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Does an equivalent of Java RoundingMode.HALF_DOWN exist in C#?

For example, I want to round 1.265 to 1.26, and 1.266 to 1.27.

If not, is there a simple way to do it?

  • 1
    @KayNelson: I did not vote, but one possible reason is because the question is impossible. 1.265 can be represented exactly in C# with the decimal literal 1.265m, but 1.265 is a binary floating-point literal whose value is 1.26499998569488525390625, so the question of rounding a value that is exactly halfway between targets does not apply. – Eric Postpischil Jan 11 at 16:04
  • @EricPostpischil Thanks for comment. That's someting I didn't know. Have you an idea of how i can get around the problem ? – KBell Jan 11 at 16:22
  • @KBell: You would have to describe more about the complete problem. If you are reading decimal numerals from text and want to round them, then use decimal or character text, not double. If you are using double, you are using binary-based floating point and likely have a variety of round errors in arithmetic, so you would generally not expect exact decimal results at all. – Eric Postpischil Jan 11 at 18:28
  • Yes but that is still not a reason to downvote the question I would say :-) – Kay Nelson Jan 14 at 8:38
3

Have a look at Math.Round e.g.

  double[] tests = new double[] {
    1.265,
    1.266,
  };

  var demo = tests
    .Select(x => $"{x} -> {Math.Round(x, 2, MidpointRounding.AwayFromZero)}");

  var report = string.Join(Environment.NewLine, demo);

  Console.Write(report);

Outcome:

  1.265 -> 1.26
  1.266 -> 1.27
  • The double literal 1.265 does not have the value 1.265; it is 1.26499998569488525390625. So this code does not demonstrate that it performs the desired function. – Eric Postpischil Jan 11 at 16:08
  • It is impossible to represent 1.265 without precision loss: 1.265.ToString("R"). Alas 1/10 is a periodical fraction in binary and that why 1.265 == 1 + 265 / 1000 can't be represented exactly – Dmitry Bychenko Jan 11 at 16:29
  • Yes, it is impossible. That is why the numbers in this answer fail to demonstrate whether Round rounds an exact midpoint as desired. You might instead use numbers that are possible, like 1.375 or 1.625. – Eric Postpischil Jan 11 at 18:30
1

Use the .Round method with the following constructor overload:

public static double Round (double value, int digits, MidpointRounding mode);

Calling like so:

Math.Round(value, 2, MidpointRounding.AwayFromZero);

Here's full documentation.

0

You can use Math.Round

    decimal d = Convert.ToDecimal("1.266");
    Console.WriteLine(Math.Round(d, 2));

    Console.ReadLine();

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