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I am trying to write a swap function using pointer(specially a void pointer)by-reference, but my code is not working. Here is my code:

void swap(void *p1,void *p2) 
{
    int temp;   
    temp=*((int*)p2);
    p2=p1; 
    p1=&temp;
}

int main() 
{
    int i=4;
    int j=5; 
    cout<<i<<j<<endl;
    swap(&i,&j); 
    cout<<i<<j<<endl;
    return 0;
}

Where am I going wrong?

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3  
This is broken in a lot of ways, but the most important issue (IMO) is assigning p1,p2 with values, while you actually need to assign the address they address to. This is not the only issue, just the most important IMO. –  amit Dec 20 '12 at 15:43
    
Do they need to pass the pointers by reference ? –  andre Dec 20 '12 at 15:47
    
Since you are swaping ints, you needn't pass the function parameters as voids. –  Rontogiannis Aristofanis Dec 20 '12 at 16:17

5 Answers 5

up vote 6 down vote accepted

The code does not work because you are not dereferencing your pointers on assignments. It should be

*((int*)p2)=*((int*)p1);
*((int*)p1)=temp;

Note that you are making an assumption that void* points to an int, which is obviously not always the case. Essentially, you might as well replace void* with int*, and get rid of the casts.

A more general case of the API should look like this:

void swap(void *p1,void *p2, size_t sz)

Internally, the API should allocate a buffer of size sz, make a memcpy into it, and then make a swap, again using memcpy.

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1  
This is assuming the types are trivially copyable-. –  R. Martinho Fernandes Dec 20 '12 at 16:05
1  
@R.MartinhoFernandes Right -- essentially, this amounts to a trivial swap of memory contents in non-overlapping regions. –  dasblinkenlight Dec 20 '12 at 16:07

Try this:

#include <iostream>
using namespace std;

void swap( void *a, void *b ) {
  int tmp = *( ( int* )a );
  *( ( int* )a ) = *( ( int* )b );
  *( ( int* )b ) = tmp;
}

int main() {
  int a, b;
  cin >> a >> b;
  swap( &a, &b );
  cout << a << " " << b;
  return 0;
}

Before you dereference the pointers a and b, you must first convert them to int*. After that, you just perform the swapping.

Note: You needn't pass void* as parameter. If you pass int*s, it will be also correct (and more readable).

Note[2]: Since you are programming in C++ you could use instead of pointers references.

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In the body of the function, you're swapping the values of p1 and p2; you don't want to do that. You want to swap the values of what p1 and p2 point to:

void swap(int *p1, int *p2)
{
  int tmp = *p1;
  *p1 = *p2;
  *p2 = tmp;
}

I know you wanted to use void * for your arguments. Don't. You'd have to cast them to the appropriate target type to perform the assignments anyway:

int tmp = *(int *) p1;
*(int *) p1 = *(int *) p2;
*(int *) p2 = tmp;

Yuck. You're not saving yourself anything by making the arguments void *.

Since you're obviously writing C++, you can make the function generic by using a template:

template<typename T>
void swap(T *p1, T *p2)
{
  T tmp = *p1;
  *p1 = *p2;
  *p2 = tmp;
}

Even better, use a template and references, so you're not dealing with pointers at all:

template<typename T>
void swap(T &p1, T &p2)
{
  T tmp = p1;
  p1 = p2;
  p2 = tmp;
}
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Wait a minute - haven't I seen that last function somewhere? –  Bo Persson Dec 20 '12 at 16:31

You are modifying copies of pointers, not their content. You should do something like this (just showing you the idea, this would not work without casts and it would still not be a good idea with):

temp = *p2
*p2 = *p1;
*p1 = temp;

You are going to need pointers to pointers if you want to swap your pointers:

void swap(void** ptr1, void** ptr2);

or references to pointers:

void swap(void*& ptr1, void*& ptr2);

Or since you're obviously using C++, you could use references and templates to swap any type of data. But are you sure you understood all the basics of the language?

Good luck

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using memory functions

void swap (void *vp1, void *vp2, const int size) {
char *buffer = (char *)malloc(sizeof(char)*size);
memcpy(buffer, vp1, size);
memcpy(vp1, vp2, size);
memcpy(vp2, buffer, size);
free(buffer);
}

int main()
{
int a = 10, b = 20;
printf("%d %d"a,b);
swap(&a, &b, sizeof(int));
printf("%d %d"a,b);

}

Output is:

10 , 20
20 , 10

if we dont know data type then we use void.

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Actually, in C++ we use template <typename T> when we don't know the type yet. The compiler will know, use the real type T and then check for errors. That's why we have template <typename T> std::swap(T&, T&) –  MSalters Dec 20 '12 at 16:56

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