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I am having an array of strings.

(102) Name3

How can I match for strings starting with (####) and get the Name part of the line easily. I am trying the following which is not working.

if(preg_match("/(d+)/", $myArray[$i], $matches))
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1  
can you show me your complete code and desired output? – Clint Bugs Oct 4 '12 at 5:52
up vote 4 down vote accepted

You need to escape the parentheses that are in the expected input string:

if(preg_match("/\((\d+)\) (.+)$/", $myArray[$i], $matches))

That's the following regular expression:

  • / Start of regex (this can be any character, but is usually a /)
  • \( the character (
  • ( begin capturing group 1
  • \d any digit
  • + previous match, 1 or more times
  • ) end capturing group 1
  • a space
  • ( begin capturing group 2
  • . almost any character
  • + previous match, 1 or more times
  • ) end capturing group 2
  • $ end of string
  • / End of regex (must match first character)

You can find more descriptive definitions on regular-expressions.info.

With the above, matches will contain for example:

array(
    '(123) input string',
    123, // capturing group 1
    'input string' // capturing group 2
)
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can u pls let me know what is (.+)? – blitzkriegz Oct 4 '12 at 6:33
    
wow. thanks a ton! – blitzkriegz Oct 4 '12 at 6:48

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