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I'm doing basic random number generation using this Shared Function:

Public Shared Function RandomNumber(ByVal MaxNumber As Integer, Optional ByVal MinNumber As Integer = 0) As Integer

    'initialize random number generator
        Dim r As New Random(Date.Now.Ticks And &HFFFF)

        If MinNumber > MaxNumber Then
            Dim t As Integer = MinNumber
            MinNumber = MaxNumber
            MaxNumber = t
        End If

        Return r.Next(MinNumber, MaxNumber)

End Function

Called like this: dim x as integer = Random(2100000000)

Very simple, and the seed value comes straight from a MS example.

HERE'S THE PROBLEM: I'm getting duplicate numbers on occasion, but always created at times that are usually at least 5 or 10 minutes apart. I can see if I was calling the function multiple times per second or millisecond, because that'd kind of "breaks" the seed. But these are showing up at extended time spans. What else could be causing this?

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4 Answers 4

up vote 2 down vote accepted

Duplicate seed issue?

It might be better defining r as static so that it is initialised once when first invoked. Refer to this answer Random Int in VB.Net

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Thanks I'm trying this approach. –  Kane Jeeves Aug 2 '12 at 14:11
    
Worked like a champ. Previous runs that were producing around 15 duplicates per 1000 now produce 0! –  Kane Jeeves Aug 2 '12 at 18:32

Q: What else could be causing this?

A: It could be happening purely by random. Random numbers are just that: random. At any point in time, whether its seconds or hours away from another point in time, its just as likely for a number to appear as any other number. There is no guarantee that a number won't be repeated.

On the other hand, it looks like your seed value is only on the order of 16 bits. And that's like a total of 65,536 possibilities. There's 10,000 ticks in a millisecond, so ever 6.5 milliseconds you have the possibility of reusing the same seed.

It's not at all clear whether the VB Random is using some other kind of entropy beyond that seed or not. (But gathering entropy for inclusion would slow down the initialization, so it may not be, as a performance consideration.)

According the docs, creating two Random objects using the same seed value results in Random objects that create duplicate sequences of unique numbers.

http://msdn.microsoft.com/en-us/library/ctssatww.aspx


I think that answers the question why it is happening.

I guess the next question is why do you need to instantiate a new Random object? If you need multiple objects, then instantiating several of them, but making sure you are using a different seed value for each one would be one approach.

But before you go there, I recommend you consider using just one Random. Calls to get random numbers can be serviced from an existing Random, rather than creating a new one every time you need a random number.

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+1, for the detailed explanation. –  Cylian Aug 2 '12 at 9:59
    
I'm going to try the Static approach below. How does the SEED work though? I thought it would determine the starting point for a number but not necessarily the resulting #. Using ticks, as you described, seems like you'd only ever get 65k possible random integers all greater than 65535. Or is that not how it works? –  Kane Jeeves Aug 2 '12 at 12:19
    
@Kane: Your understanding is partially correct. The seed and the algorithm together determine both the first "random" number returned, AND the subsequent "random" numbers returned. The documentation says that two Random using the SAME seed value will generate the SAME sequence of "random" numbers. –  spencer7593 Aug 2 '12 at 15:32

The Random constructor takes an Integer as its parameter which is 32-bits. As spencer7593 said, with only 16 bits, you're repeating the sequence every 6.5ms. Try:

Dim r As New Random(Date.Now.Ticks And &HFFFFFFFF)

However, this will do the same thing:

Dim r As New Random()

Better yet, don't create a new Random object each time:

Private Static r As New Random()  
Public Shared Function RandomNumber(MaxNumber As Integer, Optional MinNumber As Integer = 0) As Integer  
    ...
    Return r.Next(MinNumber, MaxNumber)  
End Function  
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+1 Good answer... not creating a new Random each time is the way to go. –  spencer7593 Aug 2 '12 at 14:42

Try it another way:

Public Function RandomNumber2(ByVal MaxNumber As Integer, Optional ByVal MinNumber As Integer = 0) As Integer
    ' Initialize the random-number generator.
    Randomize()
    ' Generate random value between MaxNumber and MinNumber.
    Return CInt(Int((MaxNumber * Rnd()) + MinNumber))
End Function

See Randomize Function (Visual Basic) for more details. Hope this helps.

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