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I am trying to show my code with highlight_string. All of my variables are being stripped out of the printed code. What am I doing wrong? An example of what is happening ...

<?php highlight_string("
    <?
        $a=3;
        $b=4;
        if ($a < $b){
        echo 'a is less than b';
        }
    ?>"); 
?>

The output looks like this

    <?
        =3;
        =4;
        if ( < ){
        echo 'a is less than b';
        }
    ?>
share|improve this question
up vote 7 down vote accepted

Replace the double quotes (") with single quotes (') PHP tries to fill up variables printed within double quotes.

<?php highlight_string('
    <?
        $a=3;
        $b=4;
        if ($a < $b){
        echo \'a is less than b\';
        }
    ?>'); 
?>
share|improve this answer
1  
And better use NOWDOC for this, so you don't need to escape so much. – NikiC Jan 18 '11 at 14:46

Tried using single quotes?

Using double quotes prints the values of variable rather than their defined names.

share|improve this answer

When you use double quotes ", you allow PHP to replace all instances of a variable with its value. For example, if I do this:

$a=5;
echo "$a";

My output will be:

5

If instead I did...

$a=5
echo '$a';

My output will be

$a
share|improve this answer

In a php double-quoted string the dollar sign indicates that the variable after the dollar sign should be placed into the string, ie

 $a = 1;
 echo("A is $a");
 #prints A is 1

Even if $a is not defined, php will assume that you mean to create $a here:

 echo("A is $a");
 #prints A is 

To get around this, use single quoted strings which take the string literally:

 echo('A is $a');
 #prints A is $a
share|improve this answer

Single quotes not double

<?php highlight_string('
    <?
        $a=3;
        $b=4;
        if ($a < $b){
        echo \'a is less than b\';
        }
    ?>'); 
?>
share|improve this answer

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