Given a pointer to int, how can I obtain the actual int?

I don't know if this is possible or not, but can someone please advise me?

  • 3
    You said you’re not sure if that’s possible. Consider: If that were not possible, what would be the use of a pointer? – Konrad Rudolph Apr 23 '10 at 16:36
  • 1
    ill admit it was a daft question – paultop6 Apr 25 '10 at 9:03
up vote 39 down vote accepted

Use the * on pointers to get the variable pointed (dereferencing).

int val = 42;
int* pVal = &val;

int k = *pVal; // k == 42

If your pointer points to an array, then dereferencing will give you the first element of the array.

If you want the "value" of the pointer, that is the actual memory address the pointer contains, then cast it (but it's generally not a good idea) :

int pValValue = reinterpret_cast<int>( pVal );
  • Safer example than jimka's – Toji Apr 23 '10 at 14:59
  • Not sure if static_cast is right for the last sentence, changed to reinterpret_cast ... – Klaim Apr 23 '10 at 15:02
  • 1
    Is int a good type to cast a pointer to? Wouldn't #include <cstdint> and uintptr_t be more portable? – ndim Apr 23 '10 at 15:07

If you need to get the value pointed-to by the pointer, then that's not conversion. You simply dereference the pointer and pull out the data:

int* p = get_int_ptr();
int val = *p;

But if you really need to convert the pointer to an int, then you need to cast. If you think this is what you want, think again. It's probably not. If you wrote code that requires this construct, then you need to think about a redesign, because this is patently unsafe. Nevertheless:

int* p = get_int_ptr();
int val = reinterpret_cast<int>(p);
  • +1 for explicitly mentioning no conversion is happening. – Bryan Oakley Apr 23 '10 at 15:12

I'm not 100% sure if I understand what you want:

int a=5;         // a holds 5
int* ptr_a = &a; // pointing to variable a (that is holding 5)
int b = *ptr_a;  // means: declare an int b and set b's 
                 // value to the value that is held by the cell ptr_a points to
int ptr_v = (int)ptr_a; // means: take the contents of ptr_a (i.e. an adress) and
                        // interpret it as an integer

Hope this helps.

  • +1 for mentioning cast to int – Vlad Apr 23 '10 at 15:05
  • This is C++, you should avoid C-style casts. – Seth Johnson Apr 23 '10 at 15:09
  • Why? C style cast are part of the language. Why exactly should one avoid them? – rxantos Feb 4 '16 at 3:13
  • because keep unified style is good practice – merito Dec 8 '16 at 5:46

use the dereference operator * e.g

void do_something(int *j) {
    int k = *j; //assign the value j is pointing to , to k
    ...
}
  • This does not answer the question. – Danvil Apr 23 '10 at 15:04
  • 3
    The int * j has been converted to int k. That seems to answer the question. – CiscoIPPhone Apr 23 '10 at 15:08

You should differentiate strictly what you want: cast or dereference?

  int x = 5;
  int* p = &x;    // pointer points to a location.
  int a = *p;     // dereference, a == 5
  int b = (int)p; //cast, b == ...some big number, which is the memory location where x is stored.

You can still assign int directly to a pointer, just don't dereference it unless you really know what you're doing.

  int* p = (int*) 5;
  int a = *p;      // crash/segfault, you are not authorized to read that mem location.
  int b = (int)p;  // now b==5

You can do without the explicit casts (int), (int*), but you will most likely get compiler warnings.

Use * to dereference the pointer:

int* pointer = ...//initialize the pointer with a valid address
int value = *pointer; //either read the value at that address
*pointer = value;//or write the new value
  • This does not answer the question. – Danvil Apr 23 '10 at 15:05
  • Why the d/v on this response? – John Dibling Apr 23 '10 at 15:06
  • Yeap, I don't get that either. – sharptooth Apr 23 '10 at 15:08
  • @Danvil: How so? – GManNickG Apr 23 '10 at 17:00
  • Converting a pointer is not the same as dereferencing. – Danvil Apr 23 '10 at 18:16

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