66

I have 2 arrays, the value will be loaded from database, below is an example:

$arr1 = array(1,2,3);
$arr2 = array(1,2,3,4,5,6,7);

What I want to do is to check if all the values in $arr1 exist in $arr2. The above example should be a TRUE while:

$arr3 = array(1,2,4,5,6,7);

comparing $arr1 with $arr3 will return a FALSE.

Normally I use in_array because I only need to check single value into an array. But in this case, in_array cannot be used. I'd like to see if there is a simple way to do the checking with a minimum looping.

UPDATE for clarification.

First array will be a set that contains unique values. Second array can contain duplicated values. They are both guaranteed an array before processing.

Ben Fortune
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Donny Kurnia
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  • Might be worth clarifying: Are you looking for normal "set" semantics? What result would you expect if the second array was array(1,2,4,3)? What if the first was array(1,1,1,1)? Or are they illegal? – Oddthinking Feb 21 '10 at 01:44

5 Answers5

101

Use array_diff():

$arr1 = array(1,2,3);
$arr2 = array(1,2,3,4,5,6,7);
$arr3 = array_diff($arr1, $arr2);
if (count($arr3) == 0) {
  // all of $arr1 is in $arr2
}
cletus
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45

You can use array_intersect or array_diff:

$arr1 = array(1,2,3);
$arr2 = array(1,2,3,4,5,6,7);

if ( $arr1 == array_intersect($arr1, $arr2) ) {
    // All elements of arr1 are in arr2
}

However, if you don't need to use the result of the intersection (which seems to be your case), it is more space and time efficient to use array_diff:

$arr1 = array(1,2,3);
$arr2 = array(1,2,3,4,5,6,7);
$diff = array_diff($arr1, $arr2);

if ( empty($diff) ) {
    // All elements of arr1 are in arr2
}
Justin Johnson
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  • The behavior of `array_intersect` is different that `array_diff`. `array_intersect` return common elements. If the `$arr1` contains values that does not exist in `$arr2` the result will be different of `array_diff` and this result will be wrong for the anwser. – Fabien Salles Nov 19 '18 at 08:56
5

You can try use the array_diff() function to find the difference between the two arrays, this might help you. I think to clarify you mean, all the values in the first array must be in the second array, but not the other way around.

Sam Becker
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  • Yes Sam. All `$arr1` values must be appear in second array, to get a `TRUE` condition, otherwise, `FALSE`. I'll take a look for the `array_diff()`. Thanks – Donny Kurnia Feb 21 '10 at 06:07
0
function in_2array($needle,$haystack,$full_search=false){
    $ret = false;
    foreach($needle as $search){
        if(in_array($search,$haystack)){
            $ret = true;
            if(!$full_search){
                break;
            }
        }else if($full_search){
            $ret = false;
            break;
        }
    }
    return $ret;
}

if(in_2array($arr1,$arr2,true)){
echo 'It`s Ok!';
}
user3754884
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0

In my particular case I needed to check if a pair of ids was processed before or not. So simple array_diff() did not work for me.

Instead I generated keys from ids sorted alphabetically and used them with in_array:

<?php
$pairs = array();
// ...
$pair = array($currentId, $id);
sort($pair);
$pair = implode('-', $pair);
if (in_array($pair, $pairs)) {
    continue;
}
$pairs[$pair] = $pair;

This is probably not an optimum solution at all but I just needed it for a dirty script to be executed once.

Ivan Karpan
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