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Why should I use if (isset($var)) {} rather than just if ($var) {}? It seems to do the same thing and just take extra processing. Thanks!

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3  
What if it's false? –  SLaks Mar 8 '13 at 3:42
2  
What if $var is false, 0 or ''? –  Blender Mar 8 '13 at 3:42
4  
possible duplicate of Weak typing in PHP: why use isset at all? –  DemoUser Mar 8 '13 at 3:43
2  
Don't worry about "extra processing". Your application doesn't know the difference either way. Shaving nanoseconds is pointless without measurement. –  Andy Lester Mar 8 '13 at 3:44
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search before posting..! –  DemoUser Mar 8 '13 at 3:44

2 Answers 2

up vote 6 down vote accepted

Reason

The reason is, isset() will return boolean and doesn't throw a warning when you check for the existence of variable and proceed. Also, there is a possibility that, a variable may have zero values:

  1. false
  2. 0
  3. ""

But they will be already set.


Example

$varb = false;
$vari = 0;
$vars = "";

isset($varb) // true
isset($vari) // true
isset($vars) // true

if ($varb) // false
if ($vari) // false
if ($vars) // false
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4  
+1 PHP5+ considers OP's syntax to be bad form. –  Jeremy Holovacs Mar 8 '13 at 3:44

You use isset() to check if a variable has been declared.

The other method checks what value $var has. So if $var happened to contain false then the condition would be false but you wouldn't whether the variable wasn't set or the variable contained false.

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