
        for (auto it : transaction.m_objects_to_delete) {
1,260✔
2418
            transaction.get_table(it.table_key)->remove_object(it.obj_key);
1,260✔
2419
        }
1,260✔
2420
        transaction.m_objects_to_delete.clear();
654✔
2421
    }
654✔
2422
    if (Replication* repl = get_replication()) {
1,362,618✔
2423
        // If Replication::prepare_commit() fails, then the entire transaction
677,490✔
2424
        // fails. The application then has the option of terminating the
677,490✔
2425
        // transaction with a call to Transaction::Rollback(), which in turn
677,490✔
2426
        // must call Replication::abort_transact().
677,490✔
2427
        new_version = repl->prepare_commit(current_version);        // Throws
1,345,185✔
2428
        low_level_commit(new_version, transaction, commit_to_disk); // Throws
1,345,185✔
2429
        repl->finalize_commit();
1,345,185✔
2430
    }
1,345,185✔
2431
    else {
17,433✔
2432
        low_level_commit(new_version, transaction); // Throws
17,433✔
2433
    }
17,433✔
2434
    return new_version;
1,362,618✔
2435
}
1,362,618✔
2436

2437
VersionID DB::get_version_id_of_latest_snapshot()
2438
{
6,151,224✔
2439
    if (m_fake_read_lock_if_immutable)
6,151,224✔
2440
        return {m_fake_read_lock_if_immutable->m_version, 0};
12✔
2441
    return m_version_manager->get_version_id_of_latest_snapshot();
6,151,212✔
2442
}
6,151,212✔
2443

2444

2445
DB::version_type DB::get_version_of_latest_snapshot()
2446
{
6,150,675✔
2447
    return get_version_id_of_latest_snapshot().version;
6,150,675✔
2448
}
6,150,675✔
2449

2450

2451
void DB::low_level_commit(uint_fast64_t new_version, Transaction& transaction, bool commit_to_disk)
2452
{
1,362,639✔
2453
    SharedInfo* info = m_info;
1,362,639✔
2454

686,211✔
2455
    // Version of oldest snapshot currently (or recently) bound in a transaction
686,211✔
2456
    // of the current session.
686,211✔
2457
    uint64_t oldest_version = 0, oldest_live_version = 0;
1,362,639✔
2458
    TopRefMap top_refs;
1,362,639✔
2459
    bool any_new_unreachables;
1,362,639✔
2460
    {
1,362,639✔
2461
        CheckedLockGuard lock(m_mutex);
1,362,639✔
2462
        m_version_manager->cleanup_versions(oldest_live_version, top_refs, any_new_unreachables);
1,362,639✔
2463
        oldest_version = top_refs.begin()->first;
1,362,639✔
2464
        // Allow for trimming of the history. Some types of histories do not
686,211✔
2465
        // need store changesets prior to the oldest *live* bound snapshot.
686,211✔
2466
        if (auto hist = transaction.get_history()) {
1,362,639✔
2467
            hist->set_oldest_bound_version(oldest_live_version); // Throws
1,345,137✔
2468
        }
1,345,137✔
2469
        // Cleanup any stale mappings
686,211✔
2470
        m_alloc.purge_old_mappings(oldest_version, new_version);
1,362,639✔
2471
    }
1,362,639✔
2472
    // save number of live versions for later:
686,211✔
2473
    // (top_refs is std::moved into GroupWriter so we'll loose it in the call to set_versions below)
686,211✔
2474
    auto live_versions = top_refs.size();
1,362,639✔
2475
    // Do the actual commit
686,211✔
2476
    REALM_ASSERT(oldest_version <= new_version);
1,362,639✔
2477

686,211✔
2478
    GroupWriter out(transaction, Durability(info->durability), m_marker_observer.get()); // Throws
1,362,639✔
2479
    out.set_versions(new_version, top_refs, any_new_unreachables);
1,362,639✔
2480
    out.prepare_evacuation();
1,362,639✔
2481
    auto t1 = std::chrono::steady_clock::now();
1,362,639✔
2482
    auto commit_size = m_alloc.get_commit_size();
1,362,639✔
2483
    if (m_logger) {
1,362,639✔
2484
        m_logger->log(util::Logger::Level::debug, "Initiate commit version: %1", new_version);
286,428✔
2485
    }
286,428✔
2486
    if (auto limit = out.get_evacuation_limit()) {
1,362,639✔
2487
        // Get a work limit based on the size of the transaction we're about to commit
2,643✔
2488
        // Add 4k to ensure progress on small commits
2,643✔
2489
        size_t work_limit = commit_size / 2 + out.get_free_list_size() + 0x1000;
5,301✔
2490
        transaction.cow_outliers(out.get_evacuation_progress(), limit, work_limit);
5,301✔
2491
    }
5,301✔
2492

686,211✔
2493
    ref_type new_top_ref;
1,362,639✔
2494
    // Recursively write all changed arrays to end of file
686,211✔
2495
    {
1,362,639✔
2496
        // protect against race with any other DB trying to attach to the file
686,211✔
2497
        std::lock_guard<InterprocessMutex> lock(m_controlmutex); // Throws
1,362,639✔
2498
        new_top_ref = out.write_group();                         // Throws
1,362,639✔
2499
    }
1,362,639✔
2500
    {
1,362,639✔
2501
        // protect access to shared variables and m_reader_mapping from here
686,211✔
2502
        CheckedLockGuard lock_guard(m_mutex);
1,362,639✔
2503
        m_free_space = out.get_free_space_size();
1,362,639✔
2504
        m_locked_space = out.get_locked_space_size();
1,362,639✔
2505
        m_used_space = out.get_logical_size() - m_free_space;
1,362,639✔
2506
        m_evac_stage.store(EvacStage(out.get_evacuation_stage()));
1,362,639✔
2507
        out.sync_according_to_durability();
1,362,639✔
2508
        if (Durability(info->durability) == Durability::Full || Durability(info->durability) == Durability::Unsafe) {
1,362,639✔
2509
            if (commit_to_disk) {
1,199,046✔
2510
                GroupCommitter cm(transaction, Durability(info->durability), m_marker_observer.get());
1,191,525✔
2511
                cm.commit(new_top_ref);
1,191,525✔
2512
            }
1,191,525✔
2513
        }
1,199,046✔
2514
        size_t new_file_size = out.get_logical_size();
1,362,639✔
2515
        // We must reset the allocators free space tracking before communicating the new
686,211✔
2516
        // version through the ring buffer. If not, a reader may start updating the allocators
686,211✔
2517
        // mappings while the allocator is in dirty state.
686,211✔
2518
        reset_free_space_tracking();
1,362,639✔
2519
        // Add the new version. If this fails in any way, the VersionList may be corrupted.
686,211✔
2520
        // This can lead to readers seing invalid data which is likely to cause them
686,211✔
2521
        // to crash. Other writers *must* be prevented from writing any further updates
686,211✔
2522
        // to the database. The flag "commit_in_critical_phase" is used to prevent such updates.
686,211✔
2523
        info->commit_in_critical_phase = 1;
1,362,639✔
2524
        {
1,362,639✔
2525
            m_version_manager->add_version(new_top_ref, new_file_size, new_version);
1,362,639✔
2526

686,211✔
2527
            // REALM_ASSERT(m_alloc.matches_section_boundary(new_file_size));
686,211✔
2528
            REALM_ASSERT(new_top_ref < new_file_size);
1,362,639✔
2529
        }
1,362,639✔
2530
        // At this point, the VersionList has been succesfully updated, and the next writer
686,211✔
2531
        // can safely proceed once the writemutex has been lifted.
686,211✔
2532
        info->commit_in_critical_phase = 0;
1,362,639✔
2533
    }
1,362,639✔
2534
    {
1,362,639✔
2535
        // protect against concurrent updates to the .lock file.
686,211✔
2536
        // must release m_mutex before this point to obey lock order
686,211✔
2537
        std::lock_guard<InterprocessMutex> lock(m_controlmutex);
1,362,639✔
2538

686,211✔
2539
        info->number_of_versions = live_versions + 1;
1,362,639✔
2540
        info->latest_version_number = new_version;
1,362,639✔
2541

686,211✔
2542
        m_new_commit_available.notify_all();
1,362,639✔
2543
    }
1,362,639✔
2544
    auto t2 = std::chrono::steady_clock::now();
1,362,639✔
2545
    if (m_logger) {
1,362,639✔
2546
        std::string to_disk_str = commit_to_disk ? util::format(" ref %1", new_top_ref) : " (no commit to disk)";
282,291✔
2547
        m_logger->log(util::Logger::Level::debug, "Commit of size %1 done in %2 us%3", commit_size,
286,428✔
2548
                      std::chrono::duration_cast<std::chrono::microseconds>(t2 - t1).count(), to_disk_str);
286,428✔
2549
    }
286,428✔
2550
}
1,362,639✔
2551

2552
#ifdef REALM_DEBUG
2553
void DB::reserve(size_t size)
2554
{
36✔
2555
    REALM_ASSERT(is_attached());
36✔
2556
    m_alloc.reserve_disk_space(size); // Throws
36✔
2557
}
36✔
2558
#endif
2559

2560
bool DB::call_with_lock(const std::string& realm_path, CallbackWithLock&& callback)
2561
{
693✔
2562
    auto lockfile_path = get_core_file(realm_path, CoreFileType::Lock);
693✔
2563

306✔
2564
    File lockfile;
693✔
2565
    lockfile.open(lockfile_path, File::access_ReadWrite, File::create_Auto, 0); // Throws
693✔
2566
    File::CloseGuard fcg(lockfile);
693✔
2567
    lockfile.set_fifo_path(realm_path + ".management", "lock.fifo");
693✔
2568
    if (lockfile.try_rw_lock_exclusive()) { // Throws
693✔
2569
        callback(realm_path);
651✔
2570
        return true;
651✔
2571
    }
651✔
2572
    return false;
42✔
2573
}
42✔
2574

2575
std::string DB::get_core_file(const std::string& base_path, CoreFileType type)
2576
{
300,624✔
2577
    switch (type) {
300,624✔
2578
        case CoreFileType::Lock:
140,574✔
2579
            return base_path + ".lock";
140,574✔
2580
        case CoreFileType::Storage:
738✔
2581
            return base_path;
738✔
2582
        case CoreFileType::Management:
140,427✔
2583
            return base_path + ".management";
140,427✔
2584
        case CoreFileType::Note:
18,150✔
2585
            return base_path + ".note";
18,150✔
2586
        case CoreFileType::Log:
738✔
2587
            return base_path + ".log";
738✔
2588
    }
×
UNCOV
2589
    REALM_UNREACHABLE();
×
UNCOV
2590
}
×
2591

2592
void DB::delete_files(const std::string& base_path, bool* did_delete, bool delete_lockfile)
2593
{
732✔
2594
    if (File::try_remove(get_core_file(base_path, CoreFileType::Storage)) && did_delete) {
732✔
2595
        *did_delete = true;
174✔
2596
    }
174✔
2597

366✔
2598
    File::try_remove(get_core_file(base_path, CoreFileType::Note));
732✔
2599
    File::try_remove(get_core_file(base_path, CoreFileType::Log));
732✔
2600
    util::try_remove_dir_recursive(get_core_file(base_path, CoreFileType::Management));
732✔
2601

366✔
2602
    if (delete_lockfile) {
732✔
2603
        File::try_remove(get_core_file(base_path, CoreFileType::Lock));
186✔
2604
    }
186✔
2605
}
732✔
2606

2607
TransactionRef DB::start_read(VersionID version_id)
2608
{
1,665,768✔
2609
    if (!is_attached())
1,665,768✔
2610
        throw StaleAccessor("Stale transaction");
6✔
2611
    TransactionRef tr;
1,665,762✔
2612
    if (m_fake_read_lock_if_immutable) {
1,665,762✔
2613
        tr = make_transaction_ref(shared_from_this(), &m_alloc, *m_fake_read_lock_if_immutable, DB::transact_Reading);
354✔
2614
    }
354✔
2615
    else {
1,665,408✔
2616
        ReadLockInfo read_lock = grab_read_lock(ReadLockInfo::Live, version_id);
1,665,408✔
2617
        ReadLockGuard g(*this, read_lock);
1,665,408✔
2618
        read_lock.check();
1,665,408✔
2619
        tr = make_transaction_ref(shared_from_this(), &m_alloc, read_lock, DB::transact_Reading);
1,665,408✔
2620
        g.release();
1,665,408✔
2621
    }
1,665,408✔
2622
    tr->set_file_format_version(get_file_format_version());
1,665,762✔
2623
    return tr;
1,665,762✔
2624
}
1,665,762✔
2625

2626
TransactionRef DB::start_frozen(VersionID version_id)
2627
{
30,288✔
2628
    if (!is_attached())
30,288✔
UNCOV
2629
        throw StaleAccessor("Stale transaction");
×
2630
    TransactionRef tr;
30,288✔
2631
    if (m_fake_read_lock_if_immutable) {
30,288✔
2632
        tr = make_transaction_ref(shared_from_this(), &m_alloc, *m_fake_read_lock_if_immutable, DB::transact_Frozen);
12✔
2633
    }
12✔
2634
    else {
30,276✔
2635
        ReadLockInfo read_lock = grab_read_lock(ReadLockInfo::Frozen, version_id);
30,276✔
2636
        ReadLockGuard g(*this, read_lock);
30,276✔
2637
        read_lock.check();
30,276✔
2638
        tr = make_transaction_ref(shared_from_this(), &m_alloc, read_lock, DB::transact_Frozen);
30,276✔
2639
        g.release();
30,276✔
2640
    }
30,276✔
2641
    tr->set_file_format_version(get_file_format_version());
30,288✔
2642
    return tr;
30,288✔
2643
}
30,288✔
2644

2645
TransactionRef DB::start_write(bool nonblocking)
2646
{
1,001,175✔
2647
    if (m_fake_read_lock_if_immutable) {
1,001,175✔
UNCOV
2648
        REALM_ASSERT(false && "Can't write an immutable DB");
×
UNCOV
2649
    }
×
2650
    if (nonblocking) {
1,001,175✔
2651
        bool success = do_try_begin_write();
84✔
2652
        if (!success) {
84✔
2653
            return TransactionRef();
12✔
2654
        }
12✔
2655
    }
1,001,091✔
2656
    else {
1,001,091✔
2657
        do_begin_write();
1,001,091✔
2658
    }
1,001,091✔
2659
    {
1,001,169✔
2660
        CheckedUniqueLock local_lock(m_mutex);
1,001,163✔
2661
        if (!is_attached()) {
1,001,163✔
2662
            local_lock.unlock();
×
2663
            end_write_on_correct_thread();
×
UNCOV
2664
            throw StaleAccessor("Stale transaction");
×
UNCOV
2665
        }
×
2666
        m_write_transaction_open = true;
1,001,163✔
2667
    }
1,001,163✔
2668
    TransactionRef tr;
1,001,163✔
2669
    try {
1,001,163✔
2670
        ReadLockInfo read_lock = grab_read_lock(ReadLockInfo::Live, VersionID());
1,001,163✔
2671
        ReadLockGuard g(*this, read_lock);
1,001,163✔
2672
        read_lock.check();
1,001,163✔
2673

506,973✔
2674
        tr = make_transaction_ref(shared_from_this(), &m_alloc, read_lock, DB::transact_Writing);
1,001,163✔
2675
        tr->set_file_format_version(get_file_format_version());
1,001,163✔
2676
        version_type current_version = read_lock.m_version;
1,001,163✔
2677
        m_alloc.init_mapping_management(current_version);
1,001,163✔
2678
        if (Replication* repl = get_replication()) {
1,001,163✔
2679
            bool history_updated = false;
983,604✔
2680
            repl->initiate_transact(*tr, current_version, history_updated); // Throws
983,604✔
2681
        }
983,604✔
2682
        g.release();
1,001,163✔
2683
    }
1,001,163✔
2684
    catch (...) {
506,973✔
2685
        end_write_on_correct_thread();
×
UNCOV
2686
        throw;
×
UNCOV
2687
    }
×
2688

506,955✔
2689
    return tr;
1,001,136✔
2690
}
1,001,136✔
2691

2692
void DB::async_request_write_mutex(TransactionRef& tr, util::UniqueFunction<void()>&& when_acquired)
2693
{
1,614✔
2694
    {
1,614✔
2695
        util::CheckedLockGuard lck(tr->m_async_mutex);
1,614✔
2696
        REALM_ASSERT(tr->m_async_stage == Transaction::AsyncState::Idle);
1,614✔
2697
        tr->m_async_stage = Transaction::AsyncState::Requesting;
1,614✔
2698
        tr->m_request_time_point = std::chrono::steady_clock::now();
1,614✔
2699
        if (tr->db->m_logger) {
1,614✔
2700
            tr->db->m_logger->log(util::Logger::Level::trace, "Tr %1: Async request write lock", tr->m_log_id);
1,614✔
2701
        }
1,614✔
2702
    }
1,614✔
2703
    std::weak_ptr<Transaction> weak_tr = tr;
1,614✔
2704
    async_begin_write([weak_tr, cb = std::move(when_acquired)]() {
1,614✔
2705
        if (auto tr = weak_tr.lock()) {
1,614✔
2706
            util::CheckedLockGuard lck(tr->m_async_mutex);
1,614✔
2707
            // If a synchronous transaction happened while we were pending
393✔
2708
            // we may be in HasCommits
393✔
2709
            if (tr->m_async_stage == Transaction::AsyncState::Requesting) {
1,614✔
2710
                tr->m_async_stage = Transaction::AsyncState::HasLock;
1,614✔
2711
            }
1,614✔
2712
            if (tr->db->m_logger) {
1,614✔
2713
                auto t2 = std::chrono::steady_clock::now();
1,614✔
2714
                tr->db->m_logger->log(
1,614✔
2715
                    util::Logger::Level::trace, "Tr %1, Got write lock in %2 us", tr->m_log_id,
1,614✔
2716
                    std::chrono::duration_cast<std::chrono::microseconds>(t2 - tr->m_request_time_point).count());
1,614✔
2717
            }
1,614✔
2718
            if (tr->m_waiting_for_write_lock) {
1,614✔
2719
                tr->m_waiting_for_write_lock = false;
129✔
2720
                tr->m_async_cv.notify_one();
129✔
2721
            }
129✔
2722
            else if (cb) {
1,485✔
2723
                cb();
1,485✔
2724
            }
1,485✔
2725
            tr.reset(); // Release pointer while lock is held
1,614✔
2726
        }
1,614✔
2727
    });
1,614✔
2728
}
1,614✔
2729

2730
inline DB::DB(const DBOptions& options)
2731
    : m_upgrade_callback(std::move(options.upgrade_callback))
2732
    , m_log_id(util::gen_log_id(this))
2733
{
165,213✔
2734
    if (options.enable_async_writes) {
165,213✔
2735
        m_commit_helper = std::make_unique<AsyncCommitHelper>(this);
126,738✔
2736
    }
126,738✔
2737
}
165,213✔
2738

2739
namespace {
2740
class DBInit : public DB {
2741
public:
2742
    explicit DBInit(const DBOptions& options)
2743
        : DB(options)
2744
    {
165,210✔
2745
    }
165,210✔
2746
};
2747
} // namespace
2748

2749
DBRef DB::create(const std::string& file, bool no_create, const DBOptions& options) NO_THREAD_SAFETY_ANALYSIS
2750
{
24,834✔
2751
    DBRef retval = std::make_shared<DBInit>(options);
24,834✔
2752
    retval->open(file, no_create, options);
24,834✔
2753
    return retval;
24,834✔
2754
}
24,834✔
2755

2756
DBRef DB::create(Replication& repl, const std::string& file, const DBOptions& options) NO_THREAD_SAFETY_ANALYSIS
2757
{
10,299✔
2758
    DBRef retval = std::make_shared<DBInit>(options);
10,299✔
2759
    retval->open(repl, file, options);
10,299✔
2760
    return retval;
10,299✔
2761
}
10,299✔
2762

2763
DBRef DB::create(std::unique_ptr<Replication> repl, const std::string& file,
2764
                 const DBOptions& options) NO_THREAD_SAFETY_ANALYSIS
2765
{
104,736✔
2766
    REALM_ASSERT(repl);
104,736✔
2767
    DBRef retval = std::make_shared<DBInit>(options);
104,736✔
2768
    retval->m_history = std::move(repl);
104,736✔
2769
    retval->open(*retval->m_history, file, options);
104,736✔
2770
    return retval;
104,736✔
2771
}
104,736✔
2772

2773
DBRef DB::create(std::unique_ptr<Replication> repl, const DBOptions& options) NO_THREAD_SAFETY_ANALYSIS
2774
{
25,344✔
2775
    REALM_ASSERT(repl);
25,344✔
2776
    DBRef retval = std::make_shared<DBInit>(options);
25,344✔
2777
    retval->m_history = std::move(repl);
25,344✔
2778
    retval->open(*retval->m_history, options);
25,344✔
2779
    return retval;
25,344✔
2780
}
25,344✔
2781

2782
DBRef DB::create_in_memory(std::unique_ptr<Replication> repl, const std::string& in_memory_path,
2783
                           const DBOptions& options) NO_THREAD_SAFETY_ANALYSIS
2784
{
×
2785
    DBRef db = create(std::move(repl), options);
×
2786
    db->m_db_path = in_memory_path;
×
UNCOV
2787
    return db;
×
UNCOV
2788
}
×
2789

2790
DBRef DB::create(BinaryData buffer, bool take_ownership) NO_THREAD_SAFETY_ANALYSIS
2791
{
6✔
2792
    DBOptions options;
6✔
2793
    options.is_immutable = true;
6✔
2794
    DBRef retval = std::make_shared<DBInit>(options);
6✔
2795
    retval->open(buffer, take_ownership);
6✔
2796
    return retval;
6✔
2797
}
6✔
2798

2799
void DB::claim_sync_agent()
2800
{
15,966✔
2801
    REALM_ASSERT(is_attached());
15,966✔
2802
    std::unique_lock<InterprocessMutex> lock(m_controlmutex);
15,966✔
2803
    if (m_info->sync_agent_present)
15,966✔
2804
        throw MultipleSyncAgents{};
6✔
2805
    m_info->sync_agent_present = 1; // Set to true
15,960✔
2806
    m_is_sync_agent = true;
15,960✔
2807
}
15,960✔
2808

2809
void DB::release_sync_agent()
2810
{
14,673✔
2811
    REALM_ASSERT(is_attached());
14,673✔
2812
    std::unique_lock<InterprocessMutex> lock(m_controlmutex);
14,673✔
2813
    if (!m_is_sync_agent)
14,673✔
2814
        return;
264✔
2815
    REALM_ASSERT(m_info->sync_agent_present);
14,409✔
2816
    m_info->sync_agent_present = 0;
14,409✔
2817
    m_is_sync_agent = false;
14,409✔
2818
}
14,409✔
2819

2820
void DB::do_begin_possibly_async_write()
2821
{
383,421✔
2822
    if (m_commit_helper) {
383,421✔
2823
        m_commit_helper->blocking_begin_write();
259,350✔
2824
    }
259,350✔
2825
    else {
124,071✔
2826
        do_begin_write();
124,071✔
2827
    }
124,071✔
2828
}
383,421✔
2829

2830
void DB::end_write_on_correct_thread() noexcept
2831
{
1,384,788✔
2832
    //    m_local_write_mutex.unlock();
697,692✔
2833
    if (!m_commit_helper || !m_commit_helper->blocking_end_write()) {
1,384,788✔
2834
        do_end_write();
1,125,228✔
2835
    }
1,125,228✔
2836
}
1,384,788✔
2837

2838
DisableReplication::DisableReplication(Transaction& t)
2839
    : m_tr(t)
2840
    , m_owner(t.get_db())
2841
    , m_repl(m_owner->get_replication())
2842
    , m_version(t.get_version())
UNCOV
2843
{
×
UNCOV
2844
    m_owner->set_replication(nullptr);
×
UNCOV
2845
    t.m_history = nullptr;
×
UNCOV
2846
}
×
2847

2848
DisableReplication::~DisableReplication()
UNCOV
2849
{
×
UNCOV
2850
    m_owner->set_replication(m_repl);
×
UNCOV
2851
    if (m_version != m_tr.get_version())
×
UNCOV
2852
        m_tr.initialize_replication();
×
UNCOV
2853
}
×
2854

2855
} // namespace realm
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