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First version of the method:

def method(param1, param2={})
  meth_x(param2).meth_y(param1)
  meth_z
  #...
end

Second version of the method (notice the second param2)...

def method(param1, param2={})
  meth_x(param2={}).meth_y(param1)
  meth_z
  #...
end

I would assume that these two methods are equivalent and thus I'd go with the first one (less typing, less redundancy).

However, I'm curious if these would be expected to behave differently and, if so, why.

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Is there a reason why you think they might behave differently? –  Daniel Hilgarth May 14 '13 at 14:17
    
I'm getting vague claims from other developers on my team about differences in behavior--though at the moment I'm skeptical about them. :-) –  Abe Heward May 14 '13 at 14:21
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1 Answer

up vote 3 down vote accepted

In the second, you set the param2 to an empty hash before giving it as a parameter to meth_x. In the method definition the param2 = {} means that if the parameter is omitted, then it is set to this default empty hash, but in the meth_x(param2 = {}) means that you drop the original content of param2 and replace it with an empty hash, then giving it to meth_x.

irb(main):001:0> a = {:alma => 2}
=> {:alma=>2}
irb(main):002:0> puts a
{:alma=>2}
=> nil
irb(main):003:0> puts(a)
{:alma=>2}
=> nil
irb(main):004:0> puts(a = {})
{}
=> nil
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1  
So in the second instance param2 will always be an empty hash? –  Abe Heward May 14 '13 at 14:24
    
I mean, effectively it will always be an empty hash, regardless of what gets passed to #method? –  Abe Heward May 14 '13 at 14:33
    
Yepp, thats the way. Even better, for the rest of the method param2 will contain this new value. If you mean to initialize it to an empty hash in case it is nil, then use meth_x(param2 ||= {}) or meth_x(param2 || {}). This way the original content won't be lost. But since you are using default parameter value in the method definition, it can not be the case. –  Matzi May 14 '13 at 14:33
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