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I apologize as this is so simple, I was working with my own XOR swap method and wanted for the heck of it compare the speed difference between reference and pointer use (do not spoil it for me!)

My XOR ptr function is as follows:

 void xorSwapPtr (int *x, int *y) {
     if (x != y && x && y) {
         *x ^= *y;
         *y ^= *x;
         *x ^= *y;
     }
 }

I copied this to a xorSwapRef function which just uses refs (int &x, etc.) anywho:

I use it like this but I get the error error: invalid conversion from ‘int’ to ‘int*’

int i,x,y = 0;
for(i=0;i<=200000;i++) {
    x = rand();
    y = rand(); 
    xorSwapPtr(x, y); //error here of course
}

How would I use the pointer function with ints, like the ref one? I just wonder because the example xor function I found in a book uses pointers, hence my wanting to test.

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You should probably get a book. –  GManNickG Aug 21 '10 at 21:31
    
would it be also right to say that only one overload probably should be left in the code and if both are left for whatever reasons, one should be implemented in terms of other? –  Chubsdad Aug 22 '10 at 1:46

3 Answers 3

up vote 11 down vote accepted

x and y are ints; xorSwapPtr takes two int*s, so you need to pass the addresses of x and y, not x and y themselves:

xorSwapPtr(&x, &y);
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1  
Is that how you pass as reference as well? because my xor swap function with references is &x and &y to, so are they the same? –  John Aug 21 '10 at 21:02
1  
@John: No; if you have a function that takes two int by reference (e.g., void xorSwapRef(int& a, int& b)), then you pass the variables themselves to that function (xorSwapRef(x, y)). This is called pass by reference. –  James McNellis Aug 21 '10 at 21:06

This bit

xorSwapPtr(x, y);

Needs to be

xorSwapPtr(&x, &y);

Hope this helps

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The syntax can be confusing... When you want to pass a pointer to something, you usually take the address of it, like &something. However, when declaring a function signature, and you want to define one of the parameters to be a reference to a Type called somethingElse, then you would use Type &somethingElse. Both of these use the & token, but they mean 2 different things (different semantics for the token &, just like * could mean multiply, define a pointer to, or dereference a pointer, each depending upon its grammatical place in the code).

void foo(int *x, int *y); // declare a function that takes two pointers to int
void bar(int &x, int &y); // declare a function that takes two references to int

now let's use them...

int i, j;
foo(&i, &j);  // pass in the address of i and the address of j
bar(i, j);  // pass in a reference to i and a reference to j
// can't tell by the call that it is a reference - could be "by value"
// so you gotta look at the function signature
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