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If you hand any pointer to a C++ stream, it's address will be put into the output. (Obviously unless there's a more specific output handler.)

void* px = NULL;
const char* ps = "Test";
FooType* pf = ...;
stringstream s;
s << ps << " " << px << " " << pf "\n";
s.str(); // yields, for example: "Test 0 AF120089"

This can be a problem, if the user erroneously was trying to actually print the value of FooType.

And it is also a problem when mixing wide char and narrow char, because instead of a compiler error, you'll get the address printed:

const wchar_t* str = L"Test! (Wide)";
// ...
cout << str << "\n"; // Ooops! Prints address of str.

So I was wondering - since I very rarely want to output a pointer value, would it be possible to disable formatting of pointer values, so that inserting a pointer value into a stream would result in a compiler error? (Outputting of pointer values could then be easily achieved by using a wrapper type or casting the pointer values to size_t or somesuch.)

Edit: In light of Neil's answer (disabling void* output by providing my own void* output operator) I would like to add that it would be nice if this also worked for tools such as Boost.Format, that make implicit use of the output operator defined in the std namespace ...

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4 Answers

up vote 3 down vote accepted

This gives a compilation error in g++ if the second and/or third output to cout is uncommented:

#include <iostream>
using namespace std;

ostream & operator << ( const ostream &, void * ) {
}


int main() {
    int n = 0;
    cout << 0;
//  cout << &n;
//  cout << (void *) 0;
}
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Hmmm ... this looks OK. The "normal" void* output operator is defined in namespace std, no? So if there's code that uses the one from std, this won't help ... ? –  Martin Ba May 23 '11 at 8:44
    
Kinda works, but formally you are not allowed to overload operators without at least one user defined parameter type. –  Bo Persson May 23 '11 at 9:27
1  
@Bo And what do you think ostream is? –  nbt May 23 '11 at 9:29
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A global template version of operator<< seems to work:

#include <iostream>
#include <boost/static_assert.hpp>

template<typename T>
std::ostream & operator<<(std::ostream & stream, T* value) {
    BOOST_STATIC_ASSERT(false);
}

int main() {
    int foo = 5;
    int * bar = &foo;

    std::cout << bar << std::endl;
}

Edit: This solution does not work as intended, as the template also captures string literals. You should prefer @Neil's solution.

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Cool, looks like we came up with pretty much the same answer! –  xDD May 23 '11 at 8:03
    
Wouldn't this be restricted to code in the global namespace? It looks like code in other namespaces would find ::std::operator<< (due to ADL on std::cout) but not ::operator<< –  MSalters May 23 '11 at 8:21
    
@MSalters: On ideone it works even if the call comes from another namespace. But intuitively I would have agreed with you. –  Björn Pollex May 23 '11 at 8:25
    
Weird: the associated namespace of T* is that of T; int doesn't have an associated namespace (fundamental type) so int* hasn't got one either. We're obviously overlooking something. –  MSalters May 23 '11 at 8:33
    
Ah, forgot: the global namespace is the outer namespace of every namespace. And outer namespaces are searched when no match is found in inner namespaces (which means that this operator<< is hidden by any operator<< in an inner namespace - but the example has none) –  MSalters May 23 '11 at 8:39
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Yes, you can cause a compilation error by providing your own overload of ostream's operator <<.

#include <iostream>

template <typename T>
std::ostream& operator << (std::ostream& s, T* p)
{
  char ASSERT_FAILED_CANNOT_OUTPUT_POINTER[sizeof(p) - sizeof(p)];
}

int main()
{
   int x;
   int* p = &x;
   cout << p;
}
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As I mentioned in an edit of my own answer, this does not work as intended, because it also prevents you from printing string literals. –  Björn Pollex May 23 '11 at 8:10
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Keep the operator << unimplemented for pointers.

template<typename T>
std::ostream& operator<<(std::ostream &stream, T* value);

Edit: Or better to put an invalid typename to get compiler error.

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That would give a linker error, not a compiler one, wouldn't it? –  nbt May 23 '11 at 8:07
    
@Neil, correct. I will update it. –  iammilind May 23 '11 at 8:11
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