7

I want to round a value (double) to the next (allways round up) number. Rounding can be defined by any number.

Exp.:
Round up to the next 2.50

0.00       --> 0.00
0.01       --> 2.50
2.49       --> 2.50
2.50       --> 2.50
2.50000001 --> 5.00
...

The algorithm to do this is easy (if 'number' was negative * -1):

Math.Round((Math.Abs(number) + tolerance) / 2.50, MidpointRounding.AwayFromZero) * 2.50

Tolerance is defined like this:

tolerance = 2.50 / 2 - Math.Pos(10, -x);

But I don't know how to determine x! Because in case of the 1st-4th example x should be 0.01 in case of the 5th example it should be 0.0000001 and so on...

Search results only suggest to parse the string of a decimal number and count the decimal digit. Is there no mathematical way? Otherwise I have to treat with different locale settings for decimal seperator and numbers with no decimal digits (no decimal seperator to remove).

May anyone has a solution for my issue. Thank you!

Kind regards, Danny

0
16

How about Math.Ceiling(v / 2.5) * 2.5 ?

1
  • 1
    just too simple ;) Thank you! – dannyyy Oct 13 '11 at 13:07
3

You need Math.Ceiling

This takes a double and rounds it upwards to the nearest integer, unless the value is already equal to an integer. The datatype it returns is still a double, however.

Usage example...

Double testValue = 1.52;
Console.WriteLine(Math.Ceiling(testValue));

... would print 2.

1
  • Good stuff :) This answer came up in the low quality review queue due to it only being a link answer, your edit should bump it out of the queue now. – slugster Nov 14 '12 at 12:46
1

Math.Ceiling does exactly what you need.

1

you can use Math.Ceiling for that

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