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I'm reading a book called "The Ruby Programming Language" for Ruby 1.8 and 1.9. The book says that if-operator has a lower precedence than an assignment-operator. If this is true then I don't understand how this expressions works:

x = 5 if false

If assignment-operator has a higher precedence then it should be executed before an if-operator. So, 5 should be assigned to x before if false is executed.

Am I misunderstanding precedence?

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2 Answers 2

up vote 1 down vote accepted

Higher precedence of assignment means that your expression evaluates to (x = 5) if false, and not to x = (5 if false). Note, that later is a perfectly valid expression too.

Whether each particular clause is executed is determined by language rules. E.g., in a ternary operator a ? b : c, only b or c will be executed, but not both.

edit
About the difference.

In x = (5 if false), assignment is processed first. But to complete it, we need left part of assignment, which is nil, because 5 if false evaluates to nil. So, the expression is equivalent of x = nil.

In (x = 5) if false, conditional operator is processed first. According to its rules, we first have to evaluate condition (false). Since it's false, there's nothing more to do and result of evaluation is nil.

Hope that's clear.

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+1 good examples. Think of precedence rules as a substitute for parentheses -- they tell you how things get grouped, and don't have anything to do with "before" or "after". –  David Gelhar Dec 15 '10 at 14:47
    
it was my understanding that "x = 5 if false" was in fact equivalent to "x = (5 if false)", but I think I got it wrong, what is the difference? –  tokland Dec 15 '10 at 15:19
    
@tokland I've updated the answer, let me know if it helps. As Nakilon noted, you can rewrite x = 5 if false as if (false) {x = 5}. –  Nikita Rybak Dec 15 '10 at 15:35
    
thanks, @nikita. Doing some tests about this I discovered something I didn't know, which may be trivial but looks kind of weird: (a, b not defined) if false; a = 1; b = 2; end; p([a, b].inspect) gives "[nil, nil]" –  tokland Dec 15 '10 at 15:41

Because <expr> if <condition> is not a one expression. It is a special syntaxic sugar of Ruby. It works just like:

if <condition>
    <expr>
end

where, obviously, <expr> must be evaluated only after <condition> because <condition> can be false.

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<condition> ? <expr> : nil would be more correct substitute. You can't really rewrite doIt(3 if condition) with normal if statement and that's not even very complicated example. –  Nikita Rybak Dec 15 '10 at 14:55
    
@Nikita Rybak, no, I can. p(if some_boolean ; 0 ; end) works well. P.S.: and I agree about ?: – it has two levels of operations and illustrates a if b well. –  Nakilon Dec 15 '10 at 15:33
    
Yeah, but that kinda breaks 'is not a one expression' part :) if some_boolean ; 0 ; end in your example is used as one expression. –  Nikita Rybak Dec 15 '10 at 15:48
    
@Nikita Rybak, if some_boolean ; 0 ; end is exactly what posted in answer. –  Nakilon Dec 15 '10 at 19:02

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