Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have a large string (multiple lines) I need to find numbers in with regex. The position the number I need is always proceeded/follow by an exact order of characters so I can use non-capturing matches to pinpoint the exact number I need. I put together a regex to get this number but it refuses to work and I can't figure it out!

Below is a small bit of php code that I can't get to work showing the basic format of what i need

$sTestData = 'lak sjdhfklsjaf<?kjnsdfh461uihrfkjsn+%5Bmlknsadlfjncas dlk';

$sNumberStripRE = '/.*?(?:sjdhfklsjaf<\\?kjnsdfh)(\\d+)(?:uihrfkjsn\\+%5Bmlknsadlfjncas).*?/gim';

if (preg_match_all($sNumberStripRE, $sTestData, $aMatches))
{
    var_dump($aMatches);
}

the number I need is 461 and the characters before/after the spaces on either side of this number are always the same

any help getting the above regex working would be great!

This link RegExr: My Reg Ex (to an online regex genereator and my regex) shows that it should work!

share|improve this question

4 Answers 4

up vote 2 down vote accepted

g is an invalid modifier, drop it.

Ideone Link

share|improve this answer
    
I fixed the code in the example (just a typo) but it still doesn't work and I do have a g modifier or could you be more specific on what you mean –  Tristan Nov 30 '10 at 12:04
    
@Tristan: remove the g modifier. It's invalid. –  codaddict Nov 30 '10 at 12:07
    
excellent it was the g that was causing the issue! that RegExr uses a g modifier thats why i did –  Tristan Nov 30 '10 at 12:07

With regard to that link, which regular expression engine is it working from? Built in Flex, so probably the ActionScript RegExp engine. They are not all the same, each one varies.

You have a number of double-backslashes, they should probably be single in those strings.

share|improve this answer
$sTestData = 'lak sjdhfklsjaf<?kjnsdfh461uihrfkjsn+%5Bmlknsadlfjncas dlk';
$lDelim = ' sjdhfklsjaf<?kjnsdfh';
$rDelim = 'uihrfkjsn+%5Bmlknsadlfjncas ';
$start = strpos($sTestData, $lDelim) + strlen($lDelim);
$length = strpos($sTestData, $rDelim) - $start;
$number = substr($sTestData, $start, $length);
share|improve this answer
    
Thats one way of doing it but there are multiple of this numbers I need to extract and its a little clunky doing it this way –  Tristan Nov 30 '10 at 12:10
    
You can explode() the string at $lDelim and do substr($chunk, 0, strpos($chunk, rDelim)) on each chunk. Still clunky though. –  rik Nov 30 '10 at 12:16

Using regex you can accomplish your goal with the following code:

   $string='lak sjdhfklsjaf<?kjnsdfh461uihrfkjsn+%5Bmlknsadlfjncas dlk';
   if (preg_match('/(sjdhfklsjaf<\?kjnsdfh)(\d+)(uihrfkjsn\+%5Bmlknsadlfjncas)/', $string, $num_array)) {
   $aMatches = $num_array[2];
   } else {
   $aMatches = "";
   }
   echo $aMatches; 

Explanation: I declared a variable entitled $string and made it equal to the variable you initially presented. You indicated that the characters on either side of the numeric value of interest were always the same. I assigned the numerical value of interest to $aMatches by setting $aMatches equal to back reference 2. Using the parentheses in regex you will get 3 matches: backreference 1 which will contain the characters before the number, backreference 2 which will contain the numbers that you want, and backreference 3 which is the stuff after the number. I assigned $num_array as the variable name for those backreferences and the [2] indicates that it is the second backreference. So, $num_array[1] would contain the match in backreference 1 and $num_array[3] would contain the match in backreference 3.

Here is the explanation of my regular expression: Match the regular expression below and capture its match into backreference number 1 «(sjdhfklsjaf<\?kjnsdfh)» Match the characters “sjdhfklsjaf<” literally «sjdhfklsjaf<» Match the character “?” literally «\?» Match the characters “kjnsdfh” literally «kjnsdfh» Match the regular expression below and capture its match into backreference number 2 «(\d+)» Match a single digit 0..9 «\d+» Between one and unlimited times, as many times as possible, giving back as needed (greedy) «+» Match the regular expression below and capture its match into backreference number 3 «(uihrfkjsn+%5Bmlknsadlfjncas)» Match the characters “uihrfkjsn” literally «uihrfkjsn» Match the character “+” literally «+» Match the characters “%5Bmlknsadlfjncas” literally «%5Bmlknsadlfjncas»

Hope this helps and best of luck to you. Steve

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.