I have this two variables:

var a = 1,
    b = 2;

My question is how to swap them? Only this variables, not any objects.

20 Answers 20

up vote 269 down vote accepted

Here's a one-liner to swap the values of two variables.

b = [a, a = b][0];

Snippet:

var a=1,
    b=2,
    output=document.getElementById('output');

output.innerHTML="<p>Original: "+a+", "+b+"</p>";

b = [a, a = b][0];

output.innerHTML+="<p>Swapped: "+a+", "+b+"</p>";
<div id="output"></div>

  • 191
    +1. But the shortest version will be in ECMAScript 6: [a, b] = [b, a];. – dfsq Apr 24 '13 at 20:42
  • 5
    @Kay: It also seems to be much slower using an array instead of a third variable: http://jsperf.com/swap-array-vs-variable I only tested this in Chrome though. I wasn't able to test ECMAScript 6 version yet as it currently gives a Invalid left-hand side in assignment error. – Nope Apr 24 '13 at 21:02
  • 174
    readability score = zero – Scott Evernden Jul 4 '13 at 19:19
  • 8
    I don't like clever tricks. – Sam Watkins Apr 22 '16 at 5:49
  • 2
    @showdev Read the Dijkstra quote in Ted Hopp's answer. – Brian McCutchon May 13 '16 at 3:37

You can do this:

var a = 1,
    b = 2,
    tmp;
tmp = a;
a = b;
b = tmp;

For readability and maintainability, this can't be beat (at least in JavaScript). Anybody maintaining the code (including you six months from now) will know exactly what's going on.

Since these are integers, you can also use any number of clever tricks1 to swap without using a third variable. For instance you can use the bitwise xor operator:

var a = 1,
    b = 2;
a = a ^ b;
b = a ^ b;
a = a ^ b;

This is called the XOR swap algorithm. Its theory of operation is described in this Wikipedia article.

1"The competent programmer is fully aware of the limited size of his own skull. He therefore approaches his task with full humility, and avoids clever tricks like the plague." — Edsger W. Dijkstra

  • Xor will work with any data type. It's the subtraction trick that will only work with numbers. – Robert Grant Jan 16 '15 at 13:57
  • 8
    @RobertGrant - The xor operator in JavaScript converts its operands to 32-bit integers (using the ToInt32 internal method—see Section 11.10 of the ECMAScript standard). It does not produce the correct results for non-integer numerical values. It also converts non-numeric values to 32-bit integers. If you start with a = "hi" and b = "there", you end up with a == 0 and b == 0. – Ted Hopp Jan 16 '15 at 17:25
  • This answer would be perfect except for the addition of "clever tricks". According to your own quote, you're not a "competent programmer". :( Have a +1 anyway since this is better than the top answer. – Sam Watkins Apr 22 '16 at 5:48
  • 6
    @SamWatkins - Um, how does it follow? I absolutely recommend the boring temporary-variable-swap algorithm. I'm not recommending any "clever tricks", just pointing out that they are there (and quoting Dijkstra so as to discourage their use). – Ted Hopp Apr 22 '16 at 14:24
  • 1
    @Beejor - In other words, it works with any data type, except it doesn't (unless they are integer values). In my book, "swap" means "end with each variable having the value that the other one had", not "convert to int32 and then swap". – Ted Hopp Sep 21 '16 at 0:55

ES6 (Firefox and Chrome already support it (Destructuring Assignment Array Matching)):

[a,b] = [b,a];

Don't use the code below. It is not the recommended way to swap the values of two variables (simply use a temporary variable for that). It just shows a JavaScript trick.

This solution uses no temporary variables, no arrays, only one addition, and it's fast. In fact, it is sometimes faster than a temporary variable on several platforms.
It works for all numbers, never overflows, and handles edge-cases such as Infinity and NaN.

a = b + (b=a, 0)

It works in two steps:

  • (b=a, 0) sets b to the old value of a and yields 0
  • a = b + 0 sets a to the old value of b
  • 5
    The temp var version is slightly faster, and more general and more readable as well. jsperf.com/swap-two-numbers-without-tmp-var/9 – Antimony Mar 12 '14 at 22:45
  • What does this () syntax even mean? how does it yield 0? – Pete Alvin Mar 26 '14 at 22:35
  • 8
    The operator in the parentheses is the comma operator ,, and it has been wrapped to set the precedence right. The comma operator evaluates both of its arguments (in this case b=a and 0) and returns the last (in this case 0). So here, it has the effect of setting the new b to the old value of a, while yielding 0. – Ruben Verborgh Mar 27 '14 at 8:12
  • 5
    Am I right in thinking this only works for numeric value? You can't use this with e.g. var a ="hello" b="world" as a="world0". – Chris GW Green Apr 3 '14 at 9:56
  • 2
    @ChrisGWGreen: a = b + (b=a, "") – user1106925 Sep 24 '14 at 21:41

Here's a one-liner, assuming a and b exist already and have values needing to be swapped:

var c=a, a=b, b=c;

As @Kay mentioned, this actually performs better than the array way (almost 2x as fast).

  • 1
    Like my ideal answer, just I prefer not redeclaring variable a & b when swapping, and use explicit variable name "tmp". Like: var a, b, tmp; a = 1; b = 2; tmp=a, a=b, b=tmp; Personal taste. – Johnny Wong Jun 15 '15 at 3:07

Since ES6, you can also swap variables more elegantly:

var a = 1,
    b = 2;

[a, b] = [b, a];

console.log('a:', a, 'b:', b); // a: 2 b: 1

Use a third variable like this:

var a = 1,
    b = 2,
    c = a;

a = b; // must be first or a and b end up being both 1
b = c;

DEMO - Using a third variable


You could use a temporary swap variable or XOR.

a = a ^ b
b = a ^ b
a = a ^ b

This is just a basic logical concept and works in every language that supports XOR operation.

edit: see the Comments. Forgot to tell that this works for sure only with integer. Assumed the integer variables from question's thread

  • 15
    Works for programming interviews and other general trivia cases. Note, though, this is a rather stupid way to swap values in real life. For one thing, in JS, it only works with integers. – cHao Apr 24 '13 at 20:39
  • 1
    @Kay What do you mean by "not a real thing for the last 30 years?" I use bitwise operators whenever it makes sense, which is actually quite often (toggling an unknown boolean, for example) – Ben Harold Apr 24 '13 at 20:43
  • 1
    @cHao Bitwise operator is consistently (and by far) the fastest on my machine: jsperf.com/swap-array-vs-variable/2 – Ben Harold Apr 24 '13 at 21:08
  • 3
    @php_surgeon I changed the fiddle a bit so that the compiler cannot mark the variables as dead. jsperf.com/swap-array-vs-variable/3. The temp var solution is now 1/4 faster than the xor swap solution – kay Apr 24 '13 at 21:15
  • 1
    @Kay In situations where something is stable, well-commented, the fastest technique, and used in only one or two places, I don't see why it wouldn't be fine in production code. Bitwise ops in general are a difficult concept, so if the code already uses a bunch of them, the maintainers would need to be familiar with them anyway. For most cases, it's obviously overkill. I just think blanket statements aren't always helpful; everything has a place, even "goto" and "eval". – Beejor Sep 21 '16 at 1:00

As your question was precious "Only this variables, not any objects. ", the answer will be also precious:

var a = 1, b = 2

a=a+b;
b=a-b;
a=a-b;

it's a trick

And as Rodrigo Assis said, it "can be shorter "

 b=a+(a=b)-b;

Demo: http://jsfiddle.net/abdennour/2jJQ2/

  • 1
    Same faults as @DmiN's answer. – kay Apr 24 '13 at 20:41
  • 2
    @AbdennourToumi I think Kay is referring to the fact that your answer only works with integers. – showdev Apr 24 '13 at 20:47
  • 1
    @showdev : Please read again question :"Only this variables, not any objects"....my answer is precious as question. I ask you to flag the comment .I repeat : It is not honorable. – Abdennour TOUMI Apr 24 '13 at 20:53
  • 3
    +1 as it will work for op, but it can be shorter b=a+(a=b)-b; – Rodrigo Siqueira Apr 24 '13 at 20:54
  • 1
    This conversation is bizarre. @AbdennourTOUMI - variables aren't the same as integers. You can have variables that point to objects, strings, functions, null, etc. – Robert Grant Jan 16 '15 at 14:05

You can now finally do:

var a = 5;
var b = 10;

[a, b] = [b, a]; // ES6

console.log(a, b);

ES6 Destructuring:

Using an array: [a, b] = [b, a]; // my favorite

Using an object: {a, b} = {a:b, b:a}; // not bad neither

How could we miss these classic oneliners

var a = 1, b = 2
a = ({a:b, _:(b=a)}).a;

And

var a = 1, b = 2
a = (_=b,b=a,_);

The last one exposes global variable '_' but that should not matter as typical javascript convention is to use it as 'dont care' variable.

  • 1
    There is a typo in the second one. It should be a = (_=b,b=a,_); – Mageek Jul 7 '13 at 19:35
  • What does the underscore _ mean? Why does it not need declaration? – day Mar 31 '14 at 19:49
  • underscore is just global variable name, you can replace it with any valid one. e.g. a = (justsomething=b,b=a,justsomething) – Teemu Ikonen Apr 1 '14 at 4:49
  • 5
    Oh no, don't use undeclared magic-global vars! That's a sure way to horrible bugs in real life. – oriadam Dec 31 '15 at 23:09

ES6+ method: Since ES6, you can swap variables more elegantly. You can use destructuring assignment array matching. It’s simply. var a=10 b=20;

[a, b] = [b, a]

console.log(a,b) // 20 10

  • this is fantastic, and only previously available in Go and Python etc :) – zero_cool Sep 29 at 18:08

Single line swapping

a = a^b^(b^=(a^b));
var a = 5;
var b = 10;

b = [a, a = b][0];
//or
b = [a, a = b];
b = b[0];

//or
b = [a, b];
a = b[1];
b = b[0];


alert("a=" + a + ',' + "b=" + b);

remove or comment the 2 //or's and run with the one set of code

http://jsfiddle.net/USdv8/57/

In ES6 now there is destructuring assignment and you can do:

let a = 1;
let b = 2;
[b, a] = [a, b]  // a = 2, b = 1

I see kind of programming olympiad here. One more tricky one-line solution:

b = (function(){ a=b; return arguments[0]; })(a);

Fiddle: http://jsfiddle.net/cherniv/4q226/

  • 2
    No need to use the slow arguments, just do b = (function (x){ return x; })(a, a=b). – Ruben Verborgh Dec 11 '13 at 23:05
  • 1
    @RubenVerborgh yes but with arguments we're not defining a third variable! – Cherniv Dec 12 '13 at 5:13
  • 1
    Technically, the arguments list would also be a variable. – Ruben Verborgh Dec 12 '13 at 9:10
  • 1
    Well, you assign a to arguments[0] by passing it as a parameter. – Ruben Verborgh Dec 12 '13 at 16:58
  • 1
    @RubenVerborgh yes , but you don't creating the arguments and its assignation happens "behind the scenes" – Cherniv Dec 12 '13 at 17:31

We are able to swap var like this :

var val1 =  117,
    val2 = 327;

val2 = val1-val2; 
console.log(val2);
val1 = val1-val2;
console.log(val1);
val2 = val1+val2;
console.log(val2);
let a = 2, b = 4;
[b, a] = [a, b];

a more verbose approach would be

let a = 2, b = 4;
a = [a, b];
b = a[0];
a = a[1];

(function(A, B){ b=A; a=B; })(parseInt(a), parseInt(b));

Your Answer

By clicking "Post Your Answer", you acknowledge that you have read our updated terms of service, privacy policy and cookie policy, and that your continued use of the website is subject to these policies.

Not the answer you're looking for? Browse other questions tagged or ask your own question.