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I need to generate random integer between 1 and n (where n is a positive whole number) to use for a unit test. I don't need something overly complicated to ensure true randomness - just an old fashioned random number.

How would I do that?

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7 Answers

up vote 23 down vote accepted

To get a random integer value between 1 and N (inclusive) you can use the following.

CInt(Math.Ceiling(Rnd() * n))
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3  
"between 1 and N (inclusive)" wrong, will return a value between 0 and N. Math.Ceiling(0) is 0. –  Qtax Jul 18 '12 at 21:09
2  
Rnd() can return 0. If this happens then even when n > 0, the result would be 0. Thus this would give a very nasty bug especially because it is so rare. if you want buggy code, then use this. MS documentation reads: "The Rnd function returns a value less than 1, but greater than or equal to zero." msdn.microsoft.com/en-us/library/f7s023d2(v=vs.90).aspx –  Shawn Kovac Jan 30 at 15:10
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If you are using Joseph's answer which is a great answer, and you run these back to back like this:

dim i = GetRandom(1, 1715)
dim o = GetRandom(1, 1715)

Then the result could come back the same over and over because it processes the call so quickly. This may not have been an issue in '08, but since the processors are much faster today, the function doesn't allow the system clock enough time to change prior to making the second call.

Since the System.Random() function is based on the system clock, we need to allow enough time for it to change prior to the next call. One way of accomplishing this is to pause the current thread for 1 millisecond. See example below:

Public Function GetRandom(ByVal min as Integer, ByVal max as Integer) as Integer
    Static staticRandomGenerator As New System.Random
    max += 1
    Return staticRandomGenerator.Next(If(min > max, max, min), If(min > max, min, max))
End Function
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1  
if you want a bug, then use this code. MS made their Next() method rather odd. the Min parameter is the inclusive minimum as one would expect, but the Max parameter is the exclusive minimum as one would NOT expect. in other words, if you pass min=1 and max=5 then your random numbers would be any of 1, 2, 3, or 4, but it would never include 5. –  Shawn Kovac Jan 30 at 15:26
    
@ShawnKovac Thank you for enlightening me about the .Next function not returning the Max number and the use of the static system.random object (although the name Min and Max are probably no longer appropriate since this is now just a range: A to B). I did a test, and the performance of the two are equal. Also, I use integer instead of int32 because it is currently bound to int32 (making them almost the same) and since I do a lot of work in SQL, I like the syntax and don't mind typing the 'e' before my 'tab.' (To each their own though.) ~Cheers –  Rogala Mar 21 at 19:16
    
thanks for caring to correct your code. you are well beyond many other people in that. Yes, Int32 and Integer produces the same effect, as far as i know, exactly the same. Except to me, Int32 is more clear, for people who don't know what size of Integer an 'Ingeger' is. That's the biggest reason i use Int32. But i understand it's totally a preference thing. –  Shawn Kovac Mar 27 at 16:06
    
I also like the shorter Int32 alias, and yes, with intellisence the typing is about equal. But i like more compact reading too. But when i code C#, i still like to use the more specific Int32 rather than its even shorter 'int' in case newbies are looking at my code, for other people's clarity sake. But to each his own. :) –  Shawn Kovac Mar 27 at 16:08
    
I just want to point out that your code will either bug out or throw an error if your max = Integer.MaxValue. Of course, this usually won't matter, but if you wanted to eliminate that potential issue, you can see my answer where i provided a solution to give the full range of random Int, if the user wanted to include Integer.MaxValue. Unfortunately, Microsoft just didn't make it easy to have very robust code for this when they implemented what i call an extremely quirky random function. Truly robust code is hard to come by. :( –  Shawn Kovac Mar 27 at 16:11
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Use System.Random:

Dim MyMin As Integer = 1, MyMax As Integer = 5, My1stRandomNumber As Integer, My2ndRandomNumber As Integer

' Create a random number generator
Dim Generator As System.Random = New System.Random()

' Get a random number >= MyMin and <= MyMax
My1stRandomNumber = Generator.Next(MyMin, MyMax + 1) ' Note: Next function returns numbers _less than_ max, so pass in max + 1 to include max as a possible value

' Get another random number (don't create a new generator, use the same one)
My2ndRandomNumber = Generator.Next(MyMin, MyMax + 1)
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Looks simpler with return New Random().Next(minValue,maxValue) –  SoMoS Feb 2 '10 at 10:25
2  
True. However, if the user wanted a sequence of random numbers (rather than just one), they would want to hold onto the Random reference. –  Joseph Sturtevant Feb 3 '10 at 0:01
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Change Dim Generator to Static Generator and you've got an instance you can hold onto (not a thread-safe one, but that's not going to matter in most realistic scenarios). –  Dan Tao Apr 20 '10 at 18:50
1  
it looks simpler, but this code is plain wrong. if you want a bug, then use this code. MS made their Next() method rather odd. the Min parameter is the inclusive minimum as one would expect, but the Max parameter is the exclusive minimum as one would NOT expect. in other words, if you pass min=1 and max=5 then your random numbers would be any of 1, 2, 3, or 4, but it would never include 5. –  Shawn Kovac Jan 30 at 15:15
    
@ShawnKovac - Good catch. I hadn't noticed the inclusive\exclusive mismatch between Random.Next's min & max parameters. Code sample updated. –  Joseph Sturtevant Feb 1 at 19:27
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All the answers so far have problems or bugs (plural, not just one). I will explain. But first I want to compliment Dan Tao's insight to use a static variable to remember the Generator variable so calling it multiple times will not repeat the same # over and over, plus he gave a very nice explanation. But his code suffered the same flaw that most others have, as i explain now.

MS made their Next() method rather odd. the Min parameter is the inclusive minimum as one would expect, but the Max parameter is the exclusive maximum as one would NOT expect. in other words, if you pass min=1 and max=5 then your random numbers would be any of 1, 2, 3, or 4, but it would never include 5. This is the first of two potential bugs in all code that uses Microsoft's Random.Next() method.

For a simple answer (but still with other possible but rare problems) then you'd need to use:

Private Function GenRandomInt(min As Int32, max As Int32) As Int32
    Static staticRandomGenerator As New System.Random
    Return staticRandomGenerator.Next(min, max + 1)
End Function

(I like to use Int32 rather than Integer because it makes it more clear how big the int is, plus it is shorter to type, but suit yourself.)

I see two potential problems with this method, but it will be suitable (and correct) for most uses. So if you want a simple solution, i believe this is correct.

The only 2 problems i see with this function is: 1: when Max = Int32.MaxValue so adding 1 creates a numeric overflow. altho, this would be rare, it is still a possibility. 2: when min > max + 1. when min = 10 and max = 5 then the Next function throws an error. this may be what you want. but it may not be either. or consider when min = 5 and max = 4. by adding 1, 5 is passed to the Next method, but it does not throw an error, when it really is an error, but Microsoft .NET code that i tested returns 5. so it really is not an 'exclusive' max when the max = the min. but when max < min for the Random.Next() function, then it throws an ArgumentOutOfRangeException. so Microsoft's implementation is really inconsistent and buggy too in this regard.

you may want to simply swap the numbers when min > max so no error is thrown, but it totally depends on what is desired. if you want an error on invalid values, then it is probably better to also throw the error when Microsoft's exclusive maximum (max + 1) in our code equals minimum, where MS fails to error in this case.

handling a work-around for when max = Int32.MaxValue is a little inconvenient, but i expect to post a thorough function which handles both these situations. and if you want different behavior than how i coded it, suit yourself. but be aware of these 2 issues.

Happy coding!

Edit: So i needed a random integer generator, and i decided to code it 'right'. So if anyone wants the full functionality, here's one that actually works. (But it doesn't win the simplest prize with only 2 lines of code. But it's not really complex either.)

''' <summary>
''' Generates a random Integer with any (inclusive) minimum or (inclusive) maximum values, with full range of Int32 values.
''' </summary>
''' <param name="inMin">Inclusive Minimum value. Lowest possible return value.</param>
''' <param name="inMax">Inclusive Maximum value. Highest possible return value.</param>
''' <returns></returns>
''' <remarks></remarks>
Private Function GenRandomInt(inMin As Int32, inMax As Int32) As Int32
    Static staticRandomGenerator As New System.Random
    If inMin > inMax Then Dim t = inMin : inMin = inMax : inMax = t
    If inMax < Int32.MaxValue Then Return staticRandomGenerator.Next(inMin, inMax + 1)
    ' now max = Int32.MaxValue, so we need to work around Microsoft's quirk of an exclusive max parameter.
    If inMin > Int32.MinValue Then Return staticRandomGenerator.Next(inMin - 1, inMax) + 1 ' okay, this was the easy one.
    ' now min and max give full range of integer, but Random.Next() does not give us an option for the full range of integer.
    ' so we need to use Random.NextBytes() to give us 4 random bytes, then convert that to our random int.
    Dim bytes(3) As Byte ' 4 bytes, 0 to 3
    staticRandomGenerator.NextBytes(bytes) ' 4 random bytes
    Return BitConverter.ToInt32(bytes, 0) ' return bytes converted to a random Int32
End Function
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Function xrand() As Long
        Dim r1 As Long = Now.Day & Now.Month & Now.Year & Now.Hour & Now.Minute & Now.Second & Now.Millisecond
        Dim RAND As Long = Math.Max(r1, r1 * 2)
        Return RAND
End Function

[BBOYSE] This its the best way, from scratch :P

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1  
this is horrible. it's not random at all. it's only a precomputed number based on the time. this would not exhibit any properties of a random number. plus it does not answer the question. the question was not how to generate any random number but one between 1 and a given value. –  Shawn Kovac Jan 30 at 15:33
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As has been pointed out many times, the suggestion to write code like this is problematic:

Public Function GetRandom(ByVal Min As Integer, ByVal Max As Integer) As Integer
    Dim Generator As System.Random = New System.Random()
    Return Generator.Next(Min, Max)
End Function

The reason is that the constructor for the Random class provides a default seed based on the system's clock. On most systems, this has limited granularity -- somewhere in the vicinity of 20 ms. So if you write the following code, you're going to get the same number a bunch of times in a row:

Dim randoms(1000) As Integer
For i As Integer = 0 to randoms.Length - 1
    randoms(i) = GetRandom(1, 100)
Next

The following code addresses this issue:

Public Function GetRandom(ByVal Min As Integer, ByVal Max As Integer) As Integer
    ' by making Generator static, we preserve the same instance '
    ' (i.e., do not create new instances with the same seed over and over) '
    ' between calls '
    Static Generator As System.Random = New System.Random()
    Return Generator.Next(Min, Max)
End Function

I threw together a simple program using both methods to generate 25 random integers between 1 and 100. Here's the output:

Non-static: 70 Static: 70
Non-static: 70 Static: 46
Non-static: 70 Static: 58
Non-static: 70 Static: 19
Non-static: 70 Static: 79
Non-static: 70 Static: 24
Non-static: 70 Static: 14
Non-static: 70 Static: 46
Non-static: 70 Static: 82
Non-static: 70 Static: 31
Non-static: 70 Static: 25
Non-static: 70 Static: 8
Non-static: 70 Static: 76
Non-static: 70 Static: 74
Non-static: 70 Static: 84
Non-static: 70 Static: 39
Non-static: 70 Static: 30
Non-static: 70 Static: 55
Non-static: 70 Static: 49
Non-static: 70 Static: 21
Non-static: 70 Static: 99
Non-static: 70 Static: 15
Non-static: 70 Static: 83
Non-static: 70 Static: 26
Non-static: 70 Static: 16
Non-static: 70 Static: 75
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i think this will never actually generate "100". it's between min and less than MaxValue actually (I think) –  Max Hodges Apr 11 '12 at 13:29
    
@maxhodges: Yeah, I think you're right. There's an unfortunate ambiguity in the word "between"; I don't know if the OP cares whether 100 is included or not. I didn't, personally; my answer was only intended to illustrate sharing a Random object among multiple function calls using the Static keyword. –  Dan Tao Apr 11 '12 at 13:56
    
I have found that I needed to reference this code more than once. Thank you! –  MonkeyDoug Jun 30 '13 at 17:53
    
i would +1 you for the Static insight, but the code is buggy. but kudos for that static insight! and i'd -1 you for a buggy answer. but they even out. –  Shawn Kovac Jan 30 at 15:24
1  
if you want a bug, then use this code. MS made their Next() method rather odd. the Min parameter is the inclusive minimum as one would expect, but the Max parameter is the exclusive minimum as one would NOT expect. in other words, if you pass min=1 and max=5 then your random numbers would be any of 1, 2, 3, or 4, but it would never include 5. –  Shawn Kovac Jan 30 at 15:24
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Public Function RandomNumber(ByVal n As Integer) As Integer
    'initialize random number generator
    Dim r As New Random(System.DateTime.Now.Millisecond)
    Return r.Next(1, n)
End Function
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1  
if you want bugs, then use this code. MS made their Next() method rather odd. the Min parameter is the inclusive minimum as one would expect, but the Max parameter is the exclusive maximum as one would NOT expect. in other words, if you pass min=1 and max=5 then your random numbers would be any of 1, 2, 3, or 4, but it would never include 5. –  Shawn Kovac Jan 30 at 16:31
1  
@ShawnKovac That's how most random number generators are implemented. –  Bill the Lizard Jan 30 at 17:53
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