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Suppose I have this:

$t = "This %var% should be replaced";
$newText = preg_replace('/%(.+?)%/', "$1", $t);

What that does is replace the %var% for var, so the text becomes:

This var should be replaced.

But what I want to do is have a variable named $var, and then replace "%var%" with the value of $var.

We know that we can create variable variables like this:

$foo = "one";
$$foo = "two"
echo $one; //prints "two"

If you don't know about this, then you might not be able to answer my question. But you can read more about variable variables on http://www.php.net/manual/en/language.variables.variable.php

Well, that does not work in this case. If I do this:

$t = "This %var% should be replaced";
$newText = preg_replace('/%(.+?)%/', $"$1", $t);

I get an error.

I also tried like this:

$t = "This %var% should be replaced";
$newText = preg_replace('/%(.+?)%/', ${$1}, $t);

And I get another error.

The question is: how would I create a variable variable to replace %var% with the value of $var?

Some of you might ask why not just do this:

$t = "This %var% should be replaced";
$newText = preg_replace('/%(.+?)%/', $var, $t);

The reason is simple. The text I have is more complex than that. Lets make it more fun, shall we?

$text = "This %var% should be replaced, just like this %foo%;
$newText = preg_replace('/%(.+?)%/', "$1", $text);

As you can see, we need to replace %var% with the value of $var, and %foo% with the value of $foo.

I already solved the problem, but in a different way. But I am still wondering how it would be possible to solve it in this way, since the code is more readable. If it is not possible to solve it, then why?


Thanks for al your answers ans interest. Like I said I already solved the problem in a different way, and yes, I used preg_repace_callback. I am not looking for a solution to the problem, but for an explanation on why it is not possible to create a variable variable out of the backreference. I'm sorry if my question was confusing, or badly written and made you guys think I was still looking for a solution on how to achieve my goal.

If you wish to see how I solved it, you can go to my blog, I posted there yesterday about this: http://imbuzu.wordpress.com/2012/02/07/back-references-in-php-how-to-create-variable-variables-using-them/

Again. I am not looking for a way to do this, but rather for an explanation on why it is not possible to do it the way I initially intended. Why is it that you can't create a variable variable from the backreference?

To the Admins. This reply is a general reply to all the answers above. IF you are going to edit it and add it as a comment to any of them, please add it to all of them, or at least notify the users of this reply. Thanks.

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migrated from programmers.stackexchange.com Feb 7 '12 at 9:33

This question came from our site for professional programmers interested in conceptual questions about software development.

4  
Why wouldn't you just use preg_replace_callback? - as an aside, the above code is not particularly redable given what you're trying to do. –  AD7six Feb 7 '12 at 9:42

3 Answers 3

What about an associative array?

$replacement = array('var' => 'value1',
                     'foo' => 'value2');
$text = "This %var% should be replaced, just like this %foo%";
$newText = preg_replace('/%(.+?)%/', $replacement[$1], $text);
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You could use preg_replace_callback():

$var = '[replaced]';

function handler($found)
{
  if ( isset($GLOBALS[$found[1]]) )
    return $GLOBALS[$found[1]];
  else
    return $found[0];
}

$text = 'This %var% should be replaced and this %var2% will not be replaced!';
$newText = preg_replace_callback('/%(.+?)%/', 'handler', $text);

echo $newText;

This outputs the following:

This [replaced] should be replaced and this %var2% will not be replaced!

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You must create a small parser with preg_X functions and an eval call. With these ingredients you can cook something like this:

<?php
$var = 'world';
$end = '.';
$t = "This %var% should be replaced%end%";

//We should escape " character
$t = str_replace('"','\"',$t);

$php = $t;
do
{
    $orig_php = $php;
    $php = preg_replace('/%([^%]+)%/','$\\1',$t);
} while($php!=$orig_php);

eval('$output="'.$php.'";');

echo($output);

?>

It's a tiny template engine

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