43

Hey my first question on SO! Anywho...

Still relatively a newb at SQL so I think I might be missing something here. My question is I currently have a table full of phone numbers. I want to have a query where I search for phone numbers that are similar to a list I have. So for example, I want to find phone numbers that begin with '555123', '555321', and '555987'. I know normally if you have a list of numbers you could just do a query such as

SELECT * 
  FROM phonenumbers 
 WHERE number in ('5551234567', '5559876543', .... );

Is there a way to do this with like? Such as

SELECT * 
  FROM phonenumbers 
 WHERE number in like ('555123%', '555321%', '555987%'); //I know this doesn't actually work

Instead of have to do this individually

SELECT * 
  FROM phonenumbers 
 WHERE number like '555123%' 
    or number like '555321%' 
    or number like '555987%'; //Which does work but takes a long time

Or is there an easier to do this that I'm just missing? I'm using postgres, I don't know if there's any commands it has that would help out with that. Thanks!

9
  • 1
    Welcome to SO! I've retagged your question to clarify it relates to postgres
    – AdaTheDev
    Commented Feb 11, 2010 at 15:41
  • What version of Postgres? Sounds like a job for regexes: postgresql.org/docs/8.3/static/functions-matching.html
    – OMG Ponies
    Commented Feb 11, 2010 at 15:47
  • Which does work but takes a long time - unless you change the nature of the query, a different syntactic representation of the same thing will take as long. Is the column indexed?
    – MattH
    Commented Feb 11, 2010 at 15:52
  • Actually the column is indexed. I hadn't noticed that before. Oh, and I am using postgres 8.0. I have a large amount of numbers I am searching.
    – The Jug
    Commented Feb 11, 2010 at 15:59
  • How long does your query take? How many records you have in your table?
    – Pentium10
    Commented Feb 11, 2010 at 16:00

6 Answers 6

76

You can use SIMILAR TO and separate the tags with | pipe '555123%|555321%|555987%'

eg:

SELECT * 
FROM phonenumbers 
WHERE number SIMILAR TO '555123%|555321%|555987%'
0
42

Late to the party, but for posterity... You can also use a ANY(array expression)

SELECT * 
FROM phonenumbers 
WHERE number LIKE ANY(ARRAY['555123%', '555321%', '555987%'])
1
7

Assuming all your numbers do not contain letters, and your numbers are always "prefixes" (ex: LIKE '123%'):

SELECT  number
FROM    (
        VALUES
        ('555123'),
        ('555321'),
        ('555000')
        ) prefixes (prefix)
JOIN    phonenumbers
ON      number >= prefix
        AND number < prefix || 'a'

This will use an index on phonenumbers, if any, so could be faster.

2
  • Do you have a blog or intentions to write a book about these? I would be among the buyers.
    – Pentium10
    Commented Feb 11, 2010 at 16:19
  • 2
    @Pentium10: explainextended.com The book is in progress, but this is a secret yet, please don't tell anybody.
    – Quassnoi
    Commented Feb 11, 2010 at 16:21
4

You can also rely on POSIX regular expressions, see section 9.7.3 of the official documentation.

For example:

SELECT * FROM foobar WHERE name ~ '12345|34567';

It is important to note that your name field is of a string type.

1
  • Not sure why but this solution was the only one that worked for me.
    – TheLastGIS
    Commented Apr 21, 2020 at 1:01
3

I don't think so, but you could join phonenumbers on a table criteria containing the values you want to match on, i.e.

JOIN criteria ON phonenumbers.number LIKE criteria.phonenumbers

...probably not worth it for a small number of conditions, though

2
  • Actually I do have a lot more to search but thought I should keep it simple with just a few numbers.
    – The Jug
    Commented Feb 11, 2010 at 15:47
  • or create temp table. Probably won't be any speedup from other options but an option whoa.
    – rogerdpack
    Commented Sep 26, 2018 at 18:17
1

Maybe if your prefixes are all the same length then you can do where RIGHT(number) in ('123456', '234456', 'etc', 'etc')

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service and acknowledge you have read our privacy policy.

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