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I have a simple list of ~25 words. I have a varchar field in PostgreSQL, let's say that list is ['foo', 'bar', 'baz']. I want to find any row in my table that has any of those words. This will work, but I'd like something more elegant.

select *
from table
where (lower(value) like '%foo%' or lower(value) like '%bar%' or lower(value) like '%baz%')
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LIKE '%foo%' is already not elegant solution. –  zerkms Feb 7 '11 at 23:46
2  
I agree. That would be why I'm asking for a more elegant one. –  chmullig Feb 7 '11 at 23:47
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3 Answers 3

up vote 25 down vote accepted

You can use Postgres' SIMILAR TO operator which supports alternations, i.e.

select * from table where lower(value) similar to '%(foo|bar|baz)%';
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Regex might speed this up a bit: dba.stackexchange.com/questions/10694/… –  user880772 Jul 16 '13 at 15:07
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PostgreSQL also supports full POSIX regular expressions:

select * from table where value ~* 'foo|bar|baz';

The ~* is for a case insensitive match, ~ is case sensitive.

Another option is to use ANY:

select * from table where value  like any (array['%foo%', '%bar%', '%baz%']);
select * from table where value ilike any (array['%foo%', '%bar%', '%baz%']);

You can use ANY with any operator that yields a boolean. I suspect that the regex options would be quicker but ANY is a useful tool to have in your toolbox.

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+1 because it's useful none the less. Thanks. –  chmullig Feb 8 '11 at 17:23
1  
Thanks, best to stick with the standard SIMILAR TO unless you need full POSIX regular expressions and don't mind tying yourself to PostgreSQL. –  mu is too short Feb 8 '11 at 20:33
    
Less verbose than the 'similar to' answer. Thanks! –  IAmNaN May 4 '13 at 1:36
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One 'elegant' solution would be to use full text search: http://www.postgresql.org/docs/9.0/interactive/textsearch.html. Then you would use full text search queries.

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