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I'm having trouble with XOR doubly link list that has one pointer that must be contain NEXT and PREV pointers of nodes. I must xor address of pointers to do so, but I can't. I can allocate a memory address that XORed from two address but I can't get value to its address (this has segmentation fault error):

int main(){
    int* ptr = new int;
    int *ptr2 = new int;
    ptr2 = (int*)((unsigned long)ptr ^ (unsigned long)ptr2);
    *ptr2= 5;        /here has segmentation fault
    cout <<*ptr2;    
    return 0;

Why does this code have an error? How can I fix it?


thanks for your response but I cant transfer my idea I say my question in other words: normally we have a pointer that allocate the space of memory to it by "new" (in c++) keyword. this address that reserve for our pointer is determine by the os,correct? for example the address that pointer points to it is 0x8f3400b (this is where the memory is free that can reserve) I want to do that manually by addressing not with new keyword like this code:

int* ptr1 = (int*) 0x2355;
int* ptr2 = (int*) 0x23ff;

now i dont know the address 0x2355 and 0x23ff can be reserved or not ? then i decide that "new" these pointers and then XORing them, like below:

int* ptr1 = new int     //ptr1 is now manage by OS
int* ptr2 = new int     //like ptr1 ...

then I want XORing these pointers and make a new space to append a node that is the third node but i cant the addressing of it is correct but when i want to valuing it segmentation fault occured:

int* ptr1 = new int;    // for example the address is X
int* ptr2 = new int;    // for example the address is Y
int* ptr3 = (int*)((unsigned long)ptr1 ^ (unsigned long)ptr2);    //the final address is X^Y

how can i correct this? i dont know how use intptr_t and other please help me thanks

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15  
Dear god, why?? –  Chris Dec 29 '11 at 21:59
1  
What do you mean how can i manually allocated memory? –  Lion Dec 29 '11 at 22:03
7  
I assume you're attempting to do this? en.wikipedia.org/wiki/XOR_linked_list –  Greg Hewgill Dec 29 '11 at 22:08
5  
Do not laugh at it: there is such a thing as a XOR linked list, which does actually involve XORing pointers together. This guy is probably trying to work with such a list. I wish I could understand what he is trying to say, it could have been interesting. If only it was in English. –  Mike Nakis Dec 29 '11 at 22:10
2  
@GregHewgill: Even that article has <quote> This form of linked list may be inadvisable: </quote> –  Loki Astari Dec 29 '11 at 22:29

3 Answers 3

There's a really ugly trick that (if it works) lets you implement a doubly linked list with only one pointer per node. As you say, it requires xor'ing pointer values.

This Wikipedia article discusses it.

It's almost always a really really bad idea. The language does not guarantee that it will work at all.

If you must do this, cast the pointer values to uintptr_t or intptr_t (those types aren't even guaranteed to exist, but they probably will), declared in <stdint.h> or <cstdint>.

The result of xor'ing two pointer values will not be a valid pointer, and any attempt to use it as one will blow up in your face (if you're lucky). The only way to get a valid pointer back from such an operation is to reverse it, getting back the original pointer value. It's not surprising that your *ptr2 = 5; causes a segmentation fault.

If you're doing this as an exercise, just to see if you can get it to work, by all means go ahead and have fun.

If you think you have some practical requirement for this, you don't. If you want a doubly linked list, just have two pointers per node. Or, better yet, since you're programming in C++, use one of the standard library container classes.

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2  
"The language does not guarantee that it will work at all." can you elaborate on that? if pointers are reinterpret_cast then later you only have to do mathematics on integers? this should be safe and on embeded systems can save some memory –  marcinj Dec 29 '11 at 22:31
    
@luskan: If you store the xor'ed pointer value into a pointer object, it could be a trap representation, or the act of storing it could change its representation by normalizing it. If you only store the xor'ed value in an object of type uintptr_t or intptr_t, you're ok, as long as the only uintptr_t values you ever convert back to pointer type are identical to values derived by converting valid pointer values to [u]intptr_t. But I think the technique actually requires storing the xor'ed values as pointers. –  Keith Thompson Dec 29 '11 at 22:35
    
@KeithThompson: The technique does not require storing the values as pointers, it only tries to reach a compromise where less memory is used at the cost of more processing. The datum to be stored can be a pointer or an integral type (which might require more processing in some platforms --if data/addresses have to be stored in different registers) but the idea is that if you care more about the memory footprint you can reduce it a bit. –  David Rodríguez - dribeas Dec 30 '11 at 0:03

Never do that

If you absolutely want to cast pointers to some integer type, use intptr_t at least (provided by <cstdint> or <stdint.h> header file).

Why do you want to xor pointers? It is an ugly trick! It sort-of disable compiler optimizations.

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using turbo C version 3.0, we have implemented Doubly linked list with one pointer taking advantage of XOR. Pass your comments.... 'C' the Change Team of FINDMIND.

/* Code developed by 'C' The Change Team of FINDMIND
   Prabhakaran D, Vaishnavi N K, N N Priya, guided by
   Mr.Sridhar Arumugaswamy */

#include <stdio.h>
#include <conio.h>

struct Node {
   int data;
   unsigned int next;
}*start, *end, *newNode;

typedef struct Node NODE;

int menu(){
   int choice;
   clrscr();
   printf("1.Add\n2.Display\n3.Exit\n");
   scanf("%d", &choice );
   fflush(stdin);
   return choice;
}

void add() {
   clrscr();
   newNode = ( NODE * ) malloc ( sizeof( NODE ) );
   newNode -> next = 0;
   printf("Enter the data to enter :");
   scanf("%d", &(newNode -> data) );
   fflush(stdin);
   if( start == NULL ) {
      start = end = newNode;
   } else {
      newNode -> next = (unsigned int)end ^ 0;
      end -> next = ( end -> next ^ 0 ) ^ ( unsigned int)newNode;
      end = newNode;
   }
}

void display() {
   NODE *temp, *curr, *prev;
   prev = curr = temp = NULL;
   clrscr();
   for ( curr = start; curr != end ; temp = prev ,\
   prev = curr , curr = ( NODE * ) ( curr -> next ^ (unsigned int)temp ) )
      printf("%d\n", curr -> data );
   printf("%d\n", curr -> data );
   getch();
}

void main() {
   int choice;
   choice = menu();
   do {
      switch( choice ) {
     case 1: add();
         break;
     case 2: display();
         break;
     case 3: printf("\n\nBye!!!");
         break;
     default: printf("Bug dude!!!");
      }
      choice = menu();
   } while(choice != 3);
}
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