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Why is there no logical XOR in JavaScript?

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21 Answers 21

456

JavaScript traces its ancestry back to C, and C does not have a logical XOR operator. Mainly because it's not useful. Bitwise XOR is extremely useful, but in all my years of programming I have never needed a logical XOR.

If you have two boolean variables you can mimic XOR with:

if (a != b)

With two arbitrary variables you could use ! to coerce them to boolean values and then use the same trick:

if (!a != !b)

That's pretty obscure though and would certainly deserve a comment. Indeed, you could even use the bitwise XOR operator at this point, though this would be far too clever for my taste:

if (!a ^ !b)
3
  • The only problem with != is that you can't do the same as a ^= b, because a !== b is just the strict inequality operator.
    – mcpiroman
    Commented Jan 2, 2020 at 19:34
  • 3
    As long as you already have two boolean variables, a and b, XOR is indeed redundant. But people don't generally need boolean operations when they already have boolean variables. You never do const a = foo == bar; if (a == true) { console.log("foo=bar"); } The very point of boolean operations is allowing for simple inline tests, optimized by the compiler, without the overhead of defining extraneous variables. Commented Dec 26, 2020 at 19:30
  • Well, here's a use-case I just had: data.filter(e => (e.something== reference) ^ invertmatch). xor makes this condition much easier to write (though it deserves a comment). At least when working with boolean values, bitwise xor can be used just fine.
    – MayeulC
    Commented May 15 at 12:56
92

Javascript has a bitwise XOR operator : ^

var nb = 5^9 // = 12

You can use it with booleans and it will give the result as a 0 or 1 (which you can convert back to boolean, e.g. result = !!(op1 ^ op2)). But as John said, it's equivalent to result = (op1 != op2), which is clearer.

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  • 77
    You can use it as a logical xor. true^true is 0, and false^true is 1.
    – Pik'
    Commented Dec 27, 2010 at 17:29
  • 18
    @Pikrass You can use it as a logical operator on booleans, but not on other types. || and && can be used as logical operators on non-booleans (e.g. 5 || 7 returns a truthy value, "bob" && null returns a falsey value) but ^ cannot. For example, 5 ^ 7 equals 2, which is truthy.
    – Mark Amery
    Commented Sep 27, 2014 at 22:11
  • 13
    @Pikrass But sadly, (true ^ false) !== true, which makes it annoying with libraries that require actual booleans
    – Izkata
    Commented Oct 1, 2014 at 14:59
  • 4
    @Pikrass You should never use it as a logical operator on boolean because implementation is OS dependant. I was using some kind of a ^= true to toggle booleans and it fails on some machines such as phones.
    – Masadow
    Commented Jun 5, 2015 at 15:14
  • 2
    @cronvel Sure, it's just that sometimes, you try to shorten super long path such as myObj.collection[index].someImportantFlag = !myObj.collection[index].someImportantFlag so it was more convenient to write it with ^= true. I will never be tempted again :)
    – Masadow
    Commented Oct 26, 2016 at 9:11
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The XOR of two booleans is simply whether they are different, therefore:

Boolean(a) !== Boolean(b)
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  • 2
    I had to use this solution because TypeScript complains when you try to use ^ with booleans. Commented Apr 28, 2021 at 23:02
  • @NathanArthur If you are using typescript Booleans, you can simplify this answer to a !== b Commented Jan 30 at 3:02
  • @DanielKaplan Not really, no. TypeScript types are eliminated entirely at build time; afterwards it's back to normal JS. This means that while parameters variable values will match the type that TypeScript predicts for them, in some circumstances they won't. Therefore, caveat emptor if you compare (what you think are) Booleans without casting them first, as shown.
    – DomQ
    Commented Mar 3 at 17:23
34

There are no real logical boolean operators in Javascript (although ! comes quite close). A logical operator would only take true or false as operands and would only return true or false.

In Javascript && and || take all kinds of operands and return all kinds of funny results (whatever you feed into them).

Also a logical operator should always take the values of both operands into account.

In Javascript && and || take a lazy shortcut and do not evaluate the second operand in certain cases and thereby neglect its side effects. This behavior is impossible to recreate with a logical xor.


a() && b() evaluates a() and returns the result if it's falsy. Otherwise it evaluates b() and returns the result. Therefore the returned result is truthy if both results are truthy, and falsy otherwise.

a() || b() evaluates a() and returns the result if it's truthy. Otherwise it evaluates b() and returns the result. Therefore the returned result is falsy if both results are falsy, and truthy otherwise.

So the general idea is to evaluate the left operand first. The right operand only gets evaluated if necessary. And the last value is the result. This result can be anything. Objects, numbers, strings .. whatever!

This makes it possible to write things like

image = image || new Image(); // default to a new Image

or

src = image && image.src; // only read out src if we have an image

But the truth value of this result can also be used to decide if a "real" logical operator would have returned true or false.

This makes it possible to write things like

if (typeof image.hasAttribute === 'function' && image.hasAttribute('src')) {

or

if (image.hasAttribute('alt') || image.hasAttribute('title')) {

But a "logical" xor operator (^^) would always have to evaluate both operands. This makes it different to the other "logical" operators which evaluate the second operand only if necessary. I think this is why there is no "logical" xor in Javascript, to avoid confusion.


So what should happen if both operands are falsy? Both could be returned. But only one can be returned. Which one? The first one? Or the second one? My intuition tells me to return the first but usually "logical" operators evaluate from left to right and return the last evaluated value. Or maybe an array containing both values?

And if one operand is truthy and the other operand is falsy, an xor should return the truthy one. Or maybe an array containing the truthy one, to make it compatible with the previous case?

And finally, what should happen if both operands are truthy? You would expect something falsy. But there are no falsy results. So the operation shouldn't return anything. So maybe undefined or .. an empty array? But an empty array is still truthy.

Taking the array approach you would end up with conditions like if ((a ^^ b).length !== 1) {. Very confusing.

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  • XOR/^^ in any language will always have to evaluate both operands since it is always dependent on both. The same goes for AND/&&, since all operands must be true (truthy in JS) return pass. The exception is OR/|| since it must only evaluate operands until it finds a truthy value. If the first operand in an OR list is truthy, none of the others will be evaluated.
    – Percy
    Commented Jun 3, 2012 at 0:29
  • You do make a good point, though, that XOR in JS would have to break the convention set forth by AND and OR. It would actually have to return a proper boolean value rather than one of the two operands. Anything else could cause confusion/complexity.
    – Percy
    Commented Jun 3, 2012 at 0:30
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    @Percy AND/&& doesn't evaluate the second operand if the first one is false. It only evaluates operands until it finds a falsy value.
    – Robert
    Commented Jun 4, 2012 at 8:16
  • @DDS Thanks for rectifying the answer. I'm puzzled as to why I didn't notice it myself. Maybe this explains Percy's confusion to some extent.
    – Robert
    Commented Jul 15, 2014 at 16:32
  • My edit was rejected, after which @matts re-edited it exactly the way I fixed it, so I missed my (measely) 2 points. 3 people rejected it and I'm baffled what they used as their criteria. Thx matts.
    – DDS
    Commented Jul 18, 2014 at 0:36
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Convert values into Boolean form and then take bitwise XOR:

Boolean(a) ^ Boolean(b) // === 0 | 1

Note that the result of this expression is a number and not a Boolean.

Bitwise XOR also works with non-Boolean values, but remember that this is a bitwise operator, and not a logical one. Using non-bools may not go as you first expect:

(5 ^ 3) === 6 // true
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Covert to boolean and then perform xor like -

!!a ^ !!b
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  • 9
    Note that !!a ^ !!b is equivalent to !a ^ !b. Arguments could be made as to which is easier to read.
    – tschwab
    Commented Nov 8, 2019 at 19:45
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there is... sort of:

if( foo ? !bar : bar ) {
  ...
}

or easier to read:

if( ( foo && !bar ) || ( !foo && bar ) ) {
  ...
}

why? dunno.

because javascript developers thought it would be unnecessary as it can be expressed by other, already implemented, logical operators.

you could as well just have gon with nand and thats it, you can impress every other possible logical operation from that.

i personally think it has historical reasons that drive from c-based syntax languages, where to my knowledge xor is not present or at least exremely uncommon.

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  • Yes, javascript has ternary ops.
    – mwilcox
    Commented Dec 27, 2010 at 18:38
  • Both C and Java have XOR using ^ (caret) character.
    – veidelis
    Commented Sep 14, 2015 at 11:19
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Yes, Just do the following. Assuming that you are dealing with booleans A and B, then A XOR B value can be calculated in JavaScript using the following

var xor1 = a !== b;

The previous line is also equivalent to the following

var xor2 = (!a !== !b);

Personally, I prefer xor1 since I have to type less characters. I believe that xor1 is also faster too. It's just performing two calculations. xor2 is performing three calculations.

Visual Explanation ... Read the table bellow (where 0 stands for false and 1 stands for true) and compare the 3rd and 5th columns.

!(A === B):

| A | B | A XOR B | A === B | !(A === B) |
------------------------------------------
| 0 | 0 |    0    |    1    |      0     |
| 0 | 1 |    1    |    0    |      1     |
| 1 | 0 |    1    |    0    |      1     |
| 1 | 1 |    0    |    1    |      0     |
------------------------------------------

Enjoy.

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  • 6
    var xor1 = !(a === b); is the same as var xor1 = a !== b;
    – daniel1426
    Commented Feb 25, 2014 at 15:26
  • This answer won't work for all data types (like Premchandra's answer). e.g. !(2 === 3) is true, but 2 and 3 are truthy so 2 XOR 3 should be false. Commented Feb 2, 2016 at 21:38
  • 4
    If you had read my message more carefully, you would have noticed that I wrote "Assuming that you are dealing with booleans A and B ...".
    – asiby
    Commented Feb 3, 2016 at 1:50
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Check out:

You can mimic it something like this:

if( ( foo && !bar ) || ( !foo && bar ) ) {
  ...
}
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  • 3
    Hey if they added a logical XOR operator to JavaScript it would make the code example look much cleaner. Commented Jul 25, 2011 at 12:15
5

One liner for Boolean:

if (x ? !y : y) { do something cool }
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How about transforming the result int to a bool with double negation? Not so pretty, but really compact.

var state1 = false,
    state2 = true;
    
var A = state1 ^ state2;     // will become 1
var B = !!(state1 ^ state2); // will become true
console.log(A);
console.log(B);

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  • This will fail if the operands aren't already boolean. Much better idea is B = ((!state1)!==(!state2))
    – Doin
    Commented Dec 14, 2016 at 16:32
  • True, but you can always negate the operands to cast them, like you did if you are not sure of the types: B =!!(!state1 ^ !state2); Also, why so many parenthesis? B = !state1 !== !state2; Or you can even drop the negation: B = state1 !== state2; Commented Dec 14, 2016 at 16:44
  • Parenthesis are for clarity, and also so I don't have to check the docs on operator precedence when writing code! ;-) Your last expression suffers from my previous complaint: It fails if the operands aren't boolean. But if you're sure they are, then it's definitely the simplest and fastest "logical xor" expression.
    – Doin
    Commented Dec 16, 2016 at 3:37
  • If by last expression you mean state1 !== state2, then you don't need to do any casting there, since !== is a logical operator, not a bitwise. 12 !== 4 is true 'xy' !== true is also true. If you would use != instead of !==, then you would have to do casting. Commented Dec 16, 2016 at 12:01
  • 2
    The result of both !== and != is always boolean... not sure what the distinction you're making there is supposed to be, that's absolutely not the problem. The problem is that the XOR operator we want is really the expression (Boolean(state1) !== Boolean(state2)). For booleans, "xy", 12, 4 and true are all truthy values, and should convert to true. so ("xy" XOR true) should be false, but ("xy" !== true) is instead true, as you point out. So !== or != are (both) equivalent to "logical XOR" if and only if you convert their arguments to booleans before applying.
    – Doin
    Commented Dec 17, 2016 at 12:50
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For posterity's sake, and because I found this to be a good exercise, you can leverage truthiness with the XOR operator quite easily to coerce. Like the chosen answer, it's probably a bit too clever.

const xor = (a, b) => !!(!!a ^ !!b)

console.log(undefined ^ {}) // Returns 0, bitwise can't be done here.
console.log(xor(undefined, {})) // Returns true, because {} is truthy and undefined is falsy
console.log(0 ^ 1) // Works naturally, returns 1
console.log(xor(0, 1)) // Also works, returns true
console.log(true ^ false) // Again, returns true
console.log(xor(true, false)) // And again, returns true...

And for fun, this should work in TypeScript, by forcing explicit any:

const xor = (a: any, b: any) => !!((!!a as any) ^ (!!b as any))
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2

In above xor function it will result SIMILAR result as logical xor does not exactly logical xor, means it will result "false for equal values" and "true for different values" with data type matching in consideration.

This xor function will work as actual xor or logical operator, means it will result true or false according to the passing values are truthy or falsy. Use according to your needs

function xor(x,y){return true==(!!x!==!!y);}

function xnor(x,y){return !xor(x,y);}
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  • "xnor" is the same as "===".
    – daniel1426
    Commented Feb 25, 2014 at 15:25
  • @daniel1426 not quite. It is the same as (!!x) === (!!y). The difference is a cast to boolean. '' === 0 is false, while xnor('', 0) is true.
    – tschwab
    Commented Nov 8, 2019 at 19:50
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The reason there is no logical XOR (^^) is because unlike && and || it does not give any lazy-logic advantage. That is the state of both expressions on the right and left have to be evaluated.

2

In Typescript (The + changes to numeric value):

value : number = (+false ^ +true)

So:

value : boolean = (+false ^ +true) == 1
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  • @Sheraff in normal javascript, !!(false ^ true) works fine with booleans. In typescript, + is required to make it valid !!(+false ^ +true).
    – pfg
    Commented Feb 23, 2020 at 4:06
0

cond1 xor cond2 is equivalent to cond1 + cond 2 == 1:

Here's the proof :

let ops = [[false, false],[false, true], [true, false], [true, true]];

function xor(cond1, cond2){
  return cond1 + cond2 == 1;
}

for(op of ops){
  console.log(`${op[0]} xor ${op[1]} is ${xor(op[0], op[1])}`)
}

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  • For this proof to be meaningful in a real-world context, I would suggest modifying the values to accept any truthy/falsy value, rather than booleans alone: function xor(cond1, cond2){ return !!cond1 + !!cond2 === 1 } Commented Oct 8, 2021 at 17:40
  • @ChrisPerry I understand your suggestion. But my answer is about the concept of XOR, which tackles Boolean entities. With truthy comparisons you end up mixing notions that shouldn't be mixed in my opinion. It is a personal choice and I prefer limiting the scope of my answer to Booleans.
    – madjaoue
    Commented Oct 13, 2021 at 14:11
  • Isn't the whole point of JavaScript that truthy notations should be mixed? Commented Oct 18, 2021 at 22:31
0

Lots of discussion on why this is not available, and other methods. What I'd like to focus on is how to make this approachable and scalable so that it's reasonably easy to understand/maintain, and easy to extend for a collection (array) of values; to that end:

[true, false].filter(x => x).length === 1;         // true, only 1 truthy
[false, true, false].filter(x => x).length === 1;  // true, only 1 truthy
[true, false, true].filter(x => x).length === 1;   // false, 2+ truthy

Leverages the Array's filter and length members and easily fits inline. Or, can be made reusable in a function, plus sample use:

function xor(array) {
    return (array ?? []).filter(x => x).length === 1;
}

xor([true, false]);         // true, only 1 truthy
xor([false, true, false]);  // true, only 1 truthy
xor([true, false, true]);   // false, 2+ truthy
-1

Here's an alternate solution that works with 2+ variables and provides count as bonus.

Here's a more general solution to simulate logical XOR for any truthy/falsey values, just as if you'd have the operator in standard IF statements:

const v1 = true;
const v2 = -1; // truthy (warning, as always)
const v3 = ""; // falsy
const v4 = 783; // truthy
const v5 = false;

if( ( !!v1 + !!v2 + !!v3 + !!v4 + !!v5 ) === 1 )
  document.write( `[ ${v1} XOR ${v2} XOR "${v3}" XOR ${v4} XOR ${v5} ] is TRUE!` );
else
  document.write( `[ ${v1} XOR ${v2} XOR "${v3}" XOR ${v4} XOR ${v5} ] is FALSE!` );

The reason I like this, is because it also answers "How many of these variables are truthy?", so I usually pre-store that result.

And for those who want strict boolean-TRUE xor check behaviour, just do:

if( ( ( v1===true ) + ( v2===true ) + ( v3===true ) + ( v4===true ) + ( v5===true ) ) === 1 )
  // etc.

If you don't care about the count, or if you care about optimal performance: then just use the bitwise xor on values coerced to boolean, for the truthy/falsy solution:

if( !!v1 ^ !!v2 ^ !!v3 ^ !!v4 ^ !!v5 )
  // etc.
-1

Most of the proposed methods here are hard to read and understand. Instead of writing some cryptic and magical comparisons or trying to comment them, just define a reusable function that is self-explanatory:

function either(a: boolean, b: boolean): boolean {
  return (a !== b);
}

Or a more universal one:

function either(a: any, b: any): boolean {
  return Boolean(a) !== Boolean(b);
}

Then you can use it like this:

assert(either(one, another), 'Either one or another, not both');
-2

Hey I found this solution, to make and XOR on JavaScript and TypeScript.

if( +!!a ^ +!!b )
{
  //This happens only when a is true and b is false or a is false and b is true.
}
else
{
  //This happens only when a is true and b is true or a is false and b is false
}
2
  • while the solution works, it is definitely the least readable of all answers with all those cryptic symbols. I would rather see the statement written in the comment turned into code. Commented Apr 22, 2021 at 11:35
  • This solution is a little overcomplicated, without any gain for it. The unary pluses are just redundant and unnecessary, since a single ! already converts the operand to a bool. This means that all the + does is convert true or false into 1 or 0, both of which have identical outcomes in this context. Also worth noting that !!a ^ !!b is equivalent to !a ^ !b too.
    – zcoop98
    Commented Jun 16, 2021 at 23:49
-4

Try this short and easy to understand one

function xor(x,y){return true==(x!==y);}

function xnor(x,y){return !xor(x,y);}

This will work for any data type

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  • 4
    This doesn't work for all data types. As with a logical type coercing operator, I would expect "foo" xor "bar" to be false, because both are truthy. That is currently not the case with your function. Generally, doing true == someboolean is not necessary, so really, what you've done is wrapping the strict not-equals into a function.
    – Gijs
    Commented Jul 31, 2013 at 15:27
  • Hi GiJs, I agree your argument, "foo" and "bar" are truthy values. But I write the function keeping in mind that it will result similar output as xor does (un-equal values results true, equal values results false) not for truthy/falsy value only. And I found more usage in such scenario. But I am writing true logical xor in another answer below. Commented Aug 8, 2013 at 7:47

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