+ 2
Why is it not work?
#include <iostream> using namespace std; void swap(int x,int &y) int temp; temp=x; x=y; y=temp; int main() { int a=100; int b=200; cout <<"before swap , value of a "<<a<<endl; swap(a,b); cout <<"after swap , value of a "<<a<<endl; cout <<"after swap , value of b "<<b<<endl; return 0; }
12 odpowiedzi
+ 3
Yes by my smallmistake
+ 3
#include <iostream>
using namespace std;
void wap(int x,int &y)
{int temp;
temp=x;
x=y;
y=temp;
}
int main() {
int a=100;
int b=200;
cout <<"before swap , value of a "<<a<<endl;
wap(a,b);
cout <<"after swap , value of a "<<a<<endl;
cout <<"after swap , value of b "<<b<<endl;
return 0;
}
function name is swap in that code
now see function name is wap
+ 2
Close the swap function..
edit:
Sangeetha Santhiralingam
oh. you don't have opening brace also...
void swap( int x, int &y) { //add it
//function body..
} //add this
int main() {
..
}
+ 2
Yes Jayakrishna🇮🇳
+ 1
😑 okay
+ 1
why is there a need to define swap?
"The function std::swap() is a built-in function in the C++ Standard Template Library (STL) which swaps the value of two variables."
you can use swap without having to define it yourself.😁
#include <iostream>
using namespace std;
int main()
{
int a = 5;
int b = 50;
cout << "Before swap:\n";
cout << "a = " << a << endl;
cout << "b = " << b << endl;
swap(a, b);
cout << "After swap:\n";
cout << "a = " << a << endl;
cout << "b = " << b << endl;
return 0;
}
+ 1
Pass both <x> and <y> by reference
void swap( int& x, int& y )
+ 1
What is your expected outcome by your code?
Your code only swaps y value with x. x remains same so x, y have same values.
edit: code is fine now.Sangeetha Santhiralingam
+ 1
Sangeetha Santhiralingam
I guess it is for practice or an assignment. Make your own tools instead of using tools in the toolbox.
+ 1
me too i have that problems
0
Hello dear
0
Gekjcx