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I have a struct str *s;

Let var be a variable in s. Is &s->var equal to &(s->var)?

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3 Answers 3

Behavior-wise, yes they are equivalent since the member access -> operator has a higher precedence than the address-of & operator.

Readibility-wise, the second one &(s->var) is much more readable than &s->var and should be preferred over the first form. With the second form, &(s->var), you won't have to second-guess what it's actually doing as you know the expression in the parentheses are always evaluated first. When in doubt, use parentheses.

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+1 If you have to ask about operator precedence, parenthesize to clarify what is meant. That's what I always tell new developers. –  Lou Apr 24 '11 at 2:56

Yes.

(-> is higher precedence than &. See http://cppreference.com/wiki/language/operator_precedence)

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Although the link is for C++ operator precedence, this answer agrees with those operators such as & (address-of) and -> (member selection) that are common to C. A C operator precedence table is in these class notes and may also be inferred from the Wikipedia article that puts them side-by-side. –  hardmath Apr 24 '11 at 1:14

Yes, because the pointer dereference operator -> has higher precedence than the address operator &.

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