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I have written this function to calculate the average of some floats.But it has a runtime error at the last line of the while in "average" function.What's the problem with it?

#include <stdarg.h>
#include <stdio.h>



float average(float first , ...)
{
    int count = 0;
    float sum = 0 , i = first;

    va_list marker;

    va_start(marker , first);
    while(i != -1)
    {
        sum += i;
        count++;
        i = va_arg(marker , float);
    }

    va_end(marker);
    return(sum ? (sum / count) : 0);
}


int main(int argc , char* argv[])
{
    float avg = average(12.0f , 34.0f);

    printf("The average is : %f\n" , avg);
    scanf("a\n");
}
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1  
From personal experience I have found that functions that have a variable number of arguments cause more trouble than they are worth - especially if using C++ as there are better (IMHO) ways around this. –  Ed Heal May 3 '12 at 17:03
1  
In particular using -1 as a sentinel is really bad design, this might be a valid value. Since all your parameters are supposed to have the same type, C++ as well as C offer you better alternatives for this. –  Jens Gustedt May 3 '12 at 18:24
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4 Answers 4

up vote 2 down vote accepted

You forgot to end the call with a -1, so your while loop causes undefined behaviour because it tries to keep getting more arguments than you passed. It should be:

float avg = average(12.0f, 34.0f, -1f);

Also, float arguments are promoted to double when being passed to variadic functions, so you can't use float with va_arg. You should be using double for all this:

double average(double first, ...)
{
    int count = 0;
    double sum = 0, i = first;

    va_list marker;

    va_start(marker, first);
    while(i != -1)
    {
        sum += i;
        count++;
        i = va_arg(marker, double);
    }

    va_end(marker);

    return sum ? sum / count : 0;
}

double avg = average(12.0, 34.0, -1.0);
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It worked.But is there anyway to not use -1 in passed arguments? –  Arman-aegit May 3 '12 at 17:24
1  
@Arman-aegit the function needs to somehow know when to stop extracting arguments (i.e. when to stop the while loop). So you either have to give a value at the end like you are doing now, or do something like add a first argument that gives the number of arguments you want to sum. So it'd be like double average(int count, ...) and you could do double avg = average(3, 1.0, 2.0, 3.0);. Unfortunately there is no automatic way to know how many arguments were passed. –  Seth Carnegie May 3 '12 at 17:26
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The function loops until it sees a -1, and the caller is not supplying the -1.

The man page on my box promises "random errors":

va_arg()
   ...
   If  there  is  no  next argument, or if type is not compatible with the
   type of the actual next argument (as promoted according to the  default
   argument promotions), random errors will occur.

Try:

float avg = average(12.0f, 34.0f, -1f);
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Don't you want to pass -1 as the last arg to stop the while loop?

Also, I believe floats are converted to doubles when using VAs, so changing float to double would be good...

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The problem is that you do not have a terminate for your while loop. You are checking for -1 but never pass in -1. You need to call your average function as

float avg = average(12.0f ,34.0f, -1);

There is a runtime example of this example at va_arg, va_end, va_start that shows almost exactly your code, but using int instead of float for the values.

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