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I have to determine the output of this program (without running it on the computer). I am pretty unsure on how the global and static variables work together.

#include <stdio.h>

void f(int d);

int a = 1, b = 2, c = 3, d = 4;

int main()
{
    int a = 5, c = 6;
    f(a);
    f(b);
    f(c);
    printf("%d %d %d %d\n",a,b,c,d);
    return 0;
}

void f(int d)
{
    static int a = 0;
    a = a + 7;
    b = a + d;
    c++;
    d--;
    printf("%d %d %d %d\n",a,b,c,d);
}
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1) Google for static variable in a function, 2) go through the program step by step. –  Niklas R Feb 3 '13 at 9:33
    
possible duplicate of What does "static" mean in a C program? –  ecatmur Feb 3 '13 at 10:51
    
There are no global variables in C. –  undefined behaviour Feb 3 '13 at 12:53

3 Answers 3

Local variable defintions always "hide" global variables with the same name. An inner scope always takes precedence over an outer one. Some compilers also produce warning when a variable "shadows" another one.

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The nearest visible binding in scope hides all the further ones. So in main all the names refer to the local variables, and in f only a is the local one (albeit static, that's immaterial), d refers to the function parameter, and b and c refer to the global ones.

You can unhide farther-away names to a limited extend with the extern keyword, but given enough local scopes you can always create and hide variables that you can never see from somewhere deeper.

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If two variables are declared with the same identifier, the accesses refer to the one with the smallest scope.

C11 (n1570), § 6.2.1 Scopes of identifiers

If an identifier designates two different entities in the same name space, the scopes might overlap. If so, the scope of one entity (the inner scope) will end strictly before the scope of the other entity (the outer scope). Within the inner scope, the identifier designates the entity declared in the inner scope; the entity declared in the outer scope is hidden (and not visible) within the inner scope.

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