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Editorial Team
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Asked: 2026-06-15T13:41:06+00:00

Here is the part of my script I need help with, the PHP Variable

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Here is the part of my script I need help with, the PHP Variable works, just not for the links.

$source_file = 'http://domain.tld/subfolder/<?php echo $_GET["m"]; ?>".png';

It doesn’t work. When the script runs, it runs it as , instead of what was typed in for the m value, however when I have this not in a link, it works just fine. What can I do to fix this?

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1 Answer

  1. Editorial Team

    Because you are using single quotes, PHP takes the literal value. You can use this:

    $source_file = 'http://domain.tld/subfolder/' . $_GET["m"] . '.png';
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