Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.
  int x = 4;
  int* q = &x;                 // Is it always equivalent to int *q = &x;  ?
  cout << "q = " << q << endl; // output: q = 0xbfdded70
  int i = *q;                  // A
  int j = *(int*)q;            // B, when is this necessary?
  cout << "i = " << i << endl; // output: i = 4
  cout << "j = " << j << endl; // output: j = 4

My question is what does lines A and B do, and why the outputs are both 4?

share|improve this question

7 Answers 7

up vote 2 down vote accepted
  int x = 4;

x is 4

  int* q = &x;

q is the memory location of x (which holds 4)

  cout << "q = " << q << endl; // output: q = 0xbfdded70

There's your memory location.

  int i = *q; // A

i is the value at memory location q

  int j = *(int*)q; // B

j is the value at memory location q. q is being cast to an int pointer, but that's what it already is.

share|improve this answer
    
Is *(int*)q; necessary in some circumstances? I can't think of one, but is wondering if there is such possibility. –  qazwsx Dec 30 '11 at 16:45
    
(int*)q means "whatever q happens to be, I want to treat it like a pointer to an int". It's useful when you want to do tricks with the bit layout of data. Also, programs in the C language will often "hide" what a pointer is actually pointing to by casting it to (void*). –  Drew Dormann Dec 30 '11 at 17:26
    
So in simplest terms, (int*)q would be necessary if q were not an int * already. –  Drew Dormann Dec 30 '11 at 17:30

It is a basic usage of pointers, in A you dereference pointer (access the variable to which a pointer points)":

int i = *q; // A

while B is doing exactly the same but it additionally casts pointer to the same type. You could write it like that:

int j = *q; // B

there is no need for (int*)

share|improve this answer
int i = *q; // A

Dereferences a pointer to get the pointed value

int j = *(int*)q; // B

type casts the pointer to an int * and then dereferences it.

Both are same because the pointer is already pointing to an int. So typecasting to int * in second case is not needed at all.

Further derefenecing yields the pointed integer variable value in both cases.

share|improve this answer

Lines A and B are equivelent as q is already an int* and therefor (int*)q equals q. int i = *q; yelds that i becomes the value of the integer pointed to by q. If you want to make i to be equal to the adress itself remove the asterisk.

share|improve this answer

A: Dereference - takes a pointer to a value (variable or object) and returns the value

B: Cast to int* and than dereference

The result is the same because the pointer is already to int. That's it.

share|improve this answer
    
+1 for pointing out Fermilab's no-nonsense reference manual. –  qazwsx Dec 30 '11 at 16:48

Line A takes the value that q points to and assigns it to i. Line b casts q to the type int* (which is q's type already, so that cast is entirely redundant/pointless), then takes the value that q points to and assigns it to j.

Both give you 4 because that's the value that q points to.

share|improve this answer

Line A de-reference pointer q typed as int *, i.e. a pointer points to an int value.

Line B cast q as (int *) before de-reference, so line B is the same as int j = *q;.

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.