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Lets say I have a table simple as this:

id    |    name
1     |    one_word
2     |    two words
3     |    here we have four

So, I would like to get only rows containing one word, which in the above example would only be record with id 2.

I did read the docs and tried various versions of this:

SELECT * FROM `table` WHERE name REGEXP '(.*?)\s'; 

so, please tell me where I'm doing it wrong.

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Rows 2 and 3 have spaces in them –  Strawberry Jan 26 '13 at 16:45
    
id 2 contains two words... you need id 1? –  fthiella Jan 26 '13 at 16:47
    
ah, damn, you're right!! I just select those who haven't got spaces, doh! Thx!! –  Nikola Jan 26 '13 at 16:47

3 Answers 3

up vote 0 down vote accepted

If you are looking for the first word from a column that may have more words, you can use SUBSTRING_INDEX:

SELECT SUBSTRING_INDEX("here we have four", " ", 1)

to extract rows that don't have spaces, you can use for example this:

  • name NOT REGEXP '\s'
  • name NOT LIKE '% %'
  • LOCATE(' ', name) = 0

if your column can contain spaces at the beginning or at the end of the string, you could also use TRIM:

SELECT SUBSTRING_INDEX(TRIM("  here we have four  "), " ", 1)
  • TRIM(name) NOT REGEXP '\s'
  • TRIM(name) NOT LIKE '% %'
  • LOCATE(' ', TRIM(name)) = 0
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Thx to the comment from Strawberry, I came up with this:

SELECT * FROM `table` WHERE name NOT REGEXP '\s'

which works great.

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What about this? In both LIKE '% %' and REGEXP case performance is bad. But i think LIKE has the least bad performance.

SELECT * FROM `table` WHERE name NOT LIKE '% %'
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