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I am trying to swap between array and pointer in c++

My code is as the following :

void foo(int* a, int* b);
void main()
{
  int *a = NULL;
  int b[6]={2,3,5,6};
  foo(a,b);
}

void foo(int* a, int b[])
{
  int * c;
  c=a;
  a=b;
  b=c;
}

While I return out from the Method nothing changed ,

within the method everything work fin but when the method return nothing change.

my question is:

A) what is my mistake.? B) How should I fix it.

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6  
If your book or professor taught you void main(), it's time to swap that one. –  Kerrek SB Apr 1 '12 at 8:25

2 Answers 2

up vote 7 down vote accepted

Your mistake is that you assume arrays are pointers. They are not. They can decay to pointers.

You can't change b, but you can change a, by passing it by reference:

void foo(int*& a, int b[])
{
  int * c;
  c=a;
  a=b;
}
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In your example, b is allocated. But you can't transfer this "being allocated" property of an array to a pointer. You can allocate a pointer (by using malloc or new) but you can't de-allocate an array. So I'm afraid what you want to do isn't possible.

If all you want to do is exchange the contents of a and b, you'll have to do that the hard way (physically copy each value, or memcpy for the whole array at once), but you can't simply change the array in such a way that its address changes to that of a.

(Obligatory remark: since you tagged your question c++, you should use vectors.)

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