Sign up ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free.

Let's say I have a string like:

$text = "<object>item_id1a2b3</object>xxx<object>item_id4c5d6</object>"

I want to convert it to: %ITEM:1a2b3xxx%ITEM:4c5d6

Here's what I've got:

$text = preg_replace("/<object.*item_id([a-zA-Z0-9]+).*<\/object/","%ITEM:$1",$text);

This isn't quite right, as the search is greedy.



share|improve this question

5 Answers 5

up vote 1 down vote accepted

Try this:

$text = preg_replace("/<object>.*?item_id([a-zA-Z0-9]+).*?<\/object/","%ITEM:$1",$text);

NOTE: Untested

What I did was change the .* to .*?, and to close off your object tag (I thought that might have been a mistake; sorry if that's not correct). The ? after the .* should make it lazy.

share|improve this answer

So why not do smth like this:

$text = preg_replace("@<object>item_id([a-zA-Z0-9]+)</object>@", "%ITEM:$1", $text);

Or like this:

$text = preg_replace("@<object>item_id@", "%ITEM:", $text);
$text = preg_replace("@</object>@", "", $text);

NOTE: tested =)

share|improve this answer

Wouldn't it be easier to split the string on every instance of ""?

$result = '';
$items = explode('<object>', $text);
foreach ($items as $item){
  $result .= '%'.str_replace('</object>', '', $item);
echo $result;
share|improve this answer

Use $2 for the next parentheses.

share|improve this answer

We can make the search non-greedy by using *? in place of *. So final regex becomes:

$text = preg_replace("/<object.*?item_id([a-zA-Z0-9]+).*?<\/object>/","%ITEM:$1",$text);

I have also added '>' at the end of the regex so as to avoid it from coming in the replaced text.

share|improve this answer

Your Answer


By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.