3

Is this:

*(1 + &foo)

the same as this?

*(&foo + 1)

'+' and '&' have the same precedence and they are evaluated right-to-left. However you can't interpret the second case like this:

*(&(foo + 1))

...because you can only use '&' with an l-value (it won't even compile if you write it like that). So will it be garbage? Or will it safely figure out what you meant?

  • 4
    The binary + (which you're using here) and the address operator & do not have the same precedence. – Carl Norum Jan 27 '11 at 0:04
  • 2
    Also, the order of evaluation is unspecified. The binary operators group (associate) left-to-right, but again that doesn't matter here since all the operators are different precedence. It sounds like you were looking at the unary operators. – Potatoswatter Jan 27 '11 at 0:40
9

Yes, they are equivalent (the third one obviously is not).

The unary & operator has higher precedence than the binary + operator (as all unary operators do), so &foo + 1 parses as (&foo) + 1. What you are thinking of when you say they have the same precedence is the unary + operator (which is a different operator) has the same precedence as unary &.

  • The binary & operator has a much lower precedence than +. – Jay Conrod Jan 27 '11 at 0:03
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    I think he/she is thinking of the unary + operator, which does have the same precedence as unary &. – Oliver Charlesworth Jan 27 '11 at 0:04
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    In C, they're the same because + is commutative. In C++, you can define your own operators and semantic interpretation becomes much more complex. This is one of the reasons why C++ is many orders of magnitude more evil than C. – Donal Fellows Jan 27 '11 at 0:26
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    @RBerteig: As @jk points out, there may well be good reasons for not making them the same, and there's certainly no guarantee of it. This is very different from C, an area where the two languages have diverged quite strongly. (I prefer the C approach, but I recognize that this is an area where programmers disagree.) – Donal Fellows Jan 27 '11 at 9:07
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1

Yes, they are the same. Note that binary + has a lower precedence than &. You're probably thinking of unary +.

  • 4
    pedobear avatar? – Anycorn Jan 27 '11 at 0:21
  • @aaa It's the wrong colour - that guy's obviously a trustworthy babysitter. – Zooba Jan 27 '11 at 20:34
1

As shown on the Wikipedia page, & and + only have the same precedence when interpreting + as a unary operator -- for example, as in a - +b.

When interpreting + as a binary operator, it has a lower precedence than &, and so the second case will be interpreted as *((&foo) + 1) rather than *(&(foo + 1)).

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