185

So I have a in my Postgresql:

TAG_TABLE
==========================
id            tag_name       
--------------------------
1             aaa
2             bbb
3             ccc

To simplify my problem, What I want to do is SELECT 'id' from TAG_TABLE when a string "aaaaaaaa" contains the 'tag_name'. So ideally, it should only return "1", which is the ID for tag name 'aaa'

This is what I am doing so far:

SELECT id FROM TAG_TABLE WHERE 'aaaaaaaaaaa' LIKE '%tag_name%'

But obviously, this does not work, since the postgres thinks that '%tag_name%' means a pattern containing the substring 'tag_name' instead of the actual data value under that column.

How do I pass the tag_name to the pattern??

5 Answers 5

206

You should use tag_name outside of quotes; then it's interpreted as a field of the record. Concatenate using '||' with the literal percent signs:

SELECT id FROM TAG_TABLE WHERE 'aaaaaaaa' LIKE '%' || tag_name || '%';
7
  • 8
    what hapoens when tag_name is "; drop table TAG_TABLE; --"? Apr 27, 2014 at 10:21
  • 31
    @Denis: Nothing happens. You get no row, because the WHERE clause evaluates to FALSE. The statement is not dynamic, only values are concatenated, no chance for SQL injection. Apr 27, 2014 at 10:48
  • 1
    shouldn't be the order of aaaa and tag_name reversed? i mean that you should put a column name after where
    – user151496
    May 11, 2015 at 15:10
  • @user151496 No because the pattern has to go on the right side of the LIKE keyword.
    – jpmc26
    Jun 21, 2016 at 0:10
  • 8
    Beware that using variables in a LIKE pattern may have unintended consequences when those variables contain underscores (_) or percent characters (%). It may be necessary to escape these characters, for example with this function: CREATE OR REPLACE FUNCTION quote_for_like(text) RETURNS text LANGUAGE SQL IMMUTABLE AS $$ SELECT regexp_replace($1, '([\%_])', '\\\1', 'g'); $$; (from user MatheusOl from the #postgresql IRC channel on Freenode). Sep 13, 2016 at 15:11
82

A proper way to search for a substring is to use position function instead of like expression, which requires escaping %, _ and an escape character (\ by default):

SELECT id FROM TAG_TABLE WHERE position(tag_name in 'aaaaaaaaaaa')>0;
3
  • 2
    This is the right way to do this. No one should use the hacky regex approaches.
    – khol
    Apr 1, 2020 at 19:33
  • 1
    LIKE and ILIKE can use gin indices. position cannot. Aug 2, 2020 at 11:16
  • 1
    @Grigory There must’ve been a typo in your position. Mar 24, 2021 at 23:31
71

I personally prefer the simpler syntax of the ~ operator.

SELECT id FROM TAG_TABLE WHERE 'aaaaaaaa' ~ tag_name;

Worth reading through Difference between LIKE and ~ in Postgres to understand the difference. `

2
23

In addition to the solution with 'aaaaaaaa' LIKE '%' || tag_name || '%' there are position (reversed order of args) and strpos.

SELECT id FROM TAG_TABLE WHERE strpos('aaaaaaaa', tag_name) > 0

Besides what is more efficient (LIKE looks less efficient, but an index might change things), there is a very minor issue with LIKE: tag_name of course should not contain % and especially _ (single char wildcard), to give no false positives.

1
  • 2
    I had to replace strpos with position, as strpos always returned 0 for me
    – jcf
    Jan 21, 2020 at 16:32
-4
SELECT id FROM TAG_TABLE WHERE 'aaaaaaaa' LIKE '%' || "tag_name" || '%';

tag_name should be in quotation otherwise it will give error as tag_name doest not exist

3
  • 2
    This is exactly the opposite of the accepted answer. You are concatenating as string while it needs to be a column...
    – Suraj Rao
    Jul 1, 2019 at 8:07
  • 3
    double quotes still reference a column, so this would just be identical Feb 4, 2021 at 19:25
  • ⸻in cases where your column name has spaces. May 8, 2021 at 22:22

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.