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I want to use the LIKE operator to match possible values in a column.

If the value begins with "CU" followed by a digit (e.g. "3") followed by anything else, I would like to return it. There only seems to be a wildcard for any single character using underscore, however I need to make sure it is a digit and not a-z. I have tried these to no avail:

select name from table1 where name like 'CU[0-9]%'
select name from table1 where name like 'CU#%'

Preferably this could be case sensitive i.e. if cu or Cu or cU then this would not be a match.

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4 Answers 4

up vote 5 down vote accepted

You need to use regexp:

select name
from table1
where name regexp binary '^CU[0-9]'

The documentation for regexp is here.

EDIT: binary is required to ensure case-sensitive matching

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I will accept this as the answer if my edit goes through –  pedromillers Jun 5 '13 at 0:31
    
@pedromillers . . . What was the edit? –  Gordon Linoff Jun 5 '13 at 1:28
    
I've done it again. Not sure why it was deleted. –  pedromillers Jun 5 '13 at 17:51

The like operator only have the % and _ wildcards in MySQL, but you can use a regular expression with the rlike operator:

select name from table1 where name rlike '^CU[0-9]'
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Have you tried with:

select name from table where name between 'CU0' and 'CU9'
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1  
that's close but it won't match something like CU9AX. –  Ed Gibbs Jun 4 '13 at 20:34

You can use REGEXP operator, see http://dev.mysql.com/doc/refman/5.1/en/regexp.html#operator_regexp

so your query would be:

select name from table where name regexp 'CU[0-9].*';
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smuk - because the regexp doesn't anchor to the beginning of the string with the caret (^) it will also match values like ABCU1 and xxxxxxxCU3yyyy. –  Ed Gibbs Jun 4 '13 at 20:36
    
Ed is correct, assuming he meant "without" and not "with". Adding ^ to the start is what I need. The .* was not required –  pedromillers Jun 4 '13 at 21:40

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