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I think that this is valid code in MSVC:

MyClass* pMc = &MyClass();

However, when I try to do the same thing with primitive data-types I'm getting a compilation error.

int* pInt = &int();


error C2101: '&' on constant

I have 3 questions:

  1. Why does int() give me a constant?
  2. Why does error C2101 exists in the first place? what's wrong with getting the address of a constant?
  3. Is there a way I could declare int (or other primitive) references that point to temporary objects? (that is, without creating a local variable first)

About the 3rd question:

I do not want to do something like this:

int i = int();
int* pInt = &i;

If I'm working with references to local objects (the reasons why are irrelevant), I don't want to have to declare each and every object twice. It's tedious, annoying and the names would be really confusing.

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You do realize int() is potentially the same as 0? So your statement is effectively equivalent to &0, which doesn't make much sense. – 0x499602D2 Feb 12 '13 at 1:39
Also &MyClass() is not a completely valid code, it shouldn't compile. MSVC++ stupidly allows it. – Seth Carnegie Feb 12 '13 at 1:39
Non-const references to temporaries are disallowed by the standard, though MSVC has an extension to circumvent that. Best not to try to hack together a solution with undefined behaviour. – chris Feb 12 '13 at 1:39
@David Did not realize it's exactly the same as 0. why doesn't it give me an object?. Seth Carnegie Chris explained why it did compile. Thank you all. – MasterMastic Feb 12 '13 at 1:41
completely valid code Oh? – Lightness Races in Orbit Feb 12 '13 at 1:42

2 Answers 2

up vote 4 down vote accepted

I don't know the answer to 1 (I think the error is wrong, because I'm pretty sure int() is not a constant), but

(2) Taking the address of a temporary is illegal. Your code shouldn't compile but it does because of a nonstandard MSVC++ extension.

(3) Yes, use rvalue-references or const lvalue-references:

const int& tmp = int();
int&& tmp = int(); // same as former but isn't const

The lifetime of the temporary will be prolonged until the reference goes out of scope.

However, I hope you have a good reason for using one of the two above rather than

int tmp;
share|improve this answer
The fact that it's an extension explained everything. And as I mentioned in the comments, I don't have any reason, I'm asking about the language. Thank you very much! – MasterMastic Feb 12 '13 at 1:52

The line of code compiles in one compiler in a way that violates the standard, but dereferencing that pointer is undefined behavior on the very next line. So be careful.

I think this might work:

template<typename T>
T* make_tmp_ptr(T&&t) {
   return &t;

Then call make_tmp_ptr(int()) and you will get a pointer to a temporary int that will last until the end of the expression.

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