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I was trying to query a database table by search keyword. My SQL is as follow:

SELECT * FROM some_table WHERE some_name LIKE '%$keyword%'

where $keyword is from PHP form POST data. The $keyword is already processed by real_escape_string function. I notice that it the $keyword is %, all records are selected. How can I search for the some_name field with % in the content?

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2 Answers 2

up vote 4 down vote accepted

You have to escape the literal %, as explained in the manual:

SELECT * FROM some_table WHERE some_name LIKE '%\%%';

EDIT: Also note that you should escape the _ character the same way, as that's symbol for a single-character wild card.

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but why real_escape_string does not escape the % for me ? –  Raptor Jul 6 '11 at 4:11
2  
Because real_escape_string has now way of knowing you're using the string in a LIKE statement. It's only escaping for standard SQL safety. –  Flimzy Jul 6 '11 at 4:26

You should escape % with \% in keyword

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