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I have rather simple query with big total runtime. Can you advise me how can I optimize it?

Here is explain analyze: http://explain.depesz.com/s/9xC5

query:

select wpis_id from spoleczniak_oznaczone
where etykieta_id in(
  select tag_id
  from spoleczniak_subskrypcje
  where postac_id = 376476
  );

spoleczniak_oznaczone:

 Column    |  Type   |                             Modifiers
-------------+---------+--------------------------------------------------------------------
 id          | integer | not null default nextval('spoleczniak_oznaczone_id_seq'::regclass)
 etykieta_id | integer | not null
 wpis_id     | integer | not null
Indexes:
    "spoleczniak_oznaczone_pkey" PRIMARY KEY, btree (id)
    "spoleczniak_oznaczone_etykieta_id" btree (etykieta_id)
    "spoleczniak_oznaczone_wpis_id" btree (wpis_id)
Foreign-key constraints:
    "spoleczniak_oznaczone_etykieta_id_fkey" FOREIGN KEY (etykieta_id) REFERENCES    spoleczniak_etykiety(id) DEFERRABLE INITIALLY DEFERRED
    "spoleczniak_oznaczone_wpis_id_fkey" FOREIGN KEY (wpis_id) REFERENCES spoleczniak_tablica(id) DEFERRABLE INITIALLY DEFERRED

spoleczniak_subskrypcje:

  Column   |  Type   |                              Modifiers
-----------+---------+----------------------------------------------------------------------
 id        | integer | not null default nextval('spoleczniak_subskrypcje_id_seq'::regclass)
 postac_id | integer | not null
 tag_id    | integer | not null
Indexes:
    "spoleczniak_subskrypcje_pkey" PRIMARY KEY, btree (id)
    "spoleczniak_subskrypcje_postac_id" btree (postac_id)
    "spoleczniak_subskrypcje_postac_tag" btree (postac_id, tag_id)
    "spoleczniak_subskrypcje_tag_id" btree (tag_id)
Foreign-key constraints:
    "spoleczniak_subskrypcje_postac_id_fkey" FOREIGN KEY (postac_id) REFERENCES postac_postacie(id) DEFERRABLE INITIALLY DEFERRED
    "spoleczniak_subskrypcje_tag_id_fkey" FOREIGN KEY (tag_id) REFERENCES spoleczniak_etykiety(id) DEFERRABLE INITIALLY DEFERRED
share|improve this question
    
Please also add the actual query. –  a_horse_with_no_name Mar 19 at 14:27
    
Oh, sorry. Done. :) –  user3437500 Mar 19 at 14:29
1  
... and the resulting query plan, please... Does your table have valid statistics ? did you perform any tuning on the database settings ? –  wildplasser Mar 19 at 14:44
    
@wildplasser: the query plan is there. A link to explain.depesz.com –  a_horse_with_no_name Mar 19 at 15:01
    
Which Postgres version is that? On 9.2 I would have expected it to make use of an index only scan on the index spoleczniak_subskrypcje_postac_tag. Also your row estimates are a bit off. So maybe it is a problem with statistics –  a_horse_with_no_name Mar 19 at 15:13

4 Answers 4

From the Query Plan, most of the time seems to be involved in working out the IN part of the where clause. Proper indexes seem to be used.

select o.wpis_id 
from spoleczniak_oznaczone o
inner join spoleczniak_subskrypcje s on s.tag_id = o.etykieta_id
where s.postac_id = 376476

...looks to be functionally the same but tries it in a different way and could generate a different query plan.

Also, as @wildplasser says, make sure statistics are up-to-date, and indexes defragmented (don't know how to do those in PostgreSQL myself).

EDIT: as @a_horse_with_no_name says in the comment below, the query I've suggested can return duplicates where the original wouldn't. Without knowing your data I don't know whether it will or not. That's a warning to bear in mind.

share|improve this answer
    
A join is not necessarily a replacement for an IN condition. –  a_horse_with_no_name Mar 19 at 15:00
    
Not always, no; but in this case I think it is. Unless I've missed something.... –  simon at rcl Mar 19 at 15:01
2  
I don't think so. postac_id is not unique, neither is tag_id. So a single postac_id could return the same tag_id multiple times and then the result of the join will be different to the result of an IN query. –  a_horse_with_no_name Mar 19 at 15:04
    
...and I missed something. You're right - Thanks! I'll annotate the answer. –  simon at rcl Mar 19 at 15:08
    
@a_horse_with_no_name: in this case you are wrong: in (...) removes duplicates (and NULLs) from the subquery's result before using it in the main query. –  wildplasser Mar 19 at 18:13

Is there a reason you preferred using in and a subquery to:

select wpis_id 
from spoleczniak_oznaczone, spoleczniak_subskrypcje
where etykieta_id = tag_id 
and postac_id = 376476

I would guess a simple join might be simpler for the query optimiser.

share|improve this answer
    
No luck. explain.depesz.com/s/kQE –  user3437500 Mar 19 at 16:03
    
To the OP: If you read the plan carefully, you could see that your statistics are off. Run vacuum analyze; on both tables. –  wildplasser Mar 19 at 16:12
    
I did. Before running that query. –  user3437500 Mar 19 at 16:15
    
Seems illogical: the estimated number of rows in the subquery is still terribly wrong. –  wildplasser Mar 19 at 16:18

This should be equivalent (and in most cases will generate the same query plan)

SELECT so.wpis_id
FROM spoleczniak_oznaczone so
WHERE EXISTS (
  SELECT *
  FROM spoleczniak_subskrypcje ss
  WHERE ss.tag_id= so.etykieta_id
  AND so.postac_id = 376476
  );
share|improve this answer
    
Yup. explain.depesz.com/s/vLwN (btw. ss.postac_id :)) –  user3437500 Mar 19 at 16:45

Try replacing this index:

"spoleczniak_oznaczone_etykieta_id" btree (etykieta_id)

with an index on (etykieta_id, wpis_id). This way DB could perform index-only scan (without fetching whole rows from table which costs access time).

share|improve this answer
    
It's faster, but not fast enough (original query ~800 ms, after this index change ~500 ms). –  user3437500 Mar 20 at 5:49
    
Can you attach explain plan with BUFFERS parameter? Your query returns >500.000 rows and this may be the cause. –  Michał Kołodziejski Mar 20 at 7:45
    
explain.depesz.com/s/eau7 –  user3437500 Mar 20 at 8:04
    
It does now perform index-only scan, but it needs to loop 23 times through it. Shouldn't a pair (postac_id, tag_id) in spoleczniak_subskrypcje be unique? If I get it correctly, this table is for people's subscriptions on tags, right? If that's true, then you may try @simonatrcl query - replace IN (...) with join. This may eliminate nested loop. –  Michał Kołodziejski Mar 20 at 9:29
    
Unfortunately not - explain.depesz.com/s/McMk –  user3437500 Mar 20 at 10:58

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