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Hey all, quick question: How does a .NET decimal type get represented in binary in memory?

We all know how floating-point numbers are stored and the thusly the reasons for the inaccuracy thereof, but I can't find any information about decimal except the following:

  1. Apparently more accurate than floating-point numbers
  2. Takes 128 bits of memory
  3. 2^96 + sign range
  4. 28 (sometimes 29?) total significant digits in the number

Is there any way I can figure this out? The computer scientist in me demands the answer and after an hour of attempted research, I cannot find it. It seems like there's either a lot of wasted bits or I'm just picturing this wrong in my head. Can anyone shed some light on this please? Thanks.

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1 Answer 1

up vote 17 down vote accepted

Decimal.GetBits for the information you want.

Basically it's a 96 bit integer as the mantissa, plus a sign bit, plus an exponent to say how many decimal places to shift it to the right.

So to represent 3.261 you'd have a mantissa of 3261, a sign bit of 0 (i.e. positive), and an exponent of 3. Note that decimal isn't normalized (deliberately) so you can also represent 3.2610 by using a mantissa of 32610 and an exponent of 4, for example.

I have some more information in my article on decimal floating point.

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+1 fantastic answer, right to the point and rich with information. –  JoshD Sep 27 '10 at 6:15
    
@Jacob: No, that's clearly not true. Given that you can start with an integer and end up with (say) 0.1, that's obviously shifting right. If you could only shift to the left, you'd be able to represent 10, 100 etc - but not 0.1, 0.01 etc. In future, please wait for an "ack" before you change an answer's meaning significantly like this. See the documentation for decimal: msdn.microsoft.com/en-us/library/1k2e8atx.aspx - where the scaling factor is talked about as dividing the integer, which is equivalent to shifting it to the right. –  Jon Skeet Feb 13 '13 at 6:45
    
My apologies. To me it's more intuitive to think of it as shifting the decimal point to the left, but I see now that you're referring to "shifting" the mantissa. –  Jacob Feb 13 '13 at 15:59
    
From the book: «bits 16-23 (the low bits of the high 16-bit word) contain the exponent» – does this mean that the exponent has 8 bits and therefore it is possible to shift maximally 255 decimal places to the right? –  nalply Apr 21 '13 at 9:08
    
@nalply: 8 bits are effectively reserved for the exponent, but it has a limit placed on it so the range is actually only 0-29. –  Jon Skeet Apr 21 '13 at 9:22
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