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I want to take any truthy value from two expressions, for example 2, or take nothing. It can be done as:

if exp1
  a = exp1
elsif exp2
  a = exp2
end

I tried to make it short, and have the following:

a = 1 if exp1|| 2 if exp2

However ruby returns 1 in this case. What is the correct syntax in ruby to do this?

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closed as unclear what you're asking by sawa, Stefan, toro2k, Jörg W Mittag, infused Aug 9 at 6:57

Please clarify your specific problem or add additional details to highlight exactly what you need. As it's currently written, it’s hard to tell exactly what you're asking. See the How to Ask page for help clarifying this question.If this question can be reworded to fit the rules in the help center, please edit the question.

    
You mean you have one condition and you assign value to a according to it? –  Marek Lipka Jul 30 at 13:42
    
you can try a= 1: false ? 2 something like this –  Gagan Gami Jul 30 at 13:43
    
No I have it as I wrote it - 2 'ifs' in the same line , it might be that it can't be done like that ? –  Joel_Blum Jul 30 at 13:44
    
Why not just try that and see if it throws an error? –  jkeuhlen Jul 30 at 13:44
1  
@Joel_Blum are both examples supposed to be equivalent? Where do 1 and 2 come from? –  Stefan Jul 30 at 14:26

4 Answers 4

This should work:

a = exp1 || exp2 || a
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1  
This checks the validity of a at first not exp1. It's nothing equivalent to if exp1 a = exp1 elsif exp2 a = exp2 end –  konsolebox Jul 30 at 14:31
    
@konsolebox you're right, didn't see that. –  Stefan Jul 30 at 14:38
1  
@konsolebox I've updated my answer, I hope I got it right this time :-) –  Stefan Jul 30 at 14:40
    
Yes. It's simpler than mine. +1 –  konsolebox Jul 30 at 14:41
    
Good as it gets! –  Cary Swoveland Jul 30 at 18:17
a = exp1 ? exp1 : exp2 ? exp2 : a

Equivalent to:

if exp1,
    a is set to exp1
else if exp2,
    a is set to exp2
else
    a is set to a, which is virtually equivalent to doing nothing
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The correct syntax:

a = (1 if false) || (2 if true)
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hmm yep this looks good –  Joel_Blum Jul 30 at 13:53
    
I accepted it by mistake... it's not what I needed . I want my variable to keep it's original value if both conditions are falsy but that doesn't happen here.the only way that I can see is the long way I wrote in my question. –  Joel_Blum Jul 30 at 14:05
if exp1
  a = exp1
elsif exp2
  a = exp2
end

Can be shortened to

a = if exp1
  exp1
elsif exp2
  exp2
end

Or, if you prefer one-liners:

a = if exp1 then exp1 elsif exp2 then exp2 end

Any attempt to shorten it even further will change the semantics. For example:

a = exp1 || exp2 || nil

will evaluate exp1 exactly once and exp2 at most once, whereas the original snippet will evaluate exp1 once or twice and exp2 either twice or never.

(To be fair: my example will also change the meaning IFF a appears in exp1. In the OP's original code, an occurrence of a in exp1 will be interpreted as a method call, in my example as a local variable dereference which will evaluate to nil.)

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