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I want to know the best way to do a PHP IF OR statement.. but I have a list of arrays over 30+

This is the current format of the array:

if($cq=="45" || $cq=="45" || $cq=="35")  {

// action to my function

}

I know I can do an array but Array(); does not support conditions..

Thanks

UPDATE - I know it is old, even I know that and I am novice PHP. Look at my profile questions example (blank ones)

This is the code I was left with:

if(
                            $cq=="45" || 
                            $cq=="53" || 
                            $cq=="37" || 
                            $cq=="70" || //
                            $cq=="74" || //
                            $cq=="36" || // - this function removes colours if they have this ID
                            $cq=="66" || //
                            $cq=="61" || //
                            $cq=="69" || 
                            $cq=="20" || 
                            $cq=="55" || 
                            $cq=="50")

                            {



                            }
share|improve this question
    
Your question is not clear at all, but are you looking for the in_array builtin function? –  Artefact2 Oct 13 '11 at 13:52
    
Where's the array? –  Mob Oct 13 '11 at 13:53
    
I agree with @Artefact2. By the way $cq=="45" || $cq=="45" is quite redundant. –  breiti Oct 13 '11 at 13:54

3 Answers 3

up vote 1 down vote accepted
$yourArray = ('45', '45', '35'):
if ( in_array($ca, $yourArray) ) { ... }
share|improve this answer

You can try with:

$cqs = array("45", "35");
if ( in_array($cq, $cqs) ) {
    // action to your function
}

Also you have to concider your variable type - is it integer ? Then remove all of that "

share|improve this answer
    
Check the third parameter of the function ;) –  hakre Oct 13 '11 at 13:56
    
@hakre Sure thing, but always remember about strong typing even if it is not necessery in language. ;-) –  hsz Oct 13 '11 at 13:59

You do this with array's:

$test = array(45,35);

if(in_array($cq,$test)){

    // action to your function

}
share|improve this answer

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