Why output is 2 instead of 2 2

Sagnik Ray void foo() isn't call !!! It's just prototype

f() is called in main again, so it must have called foo ()??

Call f() is only 1 time

Not understand the problem. All is clear and easy

#include <stdio.h> int main() { void foo(); void f() { foo(); } f(); } void foo () { printf ("2 "); } In the main function when you called "foo()" you used the "void" keyword. So it is calling itself but not returns any value. #include <stdio.h> int main() { foo(); void f() { foo(); } f(); } void foo () { printf ("2 "); } If you perform the above code it will print "2 2" instead of "2".

Yeah Ural you are right its a prototype. But she didn't need to mention the prototype. Instead if she calls foo() and f() both then the output is 2 2 and not 2 and she does not need to call f() two times. And Now I understood the problem. Thank you.

A little modification to the code to get output "2 2" The Code: #include <stdio.h> int main() { int f() { if(foo()==NULL){ } return 2; } int n = f(); printf(" %d",n); } void foo () { printf ("2" ); } In the above code you can call f() only once to get output "2 2" Its just an alternative method.

f() calls foo(), stop. Or you call two times f(), or in f() you call two times foo() https://code.sololearn.com/cqRr522H3H2E/?ref=app

#😎😎😎 #include <stdio.h> int main() { void f() { foo(); } f(); } void foo () { printf ("2 "); main(); } Try this 😎😎😎