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I have this code:

if($_POST['badge_id'] != 'USN' OR $_POST['badge_id'] != 'VA2' OR $_POST['badge_id'] != 'PET01' OR $_POST['badge_id'] != 'GLD' OR $_POST['badge_id'] != 'BR149' OR $_POST['badge_id'] != 'DK032' OR $_POST['badge_id'] != 'COM09' OR $_POST['badge_id'] != 'KH0' OR $_POST['badge_id'] != 'COM03' OR $_POST['badge_id'] != 'US8' OR $_POST['badge_id'] != 'UK118' OR $_POST['badge_id'] != 'SE044' OR $_POST['badge_id'] != 'ESV' OR  $_POST['badge_id'] != 'SGR' OR $_POST['badge_id'] != 'SG5' OR $_POST['badge_id'] != 'NO006' OR $_POST['badge_id'] != 'NO050' OR $_POST['badge_id'] != 'NO051' OR $_POST['badge_id'] != 'NO052' OR $_POST['badge_id'] != 'NO053' OR $_POST['badge_id'] != 'NO055' OR $_POST['badge_id'] != 'NO056' OR $_POST['badge_id'] != 'NO060' OR $_POST['badge_id'] != 'NO061' OR $_POST['badge_id'] != 'NO063' OR $_POST['badge_id'] != 'NO064' )
                $error[] = "The ID IS NOT WORKING.";

But it doesn't work. It must filter for a input but now does he say by all the ID is not working

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closed as not a real question by Quentin, andrewsi, Minko Gechev, Tikhon Jelvis, brasofilo May 8 '13 at 6:54

It's difficult to tell what is being asked here. This question is ambiguous, vague, incomplete, overly broad, or rhetorical and cannot be reasonably answered in its current form. For help clarifying this question so that it can be reopened, visit the help center.If this question can be reworded to fit the rules in the help center, please edit the question.

3 Answers 3

Make your code more readable, more performant, and more working all at the same time:

$validValues = [
    'option1',
    'option2',
    'option3',
    'option4',
    'option5',
    'option6'
];
if(!in_array($_POST['badge_id'], $validValues))
    $error[] = 'The ID is not working';
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Shouldn't you be using AND instead of OR ? You want all the conditions to be true, that means that your value have to be different from value1 AND value2 AND ...

if($_POST['badge_id'] != 'USN' && $_POST['badge_id'] != 'VA2' && $_POST['badge_id'] != 'PET01' && $_POST['badge_id'] != 'GLD' && $_POST['badge_id'] != 'BR149' && $_POST['badge_id'] != 'DK032' && $_POST['badge_id'] != 'COM09' && $_POST['badge_id'] != 'KH0' && $_POST['badge_id'] != 'COM03' && $_POST['badge_id'] != 'US8' && $_POST['badge_id'] != 'UK118' && $_POST['badge_id'] != 'SE044' && $_POST['badge_id'] != 'ESV' &&  $_POST['badge_id'] != 'SGR' && $_POST['badge_id'] != 'SG5' && $_POST['badge_id'] != 'NO006' && $_POST['badge_id'] != 'NO050' && $_POST['badge_id'] != 'NO051' && $_POST['badge_id'] != 'NO052' && $_POST['badge_id'] != 'NO053' && $_POST['badge_id'] != 'NO055' && $_POST['badge_id'] != 'NO056' && $_POST['badge_id'] != 'NO060' && $_POST['badge_id'] != 'NO061' && $_POST['badge_id'] != 'NO063' && $_POST['badge_id'] != 'NO064' )
            $error[] = "The ID IS NOT WORKING.";
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Yeah i whas 2 sec ago thinking that ;# But TY Thats right :P –  Spot Ify May 7 '13 at 16:12

The way you have your if-statement means that it will always return true (this is an example on what's happening):

LET a = 1

  (a != 1 OR a != 2) 
= (FALSE OR TRUE) 
= TRUE

Since you have so many badge_ids that you check against, I'd put them into an array and use PHP's in_array function.

Example:

<?php
$badges = array('USN', 'VA2', 'PET01', 'GLD', 'BR149', 'DK032'); // etc.
if(!in_array($_POST['badge_id'], $badges))
{
    $error[] = 'The ID is not working.';
}
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