Here is the software version number:

"1.0", "1.0.1", "2.0", "2.0.0.1", "2.0.1"

How can I compare this?? Assume the correct order is:

"1.0", "1.0.1", "2.0", "2.0.0.1", "2.0.1"

The idea is simple...: Read the first digit, than, the second, after that the third.... But I can't convert the version number to float number.... You also can see the version number like this:

"1.0.0.0", "1.0.1.0", "2.0.0.0", "2.0.0.1", "2.0.1.0"

and this is more clear to see what is the idea behind... But, how to convert it into a computer program?? Do any one have any idea on how to sorting this? Thank you.

  • 1
    Interesting question. – MrMisterMan Jul 26 '11 at 15:33
  • 4
    This would be a good fizzbuzz-type interview question. – Steve Claridge Jul 26 '11 at 15:33
  • 2
    This why all software version numbers should be integers like 2001403. When you want to display it in some friendly way like "2.0.14.3" then you format the version number at presentation time. – jarmod May 10 '13 at 21:50
  • 2
    The general problem here is Semantic Version comparisons, and it's non-trivial (see #11 at semver.org). Fortunately, there is an official library for that, the semantic versioner for npm. – Dan Dascalescu Sep 2 '15 at 0:23
  • 1
    Found a simple script that compares semvers – vsync Jan 5 '17 at 14:16

36 Answers 36

up vote 108 down vote accepted

The basic idea to make this comparison would be to use Array.split to get arrays of parts from the input strings and then compare pairs of parts from the two arrays; if the parts are not equal we know which version is smaller.

There are a few of important details to keep in mind:

  1. How should the parts in each pair be compared? The question wants to compare numerically, but what if we have version strings that are not made up of just digits (e.g. "1.0a")?
  2. What should happen if one version string has more parts than the other? Most likely "1.0" should be considered less than "1.0.1", but what about "1.0.0"?

Here's the code for an implementation that you can use directly (gist with documentation):

function versionCompare(v1, v2, options) {
    var lexicographical = options && options.lexicographical,
        zeroExtend = options && options.zeroExtend,
        v1parts = v1.split('.'),
        v2parts = v2.split('.');

    function isValidPart(x) {
        return (lexicographical ? /^\d+[A-Za-z]*$/ : /^\d+$/).test(x);
    }

    if (!v1parts.every(isValidPart) || !v2parts.every(isValidPart)) {
        return NaN;
    }

    if (zeroExtend) {
        while (v1parts.length < v2parts.length) v1parts.push("0");
        while (v2parts.length < v1parts.length) v2parts.push("0");
    }

    if (!lexicographical) {
        v1parts = v1parts.map(Number);
        v2parts = v2parts.map(Number);
    }

    for (var i = 0; i < v1parts.length; ++i) {
        if (v2parts.length == i) {
            return 1;
        }

        if (v1parts[i] == v2parts[i]) {
            continue;
        }
        else if (v1parts[i] > v2parts[i]) {
            return 1;
        }
        else {
            return -1;
        }
    }

    if (v1parts.length != v2parts.length) {
        return -1;
    }

    return 0;
}

This version compares parts naturally, does not accept character suffixes and considers "1.7" to be smaller than "1.7.0". The comparison mode can be changed to lexicographical and shorter version strings can be automatically zero-padded using the optional third argument.

There is a JSFiddle that runs "unit tests" here; it is a slightly expanded version of ripper234's work (thank you).

Important note: This code uses Array.map and Array.every, which means that it will not run in IE versions earlier than 9. If you need to support those you will have to provide polyfills for the missing methods.

  • 15
    Here is an improved version with some unit tests: jsfiddle.net/ripper234/Xv9WL/28 – ripper234 Mar 13 '12 at 10:36
  • 5
    Hey All, I've rolled this gist into a gitrepo with tests and everything and put it up on npm and bower so I can include it in my projects more easily. github.com/gabe0x02/version_compare – Gabriel Littman Nov 6 '14 at 1:10
  • 2
    @GabrielLittman: Hey, thanks for taking the time to do that! However all code on SO is licensed with CC-BY-SA by default. That means you can't have your package be GPL-licensed. I know lawyering is not what anyone is here for, but it would be good if you fixed it. – Jon Nov 6 '14 at 9:53
  • 2
    @GabrielLittman: GPL is actually very restrictive in the sense that you are forced to GPL-license all code that comes into contact with existing GPL code. Anyway, for future reference: a good and widely used "do whatever you want, no strings attached" license is MIT. – Jon Nov 8 '14 at 21:42
  • 2
    @GabrielLittman: there are already established libraries written by seasoned devs that perform semver comparisons. – Dan Dascalescu Sep 1 '15 at 21:33

semver

The semantic version parser used by npm.

$ npm install semver

var semver = require('semver');

semver.diff('3.4.5', '4.3.7') //'major'
semver.diff('3.4.5', '3.3.7') //'minor'
semver.gte('3.4.8', '3.4.7') //true
semver.ltr('3.4.8', '3.4.7') //false

semver.valid('1.2.3') // '1.2.3'
semver.valid('a.b.c') // null
semver.clean(' =v1.2.3 ') // '1.2.3'
semver.satisfies('1.2.3', '1.x || >=2.5.0 || 5.0.0 - 7.2.3') // true
semver.gt('1.2.3', '9.8.7') // false
semver.lt('1.2.3', '9.8.7') // true

var versions = [ '1.2.3', '3.4.5', '1.0.2' ]
var max = versions.sort(semver.rcompare)[0]
var min = versions.sort(semver.compare)[0]
var max = semver.maxSatisfying(versions, '*')

Semantic Versioning Link :
https://www.npmjs.com/package/semver#prerelease-identifiers

  • 4
    Yes. This is the correct answer - comparing versions is non-trivial (see #11 at semver.org), and there are production-level libraries that do the job. – Dan Dascalescu Sep 2 '15 at 0:38
  • 5
    technically, it's not the right answers, since node.js and javascript is different. I supposed the original question was targeted more for browser. But google brought me here and luckily i'm using node :) – Lee Gary Nov 18 '15 at 13:48
  • 1
    It's an important point that npm semver is server side. It's no use for a client side JavaScript solution. That there may be a client side semver solution is another matter. The OP didn't state server only, so this is not the correct answer, but would be a valid comment on his question. – tjmoore Apr 13 '16 at 9:33
  • 1
    NodeJS is not only a server-side only solution. Electron framework embed a nodeJS for desktop applications. This is actually the answer i was looking for. – Anthony Raymond Apr 13 '17 at 14:50
  • semver it's a npm package, it can be used on any JS environment! THIS IS the right answer – neiker Jun 21 '17 at 18:05
// Return 1 if a > b
// Return -1 if a < b
// Return 0 if a == b
function compare(a, b) {
    if (a === b) {
       return 0;
    }

    var a_components = a.split(".");
    var b_components = b.split(".");

    var len = Math.min(a_components.length, b_components.length);

    // loop while the components are equal
    for (var i = 0; i < len; i++) {
        // A bigger than B
        if (parseInt(a_components[i]) > parseInt(b_components[i])) {
            return 1;
        }

        // B bigger than A
        if (parseInt(a_components[i]) < parseInt(b_components[i])) {
            return -1;
        }
    }

    // If one's a prefix of the other, the longer one is greater.
    if (a_components.length > b_components.length) {
        return 1;
    }

    if (a_components.length < b_components.length) {
        return -1;
    }

    // Otherwise they are the same.
    return 0;
}

console.log(compare("1", "2"));
console.log(compare("2", "1"));

console.log(compare("1.0", "1.0"));
console.log(compare("2.0", "1.0"));
console.log(compare("1.0", "2.0"));
console.log(compare("1.0.1", "1.0"));
  • I think the line: var len = Math.min(a_components.length, b_components.length); will cause versions 2.0.1.1 and 2.0.1 to be treated as equal will it? – Jon Egerton Jul 26 '11 at 15:47
  • 1
    No. Look just after the loop! If one string is a prefix of the other (i.e. loop reaches the end), then the longer one is taken as higher. – Joe Jul 26 '11 at 15:51
  • Oh yes: My Bad ;) – Jon Egerton Jul 26 '11 at 16:04
  • Perhaps you were put off my stumbling over the English language in the comment... – Joe Jul 26 '11 at 16:11
  • @Joe I know is a bit old answer but I was using the function. Testing a = '7' and b = '7.0' returns -1 because 7.0 is longer. Got any suggestion for that? ( console.log(compare("7", "7.0")); //returns -1 ) – RaphaelDDL Sep 17 '13 at 21:24

This very small, yet very fast compare function takes version numbers of any length and any number size per segment.

Return values:
- a number < 0 if a < b
- a number > 0 if a > b
- 0 if a = b

So you can use it as compare function for Array.sort();

EDIT: Bugfixed Version stripping trailing zeros to recognize "1" and "1.0.0" as equal

function cmpVersions (a, b) {
    var i, diff;
    var regExStrip0 = /(\.0+)+$/;
    var segmentsA = a.replace(regExStrip0, '').split('.');
    var segmentsB = b.replace(regExStrip0, '').split('.');
    var l = Math.min(segmentsA.length, segmentsB.length);

    for (i = 0; i < l; i++) {
        diff = parseInt(segmentsA[i], 10) - parseInt(segmentsB[i], 10);
        if (diff) {
            return diff;
        }
    }
    return segmentsA.length - segmentsB.length;
}

// TEST
console.log(
['2.5.10.4159',
 '1.0.0',
 '0.5',
 '0.4.1',
 '1',
 '1.1',
 '0.0.0',
 '2.5.0',
 '2',
 '0.0',
 '2.5.10',
 '10.5',
 '1.25.4',
 '1.2.15'].sort(cmpVersions));
// Result:
// ["0.0.0", "0.0", "0.4.1", "0.5", "1.0.0", "1", "1.1", "1.2.15", "1.25.4", "2", "2.5.0", "2.5.10", "2.5.10.4159", "10.5"]

  • Faster and concise, thanks. – Dhanushka Jul 12 '16 at 2:09
  • Failed with '0.0' and '0.0.0'. See fiddle: jsfiddle.net/emragins/9e9pweqg – emragins Sep 12 '16 at 18:16
  • 1
    @emragins When would you need to do that? – Skylar Ittner Sep 13 '16 at 18:58
  • 1
    @emragins : I don't see where it fails. It outputs ["0.0.0", "0.0", "0.4.1", "0.5", "1.0.0", "1", "1.1", "1.2.15", "1.25.4", "2", "2.5.0", "2.5.10", "2.5.10.4159", "10.5"] where your code outputs ["0.0", "0.0.0", "0.4.1", "0.5", "1", "1.0.0", "1.1", "1.2.15", "1.25.4", "2", "2.5.0", "2.5.10", "2.5.10.4159", "10.5"] , which is perfectly the same, since 0.0 and 0.0.0 are considered to be equal, which means it is irrelevant whether '0.0' is before '0.0.0' or vice versa. – LeJared Sep 14 '16 at 7:20
  • 1
    See answer here stackoverflow.com/questions/6611824/why-do-we-need-to-use-radix. Older browsers used to guess the radix parameter if not specified. A leading zero in a number string like the middle part in "1.09.12" used to be parsed with radix=8 resulting in number 0 instead of expected number 9. – LeJared Apr 19 '17 at 19:13

Taken from http://java.com/js/deployJava.js:

    // return true if 'installed' (considered as a JRE version string) is
    // greater than or equal to 'required' (again, a JRE version string).
    compareVersions: function (installed, required) {

        var a = installed.split('.');
        var b = required.split('.');

        for (var i = 0; i < a.length; ++i) {
            a[i] = Number(a[i]);
        }
        for (var i = 0; i < b.length; ++i) {
            b[i] = Number(b[i]);
        }
        if (a.length == 2) {
            a[2] = 0;
        }

        if (a[0] > b[0]) return true;
        if (a[0] < b[0]) return false;

        if (a[1] > b[1]) return true;
        if (a[1] < b[1]) return false;

        if (a[2] > b[2]) return true;
        if (a[2] < b[2]) return false;

        return true;
    }
  • Simple, but limited to three version fields. – Dan Dascalescu Sep 1 '15 at 21:23

Couldn't find a function doing what I wanted here. So I wrote my own. This is my contribution. I hope someone find it useful.

Pros:

  • Handles version strings of arbitrary length. '1' or '1.1.1.1.1'.

  • Defaults each value to 0 if not specified. Just because a string is longer doesn't mean it's a bigger version. ('1' should be the same as '1.0' and '1.0.0.0'.)

  • Compare numbers not strings. ('3'<'21' should be true. Not false.)

  • Don't waste time on useless compares in the loop. (Comparing for ==)

  • You can choose your own comparator.

Cons:

  • It does not handle letters in the version string. (I don't know how that would even work?)

My code, similar to the accepted answer by Jon:

function compareVersions(v1, comparator, v2) {
    "use strict";
    var comparator = comparator == '=' ? '==' : comparator;
    if(['==','===','<','<=','>','>=','!=','!=='].indexOf(comparator) == -1) {
        throw new Error('Invalid comparator. ' + comparator);
    }
    var v1parts = v1.split('.'), v2parts = v2.split('.');
    var maxLen = Math.max(v1parts.length, v2parts.length);
    var part1, part2;
    var cmp = 0;
    for(var i = 0; i < maxLen && !cmp; i++) {
        part1 = parseInt(v1parts[i], 10) || 0;
        part2 = parseInt(v2parts[i], 10) || 0;
        if(part1 < part2)
            cmp = 1;
        if(part1 > part2)
            cmp = -1;
    }
    return eval('0' + comparator + cmp);
}

Examples:

compareVersions('1.2.0', '==', '1.2'); // true
compareVersions('00001', '==', '1.0.0'); // true
compareVersions('1.2.0', '<=', '1.2'); // true
compareVersions('2.2.0', '<=', '1.2'); // false
  • this version is in my opinion better than the one in the approved answer! – user3807877 Mar 24 '15 at 16:32
  • This function is prone to code injection if the comparator parameter is used with unchecked user input! Example: compareVersions('1.2', '==0;alert("cotcha");', '1.2'); – LeJared Feb 15 '16 at 13:49
  • @LeJared True. When I wrote it we were not going to use it with user submitted code though. Should have brought it up as a con probably. I have now updated the code to eliminate that possibility. Now though, when webpack and other node.js bundlers have become prevalent, I would suggest that Mohammed Akdim's answer above, using semver, would almost always be the correct answer to this question. – Viktor Feb 18 '16 at 9:59

Check the function version_compare() from the php.js project. It's is similar to PHP's version_compare().

You can simply use it like this:

version_compare('2.0', '2.0.0.1', '<'); 
// returns true

Forgive me if this idea already been visited in a link I have not seen.

I have had some success with conversion of the parts into a weighted sum like so:

partSum = this.major * Math.Pow(10,9);
partSum += this.minor * Math.Pow(10, 6);
partSum += this.revision * Math.Pow(10, 3);
partSum += this.build * Math.Pow(10, 0);

Which made comparisons very easy (comparing a double). Our version fields are never more than 4 digits.

7.10.2.184  -> 7010002184.0
7.11.0.1385 -> 7011001385.0

I hope this helps someone, as the multiple conditionals seem a bit overkill.

  • This will break, if this.minor > 999 (will overlap with major) – Afanasii Kurakin Apr 21 '17 at 9:11

2017 answer:

v1 = '20.0.12'; 
v2 = '3.123.12';

compareVersion(v1,v2) // return true

function compareVersion(ver1, ver2) {
        ver1 = ver1.split('.')
        ver2 = ver2.split('.')
        var i = 0, v1, v2;
        ver1 = Array.isArray(ver1) ? ver1 : [ver1];
        /*default is true*/
        while (i < 4) {
            v1 = ver1[i]; v2 = ver2[i];
            if (!v1 || !v2) return true;
            if (v1 * 1 < v2 * 1) return false;
            i++;
        }
        return true;
    }

More cool answer for a browser that not support IE (lake of padStart) are :

 function compareVersion2(ver1, ver2) {
      ver1 = ver1.split('.').map( s => s.padStart(10) ).join('.');
      ver2 = ver2.split('.').map( s => s.padStart(10) ).join('.');
      return ver1 <= ver2;
 }

The idea here is to compare number but in the format of string. for the comparison be right and easy the two numbers/strings must be at the same length

For example:

"123" > "99" // return false, but it wrong "123" "> "099" // but padding the short number with zeros make the comparision to be right

So the idea of the solution is to padding all part of the version with zeroes so all number be at the same width of 10. then join all strings together. so in one comparison for the whole string, we get the right answer.

For example :

var ver1 = '0.2.10', ver2=`0.10.2`
//become 
ver1 = '0000000000.0000000002.0000000010'
ver2 = '0000000000.0000000010.0000000002'
// then it easy to see that
ver1 <= ver2 // true
  • would you explain function compareVersion2 what exactly happen ? – Usman Wali Apr 3 at 13:30
  • 1
    Sure. this is actually a pretty good offer. Thanks – pery mimon Apr 10 at 7:55
  • Good, then you can use substring instead of padStartfor better compatibility i.e. var zeros = "0000000000"; '0.2.32'.split('.').map( s => zeros.substring(0, zeros.length-s.length) + s ).join('.') will give you 0000000000.0000000002.0000000032 :) – Usman Wali Apr 12 at 11:11

Here's a coffeescript implementation suitable for use with Array.sort inspired by other answers here:

# Returns > 0 if v1 > v2 and < 0 if v1 < v2 and 0 if v1 == v2
compareVersions = (v1, v2) ->
  v1Parts = v1.split('.')
  v2Parts = v2.split('.')
  minLength = Math.min(v1Parts.length, v2Parts.length)
  if minLength > 0
    for idx in [0..minLength - 1]
      diff = Number(v1Parts[idx]) - Number(v2Parts[idx])
      return diff unless diff is 0
  return v1Parts.length - v2Parts.length
// Returns true if v1 is bigger than v2, and false if otherwise.
function isNewerThan(v1, v2) {
      v1=v1.split('.');
      v2=v2.split('.');
      for(var i = 0; i<Math.max(v1.length,v2.length); i++){
        if(v1[i] == undefined) return false; // If there is no digit, v2 is automatically bigger
        if(v2[i] == undefined) return true; // if there is no digit, v1 is automatically bigger
        if(v1[i] > v2[i]) return true;
        if(v1[i] < v2[i]) return false;
      }
      return false; // Returns false if they are equal
    }
  • 1
    Welcome to SO. This question has a lot of good answers already, please refrain from adding new answers unless you add something new. – ext Nov 26 '17 at 20:50

The replace() function only replaces the first occurence in the string. So, lets replace the . with ,. Afterwards delete all . and make the , to . again and parse it to float.

for(i=0; i<versions.length; i++) {
    v = versions[i].replace('.', ',');
    v = v.replace(/\./g, '');
    versions[i] = parseFloat(v.replace(',', '.'));
}

finally, sort it:

versions.sort();
  • 1
    This only works for single digit version numbers. – HasFiveVowels Jun 20 '14 at 16:48

Check out this blog post. This function works for numeric version numbers.

function compVersions(strV1, strV2) {
  var nRes = 0
    , parts1 = strV1.split('.')
    , parts2 = strV2.split('.')
    , nLen = Math.max(parts1.length, parts2.length);

  for (var i = 0; i < nLen; i++) {
    var nP1 = (i < parts1.length) ? parseInt(parts1[i], 10) : 0
      , nP2 = (i < parts2.length) ? parseInt(parts2[i], 10) : 0;

    if (isNaN(nP1)) { nP1 = 0; }
    if (isNaN(nP2)) { nP2 = 0; }

    if (nP1 != nP2) {
      nRes = (nP1 > nP2) ? 1 : -1;
      break;
    }
  }

  return nRes;
};

compVersions('10', '10.0'); // 0
compVersions('10.1', '10.01.0'); // 0
compVersions('10.0.1', '10.0'); // 1
compVersions('10.0.1', '10.1'); // -1

If, for example, we want to check if the current jQuery version is less than 1.8, parseFloat($.ui.version) < 1.8 ) would give a wrong result if version is "1.10.1", since parseFloat("1.10.1") returns 1.1. A string compare would also go wrong, since "1.8" < "1.10" evaluates to false.

So we need a test like this

if(versionCompare($.ui.version, "1.8") < 0){
    alert("please update jQuery");
}

The following function handles this correctly:

/** Compare two dotted version strings (like '10.2.3').
 * @returns {Integer} 0: v1 == v2, -1: v1 < v2, 1: v1 > v2
 */
function versionCompare(v1, v2) {
    var v1parts = ("" + v1).split("."),
        v2parts = ("" + v2).split("."),
        minLength = Math.min(v1parts.length, v2parts.length),
        p1, p2, i;
    // Compare tuple pair-by-pair. 
    for(i = 0; i < minLength; i++) {
        // Convert to integer if possible, because "8" > "10".
        p1 = parseInt(v1parts[i], 10);
        p2 = parseInt(v2parts[i], 10);
        if (isNaN(p1)){ p1 = v1parts[i]; } 
        if (isNaN(p2)){ p2 = v2parts[i]; } 
        if (p1 == p2) {
            continue;
        }else if (p1 > p2) {
            return 1;
        }else if (p1 < p2) {
            return -1;
        }
        // one operand is NaN
        return NaN;
    }
    // The longer tuple is always considered 'greater'
    if (v1parts.length === v2parts.length) {
        return 0;
    }
    return (v1parts.length < v2parts.length) ? -1 : 1;
}

Here are some examples:

// compare dotted version strings
console.assert(versionCompare("1.8",      "1.8.1")    <   0);
console.assert(versionCompare("1.8.3",    "1.8.1")    >   0);
console.assert(versionCompare("1.8",      "1.10")     <   0);
console.assert(versionCompare("1.10.1",   "1.10.1")   === 0);
// Longer is considered 'greater'
console.assert(versionCompare("1.10.1.0", "1.10.1")   >   0);
console.assert(versionCompare("1.10.1",   "1.10.1.0") <   0);
// Strings pairs are accepted
console.assert(versionCompare("1.x",      "1.x")      === 0);
// Mixed int/string pairs return NaN
console.assert(isNaN(versionCompare("1.8", "1.x")));
//works with plain numbers
console.assert(versionCompare("4", 3)   >   0);

See here for a live sample and test suite: http://jsfiddle.net/mar10/8KjvP/

  • arghh, just noticed that ripper234 had posted a fiddle URL in on eof the comments a few months ago that is quite similar. Anyway, I keep my answer here... – mar10 Jan 26 '13 at 18:49
  • This one will also fail (as most of variants around) in these cases: versionCompare('1.09', '1.1') returns "1", the same way as versionCompare('1.702', '1.8'). – shaman.sir Sep 5 '13 at 0:33
  • The code evaluates "1.09" > "1.1" and "1.702" > "1.8", which I think is correct. If you don't agree: can you point to some resource that backs your opinion? – mar10 Sep 7 '13 at 9:35
  • It depends on your principles — as I know there's no strict rule or something. Regarding resources, wikipedia article for "Software versioning" in "Incrementing sequences" says that 1.81 may be a minor version of 1.8, so 1.8 should read as 1.80. Semantic versioning article semver.org/spec/v2.0.0.html also says that 1.9.0 -> 1.10.0 -> 1.11.0, so 1.9.0 is treated as 1.90.0 in comparison like this. So, following this logic, version 1.702 was before version 1.8, which is treated as 1.800. – shaman.sir Sep 30 '13 at 16:26
  • 1
    I see that some rules treat 1.8 < 1.81 < 1.9. But in semver you would use 1.8.1 instead of 1.81. Semver (as I understand it) is defined around the assumption that incrementing a part will always generate a 'later' version, so 1.8 < 1.8.1 < 1.9 < 1.10 < 1.81 < 1.90 < 1.100 . I don't see an indication that this is limted to two digits either. So I would say that my code is fully compliant with semver. – mar10 Oct 1 '13 at 7:14

I wrote a node module for sorting versions, you can find it here: version-sort

Features:

  • no limit of sequences '1.0.1.5.53.54654.114.1.154.45' works
  • no limit of sequence length: '1.1546515465451654654654654138754431574364321353734' works
  • can sort objects by version (see README)
  • stages (like alpha, beta, rc1, rc2)

Do not hesitate to open an issue if you need an other feature.

This works for numeric versions of any length separated by a period. It returns true only if myVersion is >= minimumVersion, making the assumption that version 1 is less than 1.0, version 1.1 is less than 1.1.0 and so on. It should be fairly simple to add extra conditions such as accepting numbers (just convert to a string) and hexadecimal or making the delimiter dynamic (just add a delimiter parameter then replace the "." with the param)

function versionCompare(myVersion, minimumVersion) {

    var v1 = myVersion.split("."), v2 = minimumVersion.split("."), minLength;   

    minLength= Math.min(v1.length, v2.length);

    for(i=0; i<minLength; i++) {
        if(Number(v1[i]) > Number(v2[i])) {
            return true;
        }
        if(Number(v1[i]) < Number(v2[i])) {
            return false;
        }           
    }

    return (v1.length >= v2.length);
}

Here are some tests:

console.log(versionCompare("4.4.0","4.4.1"));
console.log(versionCompare("5.24","5.2"));
console.log(versionCompare("4.1","4.1.2"));
console.log(versionCompare("4.1.2","4.1"));
console.log(versionCompare("4.4.4.4","4.4.4.4.4"));
console.log(versionCompare("4.4.4.4.4.4","4.4.4.4.4"));
console.log(versionCompare("0","1"));
console.log(versionCompare("1","1"));
console.log(versionCompare("","1"));
console.log(versionCompare("10.0.1","10.1"));

Alternatively here is a recursive version

function versionCompare(myVersion, minimumVersion) {
  return recursiveCompare(myVersion.split("."),minimumVersion.split("."),Math.min(myVersion.length, minimumVersion.length),0);
}

function recursiveCompare(v1, v2,minLength, index) {
  if(Number(v1[index]) < Number(v2[index])) {
    return false;
  }
  if(Number(v1[i]) < Number(v2[i])) {
    return true;
    }
  if(index === minLength) {
    return (v1.length >= v2.length);
  }
  return recursiveCompare(v1,v2,minLength,index+1);
}

The idea is comparate two versions and know which is the biggest. We delete "." and we compare each position of the vector with the other.

// Return 1  if a > b
// Return -1 if a < b
// Return 0  if a == b

function compareVersions(a_components, b_components) {

   if (a_components === b_components) {
       return 0;
   }

   var partsNumberA = a_components.split(".");
   var partsNumberB = b_components.split(".");

   for (var i = 0; i < partsNumberA.length; i++) {

      var valueA = parseInt(partsNumberA[i]);
      var valueB = parseInt(partsNumberB[i]);

      // A bigger than B
      if (valueA > valueB || isNaN(valueB)) {
         return 1;
      }

      // B bigger than A
      if (valueA < valueB) {
         return -1;
      }
   }
}
  • Epic answer, exactly what I was looking for. – Vince Sep 19 '16 at 9:20

couldnt you convert them into numbers and then sort after size? Append 0's to the ones to the numbers that are < 4 in length

played around in console:

$(["1.0.0.0", "1.0.1.0", "2.0.0.0", "2.0.0.1", "2.0.1", "3.0"]).each(function(i,e) {
    var n =   e.replace(/\./g,"");
    while(n.length < 4) n+="0" ; 
    num.push(  +n  )
});

bigger the version, the bigger number. Edit: probably needs adjusting to account for bigger version series

  • Where did you get 4? – Joe Jul 26 '11 at 15:56
  • biggest version had 4 digits – Contra Jul 26 '11 at 15:58
  • That seems like the kind of maintenance problem that could come back to bite... – Joe Jul 26 '11 at 16:13
  • That was just an example, as he's got to do some things himself :P Instead of 4, get the amount of numbers the biggest version has, then fill the ones lower than that with 0's – Contra Jul 26 '11 at 16:16

This is a neat trick. If you are dealing with numeric values, between a specific range of values, you can assign a value to each level of the version object. For instance "largestValue" is set to 0xFF here, which creates a very "IP" sort of look to your versioning.

This also handles alpha-numeric versioning (i.e. 1.2a < 1.2b)

// The version compare function
function compareVersion(data0, data1, levels) {
    function getVersionHash(version) {
        var value = 0;
        version = version.split(".").map(function (a) {
            var n = parseInt(a);
            var letter = a.replace(n, "");
            if (letter) {
                return n + letter[0].charCodeAt() / 0xFF;
            } else {
                return n;
            }
        });
        for (var i = 0; i < version.length; ++i) {
            if (levels === i) break;
            value += version[i] / 0xFF * Math.pow(0xFF, levels - i + 1);
        }
        return value;
    };
    var v1 = getVersionHash(data0);
    var v2 = getVersionHash(data1);
    return v1 === v2 ? -1 : v1 > v2 ? 0 : 1;
};
// Returns 0 or 1, correlating to input A and input B
// Direct match returns -1
var version = compareVersion("1.254.253", "1.254.253a", 3);

I like the version from @mar10, though from my point of view, there is a chance of misusage (seems it is not the case if versions are compatible with Semantic Versioning document, but may be the case if some "build number" is used):

versionCompare( '1.09', '1.1');  // returns 1, which is wrong:  1.09 < 1.1
versionCompare('1.702', '1.8');  // returns 1, which is wrong: 1.702 < 1.8

The problem here is that sub-numbers of version number are, in some cases, written with trailing zeroes cut out (at least as I recently see it while using different software), which is similar to rational part of a number, so:

5.17.2054 > 5.17.2
5.17.2 == 5.17.20 == 5.17.200 == ... 
5.17.2054 > 5.17.20
5.17.2054 > 5.17.200
5.17.2054 > 5.17.2000
5.17.2054 > 5.17.20000
5.17.2054 < 5.17.20001
5.17.2054 < 5.17.3
5.17.2054 < 5.17.30

The first (or both first and second) version sub-number, however, is always treated as an integer value it actually equals to.

If you use this kind of versioning, you may change just a few lines in the example:

// replace this:
p1 = parseInt(v1parts[i], 10);
p2 = parseInt(v2parts[i], 10);
// with this:
p1 = i/* > 0 */ ? parseFloat('0.' + v1parts[i], 10) : parseInt(v1parts[i], 10);
p2 = i/* > 0 */ ? parseFloat('0.' + v2parts[i], 10) : parseInt(v2parts[i], 10);

So every sub-number except the first one will be compared as a float, so 09 and 1 will become 0.09 and 0.1 accordingly and compared properly this way. 2054 and 3 will become 0.2054 and 0.3.

The complete version then, is (credits to @mar10):

/** Compare two dotted version strings (like '10.2.3').
 * @returns {Integer} 0: v1 == v2, -1: v1 < v2, 1: v1 > v2
 */
function versionCompare(v1, v2) {
    var v1parts = ("" + v1).split("."),
        v2parts = ("" + v2).split("."),
        minLength = Math.min(v1parts.length, v2parts.length),
        p1, p2, i;
    // Compare tuple pair-by-pair. 
    for(i = 0; i < minLength; i++) {
        // Convert to integer if possible, because "8" > "10".
        p1 = i/* > 0 */ ? parseFloat('0.' + v1parts[i], 10) : parseInt(v1parts[i], 10);;
        p2 = i/* > 0 */ ? parseFloat('0.' + v2parts[i], 10) : parseInt(v2parts[i], 10);
        if (isNaN(p1)){ p1 = v1parts[i]; } 
        if (isNaN(p2)){ p2 = v2parts[i]; } 
        if (p1 == p2) {
            continue;
        }else if (p1 > p2) {
            return 1;
        }else if (p1 < p2) {
            return -1;
        }
        // one operand is NaN
        return NaN;
    }
    // The longer tuple is always considered 'greater'
    if (v1parts.length === v2parts.length) {
        return 0;
    }
    return (v1parts.length < v2parts.length) ? -1 : 1;
}

P.S. It is slower, but also possible to think on re-using the same comparing function operating the fact that the string is actually the array of characters:

 function cmp_ver(arr1, arr2) {
     // fill the tail of the array with smaller length with zeroes, to make both array have the same length
     while (min_arr.length < max_arr.length) {
         min_arr[min_arr.lentgh] = '0';
     }
     // compare every element in arr1 with corresponding element from arr2, 
     // but pass them into the same function, so string '2054' will act as
     // ['2','0','5','4'] and string '19', in this case, will become ['1', '9', '0', '0']
     for (i: 0 -> max_length) {
         var res = cmp_ver(arr1[i], arr2[i]);
         if (res !== 0) return res;
     }
 }

I made this based on Kons idea, and optimized it for Java version "1.7.0_45". It's just a function meant to convert a version string to a float. This is the function:

function parseVersionFloat(versionString) {
    var versionArray = ("" + versionString)
            .replace("_", ".")
            .replace(/[^0-9.]/g, "")
            .split("."),
        sum = 0;
    for (var i = 0; i < versionArray.length; ++i) {
        sum += Number(versionArray[i]) / Math.pow(10, i * 3);
    }
    console.log(versionString + " -> " + sum);
    return sum;
}

String "1.7.0_45" is converted to 1.0070000450000001 and this is good enough for a normal comparison. Error explained here: How to deal with floating point number precision in JavaScript?. If need more then 3 digits on any part you can change the divider Math.pow(10, i * 3);.

Output will look like this:

1.7.0_45         > 1.007000045
ver 1.7.build_45 > 1.007000045
1.234.567.890    > 1.23456789

I had the same problem of version comparison, but with versions possibly containing anything (ie: separators that were not dots, extensions like rc1, rc2...).

I used this, which basically split the version strings into numbers and non-numbers, and tries to compare accordingly to the type.

function versionCompare(a,b) {
  av = a.match(/([0-9]+|[^0-9]+)/g)
  bv = b.match(/([0-9]+|[^0-9]+)/g)
  for (;;) {
    ia = av.shift();
    ib = bv.shift();
    if ( (typeof ia === 'undefined') && (typeof ib === 'undefined') ) { return 0; }
    if (typeof ia === 'undefined') { ia = '' }
    if (typeof ib === 'undefined') { ib = '' }

    ian = parseInt(ia);
    ibn = parseInt(ib);
    if ( isNaN(ian) || isNaN(ibn) ) {
      // non-numeric comparison
      if (ia < ib) { return -1;}
      if (ia > ib) { return 1;}
    } else {
      if (ian < ibn) { return -1;}
      if (ian > ibn) { return 1;}
    }
  }
}

There are some assumptions here for some cases, for example : "1.01" === "1.1", or "1.8" < "1.71". It fails to manage "1.0.0-rc.1" < "1.0.0", as specified by Semantic versionning 2.0.0

Preprocessing the versions prior to the sort means parseInt isn't called multiple times unnecessarily. Using Array#map similar to Michael Deal's suggestion, here's a sort I use to find the newest version of a standard 3 part semver:

var semvers = ["0.1.0", "1.0.0", "1.1.0", "1.0.5"];

var versions = semvers.map(function(semver) {
    return semver.split(".").map(function(part) {
        return parseInt(part);
    });
});

versions.sort(function(a, b) {
    if (a[0] < b[0]) return 1;
    else if (a[0] > b[0]) return -1;
    else if (a[1] < b[1]) return 1;
    else if (a[1] > b[1]) return -1;
    else if (a[2] < b[2]) return 1;
    else if (a[2] > b[2]) return -1;
    return 0;
});

var newest = versions[0].join(".");
console.log(newest); // "1.1.0"

One more implementation I believe worth sharing as it's short, simple and yet powerful. Please note that it uses digit comparison only. Generally it checks if version2 is later than version1 and returns true if it's the case. Suppose you have version1: 1.1.1 and version2: 1.1.2. It goes through each part of the two versions adding their parts as follows: (1 + 0.1) then (1.1 + 0.01) for version1 and (1 + 0.1) then (1.1 + 0.02) for version2.

function compareVersions(version1, version2) {

    version1 = version1.split('.');
    version2 = version2.split('.');

    var maxSubVersionLength = String(Math.max.apply(undefined, version1.concat(version2))).length;

    var reduce = function(prev, current, index) {

        return parseFloat(prev) + parseFloat('0.' + Array(index + (maxSubVersionLength - String(current).length)).join('0') + current);
    };

    return version1.reduce(reduce) < version2.reduce(reduce);
}

If you want to find the latest version out of list of versions then this might be useful:

function findLatestVersion(versions) {

    if (!(versions instanceof Array)) {
        versions = Array.prototype.slice.apply(arguments, [0]);
    }

    versions = versions.map(function(version) { return version.split('.'); });

    var maxSubVersionLength = String(Math.max.apply(undefined, Array.prototype.concat.apply([], versions))).length;

    var reduce = function(prev, current, index) {

        return parseFloat(prev) + parseFloat('0.' + Array(index + (maxSubVersionLength - String(current).length)).join('0') + current);
    };

    var sums = [];

    for (var i = 0; i < versions.length; i++) {
        sums.push(parseFloat(versions[i].reduce(reduce)));
    }

    return versions[sums.indexOf(Math.max.apply(undefined, sums))].join('.');
}

console.log(findLatestVersion('0.1000000.1', '2.0.0.10', '1.6.10', '1.4.3', '2', '2.0.0.1')); // 2.0.0.10
console.log(findLatestVersion(['0.1000000.1', '2.0.0.10', '1.6.10', '1.4.3', '2', '2.0.0.1'])); // 2.0.0.10

Here's another way to do it with recursive algorithm.

This code just uses Array.shift and recursive, which means that it can run in IE 6+. If you have any doubts, you can visit my GitHub

(function(root, factory) {
  if (typeof exports === 'object') {
    return module.exports = factory();
  } else if (typeof define === 'function' && define.amd) {
    return define(factory);
  } else {
    return root.compareVer = factory();
  }
})(this, function() {
  'use strict';
  var _compareVer;
  _compareVer = function(newVer, oldVer) {
    var VER_RE, compareNum, isTrue, maxLen, newArr, newLen, newMatch, oldArr, oldLen, oldMatch, zerofill;
    VER_RE = /(\d+\.){1,9}\d+/;
    if (arguments.length !== 2) {
      return -100;
    }
    if (typeof newVer !== 'string') {
      return -2;
    }
    if (typeof oldVer !== 'string') {
      return -3;
    }
    newMatch = newVer.match(VER_RE);
    if (!newMatch || newMatch[0] !== newVer) {
      return -4;
    }
    oldMatch = oldVer.match(VER_RE);
    if (!oldMatch || oldMatch[0] !== oldVer) {
      return -5;
    }
    newVer = newVer.replace(/^0/, '');
    oldVer = oldVer.replace(/^0/, '');
    if (newVer === oldVer) {
      return 0;
    } else {
      newArr = newVer.split('.');
      oldArr = oldVer.split('.');
      newLen = newArr.length;
      oldLen = oldArr.length;
      maxLen = Math.max(newLen, oldLen);
      zerofill = function() {
        newArr.length < maxLen && newArr.push('0');
        oldArr.length < maxLen && oldArr.push('0');
        return newArr.length !== oldArr.length && zerofill();
      };
      newLen !== oldLen && zerofill();
      if (newArr.toString() === oldArr.toString()) {
        if (newLen > oldLen) {
          return 1;
        } else {
          return -1;
        }
      } else {
        isTrue = -1;
        compareNum = function() {
          var _new, _old;
          _new = ~~newArr.shift();
          _old = ~~oldArr.shift();
          _new > _old && (isTrue = 1);
          return _new === _old && newArr.length > 0 && compareNum();
        };
        compareNum();
        return isTrue;
      }
    }
  };
  return _compareVer;
});

Well, I hope this codes help someone.

Here's the testing.

console.log(compareVer("0.0.2","0.0.1"));//1
console.log(compareVer("0.0.10","0.0.1")); //1
console.log(compareVer("0.0.10","0.0.2")); //1
console.log(compareVer("0.9.0","0.9")); //1
console.log(compareVer("0.10.0","0.9.0")); //1
console.log(compareVer("1.7", "1.07")); //1
console.log(compareVer("1.0.07", "1.0.007")); //1

console.log(compareVer("0.3","0.3")); //0
console.log(compareVer("0.0.3","0.0.3")); //0
console.log(compareVer("0.0.3.0","0.0.3.0")); //0
console.log(compareVer("00.3","0.3")); //0
console.log(compareVer("00.3","00.3")); //0
console.log(compareVer("01.0.3","1.0.3")); //0
console.log(compareVer("1.0.3","01.0.3")); //0

console.log(compareVer("0.2.0","1.0.0")); //-1
console.log(compareVer('0.0.2.2.0',"0.0.2.3")); //-1
console.log(compareVer('0.0.2.0',"0.0.2")); //-1
console.log(compareVer('0.0.2',"0.0.2.0")); //-1
console.log(compareVer("1.07", "1.7")); //-1
console.log(compareVer("1.0.007", "1.0.07")); //-1

console.log(compareVer()); //-100
console.log(compareVer("0.0.2")); //-100
console.log(compareVer("0.0.2","0.0.2","0.0.2")); //-100
console.log(compareVer(1212,"0.0.2")); //-2
console.log(compareVer("0.0.2",1212)); //-3
console.log(compareVer('1.abc.2',"1.0.2")); //-4
console.log(compareVer('1.0.2',"1.abc.2")); //-5

This isn't a quite solution for the question was asked, but it's very similiar.

This sort function is for semantic versions, it handles resolved version, so it doesn't work with wildcards like x or *.

It works with versions where this regular expression matches: /\d+\.\d+\.\d+.*$/. It's very similar to this answer except that it works also with versions like 1.2.3-dev. In comparison with the other answer: I removed some checks that I don't need, but my solution can be combined with the other one.

semVerSort = function(v1, v2) {
  var v1Array = v1.split('.');
  var v2Array = v2.split('.');
  for (var i=0; i<v1Array.length; ++i) {
    var a = v1Array[i];
    var b = v2Array[i];
    var aInt = parseInt(a, 10);
    var bInt = parseInt(b, 10);
    if (aInt === bInt) {
      var aLex = a.substr((""+aInt).length);
      var bLex = b.substr((""+bInt).length);
      if (aLex === '' && bLex !== '') return 1;
      if (aLex !== '' && bLex === '') return -1;
      if (aLex !== '' && bLex !== '') return aLex > bLex ? 1 : -1;
      continue;
    } else if (aInt > bInt) {
      return 1;
    } else {
      return -1;
    }
  }
  return 0;
}

The merged solution is that:

function versionCompare(v1, v2, options) {
    var zeroExtend = options && options.zeroExtend,
        v1parts = v1.split('.'),
        v2parts = v2.split('.');

    if (zeroExtend) {
        while (v1parts.length < v2parts.length) v1parts.push("0");
        while (v2parts.length < v1parts.length) v2parts.push("0");
    }

    for (var i = 0; i < v1parts.length; ++i) {
        if (v2parts.length == i) {
            return 1;
        }
        var v1Int = parseInt(v1parts[i], 10);
        var v2Int = parseInt(v2parts[i], 10);
        if (v1Int == v2Int) {
            var v1Lex = v1parts[i].substr((""+v1Int).length);
            var v2Lex = v2parts[i].substr((""+v2Int).length);
            if (v1Lex === '' && v2Lex !== '') return 1;
            if (v1Lex !== '' && v2Lex === '') return -1;
            if (v1Lex !== '' && v2Lex !== '') return v1Lex > v2Lex ? 1 : -1;
            continue;
        }
        else if (v1Int > v2Int) {
            return 1;
        }
        else {
            return -1;
        }
    }

    if (v1parts.length != v2parts.length) {
        return -1;
    }

    return 0;
}

I find a simplest way to compare them, don't sure if it's what you want. when I run below code in console, it make sense, and using sort() method, I could get the sorted array of versions string. it's based on the alphabetical order.

"1.0" < "1.0.1" //true
var arr = ["1.0.1", "1.0", "3.2.0", "1.3"]
arr.sort();     //["1.0", "1.0.1", "1.3", "3.2.0"]
  • 3
    It does not work well for two-digit version numbers, e.g., 1.10.0. – Leukipp Jun 19 '17 at 19:23

Here's a version that orders version strings without allocating any sub-strings or arrays. Being that it allocates fewer objects, there's less work for the GC to do.

There is one pair of allocations (to allow reuse of the getVersionPart method), but you could expand that to avoid allocations altogether if you were very performance sensitive.

const compareVersionStrings : (a: string, b: string) => number = (a, b) =>
{
    var ia = {s:a,i:0}, ib = {s:b,i:0};
    while (true)
    {
        var na = getVersionPart(ia), nb = getVersionPart(ib);

        if (na === null && nb === null)
            return 0;
        if (na === null)
            return -1;
        if (nb === null)
            return 1;
        if (na > nb)
            return 1;
        if (na < nb)
            return -1;
    }
};

const zeroCharCode = '0'.charCodeAt(0);

const getVersionPart = (a : {s:string, i:number}) =>
{
    if (a.i >= a.s.length)
        return null;

    var n = 0;
    while (a.i < a.s.length)
    {
        if (a.s[a.i] === '.')
        {
            a.i++;
            break;
        }

        n *= 10;
        n += a.s.charCodeAt(a.i) - zeroCharCode;
        a.i++;
    }
    return n;
}

Simple and short function:

function isNewerVersion (oldVer, newVer) {
  const oldParts = oldVer.split('.')
  const newParts = newVer.split('.')
  for (var i = 0; i < newParts.length; i++) {
    const a = parseInt(newParts[i]) || 0
    const b = parseInt(oldParts[i]) || 0
    if (a > b) return true
    if (a < b) return false
  }
  return false
}

Tests:

isNewerVersion('1.0', '2.0') // true
isNewerVersion('1.0', '1.0.1') // true
isNewerVersion('1.0.1', '1.0.10') // true
isNewerVersion('1.0.1', '1.0.1') // false
isNewerVersion('2.0', '1.0') // false
isNewerVersion('2', '1.0') // false
isNewerVersion('2.0.0.0.0.1', '2.1') // true
isNewerVersion('2.0.0.0.0.1', '2.0') // false
  • You can simplify it with: const a = ~~newParts[i]; In fact this is the most efficient way convert a string into an integer, which returns 0 if variable undefined or contains non-numerical characters. – vanowm Nov 20 at 7:10

this is my solution. it has accepted on leetcode. I met the problem in my interview today. But i did not solve it at that time. I thought about it again. Adding zeros to make the two arrays' length equal. Then comparison.

var compareVersion = function(version1, version2) {
    let arr1 = version1.split('.').map(Number);
    let arr2 = version2.split('.').map(Number);
    let diff = 0;
    if (arr1.length > arr2.length){
        diff = arr1.length - arr2.length;
        while (diff > 0){
            arr2.push(0);
            diff--;
        } 
    }
    else if (arr1.length < arr2.length){
        diff = arr2.length - arr1.length;
        while (diff > 0){
            arr1.push(0);
            diff--;
        }
    }
   
    let i = 0;
    while (i < arr1.length){
        if (arr1[i] > arr2[i]){
           return 1;
       } else if (arr1[i] < arr2[i]){
           return -1;
       }
        i++;
    }
    return 0;
    
};

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