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I've bumped into a problem yesterday, which I eventually distilled into the following minimal example.

#include <iostream>
#include <functional>

int main()
{
    int i=0, j=0;
    std::cout
        << (&i == &j)
        << std::less<int *>()(&i, &j)
        << std::less<int *>()(&j, &i)
        << std::endl;
}

This particular program, when compiled using MSVC 9.0 with optimizations enabled, outputs 000. This implies that

  1. the pointers are not equal, and
  2. neither of the pointers is ordered before the other according to std::less, implying that the two pointers are equal according to the total order imposed by std::less.

Is this behavior correct? Is the total order of std::less not required to be consistend with equality operator?

Is the following program allowed to output 1?

#include <iostream>
#include <set>

int main()
{
    int i=0, j=0;
    std::set<int *> s;
    s.insert(&i);
    s.insert(&j);
    std::cout << s.size() << std::endl;
}
share|improve this question
    
For the first code, I get 001 with g++ 4.4.5. – Saurabh Manchanda Mar 16 '11 at 7:42

Seems as we have a standard breach! Panic!

Following 20.3.3/8 (C++03) :

For templates greater, less, greater_equal, and less_equal, the specializations for any pointer type yield a total order, even if the built-in operators <, >, <=, >= do not.

It seems a situation where eager optimizations lead to improper code...

Edit: C++0x also holds this one under 20.8.5/8

Edit 2: Curiously, as an answer to the second question:

Following 5.10/1 C++03:

Two pointers of the same type compare equal if and only if they are both null, both point to the same function, or both represent the same address

Something is wrong here... on many levels.

share|improve this answer
    
+1 Wow! I totally missed that part of the spec when I just looked over it. Thanks for catching that. – templatetypedef Mar 16 '11 at 7:45
    
+1, that stipulation was put in there exactly to allow pointers to be used as keys in sets and maps. It seems, however, that the requirement is underspecified. My interpretation of the standard is that the second program may in fact print 1. (Although msvc correctly outputs 2.) – avakar Mar 16 '11 at 7:56
    
@avakar, found also something on pointer equality... Can i and j represent the same address? – Kornel Kisielewicz Mar 16 '11 at 8:04
    
I just browsed through all words address in the standard, but I couldn't find that requirement which says that distinct objects may not have the same address (there are exceptions -- unions, base classes etc). I wonder where it ended up. – avakar Mar 16 '11 at 8:10
1  
I find this code interesting, if the variables are not optimized away (and they shouldn't as their addresses are being used) they are separate entities. @avakar, the second program should never print 1, you have pointers that refer to distinct objects, @Kornel Kisielewicz, @avakar: the two objects cannot have the same address if they are allowed to have different values. If they had the same address, then int *p = &i; *p = 10; would modify both ints, which is wrong. – David Rodríguez - dribeas Mar 16 '11 at 8:33

No, the result is obviously not correct.

However, MSVC is known not to follow the "unique address" rules to the letter. For example, it merges template functions that happens to generate identical code. Then those different functions will also have the same address.

I guess that you example would work better if you actually did something to i and j, other that taking their address.

share|improve this answer
    
It's not obvious to me. Can you cite the relevant paragraphs of the standard? – avakar Mar 16 '11 at 7:43
    
I dont have the standard here, but it is a basic property of different objects of the same type to have different addresses. That's how you tell them apart. – Bo Persson Mar 16 '11 at 7:47
    
For the record, yes, if I use the variables, the results will change. Note that msvc takes care to ensure that &i != &j (which is required by the standard). However, regarding std::less, the standard only requires that the functor impose a total order and is consistent with operator < (whose results are unspecified in this case). And of course an ordering in which all elements are equivalent is a total order. – avakar Mar 16 '11 at 7:48
    
Bo, I get that different objects must have different addresses (save for a few exceptions), but that's actually true here (&i != &j). – avakar Mar 16 '11 at 7:49

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