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I was trying to generate an error in swap code in C++. Interestingly, instead of an error, it successfully shows the opposite. My code look like this:

#include<iostream>  
using namespace std; 

void swap(int *x, int *y)                                                        
{                                                                                
    int *tmp = x;                                                                
    x = y;                                                                       
    y = tmp;                                                                     
}

int main()                                                                       
{                                                                                
    int u = 10;                                                                  
    int v = 20;                                                                  
    int * p = &u;                                                                
    int * q = &v;                                                  
    swap(*p, *q);                                                                
    std::cout<<"u :-"<<u<<" v  :-"<<v<<endl;                                     
    return 0;                                                                    
} 

The value of u and v got swapped. In this, I am passing pointer value instead of reference but the value gets swapped, How?

Exact code can be found at: https://ideone.com/kMJHL6

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6
swap(*p, *q);

Since the type of *p and *q are not int *, (it's just int) this code doesn't call your swap function. Instead, it calls the function std::swap, which is in standard C++ library, by function overloading resolving.

Your code has using namespace std; - your case is one of examples that show why you shouldn`t use it.

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6

I think that you're calling the swap function of algorithm library, and not your function

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  • Yes u re correct, but how does it do this.There is nothing called automatically calling the library. It must be doing some way. – nebi Jan 5 '15 at 9:57
  • I'm not sure, but probably he is using std namespace and this call swap function of algorithm library. But is my supposition, I'm not sure about this – Frank Cunningham Jan 5 '15 at 10:01
  • 1
    @nebi: "There is nothing called automatically calling the library." There absolutely is. It's called using namespace std and you should stop! – Lightness Races in Orbit Jan 5 '15 at 12:17
  • @LightnessRacesinOrbit Pls enlighten me, where I am going and what I had to stop? I just raised my question and ikh and Frank answered it correctly and i am thankful to them. Pls do not make this an issue out of nothing and yes some self claimed vigilante deleted my comment thanking to irk. Probably u should look into that.!! – nebi Jan 5 '15 at 12:47
  • @nebi: What? I'm just saying you shouldn't write using namespace std. You don't need to bite my head off over it. – Lightness Races in Orbit Jan 5 '15 at 12:57

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