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In the below code :-

 var x = { } ;
    console.log(typeof x);             // o/p is object
    console.log(x instanceof Object ); //o/p is true

If I use "object" instead of "Object" in the last line I get an error.Why is that so when the o/p of second line is object with a lowercase "o"?

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JavaScript is case-sensitive... The name of the constructor is Object, not object. –  Šime Vidas Oct 2 '12 at 18:46
2  
typeof doesn't return the constructor that was used to create the instance, it simply returns a few predefined values depending on what argument it was used with. –  zzzzBov Oct 2 '12 at 18:47
1  
For example typeof "" returns 'string', but there is no string object defined unless you define one. –  zzzzBov Oct 2 '12 at 18:48

3 Answers 3

up vote 2 down vote accepted

Because there's no such thing as an 'object'. Typeof doesn't give you the class back - it gives you back the primitive type that it is. For example, typeof "string" gives you back "string".

The 'Object' is a constructor for an object 'primitive' - so a new Object gives you back an 'object' to work with.. but don't expect to be able to create a 'new object', as an 'object' doesn't exist as a constructor.

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You get an error because you haven't defined a variable named object. Attempting to read a variable that has not been declared is a ReferenceError.

The Object variable is native to the environment, and is pre-defined as the constructor function for plain objects. That's why it works when you do instanceof Object. Every native object in JavaScript is an instance of Object.

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Javascript is case sensitive "object" is essentially a variable that can hold anything. "Object" is an actual javascript type.

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