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What is the problem with this Ruby 2.0 code?

p (1..8).collect{|denom|
    (1...denom).collect{|num|
        r = Rational(num, denom)
        if r > Rational(1, 3) and r < Rational(1, 2)
            return 1
        else
            return 0
        end
    }
}.flatten

The error is in block (2 levels) in <main>': unexpected return (LocalJumpError). I want to create a flat list containing n ones (and the rest zeroes) where n is the number of rational numbers with denominators below 8 which are between 1/3 and 1/2. (it's a Project Euler problem). So I'm trying to return from the inner block.

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1  
Don't use return in a block. Just remove both return and your code will be ok. –  oldergod Jul 23 '13 at 2:43
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1 Answer

up vote 6 down vote accepted

You can't return inside a block in Ruby*. The last statement becomes the return value, so you can just remove the return statements in your case:

p (1..8).collect{|denom|
    (1...denom).collect{|num|
        r = Rational(num, denom)
        if r > Rational(1, 3) and r < Rational(1, 2)
            1
        else
            0
        end
    }
}.flatten

*: You can inside lambda blocks: lambda { return "foo" }.call # => "foo". It has to do with scoping and all that, and this is one of the main differences between lambda blocks and proc blocks. "Normal" blocks you pass to methods are more like proc blocks.

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9  
You can use return inside a block in Ruby. It will return from the enclosing method. In this case, there is no enclosing method, that's why there is an error, it's not because return in a block is illegal. –  Jörg W Mittag Jul 23 '13 at 5:14
    
@JörgWMittag You're right, I was simplifying. return returns for the nearest method or lambda block that you're inside. If you're not inside any, you'll get a LocalJumpError. –  henrikhodne Jul 23 '13 at 5:16
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