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I need to limit the precision of a number dynamically depending of its size. I mean, if I have 8903.234 I want it without decimal numbers (8903), if I have 849342.23 I want it ending with 2 zeros (849300) or if I want 6.589654 I want it rounded to 3 decimals (6.589).

Anyone with an idea of how to implement this? (The scale is not decided yet but will be linear)

Edit: to write it better, the larger the number the less precision I want.

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Have you looked at the different numeric format strings? –  Oded Nov 6 '11 at 22:23
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So the larger the number gets the less precision you want to get? Then larger still numbers get their hundredths rounded? –  Jeremy Child Nov 6 '11 at 22:24
    
So you only ever want, say, four digits to be reported as non-zero? –  sarnold Nov 6 '11 at 22:27
    
@Jeremy: thanks for the better wording. Right, the bigger the less precission. –  SoMoS Nov 6 '11 at 22:27
    
Beware of floating point rounding errors when you are after guaranteed precision to right of decimal points or you may find yourself tearing your hair out trying to figure out why it is not rounding quite right. –  Gilbert Nov 6 '11 at 22:29

2 Answers 2

I think we're talking about "significant digits". You can use Math.log(number) to get the scale of your number, then simply substract the number of significant digits to keep, divide, round, multiply, profit!

  double multiplier = Math.Pow(10, (Math.Floor(Math.Log10(value)) + 1 - digitCount));
  double roundedValue = multiplier * Math.Round(value / multiplier);

You might also need to take care of floating point precision errors.

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Looks good. I will try it. –  SoMoS Nov 7 '11 at 9:21
    
Sorry but this does not work at all :( –  SoMoS Dec 2 '11 at 16:26
    
You're right, I forgot that "Log" is the neperian log. I needed to use "Log10" to have the right one. I corrected it now. It's weird people upvoted this when it actually was broken! XD –  Kevin Coulombe Dec 2 '11 at 20:14
    
Sorry but this is still not working. I'm just getting the numbers at the left of the decimal point. As the question says the larger the number the less precision I want or the smaller the number the bigger the precission I need. –  SoMoS Dec 3 '11 at 9:53
    
Isn't this the results you want : value = 0.023456789; digitCount = 4; roundedValue : 0.02346 --- value = 23.456789; digitCount = 6; roundedValue : 23.4568 --- value = 23456.789; digitCount = 2; roundedValue : 23000.0 –  Kevin Coulombe Dec 4 '11 at 2:31

Here's are a few ideas using the format method. And some of the custom (Probably what you may use) here

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At least link to the current documentation instead of the .NET 1.1 versions. There, fixed that for you. –  Oded Nov 6 '11 at 22:27
    
Mmmm, I don't find a clear way of using the format to do what I need. Can you develop a bit that idea? –  SoMoS Nov 6 '11 at 22:31
    
@SoMos. The format can do the rounding and precision work for you. The quick and dirty way would be to setup a switch with > x and < x cases. –  Jeremy Child Nov 6 '11 at 22:39

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