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I have a bunch of code like this:

#include <iostream>
using namespace std;

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

int main() {

    int a;
    int b;
    a = 7;
    b = 5;
    swap(a,b);
    cout <<a<<b;

return 0;

}

This code does the swapping process as what I exactly wanted to swap 2 numbers

But when I want two numbers from the user as follows;

int a;
int b;
cin >> a;
cin >> b;
swap(a,b);
cout <<a<<b;

The compiler gives me an error about integer to *integer error which is as expected. Why does the first code do the right swapping although I didn't use the method with & operator? Thank you in advance.

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2 Answers

up vote 14 down vote accepted

In the first example, std::swap is called, because of your using namespace std. The second example is exactly the same as the first one, so you might have no using.

Anyway, if you rename your function to my_swap or something like that (and change every occurence), then the first code shouldn't work, as expected. Or, remove the using namespace std and call std::cin and std::cout explicitly. I would recommend the second option.

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I changed my method's name and it still works properly. –  w1LL1ng Nov 15 '12 at 17:25
8  
@w1LL1ng try removing the using namespace std. In fact, never ever use that! –  juanchopanza Nov 15 '12 at 17:26
    
now, that worked! thank you:) –  w1LL1ng Nov 15 '12 at 17:32
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your function void swap(int *a, int *b) accept to pointers of int and you are passing int instead so its compilation time type-mismatch error.

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I already know that dude.. What I want to know is why the first one works properly. –  w1LL1ng Nov 15 '12 at 17:24
    
Sorry I misunderstood but lucky Answered by ipc! –  Grijesh Chauhan Nov 15 '12 at 17:26
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