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I'm currently learning operating systems, I have this snippet of the code but I receive infinite loop of recursive calls, all I want is to create some son's and to calculate fibonacci(with small numbers), I can't understand why sons can't finish at all, thanks in advance:

int fibonaci(int n) {
    if(n < 2){
        return n;
    } 
    return fibonaci(n - 1) + fibonaci(n - 2);
}

int main(int argc, char* argv[]) {

        //some checkings, and variables

    for (i = 0; i < argc; ++i) {
        son_pid = fork();
        if (son_pid == 0) {
            fibonaci(var); //var is some finite variable
            break;
        } 
    }
        if(son_pid != 0){
                while(wait(&status) != -1){}
        }
        return 0;
}

edited

all checkings were done, problem is with logic!!!

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Where are the other usages of status? –  Matti Virkkunen May 3 '11 at 9:01
1  
Add printf("%d\n", var); before the first call to fibonaci - validate that the value you pass really is a small integer and not the string I suspect it may be. –  Erik May 3 '11 at 9:03
    
I checked both values, its ok –  likeIT May 3 '11 at 9:03
2  
all checkings were done - move zig, for great justice! –  sehe May 3 '11 at 9:28
2  
How large is val? The values greater than 20 can took about several hours since it's a exponential algorithm. Anyway with 32-bit integers you cannot calculate the Fibonacci number for n > 42. –  Eugene May 3 '11 at 9:42

2 Answers 2

up vote 0 down vote accepted

This may not be the solution, but try to put a return 0 instead of the break;

I do believe that the problem is in the forking/treating son vs parent code. I can't see why you put the break there. After calculating the fibonacci, the son should return. The break may be having some unwanted results.

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break causes the loop to exit, going on to the if after the loop, which will be false in the child, and so just return 0;. So changing the break as you suggest will have no effect. –  Chris Dodd May 3 '11 at 17:40
    
yes, i believe you're right. I rarely use break other than in switch cases. But the code is somehow wierd, begining with the use of argc on the for cicle (argv would make a little more sense, but that should not cause infinite loop anyway), and the pre-increment of i. The recursion is quite plain, so no problems there, and the wait should also work. –  Nuno V. May 4 '11 at 0:58

The "default behavior" of wait() is to return immediately with -1 if it has no children that can be killed, as you expected:

wait(): on success, returns the process ID of the terminated child; on error, -1 is returned.

and

ECHILD (for wait()) The calling process does not have any unwaited-for children.

My quick test confirms that the program works. However, there could be some variation in wait() behavior.

On the bright side, you know how many children you fork()'d (argc many). Therefore, an arguably more correct version of the wait() loop is:

if (son_pid) {
    int i, status;
    for (i = 0; i < argc; i++) {
        wait(&status);
    }
}

I hope this helps.

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