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def foo;5;end

# this one works
if (tmp = foo)
  puts tmp.to_s
end

# why this one fails
puts tmp2.to_s if (tmp2 = foo) #=> undefined local variable or method ‘tmp2’ for main:Object
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3 Answers

up vote 5 down vote accepted

It fails because of the way the parser works.

From the parser's point of view the variable tmp2 exists from the point in the code at which it is first assigned until the point where it goes out of scope. For this it does not matter, when (or if) the assignment is actually executed, just when the parser sees the assignment (i.e. it depends on the assignments position in the code).

Edit: To expand on that bit:

The decision whether a name is a local variable or a method call is made by the parser. The parser makes that decision solely based on whether or not it has already seen an assignment to that variable. So when the parser sees tmp2 before seeing tmp2 = ..., it decides that here tmp2 refers to a method. When that part of the code is actually executed, it tries to call the method tmp2 which does not exist so you get the error.

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Actually, it doesn't decide that tmp2 is a method. It decides that it can't decide if tmp2 is a method or a local variable. –  Sarah Mei Sep 4 '09 at 16:57
    
I'm not sure what you mean by that. tmp2 if tmp2=1 will call method_missing with the argument tmp2 when there is no method tmp2 when the code executes. So it does treat tmp2 as a method call. –  sepp2k Sep 4 '09 at 17:00
    
If it had decided for certain that you were trying to call a method, you'd get "undefined method `tmp2' for #<Object:0xb7ba99a8>." Yes, it calls method_missing, but because it can't tell whether you intended tmp2 to be a method call or a local variable, you get the general error message. –  Sarah Mei Sep 4 '09 at 17:08
    
You get the general error message because the designers of ruby knew that that error could be caused when trying to access local variable. However there is no way that after the parsing step, ruby will look at tmp2 and say "Hm, I wasn't sure what this was before, but now I realize this is a variable". After the parser decides that it's not a local variable, it will definitely be treated as a method. So I think it's fair to say "it decides that it refers to a method". –  sepp2k Sep 4 '09 at 17:13
    
Or to phrase my comment another way: Ruby might not no whether your intent was to access a method or a local variable, which is why the error message also mentions that there is no local variable. However it does decide that it will treat the name as a method call at that point. –  sepp2k Sep 4 '09 at 17:19
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The assignment operator creates the variable. As such, when it sees 'puts.temp2.to_s' it doesn't yet know what tmp2 is. If you change the code to:

def foo;5;end
tmp2=1
puts tmp2.to_s if (tmp2 = foo)

It will work (and output '5')

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I think the OP's confusion comes from the fact that at the point where tmp2.to_s executes the variable tmp2 does technically exist (because the assignment executes before tmp2.to_s does). –  sepp2k Sep 4 '09 at 16:55
    
But it is the parser that has to know about the variable. And that comes to the 'puts' statement first (everything's read in sequential order). It doesn't execute anything until the parser is happy. –  David Oneill Sep 4 '09 at 17:00
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def foo; 5; end
puts (tmp2 = foo) && tmp2 || nil
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