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Currently whenever i am trying to determine when a variable is not defined i use the code

if($variable=="")

however i have been told by people to use the function

if(empty($variable))

Reading on this, it returns false if the value is 0, and i have plenty of array values that are zero that cant be returning false. i could always add ||$variable==0) to skip this.

But all i am asking is why is this a preferred method for determining empty variables, is it efficiency or is there more to it than that?

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This all depends on your needs. isset() and empty() are the primary methods used. –  Brad Feb 11 '12 at 2:12
    
why are these methods preferred over a simple if statement of if($var=="") though? –  JimmyBanks Feb 11 '12 at 2:13

2 Answers 2

up vote 1 down vote accepted

If you need to know, use strict type comparison:

if (empty($variable) && $variable !== 0) // !== instead of !=

Generally, you should use isset() - if the variable hasn't yet been defined, it returns false:

$a = 4;
echo isset($a) ? 'a' : 'no a'; // a
echo isset($b) ? 'b' : 'not to b'; // not to b
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okay isset actually makes more sense for what I am asking, that still leaves me wondering, what is the actually reasoning that using isset or empty is advantageous to if($var=="") since that does result with code that runs properly –  JimmyBanks Feb 11 '12 at 2:18
1  
If the variable hasn't yet been set, then depending on how PHP is configured it may continue happily, or it may error out and stop. If it continues, it takes significantly longer to try and read from a variable that doesn't exist yet (read: not normally worth caring about). The main reason to use isset() is because it's the right way to check :P Oh, and the fatal error thing. That's quite a big deal too. –  Joe Feb 11 '12 at 2:21
    
okay so its mainly efficiency, i've never received an error message from it and i have error messages on. Ill start switching my code to the proper use, thanks. –  JimmyBanks Feb 11 '12 at 2:47

Well, this is my way and I'm don't think there's anything wrong with it...

if(!$variable)

Returns true for "", 0, (not defined), etc. All blank values for form input.

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1  
that will generate an error if $variable is not set. –  Umbrella Feb 11 '12 at 2:36
    
It NEVER has for me... why is this? –  Deji Feb 11 '12 at 2:38
    
Your PHP's error reporting setting must not be including Notice level errors. Or, it's logging to a file you're not checking. Probably the error reporting level. –  Umbrella Feb 11 '12 at 2:42
    
Probably so. I never believed notices were worth paying attention to before now. –  Deji Feb 11 '12 at 2:44
    
I always develop with E_ALL. Notices like that will help one catch errors like typos in tests like that. Though, I don't do tests like that. –  Umbrella Feb 11 '12 at 3:06

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