16

If you open a JS Console in your browser (in my case Chrome) and type:

{} + []

you will get 0, but when you type

console.log({} + [])

you get [object Object]... any ideas why the result is different? I've always thought that when you type there it always wrap it with console.log?

10
  • I think it's Type conversion. – evolutionxbox Oct 11 '17 at 8:33
  • 2
    {} + [] is 0 because false + false = 0? – Nope Oct 11 '17 at 8:34
  • @Fran Since when is {} false? – deceze Oct 11 '17 at 8:34
  • @deceze Since when you typecast it to int – Justinas Oct 11 '17 at 8:36
  • @Justinas false is an int? – deceze Oct 11 '17 at 8:37
12

{} can either be an empty block or a empty object literal depending on context.

+ can either be the unary plus operator or the concatination operator depending on context.

The first code example is an empty block it might as well not be there, making the expression the same as +[], meaning "An empty array converted to a number".

You can't have a block as a function argument, so the second code example {} is an object and the code means "Concatinate an object with an array" (implicitly converting both object and array to strings).

3
  • I just noticed that {aa: "www"} + [] also returns 0 Does that mean it does treat {} always like an object literal and it doesn't matter if it is empty or not as +[] will always result in the same? – Nope Oct 11 '17 at 8:56
  • 2
    @Fran — It means it always treats it as a block. – Quentin Oct 11 '17 at 8:58
  • 3
    {aa: "www"} is a probably interpreted as a label – notrota Oct 11 '17 at 8:59
5

When you see {} character at the beginning it is interpreted as a empty block or empty object literal(when you're creating objects).

When you're using an expression or statement, + represent the plus operator, which coerces its operand(in this case it will be []) to a number.

So +[] is the same as Number([]), which evaluates to 0.

The unary plus operator internally use the ToNumber abstract operation.

Read more about Type Conversions and operators.

console.log(Number([]));

With the other words, {} + [] expression is an empty code block followed by an array which will be constraint to a number(Number[]).

In the second example you're providing you just concat an object literal(empty object) to an array. That't why you're receiving [object Object].

3

Empty object as {} returns "[object Object]" when you call its toString() method. Empty array returns "" when you call its toString() method. Thus, console.log({} + []) will output "[object Object]"

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  • 1
    Why does console.log({}) output {} then? – deceze Oct 11 '17 at 8:37
  • 1
    @deceze Because you are not trying to add two things that can only be added if you do an implicit toString conversion. That means if you only provide one object it can be "dumped". – Mörre Oct 11 '17 at 8:42
  • @Mörre No. If console.log always turned everything into a string, it wouldn't output {}. The basic premise of this answer is wrong. – deceze Oct 11 '17 at 8:42
  • @deceze Because using just ({}) instead of ({} + []) doesn't trigger concatenation and it just prints out the object you passed it? – Nope Oct 11 '17 at 8:43
  • @deceze try adding ({}) + [], it returns "[object Object]" – Nicolas P. Oct 11 '17 at 8:43
0

it's because {} is an object notation so whatever you concatenate with {} it will give you an [object Object]. I your case [] is an empty so it just shows an [object Object]. so if you could try the following you will got what you want.

 console.log({} + 5);
 [object Object]5  ///console shows 
      //And
console.log({} + "test");
VM65:1 [object Object]test //console shows

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