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There's an example in Secrets of the JavaScript Ninja that provides the following code to get around JavaScript's Math.min() function, which requires a variable-length list.

Example: Math.min(1,2,3,4,5);

But, there's a problem if you have a list: [1,2,3,4,5], since you'd rather not have to loop through the list, keeping track of the current min.

The book says to use the following code to solve this issue.

function smallest(arr) {
   return Math.min.apply(Math, arr);   
}

alert(smallest([1,2,3,4,5,6,-33]));

What happens with Math.min.apply(Math, arr) under the hood?

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possible duplicate of What does $.when.apply($, someArray) do? –  Felix Kling Feb 9 '13 at 22:00

3 Answers 3

up vote 1 down vote accepted

Per the MDN documentation for Function.prototype.apply:

Calls a function with a given this value and arguments provided as an array (or an array like object).

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The .apply method "Calls a function with a given this value and arguments provided as an array (or an array like object)."

So basically it works as if you'd passed each item of the array as a separate parameter when calling the function directly.

The first parameter to .apply() sets the value of this to be used by the function, so your example passes Math so that it works the same as if you called it directly as Math.min(...).

Note that you can do the same thing with any function:

function someFunc(a,b,c,d) { ... }

someFunc(1,2,3,4);
// or
someFunc.apply(null, [1,2,3,4]);
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The apply allows you to invoke a method on a given instance and provide the arguments as an array. So when you write

Math.min.apply(Math, arr);   

You are invoking the min method on the Math class and passing arr as arguments.

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