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How to simulate printf's %p format when using std::cout?

I try to print out the array element memory addresses in C and C++.

In C:

char array[10];
int i;
for(i =0; i<10;i++){
    printf(" %p \n", &array[i]);
}

I got the memory addresses: 0xbfbe3312, 0xbfbe3313, 0xbfbe3314, ....

But if I try to make the same in C++:

char array[10];
for(int i =0; i<10;i++){
    std::cout<<&array[i]<<std::endl;
}

I got this output:

P��
��

k�



Why is it different? Should I use the cout differently in C++ to print out the memory addresses? How should I print out the memory addresses?

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marked as duplicate by Xeo, Ben Voigt, Bo Persson, Gilles, bmargulies Jun 6 '11 at 18:44

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

1  
In C, the "%p" expects a value of type void*. You're passing a value of type char* and that invokes Undefined Behaviour. So, because printf acceps a variable number of arguments and the compiler can't convert values by itself, cast the argument: printf(" %p \n", (void*)&array[i]); –  pmg Jun 4 '11 at 22:52

4 Answers 4

Cast the address to void* before printing, in C++ the operator<< of ostream is overloaded for (const) char* so that it thinks it's a c-style string:

char array[10];
for(int i =0; i<10;i++){
    std::cout << static_cast<void*>(&array[i]) << std::endl;
}

Also see this answer of mine.

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The type of &array[i] is char*, and so cout<< thinks that you want to print a string.

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std::cout does not necessarily treat pointers as pointers. A char* pointer could be a string, for instance. Taking the address of an element in a char array basically outputs the substring from that point.

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You must cast &array[i] to void*

for(int i =0; i<10;i++){
    std::cout<<(void*)&array[i]<<std::endl;
}

This is because c++ streams work differently for different types. For example when you pass char* to it, your data is treated as a c-string - thus it is printed as a list of characters.

You must explicitly tell C++ that you want to print an address by casting.

By the way (void*) is not the best way to do that as you should avoid C-like casting. Always use c++-style casting (static_cast, dynamic_cast, reinterpret_cast). In this case static_cast would do the job

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