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I wrote a simple function which takes a block of text, extracts urls from it, and replaces all urls with an <a href> tag around them.

E.g should become <a href=""></a>


function parseUrls( $string )
    $string = trim($string);
    $pattern = '%\bhttp[s]?://[A-z0-9/\.\-_]+%i';
    $replacement = '<a href="$1">$1</a>';

    $string = preg_replace($pattern, $replacement, $string);

    return $string;

However if I pass the following string as input:

hello test abc

The output I get is:

hello <a href=""></a> test <a href=""></a> abc <a href=""></a> 

I.e so the urls are being matched, but $replacement isn't being applied correctly. May be my usage of $1 is wrong somehow?

What am I doing wrong?

share|improve this question
You haven't set any capturing groups. Try adding (...) around your url match. – Daniel M Aug 21 '12 at 17:57
I had to +1 the question because of your name. I always follow instructions. – Matt Aug 21 '12 at 17:57

3 Answers 3

up vote 3 down vote accepted

You don't have a capturing group that $1 would refer to.

Use $replacement = '<a href="$0" target="_BLANK">$0</a>'; instead.

Also, don't use A-z in your character class (it matches more than you think: there are some non-letter characters between ASCII Z and a). A-Z is enough since you've made it case-insensitive anyway.

share|improve this answer
Thanks for thhe catch on A-z – Click Upvote Aug 21 '12 at 17:59

There is no capture group defined in your expression (usually done by ()). So $1 is empty. However $0 holds the full match string in your replace pattern.

So either use,

$replacement = '<a href="$0" target="_BLANK">$0</a>';


$pattern = '%\b(http[s]?://[A-z0-9/\.\-_]+)%i';
//             ^                          ^
//             |                          |
//             +-----  Capture group -----+
share|improve this answer

You need to group the expression with the brackets in order to use $1.

$pattern = '%\b(http[s]?://[A-z0-9/.-_]+)%i';

share|improve this answer

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