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Why does the following Code not work:

#include <stdio.h>
#include <sqlite3.h>

int main(void)
{
    sqlite3 *pDb;
    sqlite3_stmt *stmt;
    char *errmsg;

    sqlite3_open(":memory:", &pDb);

    sqlite3_exec(pDb, "CREATE TABLE Test(a INTEGER)", NULL, NULL, NULL);
    sqlite3_exec(pDb, "INSERT INTO Test(a) VALUES(1)", NULL, NULL, NULL);

    sqlite3_prepare_v2(pDb, "SELECT * FROM Test", -1, &stmt, NULL);
    sqlite3_step(stmt);

    sqlite3_exec(pDb, "ATTACH 'Test.db' as Other;", NULL, NULL, NULL);

    sqlite3_exec(pDb, "DETACH Other;", NULL, NULL, &errmsg);
    printf("error: %s\n", errmsg);
    return 0;
}

Output:

error: database Other is locked

If I do a sqlite3_reset(stmt) after the sqlite3_step(stmt), it works.

Why does an open statement on an unrelated database lock the "Other" database? I couldn't find an explanation in the docs.

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1 Answer 1

up vote 1 down vote accepted

The transaction documentation says:

An implicit transaction (a transaction that is started automatically, not a transaction started by BEGIN) is committed automatically when the last active statement finishes. A statement finishes when its prepared statement is reset or finalized.

Transactions always affect all attached databases, so an open transaction will keep all databases locked.

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Thanks for shedding some light on this. That's really hidden. I guess it's a good practice to reset() all statements once they're no longer needed... –  Geier Mar 21 '13 at 8:33

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