3

As RNGCryptoServiceProvider is "safer" (produces high-quality random numbers) than Random() I felt for using it. Performance is not an issue. But, instead of reading the last digit, and somehow decide when to add a 0 or 1 before it.. Is there a better (more accurate) way?

byte[] data = new byte[4];
rng.GetBytes(data);
int value = BitConverter.ToInt32(data, 0);
Console.WriteLine(value);
  • 1
    "Safer"? What does that mean? An APC is safer than my car, but I don't think it's worth it going to work with one. – Jon May 9 '13 at 12:05
  • Produces better random numbers – Half_Baked May 9 '13 at 12:07
  • "Better" in what sense? – Dan Puzey May 9 '13 at 12:08
  • "Better" is not a scientific term either. It produces cryptographically secure random numbers. If you are not using them for crypto that is immaterial. Also, by modifying the numbers yourself you are in effect destroying their crypto-strength property. So what do you gain? – Jon May 9 '13 at 12:08
  • 2
    @Jon System.Random isn't ideal even for non cryptographic numbers. It's difficult to seed, it has significant biases in some situations,... – CodesInChaos May 9 '13 at 12:11
8

You can use the modulo operator (%). This leads to slightly biased results, but with an 8 byte input the bias is quite small. Much smaller than the bias System.Random has.

byte[] data = new byte[8];
rng.GetBytes(data);
ulong value = BitConverter.ToUInt64(data, 0);
result = (int)(value%15+1);

Or if you want perfectly uniform numbers:

byte[] data = new byte[8];
ulong value;
do
{
    rng.GetBytes(data);
    value = BitConverter.ToUInt64(data, 0);
} while(value==0);
result = (int)(value%15+1);
  • To be clear, though, it is possible to get a perfectly unbiased uniform distribution - by observing that 2^64 % 15 is 1, and thus if you discard and reroll if you get exactly 0 you end up with an exact multiple of 15 values you can roll left - perfectly divisible. – Patashu May 9 '13 at 12:12
  • Ah, that was nice! I'm guessing it would still produce better quality random numbers than using Random() – Half_Baked May 9 '13 at 12:12
  • @Patashu So throw / ignore result if it's exactly 0? – Half_Baked May 9 '13 at 12:14
  • @Half_Baked Simply reject the number and try again. – CodesInChaos May 9 '13 at 12:17
  • @CodesInChaos Thanks man! Really appreciate you taking the time to write the code example! – Half_Baked May 9 '13 at 12:19
0

It's easy:

static int getnum15(RNGCryptoServiceProvider RngCsp)
{
    byte[] p=new byte[1];
    do {
        RngCsp.GetBytes(p);
    } while (p[0]==255);
    return(p[0]%15);
}

because 256 mod 15=1. Then

RNGCryptoServiceProvider rngCsp=new RNGCryptoServiceProvider();
for (int i=0;i<30;i++)
    Console.WriteLine(getnum15(rngCsp));
-2

There is no way to make the RNGCryptoServiceProvider give you numbers, because it is not intended for arithmetics. In cryptography, you work with words and bytes. If want a different RNG for arithmetic purposes, pick a different library.

  • 1
    Even in cryptography you sometimes need numbers from 0 to n-1. For example when creating random alphanumeric tokens. Personally I always use a crypto grade PRNG, even for numerical work. – CodesInChaos May 9 '13 at 12:26

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