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I am running into an issue with preg_replace as I am not well-versed with regular expressions.

I am using this tool to test but the replace isn't working as expected.

I have this input: I am expecting this output: I simply want to remove the letter C.

(the d can be any alphanumeric character)

I am attempting to use this regex.

Here is the php that the site is generating:

    $ptn = "/\/test-menu\/(.)\/C/";
    $str = "";
    $rpltxt = "/test-menu/$1";
    echo preg_replace($ptn, $rpltxt, $str);

I am not getting a match with my regular expression. What am I missing here?

share|improve this question
Please consider using more descriptive variable names. –  cmbuckley Nov 8 '12 at 23:49
That was the php which the site was generating when I was testing. –  John Kalberer Nov 8 '12 at 23:56
My bad. The tool has probably hindered here, given that they quote $rpltext in double quotes, masking one of the main problems (where $1 is evaluating before the replacement). –  cmbuckley Nov 8 '12 at 23:58

2 Answers 2

up vote 2 down vote accepted


$ptn = '/(?<=\/test-menu\/.\/)C/';
$rpltext = '';

(which uses a positive lookbehind with (?<= ... ))


$ptn = '/(\/test-menu\/.\/)C/';
$rpltext = '$1';

(which captures the whole preceding string in the first submatch, all except the C)

share|improve this answer
Prettier: #(/test-menu/./)C# –  cmbuckley Nov 8 '12 at 23:50
Prettier indeed ;) –  Wrikken Nov 8 '12 at 23:55
Thanks. I know these work but they are not working on the site I am building. I think there is a bug elsewhere. –  John Kalberer Nov 9 '12 at 0:02
Hm, I used $rpltext instead of $rpltxt, might be it (should show with notices on), otherwise, yeah, somewhere else ;) –  Wrikken Nov 9 '12 at 0:05

Your main problem is the variables in $rpltxt were being expanded before the call to preg_replace().

I also added the digits capture to the end and made the first capture specific to alpha characters. It's always good to be as specific as possible in your patterns.

$ptn = "#/test-menu/([a-zA-Z])/C(\d+)#";
$str = "";
$rpltxt = '/test-menu/$1/$2';
echo preg_replace($ptn, $rpltxt, $str);

Update: Changed regex delimiters per cbuckley's prettier comment.

share|improve this answer
+1 for pointing out that "$1" is being expanded. Probably an E_NOTICE in there too. –  cmbuckley Nov 8 '12 at 23:53
Thanks. And a +1 to your comment. –  Jason McCreary Nov 8 '12 at 23:56

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