How can I easily obtain the min or max element of a JavaScript Array?

Example Psuedocode:

let array = [100, 0, 50]

array.min() //=> 0
array.max() //=> 100

40 Answers 40

How about augmenting the built-in Array object to use Math.max/Math.min instead:

Array.prototype.max = function() {
  return Math.max.apply(null, this);
};

Array.prototype.min = function() {
  return Math.min.apply(null, this);
};

Here is a JSFiddle.

Augmenting the built-ins can cause collisions with other libraries (some see), so you may be more comfortable with just apply'ing Math.xxx() to your array directly:

var min = Math.min.apply(null, arr),
    max = Math.max.apply(null, arr);

Alternately, assuming your browser supports ECMAScript 6, you can use the spread operator which functions similarly to the apply method:

var min = Math.min( ...arr ),
    max = Math.max( ...arr );
  • 7
    @HankH: passing null or Math or {} or whatever to apply() or call() has no bearing on the outcome. Math.max does not nor should not reference this internally. – Roatin Marth Nov 3 '09 at 18:43
  • 25
    As a C# programmer I require strongly typed questions. – ChaosPandion Nov 3 '09 at 18:49
  • 7
    Just sharing a jQuery mistake I was making with the code above which took me a long time to debug. A jquery array works fine on everything but the iPad. I had to convert the array to a true native array for it to work. Only affected the single device for some reason Math.max.apply(null, $.makeArray(array)); – Forrest Jul 25 '12 at 21:17
  • 5
    I've downvoted, because proposed approach consumes O(n) memory in stack frame, and as a result crashes on large arrays. In my case just about 130000 numbers were enough to crash nodejs. – Alexey Timanovsky Feb 12 '15 at 12:11
  • 8
    Don't augment built-in prototypes like this. It's not just about conflicts with other libraries; it's also about the potential that the browser itself provides a .max or .min method in future. Perfectly realistic scenario: You use this answer. In 2016, ES7 or ES8 spec Array.max and Array.min. Unlike this version, they work on strings. Your future colleague tries to get the alphabetically-latest string in an array with the now-well-documented native .max() method, but mysteriously gets NaN. Hours later, she finds this code, runs a git blame, and curses your name. – Mark Amery Feb 14 '15 at 0:21
var max_of_array = Math.max.apply(Math, array);

For a full discussion see: http://aaroncrane.co.uk/2008/11/javascript_max_api/

  • 11
    What is the difference between Math.max.apply(Math, array) and Math.max.apply(null, array)? The blog says "...you also have to redundantly say again that max belongs to Math...", but it seems I don't have to do so (by setting the first argument of apply as null). – ziyuang Dec 21 '15 at 13:45
  • 7
    @ziyuang When you call it like Math.max(a,b), Math is passed as the this value, so it might make sense to do the same when calling with apply. But Math.max does not use the this value, so you can pass whatever value you want. – Oriol Dec 10 '16 at 9:45

For big arrays (~10⁷ elements), Math.min and Math.max both produces the following error in Node.js.

RangeError: Maximum call stack size exceeded

A more robust solution is to not add every element to the call stack, but to instead pass an array:

function arrayMin(arr) {
  return arr.reduce(function (p, v) {
    return ( p < v ? p : v );
  });
}

function arrayMax(arr) {
  return arr.reduce(function (p, v) {
    return ( p > v ? p : v );
  });
}

If you are concerned about speed, the following code is ~3 times faster then Math.max.apply is on my computer. See http://jsperf.com/min-and-max-in-array/2.

function arrayMin(arr) {
  var len = arr.length, min = Infinity;
  while (len--) {
    if (arr[len] < min) {
      min = arr[len];
    }
  }
  return min;
};

function arrayMax(arr) {
  var len = arr.length, max = -Infinity;
  while (len--) {
    if (arr[len] > max) {
      max = arr[len];
    }
  }
  return max;
};

If your arrays contains strings instead of numbers, you also need to coerce them into numbers. The below code does that, but it slows the code down ~10 times on my machine. See http://jsperf.com/min-and-max-in-array/3.

function arrayMin(arr) {
  var len = arr.length, min = Infinity;
  while (len--) {
    if (Number(arr[len]) < min) {
      min = Number(arr[len]);
    }
  }
  return min;
};

function arrayMax(arr) {
  var len = arr.length, max = -Infinity;
  while (len--) {
    if (Number(arr[len]) > max) {
      max = Number(arr[len]);
    }
  }
  return max;
};
  • assign min and max to last element and reduce the iterations by 1 (while(--len)) ;) – Venugopal Dec 30 '15 at 11:21
  • @Venugopal then you need a special check to see if the array is empty and return +/- Infinity – Linus Unnebäck Dec 31 '15 at 7:27
  • 1
    Strange... I went to the linked website... and testing in Firefox 51.0.0 / Mac OS X 10.12.0, the reduce-based approach is 30% slower than loop-based ... very different results – Pierpaolo Cira Feb 21 '17 at 9:37
  • 1
    very different results you did this 5 years later ) – Алексей Лещук Apr 19 at 6:41
  • jsperf.com/array-min-max-random/1 starting from 60 elements Math methods are breaking equal with while cycles, if array size is greater than 60, than Math methods wins. Larger the array - greater the Math methods overtake. ( for 100 elems Math.min/max is 10% faster, for 1000 elems its +25% ) – Алексей Лещук Apr 19 at 7:31

Using spread operator (ES6)

Math.max(...array);  // the same with "min" => Math.min(...array);

const array = [10, 2, 33, 4, 5];

console.log(
  Math.max(...array)
)

  • 7
    This solution was already provided by multiple other answers. – totymedli Apr 13 '17 at 22:40
  • 4
    Math.max(...[]) = -Infinity. hahaha 😂😂😂 – David Portabella Mar 9 at 11:00
  • @DavidPortabella not sure why that's funny. That's how it works according to the specification: If no arguments are given, the result is -∞. – Patrick Roberts Jul 17 at 18:01
  • 1
    yes, I meant that the javascript specification is horrible. It seems obvious that the min of no numbers cannot be computed. In other more serious programming languages, such as Scala, asking for the min of an empty array throws an exception. – David Portabella Jul 18 at 13:45

If you're paranoid like me about using Math.max.apply (which could cause errors when given large arrays according to MDN), try this:

function arrayMax(array) {
  return array.reduce(function(a, b) {
    return Math.max(a, b);
  });
}

function arrayMin(array) {
  return array.reduce(function(a, b) {
    return Math.min(a, b);
  });
}

Or, in ES6:

function arrayMax(array) {
  return array.reduce((a, b) => Math.max(a, b));
}

function arrayMin(array) {
  return array.reduce((a, b) => Math.min(a, b));
}

The anonymous functions are unfortunately necessary (instead of using Math.max.bind(Math) because reduce doesn't just pass a and b to its function, but also i and a reference to the array itself, so we have to ensure we don't try to call max on those as well.

  • Your ES6 example, is there any reason why not just return Math.max(...array)? – Wojciech Bednarski Jul 20 '16 at 23:48
  • @WojciechBednarski this page seems to suggest that using the spread operator is the same as passing an array to apply, and therefore has the same downsides (maximum argument limit). – Daniel Buckmaster Jul 21 '16 at 1:07
  • Thanks for this. Just you can correct missing bracket after reduce: function arrayMax(array) { return array.reduce(function(a, b) { return Math.max(a, b); }); // <--------- missing ) } – Arkowsky Sep 28 '17 at 11:17
  • @DanielBuckmaster you can simplify it like this: array.reduce(Math.min). Additionally I would add an initial value for the cases that the array length is 0 or 1: array.reduce(Math.min, defaultValue). – Daniel Dietrich Nov 4 '17 at 13:41
  • Update: Sorry, I just recognized that Math.min takes a variable amount of arguments. My suggestion above does not work. – Daniel Dietrich Nov 4 '17 at 14:21

tl;dr

var max = Math.max(...arrayOfNumbers);

Official Math.max() MDN documentation

The following function uses Function.prototype.apply() to find the maximum element in a numeric array. getMaxOfArray([1, 2, 3]) is equivalent to Math.max(1, 2, 3), but you can use getMaxOfArray() on programmatically constructed arrays of any size.

function getMaxOfArray(numArray) {
    return Math.max.apply(null, numArray);
}

Or with the new spread operator, getting the maximum of an array becomes a lot easier.

var arr = [1, 2, 3];
var max = Math.max(...arr);
  • If you're using typescript the spread operator as shown is compiled to Math.max.apply(Math, arr) for 'max' compatibility. – Simon_Weaver Sep 3 at 0:42

.apply is often used when the intention is to invoke a variadic function with a list of argument values, e.g.

The Math.max([value1[,value2, ...]]) function returns the largest of zero or more numbers.

Math.max(10, 20); // 20
Math.max(-10, -20); // -10
Math.max(-10, 20); // 20

The Math.max() method doesn't allow you to pass in an array. If you have a list of values of which you need to get the largest, you would normally call this function using Function.prototype.apply(), e.g.

Math.max.apply(null, [10, 20]); // 20
Math.max.apply(null, [-10, -20]); // -10
Math.max.apply(null, [-10, 20]); // 20

However, as of the ECMAScript 6 you can use the spread operator:

The spread operator allows an expression to be expanded in places where multiple arguments (for function calls) or multiple elements (for array literals) are expected.

Using the spread operator, the above can be rewritten as such:

Math.max(...[10, 20]); // 20
Math.max(...[-10, -20]); // -10
Math.max(...[-10, 20]); // 20

When calling a function using the variadic operator, you can even add additional values, e.g.

Math.max(...[10, 20], 50); // 50
Math.max(...[-10, -20], 50); // 50

Bonus:

Spread operator enables you to use the array literal syntax to create new arrays in situations where in ES5 you would need to fall back to imperative code, using a combination of push, splice, etc.

let foo = ['b', 'c'];
let bar = ['a', ...foo, 'd', 'e']; // ['a', 'b', 'c', 'd', 'e']
  • 1
    Your last example in the bonus would be written using concat by most programers because it let you maintain a single line style. – Cody Allan Taylor Jul 12 '16 at 18:54

You do it by extending the Array type:

Array.max = function( array ){
    return Math.max.apply( Math, array );
};
Array.min = function( array ){
    return Math.min.apply( Math, array );
}; 

Boosted from here (by John Resig)

A simple solution to find the minimum value over an Array of elements is to use the Array prototype function reduce:

A = [4,3,-9,-2,2,1];
A.reduce((min, val) => val < min ? val : min, A[0]); // returns -9

or using JavaScript's built-in Math.Min() function (thanks @Tenflex):

A.reduce((min,val) => Math.min(min,val), A[0]);

This sets min to A[0], and then checks for A[1]...A[n] whether it is strictly less than the current min. If A[i] < min then min is updated to A[i] by returning this value.

  • 2
    A.reduce((min,val) => Math.min(min,val),A[0]); even shorter – Tenflex May 9 at 23:22

Others have already given some solutions in which they augment Array.prototype. All I want in this answer is to clarify whether it should be Math.min.apply( Math, array ) or Math.min.apply( null, array ). So what context should be used, Math or null?

When passing null as a context to apply, then the context will default to the global object (the window object in the case of browsers). Passing the Math object as the context would be the correct solution, but it won't hurt passing null either. Here's an example when null might cause trouble, when decorating the Math.max function:

// decorate Math.max
(function (oldMax) {
    Math.max = function () {
        this.foo(); // call Math.foo, or at least that's what we want

        return oldMax.apply(this, arguments);
    };
})(Math.max);

Math.foo = function () {
    print("foo");
};

Array.prototype.max = function() {
  return Math.max.apply(null, this); // <-- passing null as the context
};

var max = [1, 2, 3].max();

print(max);

The above will throw an exception because this.foo will be evaluated as window.foo, which is undefined. If we replace null with Math, things will work as expected and the string "foo" will be printed to the screen (I tested this using Mozilla Rhino).

You can pretty much assume that nobody has decorated Math.max so, passing null will work without problems.

  • 2
    Point taken. However why would someone decorate Foo.staticMethod and reference this? Would that not be a mistake in the design of the decorator? (unless of course they were wanting to reference the global scope, and want to remain independent of the JavaScript engine being used, eg Rhino). – Roatin Marth Nov 3 '09 at 18:57
  • 1
    The spec is explicit about which specced functions should refer to "the this value" (indeed, that phrase appears 125 times in the specification). Math.max, implemented per spec, does not use this. If somebody overrides Math.max such that it does use this, then they have made its behaviour violate spec and you should throw sharp objects at them. You should not code around that possibility any more than you would code around the possibility that somebody has swapped Math.max and Math.min for the lulz. – Mark Amery Feb 14 '15 at 17:59

One more way to do it:

var arrayMax = Function.prototype.apply.bind(Math.max, null);

Usage:

var max = arrayMax([2, 5, 1]);
  • Can someone explain how this works? This is pretty dope. Is my understanding correct: arrayMax is a function and we bind something to a property of its prototype? What is this apply.bind and does every prototype have it? – Sam Sep 26 '13 at 17:39
  • You may check out: benalman.com/news/2012/09/partial-application-in-javascript – sbr Oct 12 '13 at 4:25

https://developer.mozilla.org/ru/docs/Web/JavaScript/Reference/Global_Objects/Math/max

function getMaxOfArray(numArray) {
  return Math.max.apply(null, numArray);
}

var arr = [100, 0, 50];
console.log(getMaxOfArray(arr))

this worked for me.

I am surprised not one mentiond the reduce function.

var arr = [1, 10, 5, 11, 2]

var b = arr.reduce(function(previous,current){ 
                      return previous > current ? previous:current
                   });

b => 11
arr => [1, 10, 5, 11, 2]

For big arrays (~10⁷ elements), Math.min and Math.max procuces a RangeError (Maximum call stack size exceeded) in node.js.

For big arrays, a quick & dirty solution is:

Array.prototype.min = function() {
    var r = this[0];
    this.forEach(function(v,i,a){if (v<r) r=v;});
    return r;
};

This may suit your purposes.

Array.prototype.min = function(comparer) {

    if (this.length === 0) return null;
    if (this.length === 1) return this[0];

    comparer = (comparer || Math.min);

    var v = this[0];
    for (var i = 1; i < this.length; i++) {
        v = comparer(this[i], v);    
    }

    return v;
}

Array.prototype.max = function(comparer) {

    if (this.length === 0) return null;
    if (this.length === 1) return this[0];

    comparer = (comparer || Math.max);

    var v = this[0];
    for (var i = 1; i < this.length; i++) {
        v = comparer(this[i], v);    
    }

    return v;
}
  • you should initialize your v with 'this[0]' in case no numbers are smaller than 0 – jasonmw Nov 3 '09 at 18:28
  • Is comparer supposed to be called in some specific scope? Because as is it references this[index] which is undefined everytime. – Roatin Marth Nov 3 '09 at 18:50
  • Fixed, I always forget about function level scoping. – ChaosPandion Nov 3 '09 at 18:54
  • Oh now, now @Ionut G. Stan will critique you for the same "wrong context" argument as he did me, since your default comparer (Math.xxx) will be running in the global scope... – Roatin Marth Nov 3 '09 at 19:00
  • That may be true, but the new function signature requires no scope as it takes the 2 objects that needs to be compared. – ChaosPandion Nov 3 '09 at 19:04

I had the same problem, I needed to obtain the minimum and maximum values of an array and, to my surprise, there were no built-in functions for arrays. After reading a lot, I decided to test the "top 3" solutions myself:

  1. discrete solution: a FOR loop to check every element of the array against the current max and/or min value;
  2. APPLY solution: sending the array to the Math.max and/or Math.min internal functions using apply(null,array);
  3. REDUCE solution: recursing a check against every element of the array using reduce(function).

The test code was this:

function GetMaxDISCRETE(A)
{   var MaxX=A[0];

    for (var X=0;X<A.length;X++)
        if (MaxX<A[X])
            MaxX=A[X];

    return MaxX;
}

function GetMaxAPPLY(A)
{   return Math.max.apply(null,A);
}

function GetMaxREDUCE(A)
{   return A.reduce(function(p,c)
    {   return p>c?p:c;
    });
}

The array A was filled with 100,000 random integer numbers, each function was executed 10,000 times on Mozilla Firefox 28.0 on an intel Pentium 4 2.99GHz desktop with Windows Vista. The times are in seconds, retrieved by performance.now() function. The results were these, with 3 fractional digits and standard deviation:

  1. Discrete solution: mean=0.161s, sd=0.078
  2. APPLY solution: mean=3.571s, sd=0.487
  3. REDUCE solution: mean=0.350s, sd=0.044

The REDUCE solution was 117% slower than the discrete solution. The APPLY solution was the worse, 2,118% slower than the discrete solution. Besides, as Peter observed, it doesn't work for large arrays (about more than 1,000,000 elements).

Also, to complete the tests, I tested this extended discrete code:

var MaxX=A[0],MinX=A[0];

for (var X=0;X<A.length;X++)
{   if (MaxX<A[X])
        MaxX=A[X];
    if (MinX>A[X])
        MinX=A[X];
}

The timing: mean=0.218s, sd=0.094

So, it is 35% slower than the simple discrete solution, but it retrieves both the maximum and the minimum values at once (any other solution would take at least twice that to retrieve them). Once the OP needed both values, the discrete solution would be the best choice (even as two separate functions, one for calculating maximum and another for calculating minimum, they would outperform the second best, the REDUCE solution).

You can use the following function anywhere in your project:

function getMin(array){
    return Math.min.apply(Math,array);
}

function getMax(array){
    return Math.max.apply(Math,array);
}

And then you can call the functions passing the array:

var myArray = [1,2,3,4,5,6,7];
var maximo = getMax(myArray); //return the highest number

The following code works for me :

var valueList = [10,4,17,9,3];
var maxValue = valueList.reduce(function(a, b) { return Math.max(a, b); });
var minValue = valueList.reduce(function(a, b) { return Math.min(a, b); });

Two ways are shorter and easy:

let arr = [2, 6, 1, 0]

// Way 1:
let max = Math.max.apply(null, arr)

//Way 2:
let max = arr.reduce(function(a, b) {
    return Math.max(a, b);
});

I thought I'd share my simple and easy to understand solution.

For the min:

var arr = [3, 4, 12, 1, 0, 5];
var min = arr[0];
for (var k = 1; k < arr.length; k++) {
  if (arr[k] < min) {
    min = arr[k];
  }
}
console.log("Min is: " + min);

And for the max:

var arr = [3, 4, 12, 1, 0, 5];
var max = arr[0];
for (var k = 1; k < arr.length; k++) {
  if (arr[k] > max) {
    max = arr[k];
  }
}
console.log("Max is: " + max);

  • Thanks. I changed my answer. – Ionut Oct 13 '16 at 17:58
  • The iteration is still wrong (accessing non-existing properties). – Bergi Oct 13 '16 at 18:14
  • What is wrong, I don't see anything wrong. Can you offer an example please? – Ionut Oct 13 '16 at 18:22
  • 1
    Modified accordingly now. Hope I understood you correctly. – Ionut Oct 13 '16 at 18:47

Iterate through, keeping track as you go.

var min = null;
var max = null;
for (var i = 0, len = arr.length; i < len; ++i)
{
    var elem = arr[i];
    if (min === null || min > elem) min = elem;
    if (max === null || max < elem) max = elem;
}
alert( "min = " + min + ", max = " + max );

This will leave min/max null if there are no elements in the array. Will set min and max in one pass if the array has any elements.

You could also extend Array with a range method using the above to allow reuse and improve on readability. See a working fiddle at http://jsfiddle.net/9C9fU/

Array.prototype.range = function() {

    var min = null,
        max = null,
        i, len;

    for (i = 0, len = this.length; i < len; ++i)
    {
        var elem = this[i];
        if (min === null || min > elem) min = elem;
        if (max === null || max < elem) max = elem;
    }

    return { min: min, max: max }
};

Used as

var arr = [3, 9, 22, -7, 44, 18, 7, 9, 15];

var range = arr.range();

console.log(range.min);
console.log(range.max);
  • 2
    But, the fastest solution is not always the most optimal solution... – Algonomaly Jul 12 '14 at 17:52
  • @JordanDillonChapian I'd agree, but it would be trivial to extend this to a range function that would be the best way to get both the min and max at the same time IMO - as I've done with an update to my answer. – tvanfosson Jul 13 '14 at 14:25

Simple stuff, really.

var arr = [10,20,30,40];
arr.max = function() { return  Math.max.apply(Math, this); }; //attach max funct
arr.min = function() { return  Math.min.apply(Math, this); }; //attach min funct

alert("min: " + arr.min() + " max: " + arr.max());

Here's one way to get the max value from an array of objects. Create a copy (with slice), then sort the copy in descending order and grab the first item.

var myArray = [
    {"ID": 1, "Cost": 200},
    {"ID": 2, "Cost": 1000},
    {"ID": 3, "Cost": 50},
    {"ID": 4, "Cost": 500}
]

maxsort = myArray.slice(0).sort(function(a, b) { return b.ID - a.ID })[0].ID; 

Using Math.max() or Math.min()

Math.max(10, 20);   //  20
Math.min(-10, -20); // -20

The following function uses Function.prototype.apply() to find the maximum element in a numeric array. getMaxOfArray([1, 2, 3]) is equivalent to Math.max(1, 2, 3), but you can use getMaxOfArray() on programmatically constructed arrays of any size.

function getMaxOfArray(numArray) {
  return Math.max.apply(null, numArray);
}

Or with the new spread operator, getting the maximum of an array becomes a lot easier.

var arr = [1, 2, 3];
var max = Math.max(...arr); // 3
var min = Math.min(...arr); // 1

ChaosPandion's solution works if you're using protoype. If not, consider this:

Array.max = function( array ){
    return Math.max.apply( Math, array );
};

Array.min = function( array ){
    return Math.min.apply( Math, array );
};

The above will return NaN if an array value is not an integer so you should build some functionality to avoid that. Otherwise this will work.

  • jeerose, why do you have (Math, this) as agruments when Roatin Marth only has (null, this)? – HankH Nov 3 '09 at 18:26
  • @HankH: see my response to your comment in a comment to my own answer. – Roatin Marth Nov 3 '09 at 18:28
  • 1
    I don't understand what you mean by "ChaosPandion's solution works if you're using protoype". How is your solution different, except you're using the Math object as the context? – Ionuț G. Stan Nov 3 '09 at 18:28
  • 2
    Please explain how mine only works if you use prototype. – ChaosPandion Nov 3 '09 at 18:28
  • Sorry, I meant if you extend the prototype yours will work. Apologies. – jay Nov 3 '09 at 18:31

If you are using prototype.js framework, then this code will work ok:

arr.min();
arr.max();

Documented here: Javascript prototype framework for max

If you use the library sugar.js, you can write arr.min() and arr.max() as you suggest. You can also get min and max values from non-numeric arrays.

min( map , all = false ) Returns the element in the array with the lowest value. map may be a function mapping the value to be checked or a string acting as a shortcut. If all is true, will return all min values in an array.

max( map , all = false ) Returns the element in the array with the greatest value. map may be a function mapping the value to be checked or a string acting as a shortcut. If all is true, will return all max values in an array.

Examples:

[1,2,3].min() == 1
['fee','fo','fum'].min('length') == "fo"
['fee','fo','fum'].min('length', true) == ["fo"]
['fee','fo','fum'].min(function(n) { return n.length; }); == "fo"
[{a:3,a:2}].min(function(n) { return n['a']; }) == {"a":2}
['fee','fo','fum'].max('length', true) == ["fee","fum"]

Libraries like Lo-Dash and underscore.js also provide similar powerful min and max functions:

Example from Lo-Dash:

_.max([4, 2, 8, 6]) == 8
var characters = [
  { 'name': 'barney', 'age': 36 },
  { 'name': 'fred',   'age': 40 }
];
_.max(characters, function(chr) { return chr.age; }) == { 'name': 'fred', 'age': 40 }
minHeight = Math.min.apply({},YourArray);
minKey    = getCertainKey(YourArray,minHeight);
maxHeight = Math.max.apply({},YourArray);
maxKey    = getCertainKey(YourArray,minHeight);
function getCertainKey(array,certainValue){
   for(var key in array){
      if (array[key]==certainValue)
         return key;
   }
} 

I like Linus's reduce() approach, especially for large arrays. But as long as you know you need both min and the max, why iterate over the array twice?

Array.prototype.minmax = function () {
  return this.reduce(function (p, v) {
    return [(p[0] < v ? p[0] : v), (p[1] > v ? p[1] : v)];
  }, [this[0], this[0]]);
}

Of course, if you prefer the iterative approach, you can do that too:

Array.prototype.minmax = function () {
    var mn = this[0], mx = this[0];
    this.forEach(function (v) {
        if (v < mn) mn = v;
        if (v > mx) mx = v;
    });
    return [mn, mx];
};

create a simple object

var myArray = new Array();

myArray = [10,12,14,100];

var getMaxHeight = {
     hight : function( array ){ return Math.max.apply( Math, array );
}

getMaxHeight.hight(myArray);
  • 1
    why do you actually need an object for that? It's just a function that you're using in the end. And also, why are you defining your array twice? – gion_13 Sep 17 '13 at 5:57
  • The main solution here is not the array creation convention or assign value to a variable. You can use create array in any you want and assign value as you wish. – Yene Mulatu Sep 25 '13 at 19:49
  • I know it is not the main solution. In fact it isn't even part of the solution. If it were, maybe i'd down-voted you, but I didn't. I was just curious about why did you write the code that way. – gion_13 Sep 25 '13 at 20:08

protected by mkoryak Dec 18 '14 at 2:56

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