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I would like to use RNGCryptoServiceProvider as my source of random numbers. As it only can output them as an array of byte values how can I convert them to 0 to 1 double value while preserving uniformity of results?

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3 Answers 3

up vote 10 down vote accepted
byte[] result = new byte[8];
rng.GetBytes(result);
return (double)BitConverter.ToUInt64(result,0) / ulong.MaxValue;
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My brain can't handle simple math today. That's exactly what I was trying to do. +1 to you. –  Jon B Dec 31 '08 at 18:05
    
Yeah this is much better... The situation with 1.0/value is horrible... You only need a double value > 2 before you are already halfway from 1 to 0. There are many more doubles from 2..double.Max than there is from 0..2. –  Michael Bray Dec 31 '08 at 18:09
    
@Micheal: You were right. I did notice that 1/x might be satisfied by numbers more than Max which will harm the distribution. –  Mehrdad Afshari Dec 31 '08 at 18:11
    
Thank you Mehrdad! Works like a charm! –  Kamil Zadora Dec 31 '08 at 18:40

Use BitConverter to convert a sequence of random bytes to a Double:

byte[] random_bytes = new byte[8];  // BitConverter will expect an 8-byte array
new RNGCryptoServiceProvider().GetBytes(random_bytes);

double my_random_double = BitConverter.ToDouble(random_bytes, 0);
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See my comment to Michael's post. May result in NaN, -Infinity, etc. –  Jon B Dec 31 '08 at 17:56
    
Thank you but results would be very ununiform, with their denisty increasing towards 0 and no chance to get anything between 0.5 and 1 –  Kamil Zadora Dec 31 '08 at 18:43

You can use the BitConverter.ToDouble(...) method. It takes in a byte array and will return a Double. Thre are corresponding methods for most of the other primitive types, as well as a method to go from the primitives to a byte array.

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There are special cases for a double (like NaN) that you'd want to avoid. –  Jon B Dec 31 '08 at 17:50
    
-0 Jon is right. The worse thing is the number is not between 0 and 1. –  Mehrdad Afshari Dec 31 '08 at 17:55
    
Try this: BitConverter.GetBytes(double.NaN). Returns and 8 byte array ending in 248, 255. –  Jon B Dec 31 '08 at 17:56

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