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I'm looking for an implementation of floor(x) in C# so that it would match the C++ version.

floor of 2.3 is 2.0
floor of 3.8 is 3.0
floor of -2.3 is -3.0
floor of -3.8 is -4.0

Since a C++ reviewer will be checking my code, what implementation of floor is reasonable in C# so that he doesn't pull out his (last remaining) hairs?

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Why did you not google c# floor? –  Kirk Woll Mar 7 '13 at 2:58
    
@KirkWoll Dumb omission on my part- I went through my browser history and thought I searched for it, but was overwhelmed with translating this from C++ to C# that I missed that step –  makerofthings7 Mar 7 '13 at 3:04
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3 Answers 3

up vote 4 down vote accepted

You can use the Math class. There are many overloaded form of Math.Floor

  1. Math.Floor(Double)
  2. Math.Floor(Decimal)

Simple Usage :

Math.Floor(2.3) // == 2.0
Math.Floor(3.8) // == 3.0
Math.Floor(-2.3) // == -3.0
Math.Floor(-3.8) // == -4.0
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Just use Math.Floor. It rounds towards negative infinity, as does the C++ floor. From the documentation:

The behavior of this method follows IEEE Standard 754, section 4. This kind of rounding is sometimes called rounding toward negative infinity. In other words, if d is positive, any fractional component is truncated. If d is negative, the presence of any fractional component causes it to be rounded to the smaller integer.

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The math library does what you need. Docs are here. More importantly, the term floor is defined to always behave as you describe. See wikipedia for details on the mathematical floor function

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