0

I'm trying to create a new table as a UNION of all rows of two existing tables with identical columns:

CREATE TABLE table3 AS
(SELECT * from table1
UNION
SELECT * from table2);

After running for a while, I get "Connection to the server has been lost." Running EXPLAIN, the operation has quite high cost:

Unique  (cost=51951688.65..57110689.45 rows=257950040 width=36)
  ->  Sort  (cost=51951688.65..52596563.75 rows=257950040 width=36)
        Sort Key: table1.id, table1.stid, table1.e5, table1.e10, table1.diesel, table1.date, table1.changed
        ->  Append  (cost=0.00..8859500.00 rows=257950040 width=36)
              ->  Seq Scan on gas_prices  (cost=0.00..1282341.56 rows=66285256 width=36)
              ->  Seq Scan on gas_prices_1620  (cost=0.00..3707907.84 rows=191664784 width=36)
JIT:
  Functions: 1
  Options: Inlining true, Optimization true, Expressions true, Deforming true

So it's the sorting that's taking up a lot of resources. I have set memory settings in postgresql.conf higher than default, but I'm only running on a system with 16gb of memory. I suspect that re-indexing the existing tables could help, however I'm not sure which index to make. There is no private key on either table: No single or combination of column(s) is unique (except all columns at once).

How can I get the query to work? Thanks for your help.

0

Use UNION ALL instead of UNION.

Best regards,
Bjarni

  • Thanks for your answer, it works! Ain't I likely to run into the same resource issue when I then go on to check for/delete duplicate records in the newly created table? – doeeehunt Feb 14 at 16:00
  • Well - you stated the rows were all different it must be a limited set of columns that count as duplicates and that's in your favour. You'll need a whole lot of records to have group by ... having ... choke for example. – Bjarni Ragnarsson Feb 14 at 17:59

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.