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I am trying to define a set of variables by setting them from SESSION and POST variables of the same name. (I.e. I want to transfer $_SESSION['a'] to $a.

I am trying to use an array of variables names (a, b, c) to define such a set using a foreach loop, but am having when trying to define them I end up with syntax like $$variable within the loop, which does not work. I've tried single and double quotes around the $variable, but no joy

$data = array (
        'a',
        'b',
        'c',
              );

foreach($data as $variable)
 {
   if (isset($_POST['$variable'])) $_SESSION['$variable']=$_POST['$variable'];
   if (isset($_SESSION['$variable'])) {$$variable=$_SESSION['$variable'];} else {$$variable="";}
 }

Any help greatly appreciated.

I'm trying end up with many instances of something like:

 if (isset($_POST['$a'])) $_SESSION['$a']=$_POST['$a'];
 if (isset($_SESSION['$a'])) {$a=$_SESSION['$a'];} else {$a="";}
share|improve this question
    
Oh dang, I accidentally deleted the intro explanation, let me edit –  Gideon Nov 8 '12 at 1:09
    
Variables are only interpolated in double quotes, not single quotes. And here was no need for either in the first place. –  mario Nov 8 '12 at 1:12
    
possible duplicate of Why is PHP not replacing the variable in string? –  mario Nov 8 '12 at 1:13
    
possible duplicate of Difference between single quote and double quote string in php –  mario Nov 8 '12 at 1:14
    
Have you read this page? php.net/manual/en/language.variables.variable.php –  Nic Nov 8 '12 at 1:14

1 Answer 1

up vote 1 down vote accepted

The single quotes prevent $variable from being evaluated, just take them out.

$data = array (
        'a',
        'b',
        'c',
              );

foreach($data as $variable)
 {
   if (isset($_POST[$variable])) $_SESSION[$variable]=$_POST[$variable];
   if (isset($_SESSION[$variable])) {$$variable=$_SESSION[$variable];} else {$$variable="";}
 }
share|improve this answer
    
Thanks very much, I knew it would be something simple I was ignoring, got distracted by presuming $$ would break it. –  Gideon Nov 8 '12 at 1:17

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