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I can't get this regex to work:

$string = 'blah blah |one|';
$search = array('/|one|/','/|two|/');
$string = preg_replace($search,"'<img src=\"\"'.str_replace('|','','\\0').'\".png\"/>'",$string);

I need it to return blah blah <img src="one.png"/> in this case, but having trouble dealing with the function inside the replacement.

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You need to escape the pipe | character, so your regex should be '/\|(one|two)\|/'. –  connec Sep 21 '11 at 19:42

4 Answers 4

up vote 1 down vote accepted

Is there any reason for this "function call" (which is just a string)? How about capture groups? And you have to escape the |, because they are special characters (alternation):

$string = 'blah blah |one|';
$search = array('/\\|(one)\\|/','/\\|(two)\\|/');
$string = preg_replace($search,'<img src="$1.png"/>',$string);

DEMO

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+1 for beating me by 2 seconds. –  Jason McCreary Sep 21 '11 at 19:51

You can capture the name without the |s using parenthesis: /\|(one)\|/
Then you can reference the captured name using $1 (instead of $0).

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This should work if what you want is put the text inside || as the source and also may have more than one image to convert on the same string:

<?php
    $string = 'blah blah |source| more blah blah |another| bye';
    $string = preg_replace('/\|([^\|]*)\|/',"<img src='$1.jpg' />",$string);
    var_dump($string);
?>
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No need to over complicate it with the array replacement and inline function.

Simply capture the value between the pipes and use it directly.

preg_replace('/\|(one|two)\|/', '<img src="$1.png" />', $string);
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Did you try you suggestion? –  Bart Kiers Sep 21 '11 at 19:41
    
@Bart Kiers, my fault. Escapes didn't come across. See edit. –  Jason McCreary Sep 21 '11 at 19:43

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