7

Bit of an edge case, but any idea why &&= would behave this way? I'm using 1.9.2.

obj = Object.new
obj.instance_eval {@bar &&= @bar} # => nil, expected
obj.instance_variables # => [], so obj has no @bar instance variable

obj.instance_eval {@bar = @bar && @bar} # ostensibly the same as @bar &&= @bar
obj.instance_variables # => [:@bar] # why would this version initialize @bar?

For comparison, ||= initializes the instance variable to nil, as I'd expect:

obj = Object.new
obj.instance_eval {@foo ||= @foo}
obj.instance_variables # => [:@foo], where @foo is set to nil

Thanks!

1
11

This is, because @bar evaluates to false, and thus the &&= would evaluate the expression no further... In contrast to your second expression, which assigns to @bar in any case, no matter what the following expression resolves to. The same goes with the ||= case which evaluates the complete expression, no matter what initial value @foo resolved to.

So the difference between your first two expressions is, that in the first the assignment is dependent on the (undefined) value of @bar while in the second case you do an unconditional assignment. &&= is NOT a shortcut for x = x && y. It is a shortcut for x = x && y if x.

5
  • Thanks for clarifying! Also, just got to the part of Programming Ruby 1.9 that explains this... probably should have look it up :/ Jun 7 '10 at 0:23
  • @Alan feel free to accept my response as answer if it solves your question.
    – hurikhan77
    Jun 12 '10 at 16:24
  • @AlanO'Donnell this article offers a detailed explanation of the topic. Dec 12 '12 at 22:31
  • 2
    It is indeed a shortcut for x = x && y
    – blj
    Jun 11 '17 at 19:09
  • 1
    @blj No... It's more like x && x = y... Your suggestion does something different in Ruby.
    – hurikhan77
    Jun 11 '17 at 19:18

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.