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I would like to run x if y if z is true, and x unless y if z is false.

What's the most idiomatic way to do that? The best I can come up with is:

x if z ? y : !y
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I think what you have came up with is good enough and more readable than the other suggested alternatives. I would just modify it a little bit to become more readable: x if (z ? y : !y). –  Behrang Aug 15 '11 at 1:36

3 Answers 3

Try this:

x if !!y == !!z

This is a standard Ruby idiom for coercing to boolean values. If y and z are already booleans, then you can simply do:

x if y == z
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Use the xor operator, and then negate it:

x unless (!y ^ !z)

Corrected based on Victor suggestion, as things that aren't true, false or nil may do their own thing with ^.

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just as a precaution (Ruby is famous for using something other than true and false) I would rewrite it as x unless(!y ^ !z) –  Victor Moroz Aug 15 '11 at 2:29
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To put what Victor said more explicitly for those reading: Ruby allows anything to work as a truth value (i.e. anything other than nil or false counts as true), but this code depends on the implementation of the ^ operator found only in TrueClass, FalseClass and NilClass. This will fail unpredictably if y is something other than true, false or nil. So you need to ensure that you're working with booleans if you do it this way. –  Chuck Aug 15 '11 at 2:49

That seems like a confusing way of thinking about this. To me the clearer formulation (Ruby-ish or otherwise) is

x if (z and y) or (not z and not y)
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