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How can I determine if a table exists using the Psycopg2 Python library? I want a true or false boolean.

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4 Answers 4

up vote 26 down vote accepted

How about:

>>> import psycopg2
>>> conn = psycopg2.connect("dbname='mydb' user='username' host='localhost' password='foobar'")
>>> cur = conn.cursor()
>>> cur.execute("select * from information_schema.tables where table_name=%s", ('mytable',))
>>> bool(cur.rowcount)
True

An alternative using EXISTS is better in that it doesn't require that all rows be retrieved, but merely that at least one such row exists:

>>> cur.execute("select exists(select * from information_schema.tables where table_name=%s)", ('mytable',))
>>> cur.fetchone()[0]
True
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1  
Close but better to use exists(). :) –  jathanism Dec 9 '09 at 14:36
1  
I added that, but why is it "better"? –  Peter Hansen Dec 9 '09 at 14:41
1  
@Peter It is better because it only needs to find the first row matching the where condition while rowcount will have to retrieve all rows. –  Clodoaldo Neto May 11 '13 at 16:39

I don't know the psycopg2 lib specifically, but the following query can be used to check for existence of a table:

SELECT EXISTS(SELECT 1 FROM information_schema.tables 
              WHERE table_catalog='DB_NAME' AND 
                    table_schema='public' AND 
                    table_name='TABLE_NAME');

The advantage of using information_schema over selecting directly from the pg_* tables is some degree of portability of the query.

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For default table_catalog use ?? –  Peter Krauss Jan 4 at 10:27
select exists(select relname from pg_class 
where relname = 'mytablename' and relkind='r');
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not works for relname with schema, like 'myschema.tabname' –  Peter Krauss Jan 4 at 10:21

The first answer did not work for me. I found success checking for the relation in pg_class:

def table_exists(con, table_str):

exists = False
try:
    cur = con.cursor()
    cur.execute("select exists(select relname from pg_class where relname='" + table_str + "')")
    exists = cur.fetchone()[0]
    print exists
    cur.close()
except psycopg2.Error as e:
    print e
return exists
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