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Simple but this has always bothered me. Which is the best way to condition statement?

$foo = '1';

if($foo === '1' || $foo === '2' || $foo === '3')
{
// foo matches 
}

or 

if($foo === '1' || '2' || '3')
{
// foo matches
}

Which step works and is better. is there a better solution?

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4 Answers 4

up vote 4 down vote accepted

The second version will always evaluate to true.

If you want to compact the comparison against multiple alternatives then use:

if (in_array($foo, array('1', '2', '3') )) {

If you want to closely match the exact comparison === then you would however need:

if (is_string($foo) && in_array($foo, array(...))) {
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Damn that I'm a human being check, you are 5s faster :) –  webarto Mar 28 '11 at 23:50
    
hahaha. :) u both got up votes –  snowcode Mar 28 '11 at 23:51
$foo = 1;

if(in_array($foo, array(1, 2, 3))){
    //foo matches 
}
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This is an alternative:

if($foo>0 && $foo<4){

}
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If $foo is always an integer –  afranz409 Mar 29 '11 at 0:15

Second if statement won't work. PHP doesn't work like that. Any number other than 0 (including negatives) evaluates to true when alone in an if statement. This is why you can do something like if(count($array)) without specifying that count($array) must be greater than 0.

Would be the same as if you had said:

if($foo === 1)
{}
elseif(2)  //This will always trigger if $foo !== 1.  
{}
elseif(3)  //This will never trigger because of the last one
{}

Each condition is it's own self contained condition. Instead of reading it as just "or" or "and" read it as "or if" and "and if". So if $foo is 1 or if 2 or if 3 instead of if $foo is 1 or 2 or 3

If it's just numeric, then amosrivera's solution is the best. If it's for other types of data, then webarto/mario have a good solution.

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