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I want to use a predefined function which is called in the main function. This predefined function obtains some values from a packet received, lets say a timestamp from the receiver which I would like to use in the main function. However the problem is that this predefined function is of void type and can't return anything. I am thinking about using the concept of global variables because local variables would fail in this case. Can someone please give an example for implementing this thing?

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closed as not a real question by oluies, Bo Persson, R.., C. A. McCann, Richard Jul 24 '11 at 6:46

It's difficult to tell what is being asked here. This question is ambiguous, vague, incomplete, overly broad, or rhetorical and cannot be reasonably answered in its current form. For help clarifying this question so that it can be reopened, visit the help center.If this question can be reworded to fit the rules in the help center, please edit the question.

    
Are you in C or C++? – Puppy Jul 23 '11 at 15:58
    
Maybe I'm not understanding something, but if you can change the function to put some result in a global variable, why don't you change it so it returns what you want? – Michael Burr Jul 23 '11 at 17:26
    
So the function is defined in the source code, not my own C file. The source code is of the contiki OS which I would like to keep intact as this function may be used elsewhere as well. But if I just put a global variable inside and store things there, I think I am good to go for my own C file. – Acid Jul 23 '11 at 17:31
3  
This question makes no sense. If you can change the function, you should be able to fix its signature to return a value. If you can't change the function, there's no way you can obtain values from it. Regardless, global variables are not an appropriate approach to this... – R.. Jul 23 '11 at 18:28
    
If you can change the function, but need to preserve its signature then: 1. Create a new function with a new name and signature with the implementation you need. 2. Update the existing function to wrap the new function and throw away the result. – Richard Jul 24 '11 at 6:45

If the function is predefined it must already have a predefine way of returning results.

One possible way for a void function to return results is if one of its parameters is a pointer. Then it can put results in the object pointed to by that pointer.

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Use such functions:

void f(int *a)
{
    *a = 5;
}

It will modify a, but will return void.

If using c++ it's better to use reference:

void f(int &a)
{
    a = 5;
}
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you should try to avoid using global variables, since you will have to make an extra effort to make them thread safety and also they are kind of a bad practice (make the code difficult to follow and easy to introduce bugs, etc).

you may use a pointer or change the return value (either way, you will have to change the function prototype). another solution would be to define another function that calls the "offending" one (the one you're trying to change) and process the result there, then continue to the original function with the original parameters, so your function a() will return whatever you need, but call b() inside (the one returning void)

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If your asking for how to use a global:


int gGlobalValue;

void funcion()
{
  int returnValue = 1; // Or whatever
  gGlobalValue = returnValue;
}

This is a non maintainable, poor way of doing what you want, but here it is.

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So this is not working for me ... Instead of always returning a random value, it always prints a value of 41 ... here is the code I am using int T, T1; void time() { T = rand(); } void main() { time(); T1 = T; printf( "%d", T1 ); } – Acid Jul 23 '11 at 16:20
    
You aren't seeding your random number. You have to seed it before it will return a "random" value. – Michael Dorgan Jul 23 '11 at 16:26
    
Ok so lets forget the rand function, but the concept is right and my problem will be solved right? – Acid Jul 23 '11 at 16:30

If you want some generic callback, you can use e.g. this prototype:

void (*callback)(void *);

And return the appropriate data via the parameter (as passed by reference).

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