Empty arrays are true but they're also equal to false.
var arr = [];
console.log('Array:', arr);
if (arr) console.log("It's true!");
if (arr == false) console.log("It's false!");
if (arr && arr == false) console.log("...what??");I guess this is due to the implicit conversion operated by the equality operator.
Can anyone explain what's going on behind the scenes?
You're testing different things here.
if (arr) called on object (Array is instance of Object in JS) will check if the object is present, and returns true/false.
When you call you compare values of this object and the primitive value. Internally, is called, which returns an empty string . if (arr == false)falsearr.toString()""
This is because called on Array returns , and empty string is one of falsy values in JavaScript.toStringArray.join()
Regarding the line:
if (arr == false) console.log("It's false!");
Maybe these will help:
console.log(0 == false) // true
console.log([] == 0) // true
console.log([] == "") // true
What I believe is happening is that the boolean is coerced to for comparison with an object (the left-hand side). The object is coerced to a string (the empty string). Then, the empty string is coerced into a number, as well, namely zero. And so the final comparison is == , which is .false000true
Edit: See this section of the spec for details on exactly how this works.
Here's what's happening, starting at rule #1:
1. If Type(x) is different from Type(y), go to step 14.
The next rule that applies is #19:
19. If Type(y) is Boolean, return the result of the comparison x == ToNumber(y).
The result of is , so we now have:ToNumber(false)0
[] == 0
Again, rule #1 tells us to jump to step #14, but the next step that actually applies is #21:
21. If Type(x) is Object and Type(y) is either String or Number, return the result of the comparison ToPrimitive(x)== y.
The result of is the empty string, so we now have:ToPrimitive([])
"" == 0
Again, rule #1 tells us to jump to step #14, but the next step that actually applies is #17:
17. If Type(x) is String and Type(y) is Number, return the result of the comparison ToNumber(x)== y.
The result of is , which leaves us with:ToNumber("")0
0 == 0
Now, both values have the same type, so the steps continue from #1 until #7, which says:
7. If x is the same number value as y, return true.
So, we return .true
In brief:
ToNumber(ToPrimitive([])) == ToNumber(false)
