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I want to split a text into an array where the delimiter is one or more of "\n", and then put the content of the array as elements in a unorder html-list. When I do this using preg_split when there is a $1 in the subject string I get a weird result. Just looking at the array resulting from the splitting the result is fine and the $1 seems not to have caused any problem, but when I loop over the array and make it into a html list it creates a different result then expected(see example bellow)

Like if this was the subject string:

"First line

Second line $1

Third line"

It should become:

  • First line
  • Second line $1
  • Third line

But it becomes:

  • First line
  • Second lineFirst line Second line $1 Third line
  • Third line

Does anyone know why this happens? Is $1 some kind of special html or php character with a reserved meaning?

This is the code I've written:

        $listElements = preg_split('/[\n]+/',$subject);
        $output = '<ul>';
        foreach ( $listElements as $val ) {
          $output .= '<li>' . $val . '</li>';
        }
        $output .= '</ul>';
share|improve this question
up vote 2 down vote accepted

Using dollar symbols inside PHP strings has a weird effect to those who aren't familiar with it.

$foo = "BAR";
$example = "Hello, World! $foo $foo black sheep";
echo $example;

The above example echoes: Hello, World! BAR BAR black sheep. This is because the variable is expanded within the string.

A simple way of stopping this behaviour is by using single quotes: Changing the above example to 'Hello, World! $foo $foo black sheep'; will echo this: Hello, World! $foo $foo black sheep, and the dollars will be left in place.

Another way of stopping variables expanding inside double-quoted strings is by escaping them with a backslash:

$example = "Hello, World! \$foo \$foo black sheep";

will echo:

Hello, World! $foo $foo black sheep


In your example, I would assume that $val has a dollar symbol in it, which needs escaping.

share|improve this answer
    
Oki, good to know. But I'm still not sure if this is my problem, or how to fix it. I don't use double quotes anywhere so that's not the problem. How do do I "escape" the $1? (And also I'm a bit curious about what variable $1 is. I never set it in my code so where does it come from?) – numfar Jul 3 '12 at 8:45
    
Ah! I figured out the problem. $output is later used in preg_replace() and I had captured a something that is stored in $1. I can rewrite the pattern so that nothing is stored in $1, but isn't $0 always set if I make a match for my pattern? So I guess that needs escaping. – numfar Jul 3 '12 at 9:00

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