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Beginner Ruby question. What is the simplest way to change this code, but leaving the block completely intact, that eliminates the side effect?

$ irb
irb(main):001:0> x = lambda {|v| x=2
irb(main):002:1> v}
=> #<Proc:0x8f586f8@(irb):1>
irb(main):003:0> x.call(3)
=> 3
irb(main):004:0> x
=> 2

This is the simplest example I could contrive to illustrate my issue, so "remove the assignment" or "don't assign the Proc to x" is not what I'm looking for.

I want to set local variables in a Proc (or lambda) that can be assigned without affecting the original enclosing scope. I could dynamically create a class or module to wrap the block, but that seems overkill for such a basic thing.

Equivalent Python to what I'm trying to do:

def x(v):
  x = 2  # this is a local variable, what a concept
  return v
share|improve this question
    
Have you tried not using the same name of the external variable? –  Maurício Linhares May 22 '13 at 19:01
    
x is a closure variable if declared in the external scope. Do you have a condition that precludes renaming one of these variables, such as to _x? You're trying to disable a fundamental expectation in the Ruby language otherwise. –  tadman May 22 '13 at 19:02
    
Clearly it is possible to have local variables, in methods. Is that the only language construct that creates a new lexical scope in the VM? If so, it seems that Proc and lambda are cheap in that they cannot be used to do proper functional programming. –  wberry May 22 '13 at 19:05

2 Answers 2

up vote 12 down vote accepted

Sometimes it is the desired behavior:

total = 0
(1..10).each{|x| total += x}
puts total

But sometimes it's accidental and you don't want to mess with an outside variable which happens to have the same name. In that case, follow the list of parameters with a semicolon and a list of the block-local variables:

x = lambda{|v; x| x = 2; v}
p x.call(3) #3
p x #<Proc:0x83f7570@test1.rb:2 (lambda)>
share|improve this answer
1  
Good call on defining a local variable in the argument list! This should accomplish exactly what the OP wants without necessarily having to free it from the binding. –  Chris Heald May 22 '13 at 20:13
2  
Holy crap. I learn something new every day - didn't know you could "declare" local variables in the argument list with a semicolon like this o.O –  nzifnab May 22 '13 at 20:17
    
I'm getting a syntax error, why? pastebin.no/z3415 –  Dog May 23 '13 at 15:35
1  
@Dog You are probably running Ruby 1.8.7 - it does run on 1.9.3. –  steenslag May 23 '13 at 16:06
    
Verified on Ruby 1.9.3. Thanks for the lesson! –  wberry May 23 '13 at 20:45

The reason for this is that the lambda is bound to its defining scope (NOT its calling scope), and is a full closure, which, among other things, includes the local variable x. What you really want here is an unbound proc to pass around and call without any particular binding. This isn't something that Ruby does very easily at all, by design (it's possible with eval, but that's less of a block and more just of a string statement). Procs, lambdas, and blocks are all bound to their defining scope. Lexical scope is only established on classes, modules, and methods; not on blocks/procs/lambdas/anything else.

It's worth noting that Python doesn't even permit assignment in lambdas in the first place.

share|improve this answer
    
The eval possibility is intriguing. But would that just bind variables to the scope of whatever did the eval? I guess that would basically amount to a performance penalty. –  wberry May 22 '13 at 19:48
    
Yeah, Python's lambda is unfortunately weakened by the fact that it reifies a single expression, which is what prevents assignment (and while loops and other statements) from being done in them. It's a syntactic reason. –  wberry May 22 '13 at 19:49
    
Correct. Everything executed in Ruby is bound to some containing scope, even if that scope is empty. –  Chris Heald May 22 '13 at 19:50

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