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I have a number (00-59) in an int and i would like to round it off to 5, for example 06 would be 5 and 08 would be 10. Oh and 07 would also be 10. How would i go about doing this?

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Would this help? How about writing a small for loop/if statement thingy to calculate the modulus and go about it from there on? –  drN Oct 31 '12 at 16:16
    
What have you tried? –  Roy Dictus Oct 31 '12 at 16:17
    
7->10 would be a ceil operation, but that'd mean 6 becomes 10 as well. 7.5 would be the lowest number that should become 10 when rounded to the nearest 5. –  PhonicUK Oct 31 '12 at 16:26

8 Answers 8

up vote 5 down vote accepted

You can use the following code.

int round_5(int num)
{
   int t1;
   t1= num%5;
   if(t1>=2)
      num+=(5-t1);
   else
      num-=t1;
   return num;
}


main()
{
   int num = 57;
   num = round_5(num);
   printf("%d",num);
   return 0;
}

Hope this helps.

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Thanks! It definately helps. –  Niek Oct 31 '12 at 17:08

If you want to code your own round function, here is something that should work:

int round(int number, int round_by)
{
    int whole = number / round_by;
    char superior = ((number % round_by) >= (round_by / 2)) ? 1 : 0;
    return (whole + superior) * round_by;
}

int main()
{
    printf("%d\n", round(6, 5)); // 5
    printf("%d\n", round(7, 5)); // 10
    printf("%d\n", round(8, 5)); // 10
    printf("%d\n", round(33, 10)); // 30
    printf("%d\n", round(33, 5)); // 35
}

You can replace 5 by every number you want.

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You missed a ? in your ternary, and that's just re-doing (round(a / by) * by), doesn't answer OP's need for 7->10 –  Eregrith Oct 31 '12 at 16:30
    
@Eregrith Thanks, I edited my answer, now for 7 it's 10 too, even if I don't understand why it should be ten... x) –  Julien Fouilhé Oct 31 '12 at 16:32
    
I'm programming a word-clock that only has 5 minute resolution, so i'd rather have it round up than down –  Niek Oct 31 '12 at 17:03

Use the formula

rounded = (number / 5) * 5;
if ((number % 5) > 1)
  rounded += 5;
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This code doesn't even come close to working correctly. Your code produces this result: 7 -> 6, 8 -> 6, 9 -> 6. You might want to test it first before posting a solution here. –  PIntag Oct 31 '12 at 16:38
    
Yes indeed, I forgot the important part * 5. That's corrected. –  Eregrith Oct 31 '12 at 16:53

This isn't C specific but the idea works the same:

func roundToNearest(num someNumber, num roundToNearest)
{
    return (round(someNumber / roundToNearest) * roundToNearest);
}

This is just pseudocode of course, in the case of C you'll need to be casting to singles to get anything useful out of it.

In the case of c, round comes from math.h

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Except that for the case of 07 will round(1.4) => 1 => 5 and not 10 as OP asked. –  Eregrith Oct 31 '12 at 16:22
    
OP has his question wrong, 7->10 would be a ceil operation, but that'd mean 6 becomes 10 as well. 7.5 would be the lowest number that should become 10 when rounded to the nearest 5. –  PhonicUK Oct 31 '12 at 16:24
    
OP has his question the way he wants, doesn't he? It's his call and he never mentioned either ceil or floor; he said round. –  Eregrith Oct 31 '12 at 16:27
    
Right - 7 to the nearest 5 is not 10, it's 5. –  PhonicUK Oct 31 '12 at 16:28
1  
round by definition is to the nearest unless you specify a direction. You can either round up, round down, or round to the nearest. The numbers OP gave don't fit either of those, so either his math is completely off or he has failed to adequately explain what he wants. –  PhonicUK Oct 31 '12 at 16:33

If you're willing to delve into the floating-point realm, you can do something like this:

int rounded = (int)(round((float)input / 5) * 5);

Make sure you #include <math.h>. See this ideone example.

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Except that for the case of 07 will round(1.4) => 1 => 5 and not 10 as OP asked. –  Eregrith Oct 31 '12 at 16:23
    
Yes, that's kind of a bizarre requirement, as 7 is closer to 5 than 10. But if that is the requirement, then one could replace input with (input + 1). –  cdhowie Oct 31 '12 at 16:44

How about a look up table

int minutes [60] = { 0,0,0,5,5,5,5,5,10,10,10, ... };

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This should work:

unsigned int round5(unsigned int n)
{
    return ((n + 2) / 5) * 5;
}

(Say + 3 if you want to round 7 up, though this would seem unnatural.)

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You can use the following code:

//no -> number  ro -> round off to
//ro = 5 in your case
int no, ro;
if(no%ro >= 2)
    no = ((no/ro)+1)*ro;
else
    no = (no/ro)*ro;

Hope it helps !!

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