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Could someone please explain the following?

[] instanceof Array; // true
'' instanceof String; // false
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1  
Also typeof "" is "string" and typeof [] is "object" (you'd expect "array" but alright I can live with that) –  Halcyon Dec 20 '11 at 0:24
    
Guessing, could the '' be a primitive, but [] an object? –  Mārtiņš Briedis Dec 20 '11 at 0:25
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+1 Interesting, because "".constructor === String. –  pimvdb Dec 20 '11 at 15:22
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... though the specs confirm this behaviour: "If V is not an object, return false." (15.3.5.3) –  pimvdb Dec 20 '11 at 15:52

4 Answers 4

up vote 13 down vote accepted

Note the following:

"" instanceof String;             // => false
new String("") instanceof String; // => true

instanceof requires an object, but "" is a string literal, and not a String object. Note the following types using the typeof function:

typeof ""             // => "string"
typeof new String("") // => "object"
typeof []             // => "object"
typeof new Array()    // => "object"
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What then is the difference between a literal string and String object and why is it (apparently) important? As far as I know they can be used interchangeably but the result is that you can't use instanceof to check whether something is a 'string' –  Halcyon Dec 20 '11 at 0:25
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But isn't [] an array literal in the same way that '' is a string literal? –  FishBasketGordo Dec 20 '11 at 0:25
    
@FishBasketGordo array can contain all kinds of primitives and objects. –  Mārtiņš Briedis Dec 20 '11 at 0:26
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@MikeRobinson: that is Java, not JavaScript. more than a slight difference... –  Claudiu Dec 20 '11 at 0:28
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@lonesomeday primitives != literals. There are also the null literal and regex literals. –  kapep Dec 20 '11 at 0:32

It's because '' is primitive, not an object.

Some primitives in JavaScript can have an object wrapper. These are created when you make an instance of the wrapper using the built in constructor with new.

The new is typically necessary because often times the function will coerce to a primitive if you exclude new.

typeof new String('');  // "object"
typeof String('');      // "string"
typeof '';              // "string"

The primitives that have Object wrappers are string, number and boolean.

The primitives that do not are null and undefined.

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So what is the primitive (i.e. non-wrapper object) of []? –  Randomblue Dec 20 '11 at 0:30
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Randomblue: There isn't one. An Array is always an Object. –  squint Dec 20 '11 at 0:31
    
@Randomblue doesn't exist. Why would there be a primitive? –  Raynos Dec 20 '11 at 0:32
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@KEX that name, fix it ;_;. –  Raynos Dec 20 '11 at 0:32
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@Raynos: I tried, but StackOverflow won't let me make it any longer. –  squint Dec 20 '11 at 0:34

'' isn't an instance of anything; it's a primitive type, and it works in much the same way as 5.5 or true. There's a difference between a string primitive and a String object. See:

new String('') instanceof String; // true

Anything created with new String(), new Number() or new Boolean() is an object wrapper around the primitive type, and they're not the same.

To check for strings, etc., use typeof instead:

typeof '' === 'string'; // true

To check for both, use this:

Object.prototype.toString.call('') === '[object String]'; // true
Object.prototype.toString.call(new String('')) === '[object String]'; // true

There are a couple of reasons to use Object.prototype.toString.call for general-use code, for arrays, strings, numbers and booleans. They are:

  1. For strings, numbers, and booleans, people may pass instances of the wrapper objects instead of the primitive types. They usually function in the same way (with an implicit valueOf()) and so you should accept them if writing library code.
  2. For arrays, if you receive an array from another window (say from an <iframe>) then using instanceof Array will return false. The Object.prototype.toString.call method works for all purposes.

This is what jQuery and other large, popular libraries do.

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I've done some digging and I suppose it has to do with string interning which is a compiler optimization.

Okay, ready for some gotchas? :D

"abc" == "abc"; // true
"abc" === "abc"; // true

I suppose this is true because of "string interning" which coincidentally also makes a lot of sense, conceptually (yay for getting 'strings' right).

new String("abc") == new String("abc"); // false
new String("abc") === new String("abc");    // false

This makes sense if you assume a String is an object and an object is only equal to itself and not equal to object with similar internal state. Like in Java (or how it used to be anyway).

And now for the kicker:

(new String("abc")).substr(0,3) === (new String("abc")).substr(0,3); // true!

So apparently the JavaScript interpreter will always prefer string interning over the use of the String object.

Then I must ask, what is the use of the String object? Apparently it doesn't play nice with its friends.

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The first one, "abc" === "abc", isn't because of string interning. Strict equality works as you'd expect for primitive types. === is only "reference-equals" for objects. –  minitech Dec 20 '11 at 17:32
    
The String type is only there to allow you to extend its prototype and also to allow you to create Objects-like strings. That is objects (similar to pointers in C) will only be === if they are same pointer –  DotNetWise Mar 22 '13 at 20:55

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