I wrote this code:

int* p = new int(7);
std::cout << p << std::endl;    //output: 0096FAB4
std::cout << &p << std::endl;    //output: 0096FA90

Why is the output diferent diferent?

closed as unclear what you're asking by user463035818, SergeyA, Sebastian Lenartowicz, demonplus, diiN__________ Nov 18 '16 at 8:41

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  • &p is the address of p, not a reference to a pointer. – Mat Nov 17 '16 at 19:23
  • The value of p is different than the address of p. – Fred Larson Nov 17 '16 at 19:24
  • Because first cout <<p prints content of P and second cout << &p prints address of p . – farhangdon Nov 17 '16 at 19:34
  • The same reason you get a different result if p is declared as int. – Barmar Nov 17 '16 at 19:35
  • Ok. That means that a pointer holds an address but also have a adress of his own, not one and the same thing? – Upgrade Nov 17 '16 at 19:46
up vote -1 down vote accepted

Each object in C++ is represented by the address of the physical location of this object. If you create an address type int *p = new int(7); so when you call std::cout << p << std::endl; it will output the address of the cell in memory, where the address of number 7 is located. And when you call std::cout << &p << std::endl; so it will output the physical address of cell in memory, where the number 7 is located.

To conclude:

  • //output: 0096FAB4 is the address of address of the integer 7
  • //output: 0096FA90 is the physical address of the integer 7

Example:

  • If we look in the memory by the address 0096FAB4 we will see 0096FA90
  • If we look in the memory by the address 0096FA90 we will see 00000007
  • Absolutely and completely wrong. There is no place in memory where number 7 is located. – SergeyA Nov 17 '16 at 20:21
  • @SergeyA : can you prove your point of view or give your explanation? – olllejik Nov 17 '16 at 21:31

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