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Some information source on operator precedence like this says that unary operators like !, ~, +, - have higher precedence than assignment =. However, the following expressions are possible:

!a = true # => false (with warning)
a         # => true

~a = 1    # => -2
a         # => 1

+a = 1    # => 1
a         # => 1

-a = 1    # => -1
a         # => 1

Considering these results, the only possible explanation I can think of is that these unary operator have lower precedence than the assignment. If that is the case, then it would mean that the information I mentioned above is wrong. Which is correct? Is there a different explanation?

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Interesting, but this behavior makes perfect sense, as applying a unary operator to an lvalue before the assignment would have no effect. Docs should address this, of course. – Cary Swoveland Feb 23 '14 at 20:03
@CarySwoveland You are right.. – Arup Rakshit Feb 23 '14 at 20:13
Just to be clear, ~a = 1 appears to behave like ~(a = 1). – David Grayson Feb 23 '14 at 20:25

1 Answer 1

up vote 2 down vote accepted

My programming ruby book (2nd edition) also lists unary operators as having higher precedence than assignment.

The unary operator IS being given highest precedence. The reason the line is parsed as ~ (a = 1) is because decomposing the line into valid syntax is of higher precedence than anything else, including using the simple variable 'a' as the expression the unary operator operates on.

If the ruby parser could have made something valid of the rest of the line, it would have used (~ a), but there is no valid rule than matches = something, only lvalue '=' rvalue.

You can regard "valid syntax" as the top priority, then simple values, constant and variable names and then the standard operators under that.

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I think you are right. Actually, I was also thinking along the same line. But then, when would the statement become non-trivial that unary operators have higher precedence than assignment? Is there an example where two precedence interpretations are valid, and this rule comes into play? – sawa Feb 24 '14 at 18:35
I can't think of a situation where there would be ambiguity between assignment and any unary operator because a. unary operators produce expressions, b. unary operators operate on single expressions to their right, c. expressions can't be used as the left of assignments and d. the only expression used in an assignment is a single expression on the right. Binary operators are different, for example a = 3 and b = 4 produce different results to a = 3 && b = 4 (because and is lower and && is higher precedence than assignment). – iheggie Feb 25 '14 at 6:25
I am curious if someone can invent a counter example - my gut says it may be a case of it is easier to explain why I think I am right than realise I'm wrong ;) – iheggie Feb 25 '14 at 6:33
I found a useful ruby parser gem: - it will output how the expression is parsed. – iheggie Feb 25 '14 at 12:34

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