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I am having difficulty understanding what makes the following behaviour possible (taken from the ruby pickaxe book):

def power_proc_generator
  value = 1
  lambda {value += value}
end

power_proc = power_proc_generator

3.times {puts power_proc.call} # => 2,4,8
3.times {puts power_proc_generator.call()} # => 2,2,2

I don't see how the "power_proc" object allows the value to continue doubling as I would assume (wrongly it seems) that each call would reassign value to 1.

My question being why does "3.times {puts power_proc.call}" result "2,4,8" and not "2,2,2" ?

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Try to state your question as a question, so there is less confusion. –  Knownasilya Dec 12 '12 at 22:02
    
Sorry about that I clarified with an actual question. –  Discorick Dec 12 '12 at 22:06

2 Answers 2

up vote 5 down vote accepted

power_proc_generator returns a lambda which uses (and modifies) the value of a variable in the surrounding scope. This is known as a closure -- the returned function "closes" over the value of the value variable. So each time you call the returned function, it multiplies value by two. The important part is that value stays around between calls to power_proc.call, so you're modifying the existing variable.

Also, to elaborate on the difference between printing power_proc_generator and power_proc.call -- power_proc_generator returns a new function each time it's called, which is why you never see value being increased. power_proc.call, on the other hand, continues calling the same function multiple times.

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Okay, so I think my problem was less about understanding lambdas and more about not really understanding closures, so closures carry the most recent variable state, the non-object function call would just re-evaluate from scratch. –  Discorick Dec 12 '12 at 22:32

power_proc_generator returns a lambda that includes a closure that contains the variable 'value'. So that variable hangs around from one power_proc.call to the next.

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