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My code as follows:

if($_POST['user_id'] = ''){ 
  //some statement;
}

In the above if condition I have put only single =. PHP is not showing any error but I am getting a white blank page. Does anyone has any clue?

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php -l your.php –  user1655481 Sep 15 '12 at 14:41

4 Answers 4

up vote 2 down vote accepted

if($_POST['user_id'] = '') means:

$_POST['user_id'] becomes '' .. if ('') // always false

if($_POST['user_id'] == '') means:

$_POST['user_id'] compares to '' .. if ( comparison)

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Not sure if trolling or real question...

you said it yourself, you're using a single =. You need 2 to check for equality.

if($_POST['user_id'] == ''){ 
  //some statement;
}

When you use a single equal sign, you're basically "set $_POST['user_id'] to '', then test if it's true). Since '' evaluates to false, you get nothing.

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but then why php not throwing any error?? –  BigJ Sep 15 '12 at 14:42
    
@BigJ - because it's not actually an error. It's perfectly valid to do that, it's just that just almost every time, it's not what you want to do. –  andrewsi Sep 15 '12 at 14:43
    
I've updated my answer with a bit more explaining –  Madara Uchiha Sep 15 '12 at 14:44
    
@Madara Uchiha: guess who just now posted this comment? ;-) –  itachi Sep 15 '12 at 16:26
    
@itachi: Not sure? (You're supposed to be dead) –  Madara Uchiha Sep 15 '12 at 17:01

This:

if($_POST['user_id'] = ''){  

Tries to assign an empty string to $_POST['user_id']. This:

if($_POST['user_id'] == ''){  

Is a comparison. You should almost always be doing the second one - the first one over-rides the value in $_POST, and returns the value of the assignment.

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try it

Use it

$user_id = $_POST['user_id'];

if($user_id == ''){ 
  //some statement;
}

inseted of

if($user_id = ''){ 
  //some statement;
}

Or try another one

$user_id = $_POST['user_id'];

if(isset($user_id) && !empty($user_id)){ 
  //some statement;
}
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