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Preg Replace - replace second occurance of a match

I have a string that includes the word rules twice. I need to find and replace the 2nd word. Tried fooling around with str_replace() but couldn't get anything, the 4th parameter wasn't what I expected.

Here is an example string:

http://localhost/proj1/modstart/admin/index.php?i=rules&sid=397ab1f6b8eb8a17787438a7e2e60ea3&mode=rules

After my replace it should look like this:

http://localhost/proj1/modstart/admin/index.php?i=rules&sid=397ab1f6b8eb8a17787438a7e2e60ea3&mode=manage

I read that preg_replace() could help, but I don't know how to write patterns.

Ideas?

P.S: Don't suggest splitting the string into two variables, that wouldn't serve my needs.

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marked as duplicate by mario, hakre, Junuxx, j0k, Aurelio De Rosa Oct 7 '12 at 14:10

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

    
Though you could also just write a simple regex matching the word twice, keeping the first part, filler and remainder. * See also Open source RegexBuddy alternatives and Online regex testing for some helpful tools, or RegExp.info for a nicer tutorial. –  mario Oct 6 '12 at 20:17
    
It's not a dupe. My question differs from the one you linked, not that much but it does. –  Aborted Oct 6 '12 at 20:23
    
is the second keyword always going to be the end of string?? –  Rajat Singhal Oct 6 '12 at 20:26
    
Nope, it wont. :\ I'd be using substr_replace() in that case. –  Aborted Oct 6 '12 at 20:27

3 Answers 3

up vote 0 down vote accepted

It would be a very good idea to learn about regular expressions. In PHP, you can accomplish your find/replace like this:

$result = preg_replace('/(rules.*?)rules/','$1manage',$str,1);

It basically finds "rules" once, then anything, then rules a second time, then puts it all back before the second match and replaces the word.

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To not use a regular expression, and also to not store anything into a second variable, you could use str_replace() with a little magic from strpos():

$string = substr($string, 0, strpos($str, 'rules') + 5) . str_replace('rules', 'whatever', substr($string, strpos($string, 'rules') + 5));

This will take the full string up-to the end of the first instance of rules and then do the string-replacement on the second-part of the string which will contain any other instance of the word.

The same thing, but a little more cleaner (yes, by using a second variable):

$pos = strpos($string, 'rules') + 5;
$string = substr($string, 0, $pos) . str_replace('rules', 'whatever', substr($string, $pos));

If the word to find+replace is dynamic or you want to use a different word on different pages, you could make that a variable, like this:

$findMe = 'rules';
$replaceWith = 'whatever';
$pos = strpos($string, $findMe) + strlen($findMe);
$string = substr($string, 0, $pos) . str_replace($findMe, $replaceWith, substr($string, $pos));
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You should use regex >>

$new = preg_replace('/\brules\b(?!.*\brules\b)/', 'manage', $old); 

It is a good idea to use word boundaries \b, so it will not match some larger strings that contain "rules", such as "preudorules".

Negative lookahead (?!.*\brules\b) ensures there is no other word "rules" behind, so the one you are replacing is the last one.

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