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I need to find arrays where all values are equal. What's the fastest way to do this? Should I loop through it and just compare values?

['a', 'a', 'a', 'a'] // true
['a', 'a', 'b', 'a'] // false
share|improve this question
1  
What have you tried? Where have you got stuck? What do you think would be the best approach? Why? What makes you think you're not right? – T.J. Crowder Feb 12 '13 at 12:30
1  
@T.J.Crowder I bet you are already thinking about the best solution ;) – VisioN Feb 12 '13 at 12:31
9  
@VisioN: No, actually, I (now) refuse to answer questions like this. I wish everyone did. The quality of the questions on SO has been nosediving for months, and people just put up with it. – T.J. Crowder Feb 12 '13 at 12:31
1  
@T.J.Crowder: Not to mention the willingness of askers to actually accept answers. Users with 1 rep often seem to be ask & run types that leave as soon as they have a copy-paste-able answer, lately. – Cerbrus Feb 12 '13 at 12:39
1  
Something around this approach should work ? a.join(',').split(a[0]).length === a.length + 1 – Jashwant Feb 12 '13 at 12:42

17 Answers 17

up vote 33 down vote accepted

This works. You create a method on Array by using prototype.

Array.prototype.allValuesSame = function() {

    for(var i = 1; i < this.length; i++)
    {
        if(this[i] !== this[0])
            return false;
    }

    return true;
}

Call this in this way:

var a = ['a', 'a', 'a'];
var b = a.allValuesSame(); //true
a = ['a', 'b', 'a'];
b = a.allValuesSame(); //false
share|improve this answer
3  
very nice, but beware: IE does not support this way of assigning prototypes. I use it anyway. – Tomáš Zato Feb 12 '13 at 12:34
    
You don't need the else block in there, because the if will return a value from the function, before the code below it has a chance to be executed, if the condition in the if is true. If it's false, the else should be executed any way, no need to wrap it in extra {}'s – Cerbrus Feb 12 '13 at 12:43
2  
@TomášZato: IE supports augmenting the Array.prototype just fine (even IE6). It's only DOM element prototypes that some older versions of IE don't support augmenting. – T.J. Crowder Feb 12 '13 at 13:00
    
@T.J. Crowder: Ah, thank you and sorry for my missinformation. – Tomáš Zato Feb 12 '13 at 13:02
2  
I don't think it's a good idea to be monkey patching built-in prototypes. If multiple libraries do it, it can lead to unexpected behavior that's very difficult to debug. – Mark Wilbur Dec 12 '14 at 7:33

Edit: Be a Red ninja:

!!array.reduce(function(a, b){ return (a === b) ? a : NaN; });

Results:

var array = ["a", "a", "a"] => result: "true"
var array = ["a", "b", "a"] => result: "false"
var array = ["false", ""] => result: "false"
var array = ["false", false] => result: "false"
var array = ["false", "false"] => result: "true"
var array = [NaN, NaN] => result: "false" 
share|improve this answer
    
+1 I tried to come up with a reduce version of this myself but didn't succeed. This is pretty cool. – Dan Lee Oct 15 '14 at 7:10
2  
might be a bit late to the party... i think this doesn't work if your array is made of falses! for example try [false, false, false].reduce(function(a, b){return (a === b)?a:false;}); – George Flourentzos Nov 27 '14 at 19:21
    
Small change: arr.reduce(function(a, b){return (a === b)?a:false;}) === arr[0]; – Martin Feb 9 '15 at 23:26
1  
@Martin: ["false", ""] returns true :/ – dalgard Oct 15 '15 at 16:55
2  
This can be taken up a notch by using NaN. Since both NaN === NaN and NaN !== NaN are false, it guarantees that once the prev is set to NaN then no value can take it out. Also adding in a double negation converts the results to true and false, since NaN is falsy. Final form: !!array.reduce(function(a, b){ return (a === b) ? a : NaN; }); – Red Jan 19 at 17:53

In JavaScript 1.6, you can use Array.every:

function AllTheSame(array) {
    var first = array[0];
    return array.every(function(element) {
        return element === first;
    });
}

You probably need some sanity checks, e.g. when the array has no elements. (Also, this won't work when all elements are NaN since NaN !== NaN, but that shouldn't be an issue... right?)

share|improve this answer
    
Dat ugly copy/paste of all/any functions of Python... – Olivier Pons Apr 23 at 8:46

Well, this is really not very complicated. I have strong suspicion you didn't even try. What you do is that you pick the first value, save it in the variable, and then, within a for loop, compare all subsequent values with the first one.
I intentionally didn't share any code. Find how for is used and how variables are compared.

share|improve this answer
1  
this should be accepted one. – alix Apr 25 '13 at 14:32
3  
I don't like this answer. It wouldn't let you know if the second value was the same as the third, etc. Obviously nested loop would do it, but that's conceptually different to a novice scripter. – jtromans Aug 20 '13 at 16:42
3  
@jtromans: because of the transitive property of equality, if A==B and A==C then we know B==C; you don't have to verify it "manually" with a nested loop etc. Repeating comparison against a single value (first value in the array, not an arbitrary one :) is exactly what this answer suggests and so does the accepted answer. – o.v. Aug 29 '13 at 23:53
    
@o.v. Indeed, in my haste I misread the question, which I thought at the time required more than just checking that all values are equal (!duh). – jtromans Sep 20 '13 at 10:09
1  
It was originally meant to make a strong point towards the OP insisting he tries to think before asking questions. – Tomáš Zato Jan 24 '15 at 23:48

And for performance comparison I also did a benchmark:

function allAreEqual(array){
    if(!array.length) return true;
    // I also made sure it works with [false, false] array
    return array.reduce(function(a, b){return (a === b)?a:(!b);}) === array[0];
}
function same(a) {
    if (!a.length) return true;
    return !a.filter(function (e) {
        return e !== a[0];
    }).length;
}

function allTheSame(array) {
    var first = array[0];
    return array.every(function(element) {
        return element === first;
    });
}

function useSome(array){
    return !array.some(function(value, index, array){
        return value !== array[0];
    });
}

Results:

allAreEqual x 47,565 ops/sec ±0.16% (100 runs sampled)
same x 42,529 ops/sec ±1.74% (92 runs sampled)
allTheSame x 66,437 ops/sec ±0.45% (102 runs sampled)
useSome x 70,102 ops/sec ±0.27% (100 runs sampled)

So apparently using builtin array.some() is the fastest method of the ones sampled.

share|improve this answer
2  
Good idea to check what's more performant here. The reason why Array#some is going to sometimes outperform is that once the callback function returns true, it stops iterating. So, if all the elements are in fact equal, the performance should be identical to Array#every. And the relative performance when all elements are not equal will vary based on the index of the first non-matching element. – danmactough Jan 6 '15 at 12:09

Shortest answer using underscore/lodash

function elementsEqual(arr) {
    return !_.without(arr, arr[0]).length
}
share|improve this answer
arr.length && arr.reduce(function(a, b){return (a === b)?a:false;}) === arr[0];
share|improve this answer

You can use Array.every if supported:

var equals = array.every(function(value, index, array){
    return value === array[0];
});

Alternatives approach of a loop could be something like sort

var temp = array.slice(0).sort();
var equals = temp[0] === temp[temp.length - 1];

Or, if the items are like the question, something dirty like:

var equals = array.join('').split(array[0]).join('').length === 0;

Also works.

share|improve this answer
1  
Thank you for putting all answers in one... – Tomáš Zato Feb 12 '13 at 13:05
    
You have the first example backwards. Should be equals = !array.some( (v,i,a) => v!==a[0] ). Otherwise you're just checking that any value equals the first which will, of course, always be true :) – zyklus Jul 30 '15 at 4:53
    
Not exactly, I used some instead of every as I mentioned in the first paragraph. :) Thanks for the catch! – ZER0 Aug 2 '15 at 15:39

Something around this approach should work.

a.join(',').split(a[0]).length === a.length + 1
share|improve this answer
1  
I upvoted a while ago, and then realized that this would report the following as all the same: ["a", "b", "aa"]. Bummer! – Scott Sauyet Feb 12 '13 at 14:02
    
Yep it sure does. Bummer. – Robert Fricke Feb 12 '13 at 15:03
    
@ScottSauyet Nice catch, I didnt think much about it and thus said, something around this approach. Btw, it suits OP's need as it looks to me that all array elements are chars. – Jashwant Feb 12 '13 at 17:31

I think the simplest way to do this is to create a loop to compare the each value to the next. As long as there is a break in the "chain" then it would return false. If the first is equal to the second, the second equal to the third and so on, then we can conclude that all elements of the array are equal to each other.

given an array data[], then you can use:

for(x=0;x<data.length - 1;x++){
    if (data[x] != data[x+1]){
        isEqual = false;            
    }
}
alert("All elements are equal is " + isEqual);
share|improve this answer
    
This might be the fastest solution: jsperf.com/array-equal-values – Tieme Feb 9 at 12:18

If you're already using underscore.js, then here's another option using _.uniq:

function allEqual(arr) {
    return _.uniq(arr).length === 1;
}

_.uniq returns a duplicate-free version of the array. If all the values are the same, then the length will be 1.

share|improve this answer
// true
[1,1,1,1].every( (val, i, arr) => val == arr[0] )     

Array.prototype.every (from MDN) : The every() method tests whether all elements in the array pass the test implemented by the provided function.

share|improve this answer

You can use this:

function same(a) {
    if (!a.length) return true;
    return !a.filter(function (e) {
        return e !== a[0];
    }).length;
}

The function first checks whether the array is empty. If it is it's values are equals.. Otherwise it filter the array and takes all elements which are different from the first one. If there are no such values => the array contains only equal elements otherwise it doesn't.

share|improve this answer
1  
Mind explaining what this piece of code does / how it works? – Cerbrus Feb 12 '13 at 12:48
    
Yes, I added an explanation. :-) – Minko Gechev Feb 12 '13 at 12:52
    
Thanks! May I suggest casting the result to a boolean? – Cerbrus Feb 12 '13 at 12:53

Underscore's _.isEqual(object, other) function seems to work well for arrays. The order of items in the array matter when it checks for equality. See http://underscorejs.org/#isEqual.

share|improve this answer

My extremely simple way :

      var listTrue = ['a', 'a', 'a', 'a'];
      var listFalse = ['a', 'a', 'a', 'ab'];

      function areWeTheSame(list) { 
         var sample = list[0];
         return !(list.some(function(item) {
             return !(item == sample);
         }));
      }
share|improve this answer
var listTrue = ['a', 'a', 'a', 'a'];
var listFalse = ['a', 'a', 'a', 'ab'];

function areWeTheSame(list) { 
    var sample = list[0];
    return !(list.some(function(item) {
        return !(item == sample);
    }));
}
share|improve this answer
    
Please also explain what you did instead of just pasting some code. – Wouter J May 4 '15 at 11:16

You can get this one-liner to do what you want using Array.prototype.every, Object.is, and ES6 arrow functions:

const all = arr => arr.every(x => Object.is(arr[0], x));
share|improve this answer
2  
Please, describe the solution you're proposing. – il_raffa Dec 29 '15 at 10:26

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