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I have an ajax-search on a mysql-db. Example: Search for "man" which I query with:

SELECT id FROM table WHERE name LIKE '%man%;

I now want to sort the result to have all results starting with the search in alphabetical order:

man
mankind

after that I want to have all results width the search INSIDE in alphabetical order, like:

iron man
woman

How can I do that?

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up vote 5 down vote accepted

You can order by the position of your search term in the string:

SELECT id 
FROM table 
WHERE name LIKE '%man%'
ORDER BY INSTR(name, 'man'), name

See also: INSTR(), LOCATE()

You could also change the expression to only distinguish between start of the string or anywhere else:

ORDER BY IF(INSTR(name, 'man'), 1, 0)
share|improve this answer
1  
+1 Far simpler than my CASE. – Michael Berkowski Nov 15 '12 at 14:40

You can construct your ORDER BY using a CASE statement to verify the substrings. Note: I am using UPPER() here to convert both the search value and the column value to uppercase, for a case-insensitive match. If that is not your need, remove the UPPER().

ORDER BY
  CASE 
    /* Matches the start of the string */
    WHEN UPPER(LEFT(name, 3)) = 'MAN' THEN 1
    /* Doesn't match the end or the start (in the middle) */
    WHEN UPPER(RIGHT(name, 3)) <> 'MAN' THEN 2
    /* Matches the end of the string */
    WHEN UPPER(RIGHT(name, 3)) = 'MAN' THEN 3
    ELSE 4
  END,
  /* Then order by the name column */
  name

This method should be fairly portable, but I like the INSTR() answer below better.

share|improve this answer

Try this

SELECT id FROM table WHERE name LIKE 'man%';
UNION
SELECT id FROM table WHERE name LIKE '%man%';
share|improve this answer
    
I thought the same thing at first.. but when you order by... it's on the whole set returned by the union... so same problem -- this won't return duplicates... as UNION removes duplicates... UNION ALL would return duplicates – mckeejm Nov 15 '12 at 14:41

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