60

I have mysql table that has a column that stores xml as a string. I need to find all tuples where the xml column contains a given string of 6 characters. Nothing else matters--all I need to know is if this 6 character string is there or not.

So it probably doesn't matter that the text is formatted as xml.

Question: how can I search within mysql? ie SELECT * FROM items WHERE items.xml [contains the text '123456']

Is there a way I can use the LIKE operator to do this?

97

You could probably use the LIKE clause to do some simple string matching:

SELECT * FROM items WHERE items.xml LIKE '%123456%'

If you need more advanced functionality, take a look at MySQL's fulltext-search functions here: http://dev.mysql.com/doc/refman/5.1/en/fulltext-search.html

  • 1
    .. how would I modify this to use with a PHP query? I have a string $message and I'd like to select the row with that exact string. I have SELECT * FROM Messages WHERE from_id = '$fromID' AND to_id = '$toID' AND message LIKE '$message' but I don't think that works – Hristo Jun 30 '10 at 15:32
  • What if 123456 is the beginning of the string, then it wouldn't work. – timothymarois Oct 11 '18 at 19:15
  • timothymarois - the % matches zero or more characters, so it will work if the desired string is at the beginning, end, or middle of what you're searching in. See: w3schools.com/sql/sql_like.asp – LConrad Dec 20 '18 at 20:09
10

Using like might take longer time so use full_text_search:

SELECT * FROM items WHERE MATCH(items.xml) AGAINST ('your_search_word')
  • 10
    Is this proven to be faster than LIKE ? – Tim Baas Apr 3 '13 at 18:48
  • 2
    It is important to note that for this to work one needs to have FULLTEXT index on the target column. – stamster Dec 3 '18 at 15:01
6
SELECT * FROM items WHERE `items.xml` LIKE '%123456%'

The % operator in LIKE means "anything can be here".

4

Why not use LIKE?

SELECT * FROM items WHERE items.xml LIKE '%123456%'
2

you mean:

SELECT * FROM items WHERE items.xml LIKE '%123456%'
  • 6
    did you miss a LIKE ? – alex Mar 26 '10 at 21:17
  • Submitted an edit... he had a missing LIKE – Oliver M Grech Dec 23 '13 at 12:59
0

When you are using the wordpress prepare line, the above solutions do not work. This is the solution I used:

   $Table_Name    = $wpdb->prefix.'tablename';
   $SearchField = '%'. $YourVariable . '%';   
   $sql_query     = $wpdb->prepare("SELECT * FROM $Table_Name WHERE ColumnName LIKE %s", $SearchField) ;
 $rows = $wpdb->get_results($sql_query, ARRAY_A);

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