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I'm getting this error no matter what with python and sqlite.

  File "addbooks.py", line 77, in saveBook
  conn.commit()
  sqlite3.OperationalError: cannot commit transaction - SQL statements in progress

The code looks like this:

    conn = sqlite3.connect(fname)
cread = conn.cursor()

cread.execute('''select book_text from table''')
while True:
    row = cread.fetchone()
    if row is None:
        break
    ....
    for entry in getEntries(doc):
        saveBook(entry, conn)

Can't do a fetchall() because table and column size are big, and the memory is scarce.

What can be done without resorting to dirty tricks(as getting the rowids in memory, which would probably fit, and then selecting the rows one by one)?.

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3 Answers 3

The problem is that you've left the connection in auto-commit mode. Wrap a single transaction around the whole lot so that a commit only happens after you've done all the updates, and it should all work fine.

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The connection isn't in auto-commit mode, I've tried to set the isolation_level explicitely, and the same happens. Doing a single commit at the end of the processing isn't an option because there are "partial rollbacks" inside saveBooks that should only rollback some changes not the whole work done (and probably, what doesn't allow me to commit, won't let me "rollback") –  Samuel May 16 '10 at 19:40
    
@Samuel: You could try using a SAVEPOINT which I think is a sort of half-way checkpoint… but I warn that I have never tried them and so I know only what little I've read about them. –  Donal Fellows May 16 '10 at 21:07

Don't know if this count as "dirty tricks" too ;-)

My solution to this problem is to use SELECT... LIMIT clause, assumed you have primary key integer field id

current_id = 0
while True:    
    cread.execute('''select book_text from table where id > %s limit 2''' % current_id)
    results = cread.fetchall()
    if results is None:
        break;
    for row in results:
         ... (save book) ...
         current_id = row.id
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Yeah, it's a bit tricky... it may work, though :-) –  Samuel May 16 '10 at 19:42

The problem is that there should be no more than a single active cursor for a connection.

The solution is to use a new connection for the updates.

Unfortunatelly I do not remember the exact place in docs where I read it, so I can not prove it.

UPD:

The following code works on my Windows XP:

import sqlite3
import os
conn1 = sqlite3.connect('test.db')
cursor1 = conn1.cursor()
conn2 = sqlite3.connect('test.db')
cursor2 = conn2.cursor()


cursor1.execute("CREATE TABLE my_table (a INT, b TEXT)")
cursor1.executemany("INSERT INTO my_table (a, b) VALUES (?, NULL);", zip(range(5)))
conn1.commit()

cursor1.execute("SELECT * FROM my_table")
for a, b in cursor1:
    cursor2.execute("UPDATE my_table SET b='updated' WHERE a = ?", (a, ))

conn2.commit()

print "results:"
print 10 * '-'
cursor1.execute("SELECT * FROM my_table")
for a, b in cursor1:
    print a, b
cursor1.close()
conn1.close()
cursor2.close()
conn2.close()
os.unlink('test.db')

And returns the following as expected:

results:
----------
0 updated
1 updated
2 updated
3 updated
4 updated

If I move the conn2.commit() into the for loop, I get the same error as you mention:

Traceback (most recent call last):
  File "concurent.py", line 16, in <module>
    conn2.commit()
sqlite3.OperationalError: database is locked

Thus, the solution is to commit once at the end instead of committing after each line.

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I also tried that, but got "database is locked" errors or the like. Anyway, I took the hackish solution and moved on. –  Samuel May 24 '10 at 16:17
    
@Samuel: I updated my answer with an example. –  newtover May 24 '10 at 17:26

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