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How do I check for multiple values, such as:

$arg = array('foo','bar');

if(in_array('foo','bar',$arg))

That's an example so you understand a bit better, I know it won't work.

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4 Answers 4

up vote 49 down vote accepted

Intersect the targets with the haystack and make sure the intersection is precisely equal to the targets:

$haystack = array(...);

$target = array('foo', 'bar');

if(count(array_intersect($haystack, $target)) == count($target)){
    // all of $target is in $haystack
}

Note that you only need to verify the size of the resulting intersection is the same size as the array of target values to say that $haystack is a superset of $target.

To verify that at least one value in $target is also in $haystack, you can do this check:

 if(count(array_intersect($haystack, $target)) > 0){
     // at least one of $target is in $haystack
 }
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this is what I was thinking too. –  Anthony Jack Sep 24 '11 at 23:54
    
thank you @Mark Elliot –  softsdev Sep 30 '13 at 9:57
    
thank you for this simple solution –  on_ Oct 30 '13 at 11:38
1  
this solution is not the best: $needles=array(1,2); $haystack=array(1,1,2,3); return (count(array_intersect($haystack,$needles)) == count($needles)); this will return false, that is not good. Rok Kralj's solution is good for this case. –  ihtus Jan 28 '14 at 20:29
    
Saved me hours, thank you! –  liveandream Apr 14 '14 at 7:36

True iff ALL needles exist

Here is a solution which returns true if ALL needles are present in the haystack.

function in_array_all($needles, $haystack) {
   return !array_diff($needles, $haystack);
}

echo in_array_all( [3,2,5], [5,8,3,1,2] ); //true, all present
echo in_array_all( [3,2,5,9], [5,8,3,1,2] ); //false, since 9 is not present

You can of course use it directly:

if (!array_diff( [3,2,5], [5,8,3,1,2] )) { //true

This is also very easy to remember. Same way as you would use in_array($needles, $haystack), except you rename it to array_diff and put ! in front.

True iff ANY of the needles exist

function in_array_any($needles, $haystack) {
   return !!array_intersect($needles, $haystack);
}

echo in_array_any( [3,9], [5,8,3,1,2] ); //true, since 3 is present
echo in_array_any( [4,9], [5,8,3,1,2] ); //false, neither 4 nor 9 is present
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1  
Note: this type of array declaration is >= PHP 5.4 –  Claudiu Hojda Mar 10 '14 at 16:23
if(in_array('foo',$arg) && in_array('bar',$arg)){
    //both of them are in $arg
}

if(in_array('foo',$arg) || in_array('bar',$arg)){
    //at least one of them are in $arg
}
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I knew about that, I just wasn't sure if there was a better method ha. –  daryl Sep 24 '11 at 23:52
3  
Bad solution IMHO. Does not scale if new values are dinamically added... –  maraspin Sep 25 '11 at 0:44

IMHO Mark Elliot's solution's best one for this problem. If you need to make more complex comparison operations between array elements AND you're on PHP 5.3, you might also think about something like the following:

<?php

// First Array To Compare
$a1 = array('foo','bar','c');

// Target Array
$b1 = array('foo','bar');


// Evaluation Function - we pass guard and target array
$b=true;
$test = function($x) use (&$b, $b1) {
        if (!in_array($x,$b1)) {
                $b=false;
        }
};


// Actual Test on array (can be repeated with others, but guard 
// needs to be initialized again, due to by reference assignment above)
array_walk($a1, $test);
var_dump($b);

This relies on a closure; comparison function can become much more powerful. Good luck!

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I changed how I did everything already so in the final output I didn't need to do it either way, although its always good to learn, thanks for your input and your time! –  daryl Sep 25 '11 at 1:39
    
glad you've solved your issue. ;-) –  maraspin Sep 25 '11 at 19:55

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