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I have a string which can contain multiple matches (any word surrounded by percentage marks) and an array of replacements - they key of each replacement being the match of the regex. Some code will probably explain that better...

$str = "PHP %foo% my %bar% in!";
$rep = array(
  'foo' => 'does',
  'bar' => 'head'
);

The desired result being:

$str = "PHP does my head in!"

I have tried the following, none of which work:

$res = preg_replace('/\%([a-z_]+)\%/', $rep[$1], $str);
$res = preg_replace('/\%([a-z_]+)\%/', $rep['$1'], $str);
$res = preg_replace('/\%([a-z_]+)\%/', $rep[\1], $str);
$res = preg_replace('/\%([a-z_]+)\%/', $rep['\1'], $str);

Thus I turn to Stack Overflow for help. Any takers?

share|improve this question
up vote 7 down vote accepted
echo preg_replace('/%([a-z_]+)%/e', '$rep["$1"]', $str);

gives:

PHP does my head in!

See the docs for the modifier 'e'.

share|improve this answer
3  
The 'e' modifier is "deprecated and use is highly discouraged" since PHP 5.5. according to the docs cited in this answer. An alternative solution using preg_replace_callback() is presented here – user9645 Jul 10 '13 at 16:48
    
And the 'e' modifier is REMOVED as of PHP 7.0.0. – Jpsy Feb 12 at 11:03

You could use the eval modifier...

$res = preg_replace('/\%([a-z_]+)\%/e', "\$rep['$1']", $str);
share|improve this answer

It seems that the modifier "e" is deprecated. There are security issues. Alternatively, you can use the preg_replace_callback.

$res = preg_replace_callback('/\%([a-z_]+)\%/', 
                             function($match) use ($rep) { return  $rep[$match[1]]; },
                             $str );
share|improve this answer

Just to provide an alternative to preg_replace():

$str = "PHP %foo% my %bar% in!";
$rep = array(
  'foo' => 'does',
  'bar' => 'head'
);


function maskit($val) {
    return '%'.$val.'%';
}

$result = str_replace(array_map('maskit',array_keys($rep)),array_values($rep),$str);
echo $result;
share|improve this answer

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