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I need to do the following equation floor(e%100000) where e is a double. I know mod only accepts int values, how do I go about achieving this same result?

Thanks

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4 Answers 4

up vote 3 down vote accepted

Use the fmod() function instead of %. It accepts double parameters, and returns a double result.

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Why don't you take the floor first, then mod, ie. floor(e) % 100000 ?

Perhaps I've misunderstood what you're trying to achieve. Could you give an example of the input and output you expect?

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I'm converting an easting and northing in metres with a huge decimal number (converted from a lat/long) into metres and then formatting it. –  churchill614 Aug 28 '10 at 10:36
    
This should be more or less equivalent to any other solution here. –  Merlyn Morgan-Graham Aug 28 '10 at 10:53
    
This works only as long as the result of floor fits in an integer type. For extremely large floating point numbers, you need fmod (and need to hope it's implemented in a way that's accurate for huge numbers), but if you're using fmod with large numbers you're probably misusing floating point and going to run into some nasty loss-of-precision bugs. –  R.. Aug 28 '10 at 11:54

use fmod

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You could use division to make the equivalent of modulo:

double e = 1289401004400.589201;
const double divisor = 100000.0;
double remainder = e - floor(e / divisor) * divisor;
double result = floor(remainder);
printf("%f\n", result);

This prints

4400.000000

Of course, this is much slower than any built-in modulo...

You could also just use fmod, as Anders K. suggested :)

Edit

Fixed std::cout (C++) reference to use printf (C). Fixed change to output. Now it is purely C.

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1  
-1 for cout in a question tagged C that even says C in the subject. C is not C++. –  R.. Aug 28 '10 at 11:55

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