36
[2,5,3]    

[5,2,3]

They are equal because they have the same values, but not in the same order. Can I find out that without using a foreach loop with in_array() ? I dont think it would be efficient.

  • array_diff() is not perfect one. sort and than comparing the best. – Suresh Kamrushi Jan 15 '14 at 13:28
  • 1
    @jeroen: run this:`$array = array(4,3); $array2 = array(2,3,4); echo var_dump(array_diff($array,$array2));' – Suresh Kamrushi Jan 15 '14 at 13:30
  • @SureshKamrushi Nice! – jeroen Jan 15 '14 at 13:32
  • so array_diff doesnt work? – Anna K. Jan 15 '14 at 17:05
  • 1
    As of the time that I am writing this, none of the given solutions actually work. All of them fail with boolean values. – Jay Bienvenu Apr 30 '18 at 22:22
66
sort($a);
sort($b);
if ($a==$b) {//equal}
  • The sort function has a side effect of sorting the data so if you want to preserve the original order you need to make a copy of it into $a and $b before using this. – Ray Sep 1 '17 at 19:29
  • 10
    I would not accept this answer. Returns true for ['a'] and [true]. – Jay Bienvenu Apr 30 '18 at 22:03
  • Of note, testing sort($a) == sort($b) always returns true, I assume because PHP is checking the return of sort() with is probably 1, instead of looking at the arrays. – siliconrockstar Nov 24 '18 at 17:24
  • 1
    Its not best answer, sort affect the array values. It's not working in all case – Ali Akbar Azizi Feb 6 '19 at 20:33
  • 1
    @JayBienvenu Tested this case with === instead of ==, ['a'] and [true] returns false. – Cameron Wilby Apr 19 '19 at 14:20
16

This is a bit late to the party but in hopes that it will be useful:

If you are sure the arrays both only contain strings or both only contain integers, then array_count_values($a) == array_count_values($b) has better time complexity. However, user1844933's answer is more general.

  • 1
    This will fail if there is a clash in the integers (meaning the first value has -1, and the second has +1) the computed value will be equal to both arrays, but they are different arrays. – kindaian Aug 4 '17 at 10:05
  • @kindaian please demonstrate when array_count_values() can possibly generate a negative value. – mickmackusa Apr 12 '19 at 2:20
12

Coming to this party late. I had the same question but didn't want to sort, which was the immediate answer I knew would work. I came up with this simple one-liner which only works for arrays of unique values:

$same = ( count( $a ) == count( $b ) && !array_diff( $a, $b ) )

It's also about a factor of 5 faster than the sort option. Not that either is especially slow, so I would say it is more about your personal preferences and which one you think is more clear. Personally I would rather not sort.

Edit: Thanks Ray for pointing out the fact that this only works with arrays with unique values.

  • I think this is the best answer, the accepted answer leaves a side effect of actually sorting arrays $a and $b which you might not want. – Ray Sep 1 '17 at 19:26
  • Looking a bit deeper this seems to not work in every case as array_diff collapses multiple results into one. This seems to pass. $a = ['red','red','blue','blue']; $b = ['red','red','red','blue']; – Ray Sep 1 '17 at 19:47
  • That makes me so sad... I'll have to check it out. I really don't want to have to do any sorting, but I also don't want to throw a unique on $a and $b to do this... – Conor Mancone Sep 1 '17 at 20:05
  • Indeed... unique doesn't get you out of this one either. I've only used this in use-cases where duplicates have already been removed, so this one slipped past my radar. I'm going to add a note about this important exception. – Conor Mancone Sep 1 '17 at 20:11
  • 1
    Indeed @JayBienvenu, many PHP functions are not strict about types. It's certainly a helpful note to add because there might occasionally be uses cases where it matters, but considering that PHP is effectively loosely-typed by default, that is just the nature of the beast. No sense in pretending otherwise. You're not looking for a different solution, you're looking for a different language. – Conor Mancone May 1 '18 at 20:43
6

If you don't want to sort arrays but just want to check equality regardless of value order use http://php.net/manual/en/function.array-intersect.php like so:

$array1 = array(2,5,3);
$array2 = array(5,2,3);
if($array1 === array_intersect($array1, $array2) && $array2 === array_intersect($array2, $array1)) {
    echo 'Equal';
} else {
    echo 'Not equal';
}
  • 5
    This solution doesn't take repetition of items into consideration. e.g.: [2,5,3] & [5,2,3,3] would be equal according to above logic. – Rao Jun 14 '16 at 21:05
  • hello sir, if $array1 = array(2,5,3,1,9,8); $array2 = array(5,2,3); then how is it used? – Amol Navsupe Jul 20 '16 at 13:54
  • Returns true for [true] and [1]. – Jay Bienvenu Apr 30 '18 at 22:05
1

The best way will be using array_diff http://php.net/manual/en/function.array-diff.php

$arr1 = [2,5,3];
$arr2 = [5,2,3];

$isEqual = array_diff($arr1,$arr2) === array_diff($arr2,$arr1);
  • This solution doesn't take repetition of items into consideration. e.g.: [2,5,3] & [5,2,3,3] would be equal according to above logic. 3v4l.org/1SRp7 – dearsina Jul 1 '19 at 8:16
0

As none of the given answers that are completely key-independent work with duplicated values (like [1,1,2] equals [1,2,2]) I've written my own.

This variant does not work with multi-dimensional arrays. It does check whether two arrays contain the exactly same values, regardless of their keys and order without modifying any of the arguments.

function array_equals(array $either, array $other) : bool {
    $copy = $either;
    foreach ($other as $element) {
        $key = array_search($element, $copy, true);
        if ($key === false) {
            return false;
        }
        unset($copy[$key]);
    }
    return empty($copy);
}

Although the question asked about a foreach-free variant, I couldn't find any solution that satisfied my requirements without a loop. Additionally most of the otherwise used functions use a loop internally too.

0

Say, if you have two arrays defined like this:

$array1 = array(2,5,3);
$array2 = array(5,2,3);

Then you can use this piece of code to judge whether they equal:

if(array_diff($array1,$array2) === array_diff($array2,$array1) &&count($array1)==count($array2))
{
    echo 'Equal';
}
else
{
    echo 'Not equal';
}
  • Please add some explanation to your answer – El.Hum Dec 9 '19 at 9:39
-2

I came across this problem and solve it thus: I needed to ensure that two objects had the same fields So

const expectedFields = ['auth', 'message'];
const receivedFields = Object.keys(data);
const everyItemexists = expectedFields.map(i => receivedFields.indexOf(i) > -1);
const condition = everyItemexists.reduce((accumulator, item) => item && accumulator, true);

Basically, go through one of the arrays, here (I'm assuming there are of the same size though). Then check if its exists in the other array. Then i reduce the result of that.

-3
$array1 = array(2,5,3);
$array2 = array(5,2,3);
$result = array_diff($array1, $array2);
if(empty($result))
{
   echo "Both arrays are equal.";
}
else
{
   echo "Both arrays are different.";
}
  • 8
    That's not correct. your code example will fail for $array1 = array(2,5,3, 3); $array2 = array(5,2,3); array_diff checks which values are in both arrays, it does not care how often they are in there. – Matthias Huttar Apr 16 '15 at 12:48
  • @Matthias Huttar that is correct .. unfortunately I had to go the hard way to discover .. – Ionut May 19 '15 at 0:27
  • Also, array_diff "compares array1 against one or more other arrays and returns the values in array1 that are not present in any of the other arrays." So if, for example, $array2 had more distinct values than $array1, the code in this answer would falsely report the arrays as equal. This is the point alluded to in the comment by @SureshKamrushi under the question. – faintsignal Dec 3 '15 at 16:22
  • 1
    could i suggest the usage of array_unique to this answer? – John Jun 15 '18 at 10:17

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