#include "sql/database.h"
#include <limits.h>
#include <stddef.h>
#include <stdint.h>
#include <string.h>
#include <algorithm>
#include <memory>
#include <tuple>
#include "base/check.h"
#include "base/dcheck_is_on.h"
#include "base/feature_list.h"
#include "base/files/file_path.h"
#include "base/files/file_util.h"
#include "base/format_macros.h"
#include "base/location.h"
#include "base/logging.h"
#include "base/memory/raw_ptr.h"
#include "base/no_destructor.h"
#include "base/notreached.h"
#include "base/numerics/safe_conversions.h"
#include "base/ranges/algorithm.h"
#include "base/sequence_checker.h"
#include "base/strings/strcat.h"
#include "base/strings/string_number_conversions.h"
#include "base/strings/string_piece.h"
#include "base/strings/string_split.h"
#include "base/strings/string_util.h"
#include "base/strings/stringprintf.h"
#include "base/strings/utf_string_conversions.h"
#include "base/synchronization/lock.h"
#include "base/task/single_thread_task_runner.h"
#include "base/threading/scoped_blocking_call.h"
#include "base/trace_event/memory_dump_manager.h"
#include "base/trace_event/trace_event.h"
#include "base/tracing/protos/chrome_track_event.pbzero.h"
#include "base/types/pass_key.h"
#include "build/build_config.h"
#include "sql/database_memory_dump_provider.h"
#include "sql/initialization.h"
#include "sql/meta_table.h"
#include "sql/sql_features.h"
#include "sql/sqlite_result_code.h"
#include "sql/sqlite_result_code_values.h"
#include "sql/statement.h"
#include "sql/vfs_wrapper.h"
#include "third_party/sqlite/sqlite3.h"
namespace sql {
namespace {
bool enable_mmap_by_default_ = true;
static constexpr char kSqliteMainDatabaseName[] = "main";
static constexpr char kSqliteOpenInMemoryPath[] = ":memory:";
const int kBusyTimeoutSeconds = 1;
class ScopedBusyTimeout {
public:
explicit ScopedBusyTimeout(sqlite3* db) : db_(db) {}
~ScopedBusyTimeout() { sqlite3_busy_timeout(db_, 0); }
int SetTimeout(base::TimeDelta timeout) {
DCHECK_LT(timeout.InMilliseconds(), INT_MAX);
return sqlite3_busy_timeout(db_,
static_cast<int>(timeout.InMilliseconds()));
}
private:
raw_ptr<sqlite3> db_;
};
class ScopedWritableSchema {
public:
explicit ScopedWritableSchema(sqlite3* db) : db_(db) {
sqlite3_exec(db_, "PRAGMA writable_schema=1", nullptr, nullptr, nullptr);
}
~ScopedWritableSchema() {
sqlite3_exec(db_, "PRAGMA writable_schema=0", nullptr, nullptr, nullptr);
}
private:
raw_ptr<sqlite3> db_;
};
SqliteResultCode BackupDatabaseForRaze(sqlite3* source_db,
sqlite3* destination_db) {
DCHECK(source_db);
DCHECK(destination_db);
DCHECK_NE(source_db, destination_db);
static constexpr char kMainDatabaseName[] = "main";
sqlite3_backup* backup = sqlite3_backup_init(
destination_db, kMainDatabaseName, source_db, kMainDatabaseName);
if (!backup) {
return ToSqliteResultCode(chrome_sqlite3_extended_errcode(destination_db));
}
constexpr int kUnlimitedPageCount = -1;
auto sqlite_result_code =
ToSqliteResultCode(sqlite3_backup_step(backup, kUnlimitedPageCount));
DCHECK_NE(sqlite_result_code, SqliteResultCode::kOk)
<< "sqlite3_backup_step() returned SQLITE_OK (instead of SQLITE_DONE) "
<< "when asked to back up the entire database";
#if DCHECK_IS_ON()
if (sqlite_result_code == SqliteResultCode::kDone) {
DCHECK_EQ(sqlite3_backup_pagecount(backup), 1)
<< __func__ << " was intended to be used with 1-page databases";
}
#endif
std::ignore = ToSqliteResultCode(sqlite3_backup_finish(backup));
return sqlite_result_code;
}
bool ValidAttachmentPoint(base::StringPiece attachment_point) {
return base::ranges::all_of(attachment_point,
[](char ch) { return base::IsAsciiLower(ch); });
}
std::string AsUTF8ForSQL(const base::FilePath& path) {
#if BUILDFLAG(IS_WIN)
return base::WideToUTF8(path.value());
#elif BUILDFLAG(IS_POSIX) || BUILDFLAG(IS_FUCHSIA)
return path.value();
#endif
}
}
Database::ScopedErrorExpecterCallback* Database::current_expecter_cb_ = nullptr;
bool Database::IsExpectedSqliteError(int sqlite_error_code) {
DCHECK_NE(sqlite_error_code, SQLITE_OK)
<< __func__ << " received non-error result code";
DCHECK_NE(sqlite_error_code, SQLITE_DONE)
<< __func__ << " received non-error result code";
DCHECK_NE(sqlite_error_code, SQLITE_ROW)
<< __func__ << " received non-error result code";
if (!current_expecter_cb_)
return false;
return current_expecter_cb_->Run(sqlite_error_code);
}
void Database::SetScopedErrorExpecter(
Database::ScopedErrorExpecterCallback* cb,
base::PassKey<test::ScopedErrorExpecter>) {
CHECK(!current_expecter_cb_);
current_expecter_cb_ = cb;
}
void Database::ResetScopedErrorExpecter(
base::PassKey<test::ScopedErrorExpecter>) {
CHECK(current_expecter_cb_);
current_expecter_cb_ = nullptr;
}
base::FilePath Database::JournalPath(const base::FilePath& db_path) {
return base::FilePath(db_path.value() + FILE_PATH_LITERAL("-journal"));
}
base::FilePath Database::WriteAheadLogPath(const base::FilePath& db_path) {
return base::FilePath(db_path.value() + FILE_PATH_LITERAL("-wal"));
}
base::FilePath Database::SharedMemoryFilePath(const base::FilePath& db_path) {
return base::FilePath(db_path.value() + FILE_PATH_LITERAL("-shm"));
}
Database::StatementRef::StatementRef(Database* database,
sqlite3_stmt* stmt,
bool was_valid)
: database_(database), stmt_(stmt), was_valid_(was_valid) {
DCHECK_EQ(database == nullptr, stmt == nullptr);
if (database)
database_->StatementRefCreated(this);
}
Database::StatementRef::~StatementRef() {
if (database_)
database_->StatementRefDeleted(this);
Close(false);
}
void Database::StatementRef::Close(bool forced) {
if (stmt_) {
absl::optional<base::ScopedBlockingCall> scoped_blocking_call;
InitScopedBlockingCall(FROM_HERE, &scoped_blocking_call);
sqlite3_stmt* statement = stmt_;
stmt_ = nullptr;
std::ignore = ToSqliteResultCode(sqlite3_finalize(statement));
}
database_ = nullptr;
was_valid_ = was_valid_ && forced;
}
static_assert(DatabaseOptions::kDefaultPageSize == SQLITE_DEFAULT_PAGE_SIZE,
"DatabaseOptions::kDefaultPageSize must match the value "
"configured into SQLite");
DatabaseDiagnostics::DatabaseDiagnostics() = default;
DatabaseDiagnostics::~DatabaseDiagnostics() = default;
void DatabaseDiagnostics::WriteIntoTrace(
perfetto::TracedProto<TraceProto> context) const {
context->set_reported_sqlite_error_code(reported_sqlite_error_code);
context->set_error_code(error_code);
context->set_last_errno(last_errno);
context->set_sql_statement(sql_statement);
context->set_version(version);
for (const auto& sql : schema_sql_rows) {
context->add_schema_sql_rows(sql);
}
for (const auto& name : schema_other_row_names) {
context->add_schema_other_row_names(name);
}
context->set_has_valid_header(has_valid_header);
context->set_has_valid_schema(has_valid_schema);
context->set_error_message(error_message);
}
Database::Database() : Database({.exclusive_locking = false}) {}
Database::Database(DatabaseOptions options)
: options_(options), mmap_disabled_(!enable_mmap_by_default_) {
DCHECK_GE(options.page_size, 512);
DCHECK_LE(options.page_size, 65536);
DCHECK(!(options.page_size & (options.page_size - 1)))
<< "page_size must be a power of two";
DCHECK(!options_.mmap_alt_status_discouraged ||
options_.enable_views_discouraged)
<< "mmap_alt_status requires views";
DETACH_FROM_SEQUENCE(sequence_checker_);
}
Database::~Database() {
Close();
}
void Database::DisableMmapByDefault() {
enable_mmap_by_default_ = false;
}
bool Database::Open(const base::FilePath& path) {
std::string path_string = AsUTF8ForSQL(path);
TRACE_EVENT1("sql", "Database::Open", "path", path_string);
DCHECK_CALLED_ON_VALID_SEQUENCE(sequence_checker_);
DCHECK(!path.empty());
DCHECK_NE(path_string, kSqliteOpenInMemoryPath)
<< "Path conflicts with SQLite magic identifier";
return OpenInternal(path_string, OpenMode::kRetryOnPoision);
}
bool Database::OpenInMemory() {
TRACE_EVENT0("sql", "Database::OpenInMemory");
DCHECK_CALLED_ON_VALID_SEQUENCE(sequence_checker_);
in_memory_ = true;
return OpenInternal(kSqliteOpenInMemoryPath, OpenMode::kInMemory);
}
bool Database::OpenTemporary(base::PassKey<Recovery>) {
TRACE_EVENT0("sql", "Database::OpenTemporary");
DCHECK_CALLED_ON_VALID_SEQUENCE(sequence_checker_);
return OpenInternal(std::string(), OpenMode::kTemporary);
}
void Database::CloseInternal(bool forced) {
TRACE_EVENT0("sql", "Database::CloseInternal");
statement_cache_.clear();
DCHECK(forced || open_statements_.empty());
for (StatementRef* statement_ref : open_statements_)
statement_ref->Close(forced);
open_statements_.clear();
if (db_) {
absl::optional<base::ScopedBlockingCall> scoped_blocking_call;
InitScopedBlockingCall(FROM_HERE, &scoped_blocking_call);
if (memory_dump_provider_) {
memory_dump_provider_->ResetDatabase();
base::trace_event::MemoryDumpManager::GetInstance()
->UnregisterAndDeleteDumpProviderSoon(
std::move(memory_dump_provider_));
}
auto sqlite_result_code = ToSqliteResultCode(sqlite3_close(db_));
DCHECK_NE(sqlite_result_code, SqliteResultCode::kBusy)
<< "sqlite3_close() called while prepared statements are still alive";
DCHECK_EQ(sqlite_result_code, SqliteResultCode::kOk)
<< "sqlite3_close() failed in an unexpected way: " << GetErrorMessage();
db_ = nullptr;
}
}
void Database::Close() {
TRACE_EVENT0("sql", "Database::Close");
if (poisoned_) {
poisoned_ = false;
return;
}
CloseInternal(false);
}
void Database::Preload() {
TRACE_EVENT0("sql", "Database::Preload");
DCHECK_CALLED_ON_VALID_SEQUENCE(sequence_checker_);
if (!db_) {
DCHECK(poisoned_) << "Cannot preload null db";
return;
}
CHECK(!options_.exclusive_database_file_lock)
<< "Cannot preload an exclusively locked database.";
absl::optional<base::ScopedBlockingCall> scoped_blocking_call;
InitScopedBlockingCall(FROM_HERE, &scoped_blocking_call);
constexpr int kPreReadSize = 128 * 1024 * 1024;
base::PreReadFile(DbPath(), false, kPreReadSize);
}
void Database::ReleaseCacheMemoryIfNeeded(bool implicit_change_performed) {
TRACE_EVENT0("sql", "Database::ReleaseCacheMemoryIfNeeded");
if (!db_) {
DCHECK(poisoned_) << "Illegal use of Database without a db";
return;
}
if (!mmap_enabled_)
return;
if (implicit_change_performed)
--total_changes_at_last_release_;
DCHECK_GE(transaction_nesting_, 0);
if (transaction_nesting_)
return;
const int64_t total_changes = sqlite3_total_changes64(db_);
if (total_changes == total_changes_at_last_release_)
return;
total_changes_at_last_release_ = total_changes;
std::ignore = ToSqliteResultCode(sqlite3_db_release_memory(db_));
}
base::FilePath Database::DbPath() const {
if (!is_open())
return base::FilePath();
const char* path = sqlite3_db_filename(db_, "main");
if (!path)
return base::FilePath();
const base::StringPiece db_path(path);
#if BUILDFLAG(IS_WIN)
return base::FilePath(base::UTF8ToWide(db_path));
#elif BUILDFLAG(IS_POSIX) || BUILDFLAG(IS_FUCHSIA)
return base::FilePath(db_path);
#else
NOTREACHED();
return base::FilePath();
#endif
}
std::string Database::CollectErrorInfo(int sqlite_error_code,
Statement* stmt,
DatabaseDiagnostics* diagnostics) const {
TRACE_EVENT0("sql", "Database::CollectErrorInfo");
DCHECK_NE(sqlite_error_code, SQLITE_OK)
<< __func__ << " received non-error result code";
DCHECK_NE(sqlite_error_code, SQLITE_DONE)
<< __func__ << " received non-error result code";
DCHECK_NE(sqlite_error_code, SQLITE_ROW)
<< __func__ << " received non-error result code";
std::string debug_info;
int error_code = GetErrorCode();
base::StringAppendF(&debug_info, "db error: %d/%s\n", error_code,
GetErrorMessage());
if (diagnostics) {
diagnostics->error_code = error_code;
diagnostics->error_message = GetErrorMessage();
}
if (sqlite_error_code != GetErrorCode())
base::StringAppendF(&debug_info, "reported error: %d\n", sqlite_error_code);
#if BUILDFLAG(IS_WIN)
int last_errno = GetLastErrno();
base::StringAppendF(&debug_info, "LastError: %d\n", last_errno);
if (diagnostics) {
diagnostics->last_errno = last_errno;
}
#elif BUILDFLAG(IS_POSIX) || BUILDFLAG(IS_FUCHSIA)
int last_errno = GetLastErrno();
base::StringAppendF(&debug_info, "errno: %d\n", last_errno);
if (diagnostics) {
diagnostics->last_errno = last_errno;
}
#else
NOTREACHED();
#endif
if (stmt) {
std::string sql_string = stmt->GetSQLStatement();
base::StringAppendF(&debug_info, "statement: %s\n", sql_string.c_str());
if (diagnostics) {
diagnostics->sql_statement = sql_string;
}
} else {
base::StringAppendF(&debug_info, "statement: NULL\n");
}
if (sqlite_error_code == SQLITE_ERROR) {
static constexpr char kVersionSql[] =
"SELECT value FROM meta WHERE key='version'";
sqlite3_stmt* sqlite_statement;
int rc = sqlite3_prepare_v3(db_, kVersionSql, sizeof(kVersionSql),
SQLITE_PREPARE_NO_VTAB, &sqlite_statement,
nullptr);
if (rc == SQLITE_OK) {
rc = sqlite3_step(sqlite_statement);
if (rc == SQLITE_ROW) {
int version = sqlite3_column_int(sqlite_statement, 0);
base::StringAppendF(&debug_info, "version: %d\n", version);
if (diagnostics) {
diagnostics->version = version;
}
} else if (rc == SQLITE_DONE) {
debug_info += "version: none\n";
} else {
base::StringAppendF(&debug_info, "version: error %d\n", rc);
}
sqlite3_finalize(sqlite_statement);
} else {
base::StringAppendF(&debug_info, "version: prepare error %d\n", rc);
}
debug_info += "schema:\n";
static constexpr char kSchemaSql[] =
"SELECT sql FROM sqlite_schema WHERE sql IS NOT NULL ORDER BY ROWID";
rc = sqlite3_prepare_v3(db_, kSchemaSql, sizeof(kSchemaSql),
SQLITE_PREPARE_NO_VTAB, &sqlite_statement,
nullptr);
if (rc == SQLITE_OK) {
while ((rc = sqlite3_step(sqlite_statement)) == SQLITE_ROW) {
std::string text;
base::StringAppendF(&text, "%s",
sqlite3_column_text(sqlite_statement, 0));
debug_info += text + "\n";
if (diagnostics) {
diagnostics->schema_sql_rows.push_back(text);
}
}
if (rc != SQLITE_DONE)
base::StringAppendF(&debug_info, "error %d\n", rc);
sqlite3_finalize(sqlite_statement);
} else {
base::StringAppendF(&debug_info, "prepare error %d\n", rc);
}
debug_info += "schema rows with only name:\n";
static constexpr char kSchemaOtherRowNamesSql[] =
"SELECT name FROM sqlite_schema WHERE sql IS NULL ORDER BY ROWID";
rc = sqlite3_prepare_v3(db_, kSchemaOtherRowNamesSql,
sizeof(kSchemaOtherRowNamesSql),
SQLITE_PREPARE_NO_VTAB, &sqlite_statement,
nullptr);
if (rc == SQLITE_OK) {
while ((rc = sqlite3_step(sqlite_statement)) == SQLITE_ROW) {
std::string text;
base::StringAppendF(&text, "%s",
sqlite3_column_text(sqlite_statement, 0));
debug_info += text + "\n";
if (diagnostics) {
diagnostics->schema_other_row_names.push_back(text);
}
}
if (rc != SQLITE_DONE)
base::StringAppendF(&debug_info, "error %d\n", rc);
sqlite3_finalize(sqlite_statement);
} else {
base::StringAppendF(&debug_info, "prepare error %d\n", rc);
}
}
return debug_info;
}
std::string Database::CollectCorruptionInfo() {
TRACE_EVENT0("sql", "Database::CollectCorruptionInfo");
const base::FilePath db_path = DbPath();
int64_t db_size = -1;
if (!base::GetFileSize(db_path, &db_size) || db_size < 0)
return std::string();
std::string debug_info;
base::StringAppendF(&debug_info, "SQLITE_CORRUPT, db size %" PRId64 "\n",
db_size);
const int64_t kMaxIntegrityCheckSize = 8192 * 1024;
if (db_size > kMaxIntegrityCheckSize) {
debug_info += "integrity_check skipped due to size\n";
} else {
std::vector<std::string> messages;
const base::TimeTicks before = base::TimeTicks::Now();
FullIntegrityCheck(&messages);
base::StringAppendF(
&debug_info, "integrity_check %" PRId64 " ms, %" PRIuS " records:\n",
(base::TimeTicks::Now() - before).InMilliseconds(), messages.size());
const size_t kMaxMessages = 20;
for (size_t i = 0; i < kMaxMessages && i < messages.size(); ++i) {
base::StringAppendF(&debug_info, "%s\n", messages[i].c_str());
}
}
return debug_info;
}
bool Database::GetMmapAltStatus(int64_t* status) {
TRACE_EVENT0("sql", "Database::GetMmapAltStatus");
if (!DoesViewExist("MmapStatus")) {
*status = 0;
return true;
}
const char* kMmapStatusSql = "SELECT * FROM MmapStatus";
Statement s(GetUniqueStatement(kMmapStatusSql));
if (s.Step())
*status = s.ColumnInt64(0);
return s.Succeeded();
}
bool Database::SetMmapAltStatus(int64_t status) {
if (!BeginTransaction())
return false;
if (!Execute("DROP VIEW IF EXISTS MmapStatus")) {
RollbackTransaction();
return false;
}
const std::string create_view_sql = base::StringPrintf(
"CREATE VIEW MmapStatus (value) AS SELECT %" PRId64, status);
if (!Execute(create_view_sql.c_str())) {
RollbackTransaction();
return false;
}
return CommitTransaction();
}
size_t Database::ComputeMmapSizeForOpen() {
TRACE_EVENT0("sql", "Database::ComputeMmapSizeForOpen");
absl::optional<base::ScopedBlockingCall> scoped_blocking_call;
InitScopedBlockingCall(FROM_HERE, &scoped_blocking_call);
const size_t kMmapEverything = 256 * 1024 * 1024;
int64_t mmap_ofs = 0;
if (options_.mmap_alt_status_discouraged) {
if (!GetMmapAltStatus(&mmap_ofs))
return 0;
} else {
if (!MetaTable::DoesTableExist(this))
return kMmapEverything;
if (!MetaTable::GetMmapStatus(this, &mmap_ofs))
return 0;
}
if (mmap_ofs == MetaTable::kMmapFailure)
return 0;
if (mmap_ofs != MetaTable::kMmapSuccess) {
DCHECK_GE(mmap_ofs, 0);
sqlite3_int64 db_size = 0;
sqlite3_file* file = GetSqliteVfsFile();
if (!file || file->pMethods->xFileSize(file, &db_size) != SQLITE_OK)
return 0;
sqlite3_int64 amount = db_size - mmap_ofs;
if (amount < 0)
amount = 0;
if (amount > 0) {
static base::NoDestructor<base::Lock> lock;
base::AutoLock auto_lock(*lock);
static sqlite3_int64 g_reads_allowed = 20 * 1024 * 1024;
if (g_reads_allowed < amount)
amount = g_reads_allowed;
g_reads_allowed -= amount;
}
if (amount <= 0 && mmap_ofs < db_size) {
DCHECK_EQ(0, amount);
} else {
static const int kPageSize = 4096;
char buf[kPageSize];
while (amount > 0) {
int rc = file->pMethods->xRead(file, buf, sizeof(buf), mmap_ofs);
if (rc == SQLITE_OK) {
mmap_ofs += sizeof(buf);
amount -= sizeof(buf);
} else if (rc == SQLITE_IOERR_SHORT_READ) {
mmap_ofs = db_size;
break;
} else {
mmap_ofs = MetaTable::kMmapFailure;
break;
}
}
if (mmap_ofs >= db_size) {
mmap_ofs = MetaTable::kMmapSuccess;
} else {
DCHECK(mmap_ofs > 0 || mmap_ofs == MetaTable::kMmapFailure);
}
if (options_.mmap_alt_status_discouraged) {
if (!SetMmapAltStatus(mmap_ofs))
return 0;
} else {
if (!MetaTable::SetMmapStatus(this, mmap_ofs))
return 0;
}
}
}
if (mmap_ofs == MetaTable::kMmapFailure)
return 0;
if (mmap_ofs == MetaTable::kMmapSuccess)
return kMmapEverything;
return mmap_ofs;
}
int Database::SqlitePrepareFlags() const {
return options_.enable_virtual_tables_discouraged ? 0
: SQLITE_PREPARE_NO_VTAB;
}
sqlite3_file* Database::GetSqliteVfsFile() {
DCHECK(db_) << "Database not opened";
constexpr const char* kMainDatabaseName = nullptr;
sqlite3_file* result = nullptr;
auto sqlite_result_code = ToSqliteResultCode(sqlite3_file_control(
db_, kMainDatabaseName, SQLITE_FCNTL_FILE_POINTER, &result));
DCHECK_EQ(sqlite_result_code, SqliteResultCode::kOk)
<< "sqlite3_file_control(SQLITE_FCNTL_FILE_POINTER) failed";
DCHECK(result)
<< "sqlite3_file_control() succeded but returned a null sqlite3_file*";
if (!result->pMethods) {
DCHECK_EQ(DbPath().AsUTF8Unsafe(), "")
<< "sqlite3_file_control() returned a sqlite3_file* with null pMethods "
<< "in a case when it shouldn't have.";
return nullptr;
}
return result;
}
void Database::TrimMemory() {
TRACE_EVENT0("sql", "Database::TrimMemory");
if (!db_)
return;
std::ignore = ToSqliteResultCode(sqlite3_db_release_memory(db_));
#if defined(SQLITE_ENABLE_MEMORY_MANAGEMENT)
#error "This method assumes SQLITE_ENABLE_MEMORY_MANAGEMENT is not defined"
#endif
}
bool Database::Raze() {
TRACE_EVENT0("sql", "Database::Raze");
absl::optional<base::ScopedBlockingCall> scoped_blocking_call;
InitScopedBlockingCall(FROM_HERE, &scoped_blocking_call);
if (!db_) {
DCHECK(poisoned_) << "Cannot raze null db";
return false;
}
DCHECK_GE(transaction_nesting_, 0);
if (transaction_nesting_ > 0) {
DLOG(DCHECK) << "Cannot raze within a transaction";
return false;
}
sql::Database null_db(sql::DatabaseOptions{
.exclusive_locking = true,
.page_size = options_.page_size,
.cache_size = 0,
.enable_views_discouraged = options_.enable_views_discouraged,
.enable_virtual_tables_discouraged =
options_.enable_virtual_tables_discouraged,
});
if (!null_db.OpenInMemory()) {
DLOG(DCHECK) << "Unable to open in-memory database.";
return false;
}
#if BUILDFLAG(IS_ANDROID)
if (!null_db.Execute("PRAGMA auto_vacuum = 1"))
return false;
#endif
if (!null_db.Execute("PRAGMA schema_version = 1"))
return false;
ScopedWritableSchema writable_schema(db_);
#if BUILDFLAG(IS_WIN)
std::ignore = Execute("PRAGMA mmap_size = 0");
#endif
SqliteResultCode sqlite_result_code = BackupDatabaseForRaze(null_db.db_, db_);
if (sqlite_result_code == SqliteResultCode::kBusy)
return false;
if (sqlite_result_code == SqliteResultCode::kNotADatabase ||
sqlite_result_code == SqliteResultCode::kIoShortRead) {
sqlite3_file* file = GetSqliteVfsFile();
if (!file || file->pMethods->xTruncate(file, 0) != SQLITE_OK) {
DLOG(DCHECK) << "Failed to truncate file.";
return false;
}
sqlite_result_code = BackupDatabaseForRaze(null_db.db_, db_);
if (sqlite_result_code != SqliteResultCode::kDone)
return false;
}
if (sqlite_result_code == SqliteResultCode::kReadOnly) {
std::ignore = Execute("PRAGMA journal_mode=TRUNCATE;");
const std::string page_size_sql = base::StrCat(
{"PRAGMA page_size=", base::NumberToString(options_.page_size)});
if (!Execute(page_size_sql.c_str())) {
return false;
}
std::ignore = Execute("VACUUM");
if (UseWALMode()) {
std::ignore = Execute("PRAGMA journal_mode=WAL;");
}
sqlite_result_code = BackupDatabaseForRaze(null_db.db_, db_);
if (sqlite_result_code != SqliteResultCode::kDone)
return false;
}
if (sqlite_result_code != SqliteResultCode::kDone) {
NOTIMPLEMENTED() << "Unhandled sqlite3_backup_step() error: "
<< sqlite_result_code;
return false;
}
return CheckpointDatabase();
}
bool Database::RazeAndPoison() {
TRACE_EVENT0("sql", "Database::RazeAndPoison");
if (!db_) {
DCHECK(poisoned_) << "Cannot raze null db";
return false;
}
RollbackAllTransactions();
bool result = Raze();
CloseInternal(true);
poisoned_ = true;
return result;
}
void Database::Poison() {
TRACE_EVENT0("sql", "Database::Poison");
if (!db_) {
DCHECK(poisoned_) << "Cannot poison null db";
return;
}
RollbackAllTransactions();
CloseInternal(true);
poisoned_ = true;
}
bool Database::Delete(const base::FilePath& path) {
TRACE_EVENT1("sql", "Database::Delete", "path", path.MaybeAsASCII());
base::ScopedBlockingCall scoped_blocking_call(FROM_HERE,
base::BlockingType::MAY_BLOCK);
base::FilePath journal_path = Database::JournalPath(path);
base::FilePath wal_path = Database::WriteAheadLogPath(path);
std::string journal_str = AsUTF8ForSQL(journal_path);
std::string wal_str = AsUTF8ForSQL(wal_path);
std::string path_str = AsUTF8ForSQL(path);
EnsureSqliteInitialized();
sqlite3_vfs* vfs = sqlite3_vfs_find(nullptr);
CHECK(vfs);
CHECK(vfs->xDelete);
CHECK(vfs->xAccess);
CHECK(strncmp(vfs->zName, "unix", 4) == 0 ||
strncmp(vfs->zName, "win32", 5) == 0 ||
strcmp(vfs->zName, "storage_service") == 0);
vfs->xDelete(vfs, journal_str.c_str(), 0);
vfs->xDelete(vfs, wal_str.c_str(), 0);
vfs->xDelete(vfs, path_str.c_str(), 0);
int journal_exists = 0;
vfs->xAccess(vfs, journal_str.c_str(), SQLITE_ACCESS_EXISTS, &journal_exists);
int wal_exists = 0;
vfs->xAccess(vfs, wal_str.c_str(), SQLITE_ACCESS_EXISTS, &wal_exists);
int path_exists = 0;
vfs->xAccess(vfs, path_str.c_str(), SQLITE_ACCESS_EXISTS, &path_exists);
return !journal_exists && !wal_exists && !path_exists;
}
bool Database::BeginTransaction() {
TRACE_EVENT0("sql", "Database::BeginTransaction");
if (needs_rollback_) {
DCHECK_GT(transaction_nesting_, 0);
return false;
}
bool success = true;
DCHECK_GE(transaction_nesting_, 0);
if (!transaction_nesting_) {
needs_rollback_ = false;
Statement begin(GetCachedStatement(SQL_FROM_HERE, "BEGIN TRANSACTION"));
if (!begin.Run())
return false;
}
++transaction_nesting_;
return success;
}
void Database::RollbackTransaction() {
TRACE_EVENT0("sql", "Database::RollbackTransaction");
DCHECK_GE(transaction_nesting_, 0);
if (!transaction_nesting_) {
DCHECK(poisoned_) << "Rolling back a nonexistent transaction";
return;
}
DCHECK_GT(transaction_nesting_, 0);
--transaction_nesting_;
if (transaction_nesting_ > 0) {
needs_rollback_ = true;
return;
}
DoRollback();
}
bool Database::CommitTransaction() {
TRACE_EVENT0("sql", "Database::CommitTransaction");
DCHECK_GE(transaction_nesting_, 0);
if (!transaction_nesting_) {
DCHECK(poisoned_) << "Committing a nonexistent transaction";
return false;
}
DCHECK_GT(transaction_nesting_, 0);
--transaction_nesting_;
if (transaction_nesting_ > 0) {
return !needs_rollback_;
}
if (needs_rollback_) {
DoRollback();
return false;
}
Statement commit(GetCachedStatement(SQL_FROM_HERE, "COMMIT"));
bool succeeded = commit.Run();
ReleaseCacheMemoryIfNeeded(false);
return succeeded;
}
void Database::RollbackAllTransactions() {
TRACE_EVENT0("sql", "Database::RollbackAllTransactions");
DCHECK_GE(transaction_nesting_, 0);
if (transaction_nesting_ > 0) {
transaction_nesting_ = 0;
DoRollback();
}
}
bool Database::AttachDatabase(const base::FilePath& other_db_path,
base::StringPiece attachment_point,
InternalApiToken) {
TRACE_EVENT0("sql", "Database::AttachDatabase");
DCHECK_CALLED_ON_VALID_SEQUENCE(sequence_checker_);
DCHECK(ValidAttachmentPoint(attachment_point));
Statement statement(GetUniqueStatement("ATTACH ? AS ?"));
#if BUILDFLAG(IS_WIN)
statement.BindString16(0, base::AsStringPiece16(other_db_path.value()));
#else
statement.BindString(0, other_db_path.value());
#endif
statement.BindString(1, attachment_point);
return statement.Run();
}
bool Database::DetachDatabase(base::StringPiece attachment_point,
InternalApiToken) {
TRACE_EVENT0("sql", "Database::DetachDatabase");
DCHECK_CALLED_ON_VALID_SEQUENCE(sequence_checker_);
DCHECK(ValidAttachmentPoint(attachment_point));
Statement statement(GetUniqueStatement("DETACH ?"));
statement.BindString(0, attachment_point);
return statement.Run();
}
SqliteResultCode Database::ExecuteAndReturnResultCode(const char* sql) {
TRACE_EVENT0("sql", "Database::ExecuteAndReturnErrorCode");
DCHECK(sql);
if (!db_) {
DCHECK(poisoned_) << "Illegal use of Database without a db";
return SqliteResultCode::kError;
}
absl::optional<base::ScopedBlockingCall> scoped_blocking_call;
InitScopedBlockingCall(FROM_HERE, &scoped_blocking_call);
SqliteResultCode sqlite_result_code = SqliteResultCode::kOk;
while ((sqlite_result_code == SqliteResultCode::kOk) && *sql) {
sqlite3_stmt* sqlite_statement;
const char* leftover_sql;
sqlite_result_code = ToSqliteResultCode(
sqlite3_prepare_v3(db_, sql, -1, SqlitePrepareFlags(),
&sqlite_statement, &leftover_sql));
#if DCHECK_IS_ON()
if (sqlite_result_code == SqliteResultCode::kError) {
DLOG(ERROR) << "SQL compilation error: " << GetErrorMessage()
<< ". Statement: " << sql;
}
#endif
if (sqlite_result_code != SqliteResultCode::kOk) {
DCHECK_NE(sqlite_result_code, SqliteResultCode::kDone)
<< "sqlite3_prepare_v3() returned unexpected non-error result code";
DCHECK_NE(sqlite_result_code, SqliteResultCode::kRow)
<< "sqlite3_prepare_v3() returned unexpected non-error result code";
break;
}
sql = leftover_sql;
if (!sqlite_statement)
continue;
while (true) {
sqlite_result_code = ToSqliteResultCode(sqlite3_step(sqlite_statement));
if (sqlite_result_code != SqliteResultCode::kRow)
break;
}
sqlite_result_code = ToSqliteResultCode(sqlite3_finalize(sqlite_statement));
DCHECK_NE(sqlite_result_code, SqliteResultCode::kDone)
<< "sqlite3_finalize() returned unexpected non-error result code";
DCHECK_NE(sqlite_result_code, SqliteResultCode::kRow)
<< "sqlite3_finalize() returned unexpected non-error result code";
while (base::IsAsciiWhitespace(*sql)) {
sql++;
}
}
ReleaseCacheMemoryIfNeeded(true);
DCHECK_NE(sqlite_result_code, SqliteResultCode::kDone)
<< __func__ << " about to return unexpected non-error result code";
DCHECK_NE(sqlite_result_code, SqliteResultCode::kRow)
<< __func__ << " about to return unexpected non-error result code";
return sqlite_result_code;
}
bool Database::Execute(const char* sql) {
TRACE_EVENT1("sql", "Database::Execute", "query", TRACE_STR_COPY(sql));
if (!db_) {
DCHECK(poisoned_) << "Illegal use of Database without a db";
return false;
}
SqliteResultCode sqlite_result_code = ExecuteAndReturnResultCode(sql);
if (sqlite_result_code != SqliteResultCode::kOk)
OnSqliteError(ToSqliteErrorCode(sqlite_result_code), nullptr, sql);
return sqlite_result_code == SqliteResultCode::kOk;
}
bool Database::ExecuteWithTimeout(const char* sql, base::TimeDelta timeout) {
TRACE_EVENT0("sql", "Database::ExecuteWithTimeout");
DCHECK_CALLED_ON_VALID_SEQUENCE(sequence_checker_);
if (!db_) {
DCHECK(poisoned_) << "Illegal use of Database without a db";
return false;
}
ScopedBusyTimeout busy_timeout(db_);
busy_timeout.SetTimeout(timeout);
return Execute(sql);
}
bool Database::ExecuteScriptForTesting(const char* sql_script) {
DCHECK(sql_script);
if (!db_) {
DCHECK(poisoned_) << "Illegal use of Database without a db";
return false;
}
absl::optional<base::ScopedBlockingCall> scoped_blocking_call;
InitScopedBlockingCall(FROM_HERE, &scoped_blocking_call);
while (*sql_script) {
sqlite3_stmt* sqlite_statement;
auto sqlite_result_code = ToSqliteResultCode(
sqlite3_prepare_v3(db_, sql_script, -1, SqlitePrepareFlags(),
&sqlite_statement, &sql_script));
if (sqlite_result_code != SqliteResultCode::kOk)
return false;
if (!sqlite_statement) {
return true;
}
do {
sqlite_result_code = ToSqliteResultCode(sqlite3_step(sqlite_statement));
} while (sqlite_result_code == SqliteResultCode::kRow);
sqlite_result_code = ToSqliteResultCode(sqlite3_finalize(sqlite_statement));
if (sqlite_result_code != SqliteResultCode::kOk)
return false;
}
return true;
}
scoped_refptr<Database::StatementRef> Database::GetCachedStatement(
StatementID id,
const char* sql) {
auto it = statement_cache_.find(id);
if (it != statement_cache_.end()) {
DCHECK(it->second->is_valid());
DCHECK_EQ(std::string(sqlite3_sql(it->second->stmt())), std::string(sql))
<< "GetCachedStatement used with same ID but different SQL";
std::ignore = ToSqliteResultCode(sqlite3_reset(it->second->stmt()));
return it->second;
}
scoped_refptr<StatementRef> statement = GetUniqueStatement(sql);
if (statement->is_valid()) {
statement_cache_[id] = statement;
DCHECK_EQ(std::string(sqlite3_sql(statement->stmt())), std::string(sql))
<< "Input SQL does not match SQLite's normalized version";
}
return statement;
}
scoped_refptr<Database::StatementRef> Database::GetUniqueStatement(
const char* sql) {
return GetStatementImpl(sql, false);
}
scoped_refptr<Database::StatementRef> Database::GetReadonlyStatement(
const char* sql) {
return GetStatementImpl(sql, true);
}
scoped_refptr<Database::StatementRef> Database::GetStatementImpl(
const char* sql,
bool is_readonly) {
DCHECK(sql);
if (!db_)
return base::MakeRefCounted<StatementRef>(nullptr, nullptr, poisoned_);
absl::optional<base::ScopedBlockingCall> scoped_blocking_call;
InitScopedBlockingCall(FROM_HERE, &scoped_blocking_call);
#if DCHECK_IS_ON()
const char* unused_sql = nullptr;
const char** unused_sql_ptr = &unused_sql;
#else
constexpr const char** unused_sql_ptr = nullptr;
#endif
sqlite3_stmt* sqlite_statement;
auto sqlite_result_code = ToSqliteResultCode(
sqlite3_prepare_v3(db_, sql, -1, SqlitePrepareFlags(),
&sqlite_statement, unused_sql_ptr));
#if DCHECK_IS_ON()
if (sqlite_result_code == SqliteResultCode::kError) {
DLOG(ERROR) << "SQL compilation error: " << GetErrorMessage()
<< ". Statement: " << sql;
}
#endif
if (sqlite_result_code != SqliteResultCode::kOk) {
DCHECK_NE(sqlite_result_code, SqliteResultCode::kDone)
<< "sqlite3_prepare_v3() returned unexpected non-error result code";
DCHECK_NE(sqlite_result_code, SqliteResultCode::kRow)
<< "sqlite3_prepare_v3() returned unexpected non-error result code";
OnSqliteError(ToSqliteErrorCode(sqlite_result_code), nullptr, sql);
return base::MakeRefCounted<StatementRef>(nullptr, nullptr, false);
}
if (is_readonly && sqlite3_stmt_readonly(sqlite_statement) == 0) {
DLOG(ERROR) << "Readonly SQL statement failed readonly test " << sql;
base::MakeRefCounted<StatementRef>(this, sqlite_statement, true);
return base::MakeRefCounted<StatementRef>(nullptr, nullptr, false);
}
#if DCHECK_IS_ON()
DCHECK_EQ(unused_sql, sql + strlen(sql))
<< "Unused text: " << std::string(unused_sql) << "\n"
<< "in prepared SQL statement: " << std::string(sql);
#endif
DCHECK(sqlite_statement) << "No SQL statement in string: " << sql;
return base::MakeRefCounted<StatementRef>(this, sqlite_statement, true);
}
std::string Database::GetSchema() {
static const char kSql[] =
"SELECT type, name, tbl_name, sql "
"FROM sqlite_schema ORDER BY 1, 2, 3, 4";
Statement statement(GetUniqueStatement(kSql));
std::string schema;
while (statement.Step()) {
schema += statement.ColumnString(0);
schema += '|';
schema += statement.ColumnString(1);
schema += '|';
schema += statement.ColumnString(2);
schema += '|';
schema += statement.ColumnString(3);
schema += '\n';
}
return schema;
}
bool Database::IsSQLValid(const char* sql) {
DCHECK_CALLED_ON_VALID_SEQUENCE(sequence_checker_);
absl::optional<base::ScopedBlockingCall> scoped_blocking_call;
InitScopedBlockingCall(FROM_HERE, &scoped_blocking_call);
if (!db_) {
DCHECK(poisoned_) << "Illegal use of Database without a db";
return false;
}
#if DCHECK_IS_ON()
const char* unused_sql = nullptr;
const char** unused_sql_ptr = &unused_sql;
#else
constexpr const char** unused_sql_ptr = nullptr;
#endif
sqlite3_stmt* sqlite_statement = nullptr;
auto sqlite_result_code = ToSqliteResultCode(
sqlite3_prepare_v3(db_, sql, -1, SqlitePrepareFlags(),
&sqlite_statement, unused_sql_ptr));
if (sqlite_result_code != SqliteResultCode::kOk)
return false;
#if DCHECK_IS_ON()
DCHECK_EQ(unused_sql, sql + strlen(sql))
<< "Unused text: " << std::string(unused_sql) << "\n"
<< "in SQL statement: " << std::string(sql);
#endif
DCHECK(sqlite_statement) << "No SQL statement in string: " << sql;
sqlite_result_code = ToSqliteResultCode(sqlite3_finalize(sqlite_statement));
DCHECK_EQ(sqlite_result_code, SqliteResultCode::kOk)
<< "sqlite3_finalize() failed for valid statement";
return true;
}
bool Database::DoesIndexExist(base::StringPiece index_name) {
DCHECK_CALLED_ON_VALID_SEQUENCE(sequence_checker_);
return DoesSchemaItemExist(index_name, "index");
}
bool Database::DoesTableExist(base::StringPiece table_name) {
DCHECK_CALLED_ON_VALID_SEQUENCE(sequence_checker_);
return DoesSchemaItemExist(table_name, "table");
}
bool Database::DoesViewExist(base::StringPiece view_name) {
DCHECK_CALLED_ON_VALID_SEQUENCE(sequence_checker_);
return DoesSchemaItemExist(view_name, "view");
}
bool Database::DoesSchemaItemExist(base::StringPiece name,
base::StringPiece type) {
DCHECK_CALLED_ON_VALID_SEQUENCE(sequence_checker_);
static const char kSql[] =
"SELECT 1 FROM sqlite_schema WHERE type=? AND name=?";
Statement statement(GetUniqueStatement(kSql));
if (!statement.is_valid()) {
return false;
}
statement.BindString(0, type);
statement.BindString(1, name);
return statement.Step();
}
bool Database::DoesColumnExist(const char* table_name,
const char* column_name) {
DCHECK_CALLED_ON_VALID_SEQUENCE(sequence_checker_);
auto sqlite_result_code = ToSqliteResultCode(sqlite3_table_column_metadata(
db_, "main", table_name, column_name, nullptr,
nullptr, nullptr,
nullptr, nullptr));
return sqlite_result_code == SqliteResultCode::kOk;
}
int64_t Database::GetLastInsertRowId() const {
if (!db_) {
DCHECK(poisoned_) << "Illegal use of Database without a db";
return 0;
}
int64_t last_rowid = sqlite3_last_insert_rowid(db_);
DCHECK(last_rowid != 0) << "No successful INSERT in a table with ROWID";
return last_rowid;
}
int64_t Database::GetLastChangeCount() {
if (!db_) {
DCHECK(poisoned_) << "Illegal use of Database without a db";
return 0;
}
return sqlite3_changes64(db_);
}
int Database::GetMemoryUsage() {
if (!db_) {
DCHECK(poisoned_) << "Illegal use of Database without a db";
return 0;
}
int high_watermark = 0;
int cache_memory = 0, schema_memory = 0, statement_memory = 0;
auto sqlite_result_code = ToSqliteResultCode(sqlite3_db_status(
db_, SQLITE_DBSTATUS_CACHE_USED, &cache_memory, &high_watermark,
0));
DCHECK_EQ(sqlite_result_code, SqliteResultCode::kOk)
<< "sqlite3_db_status(SQLITE_DBSTATUS_CACHE_USED) failed";
#if DCHECK_IS_ON()
int shared_cache_memory = 0;
sqlite_result_code = ToSqliteResultCode(
sqlite3_db_status(db_, SQLITE_DBSTATUS_CACHE_USED_SHARED,
&shared_cache_memory, &high_watermark, 0));
DCHECK_EQ(sqlite_result_code, SqliteResultCode::kOk)
<< "sqlite3_db_status(SQLITE_DBSTATUS_CACHE_USED_SHARED) failed";
DCHECK_EQ(shared_cache_memory, cache_memory)
<< "Memory counting assumes that each database uses a private page cache";
#endif
sqlite_result_code = ToSqliteResultCode(sqlite3_db_status(
db_, SQLITE_DBSTATUS_SCHEMA_USED, &schema_memory, &high_watermark,
0));
DCHECK_EQ(sqlite_result_code, SqliteResultCode::kOk)
<< "sqlite3_db_status(SQLITE_DBSTATUS_SCHEMA_USED) failed";
sqlite_result_code = ToSqliteResultCode(sqlite3_db_status(
db_, SQLITE_DBSTATUS_STMT_USED, &statement_memory, &high_watermark,
0));
DCHECK_EQ(sqlite_result_code, SqliteResultCode::kOk)
<< "sqlite3_db_status(SQLITE_DBSTATUS_STMT_USED) failed";
return cache_memory + schema_memory + statement_memory;
}
int Database::GetErrorCode() const {
if (!db_)
return SQLITE_ERROR;
return sqlite3_extended_errcode(db_);
}
int Database::GetLastErrno() const {
if (!db_)
return -1;
int err = 0;
if (SQLITE_OK != sqlite3_file_control(db_, nullptr, SQLITE_LAST_ERRNO, &err))
return -2;
return err;
}
const char* Database::GetErrorMessage() const {
if (!db_)
return "sql::Database is not opened.";
return sqlite3_errmsg(db_);
}
bool Database::OpenInternal(const std::string& db_file_path,
Database::OpenMode mode) {
DCHECK_CALLED_ON_VALID_SEQUENCE(sequence_checker_);
TRACE_EVENT1("sql", "Database::OpenInternal", "path", db_file_path);
DCHECK(mode != OpenMode::kTemporary || db_file_path.empty())
<< "Temporary databases should be open with an empty file path";
if (mode == OpenMode::kInMemory) {
DCHECK_EQ(db_file_path, kSqliteOpenInMemoryPath)
<< "In-memory databases should be open with the magic :memory: path";
} else {
DCHECK_NE(db_file_path, kSqliteOpenInMemoryPath)
<< "Database file path conflicts with SQLite magic identifier";
}
if (db_) {
DLOG(DCHECK) << "sql::Database is already open.";
return false;
}
absl::optional<base::ScopedBlockingCall> scoped_blocking_call;
InitScopedBlockingCall(FROM_HERE, &scoped_blocking_call);
EnsureSqliteInitialized();
DCHECK(!poisoned_) << "sql::Database is already open.";
poisoned_ = false;
sqlite3_vfs* vfs = VFSWrapper();
const char* vfs_name = (vfs ? vfs->zName : nullptr);
int open_flags = SQLITE_OPEN_READWRITE | SQLITE_OPEN_CREATE |
SQLITE_OPEN_EXRESCODE | SQLITE_OPEN_PRIVATECACHE;
std::string uri_file_path = db_file_path;
if (options_.exclusive_database_file_lock) {
#if BUILDFLAG(IS_WIN)
if (mode == OpenMode::kNone || mode == OpenMode::kRetryOnPoision) {
if (db_file_path.find('?') != std::string::npos) {
return false;
}
open_flags |= SQLITE_OPEN_URI;
uri_file_path = base::StrCat({"file:", db_file_path, "?exclusive=true"});
}
#else
NOTREACHED_NORETURN()
<< "exclusive_database_file_lock is only supported on Windows.";
#endif
}
auto sqlite_result_code = ToSqliteResultCode(
sqlite3_open_v2(uri_file_path.c_str(), &db_, open_flags, vfs_name));
if (sqlite_result_code != SqliteResultCode::kOk) {
OnSqliteError(ToSqliteErrorCode(sqlite_result_code), nullptr,
"-- sqlite3_open_v2()");
bool was_poisoned = poisoned_;
Close();
if (was_poisoned && mode == OpenMode::kRetryOnPoision)
return OpenInternal(db_file_path, OpenMode::kNone);
return false;
}
ConfigureSqliteDatabaseObject();
static_assert(
SQLITE_DEFAULT_LOCKING_MODE == 1,
"Chrome assumes SQLite is configured to default to EXCLUSIVE locking");
if (!options_.exclusive_locking) {
if (!Execute("PRAGMA locking_mode=NORMAL"))
return false;
}
static constexpr char kSqliteSchemaTable[] = "sqlite_schema";
sqlite_result_code = ToSqliteResultCode(sqlite3_table_column_metadata(
db_, kSqliteMainDatabaseName, kSqliteSchemaTable, nullptr,
nullptr, nullptr, nullptr,
nullptr, nullptr));
if (sqlite_result_code != SqliteResultCode::kOk) {
OnSqliteError(ToSqliteErrorCode(sqlite_result_code), nullptr,
"-- sqlite3_table_column_metadata()");
if (poisoned_) {
Close();
if (mode == OpenMode::kRetryOnPoision)
return OpenInternal(db_file_path, OpenMode::kNone);
return false;
}
}
const base::TimeDelta kBusyTimeout = base::Seconds(kBusyTimeoutSeconds);
const std::string page_size_sql =
base::StringPrintf("PRAGMA page_size=%d", options_.page_size);
std::ignore = ExecuteWithTimeout(page_size_sql.c_str(), kBusyTimeout);
if (UseWALMode()) {
std::ignore = Execute("PRAGMA synchronous=NORMAL");
std::ignore = Execute("PRAGMA journal_mode=WAL");
} else {
std::ignore = Execute("PRAGMA journal_mode=TRUNCATE");
}
if (options_.flush_to_media)
std::ignore = Execute("PRAGMA fullfsync=1");
if (options_.cache_size != 0) {
const std::string cache_size_sql = base::StrCat(
{"PRAGMA cache_size=", base::NumberToString(options_.cache_size)});
std::ignore = ExecuteWithTimeout(cache_size_sql.c_str(), kBusyTimeout);
}
static_assert(SQLITE_SECURE_DELETE == 1,
"Chrome assumes secure_delete is on by default.");
sqlite3_file* file = GetSqliteVfsFile();
if (file) {
sqlite3_int64 db_size = 0;
sqlite_result_code =
ToSqliteResultCode(file->pMethods->xFileSize(file, &db_size));
if (sqlite_result_code == SqliteResultCode::kOk && db_size > 16 * 1024) {
int chunk_size = 4 * 1024;
if (db_size > 128 * 1024)
chunk_size = 32 * 1024;
sqlite3_file_control(db_, nullptr, SQLITE_FCNTL_CHUNK_SIZE,
&chunk_size);
}
}
size_t mmap_size = mmap_disabled_ ? 0 : ComputeMmapSizeForOpen();
std::string pragma_mmap_size_sql =
base::StrCat({"PRAGMA mmap_size=", base::NumberToString(mmap_size)});
std::ignore = Execute(pragma_mmap_size_sql.c_str());
mmap_enabled_ = false;
{
Statement pragma_mmap_size(GetUniqueStatement("PRAGMA mmap_size"));
if (pragma_mmap_size.Step() && pragma_mmap_size.ColumnInt64(0) > 0)
mmap_enabled_ = true;
}
DCHECK(!memory_dump_provider_);
memory_dump_provider_ =
std::make_unique<DatabaseMemoryDumpProvider>(db_, histogram_tag_);
base::trace_event::MemoryDumpManager::GetInstance()->RegisterDumpProvider(
memory_dump_provider_.get(), "sql::Database", nullptr);
return true;
}
void Database::ConfigureSqliteDatabaseObject() {
auto sqlite_result_code = ToSqliteResultCode(
sqlite3_db_config(db_, SQLITE_DBCONFIG_DQS_DDL, 0, nullptr));
DCHECK_EQ(sqlite_result_code, SqliteResultCode::kOk)
<< "sqlite3_db_config(SQLITE_DBCONFIG_DQS_DDL) should not fail";
sqlite_result_code = ToSqliteResultCode(
sqlite3_db_config(db_, SQLITE_DBCONFIG_DQS_DML, 0, nullptr));
DCHECK_EQ(sqlite_result_code, SqliteResultCode::kOk)
<< "sqlite3_db_config(SQLITE_DBCONFIG_DQS_DML) should not fail";
sqlite_result_code = ToSqliteResultCode(
sqlite3_db_config(db_, SQLITE_DBCONFIG_ENABLE_FKEY, 0, nullptr));
DCHECK_EQ(sqlite_result_code, SqliteResultCode::kOk)
<< "sqlite3_db_config(SQLITE_DBCONFIG_ENABLE_FKEY) should not fail";
sqlite_result_code = ToSqliteResultCode(
sqlite3_db_config(db_, SQLITE_DBCONFIG_ENABLE_TRIGGER, 0, nullptr));
DCHECK_EQ(sqlite_result_code, SqliteResultCode::kOk)
<< "sqlite3_db_config() should not fail";
sqlite_result_code = ToSqliteResultCode(
sqlite3_db_config(db_, SQLITE_DBCONFIG_ENABLE_VIEW,
options_.enable_views_discouraged ? 1 : 0, nullptr));
DCHECK_EQ(sqlite_result_code, SqliteResultCode::kOk)
<< "sqlite3_db_config() should not fail";
}
void Database::DoRollback() {
TRACE_EVENT0("sql", "Database::DoRollback");
Statement rollback(GetCachedStatement(SQL_FROM_HERE, "ROLLBACK"));
rollback.Run();
if (is_open())
ReleaseCacheMemoryIfNeeded(false);
needs_rollback_ = false;
}
void Database::StatementRefCreated(StatementRef* ref) {
DCHECK(!open_statements_.count(ref))
<< __func__ << " already called with this statement";
open_statements_.insert(ref);
}
void Database::StatementRefDeleted(StatementRef* ref) {
DCHECK(open_statements_.count(ref))
<< __func__ << " called with non-existing statement";
open_statements_.erase(ref);
}
void Database::set_histogram_tag(const std::string& tag) {
DCHECK(!is_open());
histogram_tag_ = tag;
}
void Database::OnSqliteError(SqliteErrorCode sqlite_error_code,
sql::Statement* statement,
const char* sql_statement) {
TRACE_EVENT0("sql", "Database::OnSqliteError");
DCHECK_NE(statement != nullptr, sql_statement != nullptr)
<< __func__ << " should either get a Statement or a raw SQL string";
#if DCHECK_IS_ON()
std::string logged_statement;
if (statement) {
logged_statement = statement->GetSQLStatement();
} else {
logged_statement = sql_statement;
}
std::string database_id = histogram_tag_;
if (database_id.empty())
database_id = DbPath().BaseName().AsUTF8Unsafe();
DVLOG(1) << "SQLite error! This may indicate a programming error!\n"
<< "Database: " << database_id
<< " sqlite_error_code: " << sqlite_error_code
<< " errno: " << GetLastErrno()
<< "\nSQLite error description: " << GetErrorMessage()
<< "\nSQL statement: " << logged_statement;
#endif
std::ignore = IsExpectedSqliteError(static_cast<int>(sqlite_error_code));
if (!error_callback_.is_null()) {
ErrorCallback error_callback_copy = error_callback_;
error_callback_copy.Run(static_cast<int>(sqlite_error_code), statement);
return;
}
}
std::string Database::GetDiagnosticInfo(int sqlite_error_code,
Statement* statement,
DatabaseDiagnostics* diagnostics) {
DCHECK_NE(sqlite_error_code, SQLITE_OK)
<< __func__ << " received non-error result code";
DCHECK_NE(sqlite_error_code, SQLITE_DONE)
<< __func__ << " received non-error result code";
DCHECK_NE(sqlite_error_code, SQLITE_ROW)
<< __func__ << " received non-error result code";
ErrorCallback original_callback = std::move(error_callback_);
error_callback_.Reset();
if (diagnostics) {
diagnostics->reported_sqlite_error_code = sqlite_error_code;
}
const int primary_error_code = sqlite_error_code & 0xff;
std::string result =
(primary_error_code == SQLITE_CORRUPT)
? CollectCorruptionInfo()
: CollectErrorInfo(sqlite_error_code, statement, diagnostics);
const bool has_valid_header = Execute("PRAGMA auto_vacuum");
const bool has_valid_schema = Execute("SELECT COUNT(*) FROM sqlite_schema");
error_callback_ = std::move(original_callback);
base::StringAppendF(&result, "Has valid header: %s\n",
(has_valid_header ? "Yes" : "No"));
base::StringAppendF(&result, "Has valid schema: %s\n",
(has_valid_schema ? "Yes" : "No"));
if (diagnostics) {
diagnostics->has_valid_header = has_valid_header;
diagnostics->has_valid_schema = has_valid_schema;
}
return result;
}
bool Database::FullIntegrityCheck(std::vector<std::string>* messages) {
DCHECK_CALLED_ON_VALID_SEQUENCE(sequence_checker_);
messages->clear();
if (!Execute("PRAGMA writable_schema=ON")) {
messages->push_back("PRAGMA writable_schema=ON failed");
}
sqlite3_stmt* statement = nullptr;
constexpr char kIntegrityCheckSql[] = "PRAGMA integrity_check";
const auto prepare_result_code = ToSqliteResultCode(
sqlite3_prepare_v3(db_, kIntegrityCheckSql, sizeof(kIntegrityCheckSql),
SqlitePrepareFlags(), &statement, nullptr));
if (prepare_result_code != SqliteResultCode::kOk)
return false;
std::vector<std::string> result_lines;
while (ToSqliteResultCode(sqlite3_step(statement)) ==
SqliteResultCode::kRow) {
const uint8_t* row = chrome_sqlite3_column_text(statement, 0);
DCHECK(row) << "PRAGMA integrity_check should never return NULL rows";
const int row_size = sqlite3_column_bytes(statement, 0);
base::StringPiece row_string(reinterpret_cast<const char*>(row), row_size);
const std::vector<base::StringPiece> row_lines = base::SplitStringPiece(
row_string, "\n", base::TRIM_WHITESPACE, base::SPLIT_WANT_ALL);
for (base::StringPiece row_line : row_lines)
result_lines.emplace_back(row_line);
}
const auto finalize_result_code =
ToSqliteResultCode(sqlite3_finalize(statement));
const bool success = (result_lines.size() > 0) ||
(finalize_result_code == SqliteResultCode::kOk);
*messages = std::move(result_lines);
std::ignore = Execute("PRAGMA writable_schema=OFF");
return success;
}
bool Database::ReportMemoryUsage(base::trace_event::ProcessMemoryDump* pmd,
const std::string& dump_name) {
return memory_dump_provider_ &&
memory_dump_provider_->ReportMemoryUsage(pmd, dump_name);
}
bool Database::UseWALMode() const {
#if BUILDFLAG(IS_FUCHSIA)
return options_.wal_mode && options_.exclusive_locking;
#else
return options_.wal_mode;
#endif
}
bool Database::CheckpointDatabase() {
DCHECK_CALLED_ON_VALID_SEQUENCE(sequence_checker_);
absl::optional<base::ScopedBlockingCall> scoped_blocking_call;
InitScopedBlockingCall(FROM_HERE, &scoped_blocking_call);
auto sqlite_result_code = ToSqliteResultCode(sqlite3_wal_checkpoint_v2(
db_, kSqliteMainDatabaseName, SQLITE_CHECKPOINT_PASSIVE,
nullptr, nullptr));
return sqlite_result_code == SqliteResultCode::kOk;
}
}