Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I'm trying to divide a timeval by an integer. Here's what I've got so far:

#include <limits.h>
#include <stdio.h>
#include <stdlib.h>

int
main(void)
{
     struct timeval my_time;
     struct timeval my_time_quotient;
     int i;

     gettimeofday(&my_time, NULL);
     i = 5;

     my_time_quotient = my_time / i;

     printf("%d secs, %d msecs\n", (int)my_time_quotient.tv_sec, (int)my_time_quotient.tv_usec);

     return 0;
}

When I compile I get:

jen@ubuntu:~/$ gcc -g -otimespike timespike.c
timespike.c: In function ‘main’:
timespike.c:15: error: invalid operands to binary / (have ‘struct timeval’ and ‘int’)

What's the correct way to find the quotient?

share|improve this question
    
If this is a homework question, please add the "homework" tag so we won't give away the answer immediately. –  Heath Hunnicutt Nov 11 '09 at 1:59
    
Welcome to Stack Overflow. If you would like to reply to messages like this, click the "add comment" link below your question and below each answer. –  Heath Hunnicutt Nov 11 '09 at 2:09

2 Answers 2

You cannot directly divide a struct by a numeric type, even when the struct represents some kind of number.

You will have to first convert your struct to an integer type representing the number of microseconds. Because the elements are of type int, you will need to find a numeric type with almost twice as many bits as an int. Hopefully your compiler supports long long int or __int64, both of which are 64-bits.

After converting the contents of the struct to a numeric type, the division proceeds directly as with any division.

After performing the division, you will need to store the result back to the timeval, probably making use of the "remainder after division" or "modulus" operator, x % y.

share|improve this answer

As this may be a homework question, I won't give you any code, but I'll give you the explanation as to why it's not working, and the approach to use to make it work.

When you're working with plain old data types (integers, doubles), you can divide. However, a timeval is not a plain old data type - it's a combination of two in a struct. timevals structs don't know how to be divided by integers (that's what it means when it says invalid operands to binary / (have ‘struct timeval’ and ‘int’)).

So you have to do this manually - divide the number of seconds (tv_sec), and then divide the number of nanoseconds (tv_usec), and insert the results of these divisions back into your my_time_quotient timeval. Handling fractions of seconds is left as an exercise to the reader - but the approach suggested by Heath is one approach.

share|improve this answer
    
This won't quite work as stated -- the result of dividing the seconds would need to retain any fractional result (i.e., complicated mathematics either floating- or fixed-point fractionals), accumulate the fractions of a second into the microseconds counter, detect overflow of microseconds and carry the increment into seconds counter... –  Heath Hunnicutt Nov 11 '09 at 2:11
    
I direct your attention to the note "Handling fractions of seconds is left as an exercise to the reader - but the approach suggested by Heath is one approach." I'm not claiming you'd divide the long int by the divisor to get the number of seconds. I'm claiming that you need to handle the division yourself in whatever method, yours being a correct approach. –  Smashery Nov 11 '09 at 2:27
    
I'm sorry, I missed that note about left to the reader. ;) –  Heath Hunnicutt Nov 11 '09 at 4:49

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.