Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Ruby and StackOverflow newb here working my way through Ruby and ran into my first major roadblock. I'm having a really hard time wrapping my head around Procs and Lambdas. Here is the code I'm working with.

def procBuilder(message)
  Proc.new{ puts message; return}
end

def test
  puts "entering method"
  p = procBuilder("entering proc")
  p.call
  puts "exit method"
end

test

By design, this is to throw a LocalJumpError, but I don't rightly understand why. If I had to guess what this did, I would guess it would initially print "entering proc" upon p = procBuilder("entering proc") running then throw an error on p.call as there is no string being passed by p.call, but clearly I'm missing something critical that is occurring between those 2 lines. I also don't completely understand why this works with a lambda rather than a proc but I imagine understanding the error will resolve that issue as well.

Thanks in advance for the clarification

share|improve this question
    
Correct me if I am wrong, but I think it has something to do with the return statement. return in a proc will try to return from the calling method as well. So p.call tries to return from test as well as procbuilder –  abhinav Nov 17 '11 at 6:22

1 Answer 1

up vote 4 down vote accepted

Here's an answer I gave to a related question. It talks a bit about lambda vs proc and LocalJumpErrors.

In a proc, return is a special piece of syntax that returns from the lexical scope of the proc, not the proc itself. So it's trying to return out of procBuilder, which has already exited.

There are a couple ways to fix this:

  1. Don't use return at all. Ruby will return control to proc's caller all on its own.
  2. Change proc to lambda, which behaves the way you expect. Lambdas act like methods; procs act like blocks.

As for the error you're expecting, you shouldn't get that. procBuilder returns a proc that encloses the message variable. You don't need any arguments to the proc itself.

Edit: answering your additional question. The proc is a closure. It has "captured" the message variable (a local variable in procBuilder), which was in scope when the proc was created. The proc now can wander through your program with the message variable hidden inside of it, ready to be printed when you call it. The only trouble is the return statement, which has the additional requirement that it the lexical scope still be "live".

The reason for all this is that this behavior is really helpful in blocks. In this case, it's not helpful at all, so you should just use a lambda, where return means something less insane.

A really great tutorial on closures in ruby: http://innig.net/software/ruby/closures-in-ruby.rb

share|improve this answer
    
Thanks Isaac, but I'm still a little fuzzy. When you say "a special piece of syntax that returns from the method the proc's called from, not the proc itself" you're telling me it jumps to the end of my test method and to the end of the program, correct? Why is that an error and not just an end to the program? –  Tim Lindsey Nov 17 '11 at 6:45
    
Thanks for the help again, but I'm still struggling (believe me I've already thoroughly banged my head against the wall). If the proc already ran and returned before it gets to p.call and thus, the test method has been returned out of, then how is p.call able to print "entering proc" to the console? –  Tim Lindsey Nov 17 '11 at 6:57
    
i edited a bit. i had to fix a bit of the original answer and then answered your additional question –  user24359 Nov 17 '11 at 7:09
    
I think I got it more or less, maybe the term "LocalJumpError" itself is just throwing me a loop. Thanks for all the assistance. –  Tim Lindsey Nov 17 '11 at 7:09
    
np. if you're satisfied with the answer, check the checkbox to mark it as accepted –  user24359 Nov 17 '11 at 7:27

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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