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#include<stdio.h>

#define int int*

main(){
    int *p,q;
    p=(int *)5;
    q=10;
    printf("%d",q+p);
}

my question is that in line p=(int *)5,and q=10 how its working internally exactly because p and q are both pointer types, how is it possible that we can assign an integer value to pointer variable q?.One more thing how this type casting p=(int*)5 working here?

By using this formula we can answer

new address = old address+number*sizeof data type to which pointer is pointing

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8  
#define int int* - Evil mastermind:P –  Petar Minchev Aug 24 '12 at 11:05
    
is it p = (int) 5 or p = (int *) 5 ? –  Michel Keijzers Aug 24 '12 at 11:05
4  
Because of the #define, this is just nonsense code with no use in real world applications. There is no need to dwell on what it does. –  Lundin Aug 24 '12 at 11:12
    
where did you get this code? –  UmNyobe Aug 24 '12 at 11:13
    
@PetarMinchev Do you know the quote "never attribute to malice.." ? –  cnicutar Aug 24 '12 at 11:14

4 Answers 4

up vote 1 down vote accepted

#define int int* will replace int *p, q as int* *p, q. So Here p is double pointer to int and q is of type int.

For example consider the below program of your same logic in char

#include<stdio.h>  
#define char char*  
main()
{     
    char *p,q;     
    printf("%d, %d\n", sizeof(p), sizeof(q));
} 

Output is

4, 1

p=(int *)5; - This statement also will be replaced like p=(int* *)5; by preporcessor. So its not throwing any warning.

so now printf("%d",q+p); will gives you 45 in case of 32 bit machine or 85 incase of 64 bit machine.

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p=(int *)5;

Variable p points on address 00000005. If to try to change value to this address, It can lead to damage of other data and an unpredictable program runtime. For example

**p=10 

causes exception

Unhandled exception : Access violation writing location 0x00000005.

Try printf("%p",p) before next operation to see initial address of poiner p.

printf("%d",q+p);

Here magic of address arithmetics starts.. You can add address of pointer q to another pointer. So the pointer moves on new position in address space. Try this:

p = p+ q
printf("%p",p);
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q is in fact not a pointer; the line

int *p, q;

defines a point p and a regular int named q. If you want two pointers, write

int *p, *q;

As for the casting p=(int*)5, it works because a C compiler allows you to cast whatever you want into whatever you want. Coincidentally, on some systems an int is internally the same as an int*, which is essentially a number of a cell in memory, together with the fact that an int is in that memory cell.

EDIT

I did not, in fact, notice the evil #define, but I think this answer still has some useful information.

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1  
did you read #define int int* ?? –  UmNyobe Aug 24 '12 at 11:11
1  
@UmNyobe It's the same thing just that p is an int **. q is still an int. –  cnicutar Aug 24 '12 at 11:13
    
oh yeah you are right:P. but i dont think this code intended int *p, *q; –  UmNyobe Aug 24 '12 at 11:15

Pointers as indeed all data in a computer are, regardless of their logical meaning, physically implemented as numbers.

In the case of pointers, typically the numbers are virtual addresses; as such, when you manually assign a value to a pointer, you are setting a virtual address.

As it happens virtual addresses typically range from 0 to the address bus width of the CPU, so you get away with it - except of course that address has not been allocated and acccess it will cause an exception.

Sometimes however (typiclally embedded systems without virtual memory) the addresses are physical, not virtual, and some hardware devices (clocks, registers, etc) have known physical addresses, which are hand assigned to pointers and then the pointers are read from / written to.

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