61

I'm writing a function in PL/pgSQL, and I'm looking for the simplest way to check if a row exists.
Right now I'm SELECTing an integer into a boolean, which doesn't really work. I'm not experienced with PL/pgSQL enough yet to know the best way of doing this.

Here's part of my function:

DECLARE person_exists boolean;
BEGIN

person_exists := FALSE;

SELECT "person_id" INTO person_exists
  FROM "people" p
WHERE p.person_id = my_person_id
LIMIT 1;

IF person_exists THEN
  -- Do something
END IF;

END; $$ LANGUAGE plpgsql;

Update - I'm doing something like this for now:

DECLARE person_exists integer;
BEGIN

person_exists := 0;

SELECT count("person_id") INTO person_exists
  FROM "people" p
WHERE p.person_id = my_person_id
LIMIT 1;

IF person_exists < 1 THEN
  -- Do something
END IF;
170

Simpler, shorter, faster: EXISTS.

IF EXISTS (SELECT 1 FROM people p WHERE p.person_id = my_person_id) THEN
  -- do something
END IF;

The query planner can stop at the first row found - as opposed to count(), which will scan all (matching) rows regardless. Makes a difference with big tables. The difference is small for a condition on a unique column: only one row qualifies and there is an index to look it up quickly.

Improved with input from @a_horse_with_no_name in the comments.

You can just use an empty SELECT list:

IF EXISTS (SELECT FROM people p WHERE p.person_id = my_person_id) THEN ...

The SELECT list has no influence on the result of EXISTS. Only the existence of at least one qualifying row matters.

13
  • Good point! (Although person_id is probably the primary key, so it would only "scan" a single table using an index lookup). Aug 9 '12 at 22:20
  • 3
    A count(*) with a condition (especially not on the PK column) will not trigger a sequential scan. Aug 9 '12 at 22:32
  • 1
    @a_horse_with_no_name: You are right of course! I was thinking of a plain count - as you can see from my example in the comment. I improved my answer with your input, thanks. Aug 9 '12 at 22:40
  • 1
    If you want to use this outside of a function the syntax for how to do so is here: stackoverflow.com/a/20957691/908677 Dec 14 '15 at 19:49
  • 2
    @EugenKonkov: I am leading with that: Simpler, shorter, faster. Feb 20 '19 at 2:40
5

Use count(*)

declare 
   cnt integer;
begin
  SELECT count(*) INTO cnt
  FROM people
  WHERE person_id = my_person_id;

IF cnt > 0 THEN
  -- Do something
END IF;

Edit (for the downvoter who didn't read the statement and others who might be doing something similar)

The solution is only effective because there is a where clause on a column (and the name of the column suggests that its the primary key - so the where clause is highly effective)

Because of that where clause there is no need to use a LIMIT or something else to test the presence of a row that is identified by its primary key. It is an effective way to test this.

7
  • 4
    Do not use COUNT for this purpose - it is performance issue - or you have to use derived table SELECT COUNT(*) FROM (SELECT * FROM people LIMIT 1) x Aug 10 '12 at 4:23
  • 2
    @PavelStehule: even when there is a where condition on the primary key? I can't imagine how that would possibly be much slower than your statement. The execution plan is nearly identical for both solutions. Aug 10 '12 at 6:15
  • @a_horse_with_no_name when it filter to PK, then it is ok on 99%. In this case PL/pgSQL should to evaluate 2 SELECTs instead one. But this pattern is just risky. Some people don't do verification so filter is to PK Aug 10 '12 at 6:19
  • @PavelStehule: I added an explanation for this. I compared the plans for Erwin's and mine solution and there is no (real) difference. Due to the where on an indexed column this is efficient. Aug 10 '12 at 6:25
  • 4
    @a_horse_with_no_name, exactly - it is "trivial" SELECT (about 10x faster than normal SELECT), but it is SELECT still. if you like to see real face of plpgsql code, use #option dump -- see first code list from article postgres.cz/wiki/PL/pgSQL_efektivn%C4%9B (sorry, article is in czech, but samples are in English) - translate.google.com/… Aug 10 '12 at 7:14

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.