Why does this program not output 20?
#include<stdio.h>
int main() {
int a = 1;
switch (a) {
int b = 20;
case 1:
{
printf("b is %d\n", b);
break;
}
default:
{
printf("b is %d\n", b);
break;
}
}
return 0;
}
Because the switch statement jumps to a relevant case, so the line int b = 20 will never be executed.
Your compiler should warn you about this. The initialization of 'b' is at the beginning of the switch statement, where it will never be executed -- execution will always flow directly from the switch statement header to the matching case label.
It doesn't output "b = 20" because b is set inside the switch statement and this instruction is never executed. What you want is this:
int b = 20;
switch (a) {
case 1:
{
printf("b is %d\n", b);
break;
}
default:
{
printf("b is %d\n", b);
break;
}
}
Gcc throws a warning saying that b is uninitialized when you call the printf()
you have to move "int b = 20" before the switch()
Inside of a switch is a hidden goto statement. So basically what is happening is really
int a=1;
if(a==1){ //case 1
goto case1;
}else{ //default
goto default;
}
int b=20;
case1:....
cmp [a],1; je case1 but I figured that was overkill
The code
int b = 20
is actually doing two things:
int b
and
b = 20
The compiler sets up a variable called b when it compiles the program. This is an automatic variable, which goes on the stack. But it does not assign it a value until the program execution reaches that point.
Before that point, it is unknown what value the variable has.
This would not be true for a global variable, or a static variable -- those are initialized when the program begins running.
Remember that case labels in switch statement are called "labels" for a reason: they are pretty much ordinary labels, just like the ones you can goto to. This is actually how switch works: it is just a structured version of goto that just jumps from switch to the appropriate label and continues execution from there. In your code you always jump over initialization of b. So, b never gets initialized.
Compiling with gcc (Using cygwin on Windows) gives a warning message -
warning: unreachable code at beginning of switch statement
and the output is undefined or garbage which clearly says that initialization portion of b is never executed and hence the undefined value.
Note: Question can be raised that if the code or line is unreachable, then why does not we get the error: 'b' undeclared.
The compiler checks for the syntax of the program (above checks if b is declared) and finds it correct (b is declared), although semantically/logically it is incorrect.
Probably in future the compilers may become even more smarter and will be able to detect these kind of errors
The line
int b=20;
Is not executed before the switch is entered. You would have to move it above the switch statement to get 20 output.
