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What is the best way to return the whole number part of a decimal (in c#)? (This has to work for very large numbers that may not fit into an int).

GetIntPart(343564564.4342) >> 343564564
GetIntPart(-323489.32) >> -323489
GetIntPart(324) >> 324

The purpose of this is: I am inserting into a decimal (30,4) field in the db, and want to ensure that I do not try to insert a number than is too long for the field. Determining the length of the whole number part of the decimal is part of this operation.

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You can't get the int part; you can get the whole number part and ditch the fractional part. The whole number part of a Decimal can easily overflow an int and either throw or wrap around, silently killing your code. –  Will Jan 26 '09 at 13:25
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Well, that is why this question is not as simple as it seems. I need this to work for very large numbers as reliably as it does for small numbers. However, "whole number" is more accurate than "int" - I will rephrase above. –  Yaakov Ellis Jan 26 '09 at 13:32

4 Answers 4

up vote 88 down vote accepted

By the way guys, (int)Decimal.MaxValue will overflow. You can't get the "int" part of a decimal because the decimal is too friggen big to put in the int box. Just checked... its even too big for a long (Int64).

If you want the bit of a Decimal value to the LEFT of the dot, you need to do this:

Math.Truncate(number)

and return the value as... A DECIMAL or a DOUBLE.

edit: Truncate is definitely the correct function!

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(wondering where it went? check the revision history) –  Will Aug 31 '11 at 13:46
    
So the result is decimal or double that will never have anything after the point but there is not built in object to store the result as an "int" (without decimal places) that seems a bit lame? –  CodeBlend May 11 at 21:48
    
@CodeBlend: There isn't much call for designing frameworks around a desire to lose precision. –  Will May 12 at 13:01
    
Fair point. Going forward what about BigInteger in C# 4.0? –  CodeBlend May 12 at 13:07
    
@CodeBlend: You would still lose precision because you are chopping off the decimal values of a number. Not sure what you're getting at. –  Will May 12 at 15:02

I think System.Math.Truncate is what you're looking for.

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Depends on what you're doing.

For instance:

//bankers' rounding - midpoint goes to nearest even
GetIntPart(2.5) >> 2
GetIntPart(5.5) >> 6
GetIntPart(-6.5) >> -6

or

//arithmetic rounding - midpoint goes away from zero
GetIntPart(2.5) >> 3
GetIntPart(5.5) >> 6
GetIntPart(-6.5) >> -7

The default is always the former, which can be a surprise but makes very good sense.

Your explicit cast will do:

int intPart = (int)343564564.5
// intPart will be 343564564

int intPart = (int)343564565.5
// intPart will be 343564566

From the way you've worded the question it sounds like this isn't what you want - you want to floor it every time.

I would do:

Math.Floor(Math.Abs(number));

Also check the size of your decimal - they can be quite big, so you may need to use a long.

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(long)Decimal.MaxValue overflows. –  Will Jan 26 '09 at 14:12
    
Fair point - I guess that's why Math.Truncate(decimal) returns decimal. –  Keith Jan 26 '09 at 22:44

You just need to cast it, as such:

int intPart = (int)343564564.4342

If you still want to use it as a decimal in later calculations, then Math.Truncate (or possibly Math.Floor if you want a certain behaviour for negative numbers) is the function you want.

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This is wrong wrong wrong. If the result is greater than what an Int32 can hold, it will either throw an exception or (even worse!!!) silently overflow and wrap back around, giving you a completely incorrect result without you even knowing about it. –  Will Jan 26 '09 at 13:22
    
No, it's not wrong. It many not be valid for very large decimals/floating point values, but it is perfectly fine for most situations. Numbers are very often constrained to be low enough when coding, so this need not be a problem. Also, I provided a Math.Truncate solution that works for all values. –  Noldorin Jan 26 '09 at 13:34
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I see why you're pissed at me. The fact is that your answer is wrong. You're telling him to take a chance on it not breaking because, hey, lots of numbers are small. Its a foolish risk to take. You should edit your answer and remove everything but Math.Truncate as its the only correct part. –  Will Jan 26 '09 at 18:38
    
I simply made an assumption that the OP would be dealing with numbers smaller than the maximum value of an int. I admit this was a wrong assumption, having seen the edited question, though it was not apparent at the time. Regardless, your initial inflammatory comment was hardly necessary. –  Noldorin Jan 27 '09 at 17:33
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Indeed that would be wrong if I intended to give a misleading answer. As it were, I was simply trying to help. If I am guilty of slightly misunderstanding or not fully appreciating the question, that's fair enough - it's no crime. So why are we arguing now? We all agree Truncate is the right answer. –  Noldorin Jan 29 '09 at 12:30

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