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If I run the following code, the first two lines return what I expect. The third, however, returns a binary representation of 2.

2.to_s      # => "2"
2.to_s * 2  # => "22"
2.to_s *2   # => "10" 

I know that passing in 2 when calling to_s will convert my output to binary, but why is to_s ignoring the * in the third case? I'm running Ruby 1.9.2 if that makes any difference.

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5  
My guess would be that Ruby interprets the * as a splat operator. –  skunkfrukt Oct 1 '12 at 7:58
3  
This is awkward, Ruby. –  texasbruce Oct 1 '12 at 13:26

2 Answers 2

up vote 5 down vote accepted

Right, as Namida already mentioned, Ruby interprets

2.to_s *2

as

2.to_s(*2)

as parentheses in method calls are optional in Ruby. Asterisk here is so-called splat operator.

The only puzzling question here is why *2 evaluates to 2. When you use it outside of a method call, splat operator coerces everything into an array, so that

a = *2

would result with a being [2]. In a method call, splat operator is doing the opposite: unpacks anything as a series of method arguments. Pass it a three member array, it will result as a three method arguments. Pass it a scalar value, it will just be forwarded on as a single parameter. So,

2.to_s *2

is essentially the same as

2.to_s(2)
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In the third line you're calling the to_s method with the "splat" of 2, which evaluates to 2 (in a method call), and hence returns the number in a different base.

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Umm, splat of 2 is actually [2] (see my recent edit). –  Mladen Jablanović Oct 1 '12 at 8:16
    
Apparently that depends on the ruby version. The result of a = *2 is different from ruby 1.8.7 to 1.9. But since @slapthelownote stated he was using 1.9.2 you stand correct. –  Miguel Fonseca Oct 1 '12 at 8:28

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