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So here is the code - I know something simple is wrong with it but I cannot seem to figure it out. I've tried different number types, pointers, and other ish....the variables b and c have the correct values within function separate() - but when they get passed to main() they come out as b = 0 and c = -471211 (or something similar)....

What am i missing? Here's the code:

    #include <stdio.h>
    void separate(int a, int b, int c){
      b = a/12;
      c = a%12;   }


   int main(){
     int a = 100
     int b, c;
     separate(a, b, c);
     printf("%i = 12 * %i + %i \n", a, b, c);
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7  
C passes values by value, not by reference; the function works on copies of the parameters... –  Oliver Charlesworth Mar 6 '13 at 20:54
    
sorry - i forgot to mention in some "versions" of this basic program type, I could get the c variable to pass the proper value back to main() –  user2141693 Mar 6 '13 at 20:56
    
That must have been coincidence. –  Oliver Charlesworth Mar 6 '13 at 20:57
    
@user2141693: with a return statement, yeah. But it's tricky to return two values. –  nneonneo Mar 6 '13 at 20:57

4 Answers 4

b and c are not initialized. They are not set in the function since you call by copy. either return the value you want or use int* for your arguments.

I think you need to read up a bit more about how C works.

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Yes I know I need to study - I'm a student learning this in class :-P Thanks for the help! –  user2141693 Mar 6 '13 at 21:03

In C, all function arguments are passed by value. As such, modifying the arguments doesn't have any effect outside of the function. If you want to modify the arguments of a function, you must pass pointers to it:

void change_arg(int *arg)
{
    *arg = 42;
}

int arg = 1337;
printf("Before: %d\n", arg);
change_arg(&arg);
printf("Afer: %d\n", arg);
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In the function above, you are passing the variables by value, thus the values of b and c are not changed after the call to separate(). They are uninitialized, so they are random values.

Try this instead:

#include <stdio.h>

void separate(int a, int* b, int* c){
    *b = a/12;
    *c = a%12;
}

int main(){
    int a = 100;
    int b, c;
    separate(a, &b, &c);
    printf("%i = 12 * %i + %i \n", a, b, c);
}

This passes the address of b and the address of c to pointers for the function. The function then modifies the values at the addresses.

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@Blumer Thanks for cleaning my post up. New to the forum, etc. –  Jason Alexander Collins Mar 6 '13 at 21:18
    
i'm good to go - thanks a lot....I had a pretty good idea about how pointers and referencing values worked, just needed a little help putting it all together... –  user2141693 Mar 6 '13 at 21:19

Rewrite the function as follows

void separate(int a, int* pb, int* pc){
  *b = a/12;
  *c = a%12;   }

where the parameters b and c are pointers to int.

Then in the main write something like

 int a = 100
 int b, c;            
 int *pb, *pc;

 pb=&b;
 pc=&c;

where the variables pb and pc are pointers to int. With the intructions pb=&b; and pc=&c; you assign to pb the memory location of b and to pc the memory location of c.

Now if you call

 separate(a, pb, pc);
 printf("%i = 12 * %i + %i \n", a, b, c);

you get the right output.

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wow you guys are awesome - I've been coming to this website for a year now - this is the first time I've asked a question –  user2141693 Mar 6 '13 at 21:11
    
errr - fall 2012 semester I took python (got a B+) and this semester is C - just so you guys don't think I've been studying C for a year ;-) –  user2141693 Mar 6 '13 at 21:13

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