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<?php

$var = "arbitrary";

echo <<<_END

<form method = "post" action = "feed.php">

    <input type = "text" name = "$var" />
    <input type = "submit" />

</form>

_END;

if (isset($_POST['$var']))
{
    echo $_POST['$var'];
}

?>

I can't seem to get this $_POST data when I try to retrieve it from the variable $var. Is this possible? (Getting $_POST from something other than just a string)

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Single quotes do not parse the variable inside. So you're looking for a variable named "$var" instead of "arbitrary" as you may expect. Change it to $_POST[$var] –  Juan - devtopia.coop May 17 '12 at 22:18

2 Answers 2

up vote 1 down vote accepted

Try this:

<?php

$var = "arbitrary";

?>

<form method = "post" action = "feed.php">

    <input type = "text" name = "<?php echo $var ?>" />
    <input type = "submit" />

</form>

<?php

if (isset($_POST[$var]))
{
    echo $_POST[$var];
}

?>

The issue was just the quoted $var in your array syntax here $_POST['$var'] as others have mentioned. There was nothing wrong with your heredoc syntax, so if you feel more comfortable with HERDOC syntax, you should continue with it.

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Okay, thank you. –  user1163722 May 17 '12 at 22:21
    
Yeah no problem. Sorry if I go overboard with my answers sometimes, but I like to add as much explanation as possible. –  Gohn67 May 17 '12 at 22:23
    
No, it's perfectly fine. The more the merrier :) I'll add you as the accepted answer. –  user1163722 May 17 '12 at 22:25
    
There is no problem with the $var inside the HEREDOC block. It correctly displays arbitrary. The comes from $_POST['$var']. But yes, your way is much more cleaner. ;) –  Samy Dindane May 17 '12 at 22:25
    
@Samy, you are right. Good catch. –  Gohn67 May 17 '12 at 22:26

$_POST['$var'] should be $_POST[$var] aka don't wrap your variable in a single quote

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