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I have some text (in this specific case $expression), sometimes it is quite long. I want to output the text the same way it is, except outputting numbers % bold. Sometimes its spelled like 3% and sometimes there's a space like 123 %.

<?php
$expression = 'here we got a number 23 % and so on';
$tokens = "([0-9]+)[:space:]([\%])";
$pattern = '/[0-9][0-9] %/';

$keyword = array($pattern);
$replacement = array("<b>$keyword</b>");
echo preg_replace($keyword, $replacement, $expression);
?>

This is what I have but I'm not exactly sure what I'm doing wrong. It outputs an error on the line $replacement = array("<b>$keyword</b>"); and then outputs the actual string except it replaces the number% with <b>Array</b>.

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3 Answers 3

up vote 2 down vote accepted

try this

$expression = 'here we got a number 23 % and so on';
var_dump(preg_replace('/(\d+\s*\%)/', "<b>$1</b>", $expression));
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1  
Thank you so much –  user1902427 Apr 19 '13 at 21:02

You face an (unwanted) array to string conversion. In development always make the warnings/notices visible, PHP tells you that this happens (and where).

Also look again on the preg_replace manual page, it shows the correct syntax for the replacement. Follow especially the part about backreferences in the replacement parameter.

$replacement = array("<b>\\0</b>");
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1  
Thank you so much –  user1902427 Apr 19 '13 at 21:03

Your pattern and replacement are wrong, you need a group in the pattern in order to have a "variable" placeholder in the replacement. Check the preg_replace manual for more details.

I created this gist with a solution, the code on it:

<?php

$expression = 'here we got a number 23 % and so on';
$pattern = '/(\d+ %)/';
$replacement = '<b>$1</b>';
echo preg_replace($pattern, $replacement, $expression);
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