2

This might just be a weird quirk of JavaScript, but I'm curious if anyone knows why this happens:

({} <= {}) => true

({} >= {}) => true

({} == {}) => false

({} === {}) => false

({} > {}) => false

({} < {}) => false

Why are the first two true given that all the others are false?

I thought it may be casting the objects to numbers before comparing, but...

Number({}) >= Number({}) => false

  • The rules for type casting are different between == and <=/>=. – Pointy Apr 28 '16 at 22:21
  • 2
    You can read this about greater-than and less-than, and this about ==. – Pointy Apr 28 '16 at 22:23
3

Using the </<=/>/>= operators in ES5 uses the Abstract Relational Comparison Algorithm, which is a fancy way of saying it coerces the types before comparing them. When {} is coerced with [[ToPrimitive]], it falls back to the toString() method, which returns "[object Object]" for both. Because the equals-variants of the less than/greater than operators check equality first, and the strings are equal, the check succeeds. It fails for the non-equality-checking variants because, well, the strings are equal.

== doesn't use the same coercion algorithm, it uses the Abstract Equality Comparison Algorithm. The first thing this algorithm checks is if the types are the same -- which they are, of course, for two bare objects. Therefore the algorithm proceeds with the first step, and goes down to check f:

Return true if x and y refer to the same object. Otherwise, return false.

Each usage of {} creates a new object, so this check fails and the result is false.

=== is similar, except there is no coercion step. It fails at step 7, which uses the same language as substep f of the AECA.

tl;dr: >= / <= coerce in a different way than == / ===.

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.