Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I'm working on a function to check wheter a $_POST is set or not.

The following works fine:

if (isset($_POST['einfo'])) {
    $einfo = $_POST['einfo'];
} else {  $einfo = NULL; }

echo $einfo;

And this is the function i'm trying to make:

  function  ifset($check) {
       if (isset($_POST['$check'])) {
     $check = $_POST['$check'];
    } else {  $check = NULL; }
      return $check;
}

$einfo = ifset('einfo');

echo $einfo; 

But i get no output.

share|improve this question
    
    
I can't imagine how this should be necessary. And if, don't call the function ifset, because that's not at all descriptive of what the function actually does. –  markus Oct 8 '11 at 11:14
    
Tnx a lot this helped me out! –  Seltjoek Oct 8 '11 at 13:39

5 Answers 5

up vote 4 down vote accepted

You have to use double quotes:

function ifset($check)
{
  if (isset($_POST["$check"]))
  {
    $check = $_POST["$check"];
  }
  else
  {
    $check = NULL;
  }
  return $check;
}

But actually you can omit them.

share|improve this answer
    
+1 (too). While AurelioDeRosa is right about showing the wrong output, your answer proves that the function itself is wrong as well. –  GolezTrol Oct 8 '11 at 10:42
4  
Don't use double quotes at all. This is just a variable. –  Matthieu Napoli Oct 8 '11 at 11:02
    
Tnx a lot for the fast reply this helped me out! –  Seltjoek Oct 8 '11 at 13:40

you need to read a php manual!

$_POST['$check'] -> string '$check' is as you write
$_POST["$check"] -> string "$check" is a string that contain the $check variable
$_POST[$check] -> equivalent to previous


$check = 'some test';
echo "$check"; // outputs -some test-
echo $check; // outputs -some test-
echo '$check'; // outputs $check

hope this helps

share|improve this answer
    
Yes thank you! I get it now :) –  Seltjoek Oct 8 '11 at 13:44

If the result is NULL, when you do the echo it will be "casted" as empty string and so you see nothing.

Try to use var_dump instead of echo.

And you have not to use the double quote to let php interpret the vars.

share|improve this answer
    
As will 'false'. If you need to output debug values like this, use var_dump. –  GolezTrol Oct 8 '11 at 10:39
    
Yes, false of course will do the same ;) –  Aurelio De Rosa Oct 8 '11 at 10:40

NULL means empty so you see nothing. If you want to see something, try this:

function ifset($check) {
 if (isset($_POST["$check"])) { 
 $check = $_POST["$check"]; 
 } else { 
 $check = "Empty";
 } 
return $check;
}
share|improve this answer
    
Who added -1... –  Olli Oct 8 '11 at 11:13

That can be done with even less code:

function ifset($check) {
    if (isset($_POST[$check])) {
        return $_POST[$check];
    }
    return NULL;
}

And depending on what values you deal with and are using PHP 5.3+ you can use:

function ifset($check) {
    return $_POST[$check] ?: NULL; // ternary operator
}
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.