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Why doesn't this code work?

b if b = true

Error: undefined local variable or method `b'

But this does:

if b = true
    b
end

Shouldn't they be the same?

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2  
It can be even simplified: k if k = 1 and if k = 1; k; end –  Flexoid Jun 13 '12 at 20:36
    
This has been a slight annoyance of mine; I don't think there is any deep reason why your code can't work, so maybe they will add this feature in the next version of ruby. –  David Grayson Jun 13 '12 at 20:40
    
Conditionals are expressions just like anything else in Ruby so this behavior is expected when the parser is looking to assign variables, and would be hard to change. I do agree though that it is quite unintuitive and does not follow principle of least surprise. –  Michael Papile Jun 13 '12 at 20:46
    
As a matter of coding practice, I prefer to not see assignments in the condition. It makes maintenance of the code more difficult because it's hard to tell if an assignment was intended or a typo occurred and it should have been an equality test (==). The fact that it's not working as you expect would just be more cause to flag it in a code review. –  the Tin Man Jun 13 '12 at 20:54

4 Answers 4

up vote 15 down vote accepted

This is a very good question. It has to do with the scoping of variables in Ruby.

Here is a post by Matz on the Ruby bug tracker about this:

local variable scope determined up to down, left to right. So a local variable first assigned in the condition of if modifier is not effective in the left side if body. It's a spec.

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1  
+1 for the reference. –  Dave Newton Jun 13 '12 at 20:40
    
Thanks for the reason. –  KARASZI István Jun 13 '12 at 20:42
    
+1 great reference –  KensoDev Jun 13 '12 at 20:44

Because the Ruby interpreter creates a local variable when it sees an assignment

In the second case, it hasn't yet seen the assignment, so the variable doesn't exist when the expression is parsed.

To be more precise, a method is first parsed into an internal representation, and then, perhaps, the code will eventually be called and actually executed.

Local variables are created in that parsing pass. It's a matter of declaration, it just means that the interpreter becomes aware of them. They won't be created in the sense of being given space or a value until the surrounding method is called by someone.

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I don't know the reason but the problem that the interpreter tries to lookup the variable k before evaluating the condition.

If you write it like this, there won't be any error and works as you expected:

k = nil
h = {k: 1}
v = k if k = h.delete(:k)
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In the first version as soon as k is hit, the parser pukes because it hasn't been seen yet.

In the second version, k is part of an assignment expression, and is parsed differently.

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