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Is it possible to implement the ?? operator in Ruby?

a = nil
b = 1

x = a ?? b # x should == 1
x = b ?? 2 # x should == 1
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4 Answers 4

up vote 23 down vote accepted

You're looking for conditional assignment:

a ||= b  # Assign if a isn't already set

and the || operator

a = b || 2 # Assign if b is assigned, or assign 2
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7  
This won't work, for the reasons I outlined in my answer. Try setting a to false in the first example or b to false in the second example. –  Jörg W Mittag Jun 17 '09 at 12:24
    
Correct, @JörgWMittag. Beware of the truthy/falsey! –  Jason T Featheringham Mar 13 '13 at 19:40

In Ruby, the short-circuiting Boolean operators (||, &&, and and or) do not return true or false, but rather the first operand that determines the outcome of the entire expression. This works, because Ruby has a rather simple idea of truth. Or rather, it has a rather simple idea of falsehood: nil is false, and obviously false is false. Everything else is true.

So, since || is true when at least one of its operands is true, and operands are evaluated from left to right, this means that a || b returns a, when a is true. But when a is false, then the outcome of the expression is solely dependent on b, and thus b is returned.

That means that, because nil is false, you can just use || instead of ?? for the examples that you gave. (There is also the nifty a ||= b operator, which kind of works like a || a = b, but not quite.)

However, that only works, because you don't use Booleans in your examples. If you expect to deal with Boolean values, that won't work:

b = false

x = b || 2 # x should be == false, but will be 2

In that case, you will have to use #nil?, and a conditional expression:

b = false

x = unless b.nil? then b else 2 end # x should be == 2

or using the ternary conditional operator:

b = false

x = b.nil? ? 2 : b # x should be == false

If you want to, you can wrap that up in a nice method:

class Object
  def _? b = nil
    return self
  end
end

class NilClass
  def _? b = nil
    return yield if block_given?
    return b
  end
end

b = false

x = b._? { 2 } # x should be == false
x = b._? 2 # x should be == false

This cute snippet brought to you by polymorphism, open classes and the fact that nil is actually an object representing nothingness (unlike, say, Java, where null is actually nothing).

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a ||= b isn't so much "kind of" a || a = b, but exactly a = a || b. It is not conditional assignment, the assignment will always happen. –  Theo Jan 9 '11 at 7:45
3  
@Theo: that's what the current draft of the ISO Ruby Language Specification says, but that's wrong. MRI, YARV, JRuby, Rubinius, XRuby, MacRuby, IronRuby, Ruby.NET, MagLev, SmallRuby, tinyrb, RubyGoLightly and every other Ruby implementation ever created, implement it as short-circuiting conditional assignment. The Ruby Programming Language (co-written by matz himself), Programming Ruby and every other Ruby book ever written document it that way. The RubySpec testsuite tests it that way. Several discussions on StackOverflow and dozens of discussions on ruby-talk say so. Matz himself says so. –  Jörg W Mittag Jan 9 '11 at 11:38
    
The mandatory link to peter cooper's article: rubyinside.com/… –  Pablo Marambio Nov 4 '11 at 17:57
x = b || 2

It (?? in C#) is called the coalesce operator.

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2  
This won't work, for the reasons I outlined in my answer. Try setting b to false in the example. –  Jörg W Mittag Jun 17 '09 at 12:25

There is the coalesce gem, which is as close as you'll get.

nil || 5 # => 5
false || 5 # => 5 :(
false._? 5 # => false :)
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