102

I have a table in a PostgreSQL 8.3.8 database, which has no keys/constraints on it, and has multiple rows with exactly the same values.

I would like to remove all duplicates and keep only 1 copy of each row.

There is one column in particular (named "key") which may be used to identify duplicates (i.e. there should only exist one entry for each distinct "key").

How can I do this? (ideally with a single SQL command) Speed is not a problem in this case (there are only a few rows).

74
DELETE FROM dupes a
WHERE a.ctid <> (SELECT min(b.ctid)
                 FROM   dupes b
                 WHERE  a.key = b.key);
  • 12
    Don't use it, it is too slow! – Paweł Malisak Feb 6 '17 at 21:49
  • 4
    While this solution definitely works, @rapimo 's solution below executes much faster. I believe this has to do with the inner select statement here getting executed N times (for all N rows in the dupes table) rather than the grouping that's going on in the other solution. – David Sep 12 '17 at 12:36
  • For huge tables (several million records) this one actually fits in memory, unlike @rapimo's solution. So in those cases this is the faster one (no swapping). – Giel Nov 11 '19 at 10:21
  • Adding explanation: it works because ctid is a special postgres column indicating the physical location of the row. You can use this as a unique id even if your table does not possess a unique id. postgresql.org/docs/8.2/ddl-system-columns.html – Eric Burel Dec 4 '19 at 20:39
164

A faster solution is

DELETE FROM dups a USING (
      SELECT MIN(ctid) as ctid, key
        FROM dups 
        GROUP BY key HAVING COUNT(*) > 1
      ) b
      WHERE a.key = b.key 
      AND a.ctid <> b.ctid
  • 17
    Why is it faster than a_horse_with_no_name's solution? – Roberto Nov 26 '13 at 18:08
  • 3
    This is faster because this runs only 2 queries. First one to select all the duplicates, then one to delete all items from the table. The query by @a_horse_with_no_name does a query to see if it matches any other for every single item in the table. – Aeolun May 28 '18 at 8:44
  • 2
    what is ctid? – techkuz Feb 25 '19 at 9:46
  • 3
    from docs: ctid. The physical location of the row version within its table. Note that although the ctid can be used to locate the row version very quickly, a row's ctid will change each time it is updated or moved by VACUUM FULL. Therefore ctid is useless as a long-term row identifier. – Saim May 23 '19 at 21:30
  • 1
    Seems like this doesn't work when having more than 2 duplicate rows, because it deletes only one duplicate at time. – Daria Jul 22 '19 at 11:09
63

This is fast and concise:

DELETE FROM dupes T1
    USING   dupes T2
WHERE   T1.ctid < T2.ctid  -- delete the older versions
    AND T1.key  = T2.key;  -- add more columns if needed

See also my answer at How to delete duplicate rows without unique identifier which includes more information.

  • what does ct stand for? count? – techkuz Mar 19 '19 at 7:46
  • 3
    @trthhrtz ctid points to the physical location of the record in the table. Contrary to what I wrote at the time in the comment, using the less than operator does not necessarily point to the older version as the ct can wrap around and a value with a lower ctid might actually be newer. – isapir Jul 15 '19 at 21:54
15

I tried this:

DELETE FROM tablename
WHERE id IN (SELECT id
              FROM (SELECT id,
                             ROW_NUMBER() OVER (partition BY column1, column2, column3 ORDER BY id) AS rnum
                     FROM tablename) t
              WHERE t.rnum > 1);

provided by Postgres wiki:

https://wiki.postgresql.org/wiki/Deleting_duplicates

  • Any idea of the performance compared to @rapimo's answer and the accepted one(@a_horse_with_no_name)? – tuxayo Sep 6 '17 at 11:16
  • 3
    This one won't work if, like the questions states, all columns are identical, the id included. – ibizaman Nov 1 '17 at 20:35
7

I had to create my own version. Version written by @a_horse_with_no_name is way too slow on my table (21M rows). And @rapimo simply doesn't delete dups.

Here is what I use on PostgreSQL 9.5

DELETE FROM your_table
WHERE ctid IN (
  SELECT unnest(array_remove(all_ctids, actid))
  FROM (
         SELECT
           min(b.ctid)     AS actid,
           array_agg(ctid) AS all_ctids
         FROM your_table b
         GROUP BY key1, key2, key3, key4
         HAVING count(*) > 1) c);
6

I would use a temporary table:

create table tab_temp as
select distinct f1, f2, f3, fn
  from tab;

Then, delete tab and rename tab_temp into tab.

  • 8
    This approach doesn't account for triggers, indexes, and statistics. Certainly you could add them, but it adds a lot more work too. – Jordan Dec 14 '15 at 18:16
  • Not everyone needs that. This approach is extremely fast and worked much better than the rest on 200k emails (varchar 250) without indexes. – Sergey Telshevsky Nov 6 '17 at 21:36
  • Full code: DROP TABLE IF EXISTS tmp; CREATE TABLE tmp as ( SELECT * from (SELECT DISTINCT * FROM your_table) as t ); DELETE from your_table; INSERT INTO your_table SELECT * from tmp; DROP TABLE tmp; – Eric Burel Dec 4 '19 at 20:41
0

This worked well for me. I had a table, terms, that contained duplicate values. Ran a query to populate a temp table with all of the duplicate rows. Then I ran the a delete statement with those ids in the temp table. value is the column that contained the duplicates.

        CREATE TEMP TABLE dupids AS
        select id from (
                    select value, id, row_number() 
over (partition by value order by value) 
    as rownum from terms
                  ) tmp
                  where rownum >= 2;

delete from [table] where id in (select id from dupids)
0

Another approach (works only if you have any unique field like id in your table) to find all unique ids by columns and remove other ids that are not in unique list

DELETE
FROM users
WHERE users.id NOT IN (SELECT DISTINCT ON (username, email) id FROM users);
  • The thing is, in my question the tables had no unique ids; the "duplicates" were multiple rows with exactly the same values on all columns. – André Morujão Dec 11 '19 at 16:16
  • Right, I added some notes – Zaytsev Dmitry Dec 11 '19 at 17:26

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