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I used the following program for swapping the length and width of the rectangle structure

typedef struct rectangle
{
  int len;
  int wid;
} rect;

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

int main()
{
  rect rect1;
  rect *r1;
  r1= &rect1;
  r1->len=10;
  r1->wid=5;

  cout<< "area of rect " << r1->len * r1->wid<<endl;
  swap(&r1->len,&r1->wid);

  cout<< "length=" << rect1.len<<endl;
  cout<<"width=" <<rect1.wid;
}

However, when i use the following:

swap(r1->len,r1->wid);

instead of:

swap(&r1->len,&r1->wid);

I am still getting correct results and I am not sure how it is working. Per my understanding I should be using (&r1->) to pass the address of member variable to the function. Can someone please explain?

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1  
If you omit the &s, it doesn't even compile... –  user529758 Aug 5 '13 at 7:21
    
Even if it get compiled with tons of warnings it should lead towards Segmentation fault.looking at address which is integer value. –  Dayal rai Aug 5 '13 at 7:23
    
What compiler are you using? Are you writing C or C++? AFAIK "cout" is not a C input/output command –  verbose Aug 5 '13 at 7:28
    
I am using a C++ compiler. It is getting compiled without any warnings and giving the correct result.That is why i was perplexed and asked the question. –  user2652117 Aug 5 '13 at 7:31
    
@user2652117 I'm really curious about which compiler you're using, now... –  Nbr44 Aug 5 '13 at 7:36

1 Answer 1

up vote 7 down vote accepted

You are using namespace std;.

In the standard c++ library exists this version of the swap function, which takes two references and resides in the std namespace.

What happens is that when you are using &, your function will be called. When you're not, it's the one that comes from the standard library. Indeed, with the using directive, you do not need to add std:: in front of the function name. Therefore, in your case, your swap function exists as an overload of the one from the standard library.

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3  
That is why it is a bad practise to put the using namespace std. –  Uchia Itachi Aug 5 '13 at 8:14
    
Yes i got the point. even after removing my swap() function from the program, i am getting the same results. So as stated by you, the swap() function from the std lib is getting called here.This resolves my problem.. Thanks a lot for your response :) :) –  user2652117 Aug 5 '13 at 8:23

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