1
int main() {
    // Complete the program
    string a,b;
    getline(cin,a);
    getline(cin,b);
    cout<<a.size()<<" ";
    cout<<b.size();
    string c=a+b;
    cout<<endl<<c;

    swap(a[0],b[0]);
    cout<<endl<<a<<" "<<b;
    return 0;
}
void swap(string s1,string s2){
    string temp=s1;
    s1=s2;
    s2=temp;
}

Well the target is to swap the first element of both strings, but I created a general function for that and even got it right. But, unexpectedly, I didn't use pass by reference or pointer! Even then, the changes are permanent when I try to output a and b in the end!

Logically it shouldn't work but it is working. Is it something to do with the strings?

7
  • 2
    Note: std::swap exists. Commented May 2, 2020 at 18:05
  • Post all of your code, including the header inclusions, not snippets. There is a std::swap function, and more than likely, that function is the one being called. Commented May 2, 2020 at 18:06
  • Could you tell us which input for a and b you used? I agree, this shouldn't be working... Commented May 2, 2020 at 18:06
  • 2
    Did you know that I'm telepathic? I happen to know that you have using namespace std; at the beginning of your code, even though you failed to show it. I should go into fortune-telling... Commented May 2, 2020 at 18:06
  • 1
    a[0] and b[0] are individual char references. It's not calling your function which takes strings. Commented May 2, 2020 at 18:08

1 Answer 1

8

This is almost certainly due to the fact that, somewhere in code that you have not shown us, you have this line (or something very similar):

using namespace std;

With this line included, then that very namespace std defines a function as follows:

void swap(_Ty& _Left, _Ty& _Right);

Where the _Ty template is replaced with char in your swap(a[0],b[0]); call.

Add a simple cout << "My Swap" << endl; line to your swap function, and you'll see it's not being called.

Highly recommended reading: Why is "using namespace std;" considered bad practice?.

6
  • thanks a lot i got it! but even though i am defining swap in my own way; the function of the namespace is being used! Commented May 2, 2020 at 18:25
  • Yes - the compiler will find the 'best match' to your call, which is not the one you provided. Replace using namespace std; with lines like using std::cout; using std::cin; using std::endl; using std::string; and the compiler will then give you an error that the fuction call is wrong. Commented May 2, 2020 at 18:27
  • if i remove the namespace std; it should actually work because then the best match will be the function defined by me; isnt it? Commented May 2, 2020 at 21:10
  • @GaganrajdeepSingh No, because your function takes strings while you give it single characters.
    – eesiraed
    Commented May 2, 2020 at 21:38
  • 1
    @GaganrajdeepSingh There is no conversion from a single character to an std::string, although some overloaded operators for std::string accept single characters.
    – eesiraed
    Commented May 2, 2020 at 22:25

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service and acknowledge you have read our privacy policy.

Not the answer you're looking for? Browse other questions tagged or ask your own question.