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Why does Math.Floor(Double) return a value of type Double?

Why does C# Math.Floor() return double instead of int

From the MSDN Docs:

Returns the largest integer less than or equal to the specified double-precision floating-point number

it says it returns an integer. Its ok to return a double, I can always cast it to an int but its just quite strange, isn't it?

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It is poorly worded. Arguably it should say "whole number" (or something else, even in the notes) to avoid ambiguity with with the *int*eger data-type(s). However, integer is a mathematical term, so, while confusing here, is technically correct. –  user166390 Nov 9 '10 at 6:05
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marked as duplicate by Rudi Visser, Bobrovsky, Konrad Viltersten, slfan, Frank Shearar Jan 18 '13 at 22:01

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up vote 31 down vote accepted

Not really, considering that a double can be a much higher magnitude than an int. You wouldn't want to overflow an int with the large value that a double could be.

Just to show you what I mean:

Double.MaxValue = 1.7976931348623157E+308

Integer.MaxValue = 2,147,483,647

So you could have a double that is 3,000,000,000.50 and floor it, which would overflow the max value of an int.

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That's a good explanation for why it makes sense... the explanation why it is that way is much simpler though -- the FPU result is a double. Since many times you want to use it as a double (maybe subtract it from the argument, to get the fractional part), it wouldn't make sense to convert it and then have to convert it back. –  Ben Voigt Nov 9 '10 at 5:16
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@Ben Voigt - Also a good point, but doesn't explain why the returned value could NOT be of Integer type as the documentation verges on suggesting. Just because the FPU outputs something doesn't mean that a method needs to return that result, esp in a non-native runtime environment. The MSDN documentation probably should have used the phrase "integral part" or something like that instead to avoid confusion with the type name. –  userx Nov 9 '10 at 5:26
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if it was a size thing, surely they could just return a long / Int64? –  mrnye Nov 9 '10 at 5:50
    
I agree with @userx and we could also think about the cost of conversion, a integer exist in the double domain and the opposite is not true, so is better to represent a integer as a double then not. –  Oakcool Nov 9 '10 at 6:16
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@mynye - Even an Long / Int64 isn't big enough. MaxValue of an Int64 is 9,223,372,036,854,775,807, which is 9E+18. A double can be as large as 1E+308 which is a LOT bigger. The reason for this is that part structure of a double (and singles / decimals) denotes the exponent for a fraction. Doubles and Ints are very different and serve very different purposes. I wouldn't say that it is any better to represent an int as a double as there are may be cases where a double may be less precise (I'm not sure, a double has 53-bits for its fraction, definitely true for a single though). –  userx Nov 9 '10 at 7:35
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Because the INPUT is a double, the OUTPUT must also be a double, or a lot of potential output would not fit into the output variable.

In mathematical terms, the domain and the range of the function must have the same size.

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