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void main
{ 
 int a,*b;

 a=10;

 a=&b;

 printf("value of a %d",a);

 printf("value of b %d",b);

}

How are pointer variables allocated in memory? Does the memory allocation depend on datatype?

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3  
By the way, printf("%d", b) is undefined behavior. It will probably print something sensible if int and int* just so happen to have the same size, but that's not guaranteed and you should use the correct format for what you're printing. In this case, printf("%p", (void*)b). –  Steve Jessop May 18 '11 at 11:06
    
@Steve: also, even if they have the same size, pointers may be passed in registers and ints through the stack, and the result will not be sensible anyway :) –  pmg May 18 '11 at 11:46
    
@pmg: Agreed. But probably varargs are all passed on the stack and hence probably something sensible. Passing the first few varargs (of certain types) in registers, until you run out of registers and have to pass the rest on the stack anyway, is a fantastic idea right up to the point where you have to implement va_copy, and code inside varargs functions where you want to use registers but haven't haven't read the varargs yet, and you realise that it's going to be effort :-) –  Steve Jessop May 18 '11 at 12:53
    
Ah, getting less probable by the month, then, as more people move to 64bit. Not that int and int* are the same size there anyway, so at least you'd expect nonsense even in the best possible case. –  Steve Jessop May 18 '11 at 15:53

4 Answers 4

They are allocated in the same way that (for example) integers are. And the type of the thing they point to has no effect on that.

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how many bytes will be allocated –  krishna May 18 '11 at 10:42
1  
@krishna: sizeof(int*). –  larsmans May 18 '11 at 10:44

This particular pointer is allocated on the stack, because it is an automatic variable. This is no different from an "ordinary", non-pointer variable. If by "the memory allocation" you mean the size of the allocation, then yes, the size of a pointer may depend on the pointee type.

You can find out the size of a pointer with sizeof. In this case, b takes up sizeof(int *) bytes, which is platform-dependent (typically 4 or 8 bytes on modern machines).

You could allocate a pointer on the freestore (heap) if you wanted:

int **pp = malloc(sizeof(int *));  // allocates space for a single pointer

(Note, btw., that your example program is erroneous: a=&b should be b=&a.)

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oh..i'm wrong in this ..thanks –  krishna May 18 '11 at 10:44

Automatic allocation ends up on the stack. Dynamic allocation ends up on the heap. No matter what data type it is.

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how many bytes will be allocated for pointer –  krishna May 18 '11 at 10:43
    
static allocation ends up in the static region. You're confusing static and automatic. –  larsmans May 18 '11 at 10:45
    
@larsmans: correct. thanks for the help :-) –  m__ May 18 '11 at 11:04
    
So fix the incorrect text in your answer... –  R.. May 18 '11 at 13:14

pointer is itself a variable which points to other variable. It always contain the address of whatever it is pointing to. As address is of same size, all pointers have same size, no matter what they point to.

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