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I’v come across both ways to apply Array prototypes to a native object:

arr = Array.prototype.slice.call(obj);
arr = [].slice.call(obj);

In similar fashion, getting the true type of a native array-like object:

type = Object.prototype.toString.call(obj);
type = {}.toString.call(obj);

A simple test:

function fn() {
    console.log(
        Array.prototype.slice.call(arguments),
        [].slice.call(arguments),
        Object.prototype.toString.call(arguments), 
        {}.toString.call(arguments)
    );
}

fn(0,1);

Fiddle: http://jsfiddle.net/PhdmN/

They seem identical to me; the first syntax is used more often, but the second is definitely shorter. Are there any shortcomings when using the shorter syntax?

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3  
the second syntax creates a new object needlessly. –  Dan D. Jan 25 '12 at 16:51
    
@DanD., you should post this as an answer, because it is the correct answer. ;) –  Lucero Jan 25 '12 at 16:57
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1 Answer

up vote 7 down vote accepted

They are identical regarding functionality.

However, the Array object can be overwritten, causing the first method to fail.

//Example:
Array = {};
console.log(typeof Array.slice); // "undefined"
console.log(typeof [].slice);    // "function"

The literal method creates a new instance of Array (opposed to Array.prototype. method). Benchmark of both methods: http://jsperf.com/bbarr-new-array-vs-literal/3

When you're going to use the method many times, the best practice is to cache the method:

  • var slice = Array.prototype.slice; //Commonly used
  • var slice = [].slice; - If you're concerned about the existence of Array, or if you just like the shorter syntax.
share|improve this answer
    
No, only the result is identical. Creating new objects for nothing is not the same, and the explicit use of the prototype is also faster because it requires less work for the runtime to figure out where the method resides. Both marginal, but why not go for the better solution if they are equally simple to use? –  Lucero Jan 25 '12 at 16:53
    
@Lucero They're identical for functionaility. The [].slice does initialize a new instance (which hardly affect performance). The Array method is cleaner, but fails when Array is redefined, –  Rob W Jan 25 '12 at 16:56
3  
in JS one can break a lot of things. If Array.prototype.slice is changed then both variants will not behave as expected. Reminds me of the redefined undefined... anyways, creating objects for nothing is not expensive, but factoring in the cost of garbage collection it may add up in a tight loop. –  Lucero Jan 25 '12 at 17:02
    
@Lucero The best of both worlds: caching the variable, using [].slice :) –  Rob W Jan 25 '12 at 17:08
2  
You may even use Object.getPrototypeOf([]).slice if you have some irrational fear of someone overwriting Array. Wait, what if someone overwrites Object? ... ;) –  Pumbaa80 Jan 25 '12 at 17:29
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