Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have following code in perl, that generates random values until the amount of values is reached. The Hashtable always store the random values at the same "place", so the hashtable has the right size when engough values are stored

while ( (keys( %unique_regex )) <= $amount_regex){
    $unique_regex{ $pass->randregex($regex) } = '1';
}

Now I want to do the same in vb.net with a dictionary, but i have to set the key, so the values are more than once in my hashtable/dict.

 Dim myDict As New Dictionary(Of Integer, String)
 myDict.Add(0, CStr(Math.Round((((Rnd() Mod 3) * ((input_zufallszahl_obergrenze_1.Value) - input_zufallszahl_untergrenze_1.Value)) + ((input_zufallszahl_untergrenze_1.Value))), 0)))


 Dim tmphashcounter As Integer = 1
 While (myDict.Count <= array_integerzahlen.GetLength(0))

     myDict.Add(tmphashcounter, CStr(Math.Round((((Rnd() Mod 3) * ((input_zufallszahl_obergrenze_1.Value) - input_zufallszahl_untergrenze_1.Value)) + ((input_zufallszahl_untergrenze_1.Value))), 0)))
     tmphashcounter = tmphashcounter + 1

 End While
share|improve this question
    
It would be very helpful for non-German people if you’d take the care of translating your code to proper English before posting it here. In fact, this is one of the reasons why code should be exclusively written in English. –  Konrad Rudolph Nov 3 '11 at 11:42

2 Answers 2

up vote 2 down vote accepted

I should think that the cognate would be like this:

While myDict.Count <= array_integerzahlen.GetLength(0)
    randRegex = pass.randRegex( regex )
    If Not myDict.ContainsKey( randRegex )
        myDict.Add( randRegex, 1 )
    End If
End While

Of course, since you indicate that it's .NET, you simply have to use the indexing property. I should think that this might work:

While myDict.Count <= array_integerzahlen.GetLength(0)
    myDict( pass.randRegex( regex )) = True
End While
share|improve this answer
    
GetLength(0) => Length. Also, it’s weird that this field should be an array when it isn’t in the Perl code but this isn’t the only thing that’s weird in this code. –  Konrad Rudolph Nov 3 '11 at 11:39

In .NET you wouldn’t use a dictionary for this, you’d use a HashSet:

Dim mySet As New HashSet(Of Integer)()
Dim lower = input_zufallszahl_untergrenze_1.Value
Dim upper = input_zufallszahl_obergrenze_1.Value
Dim rng As New Random()

Do While mySet.Count < DesiredSize
    mySet.Add(rng.Next(lower, upper))
Loop

Your random-number generation is also seriously flawed. Besides the obvious flaws (what’s CStr doing there?) you should probably eschew the use of Rnd in favour of a proper random-number generator, and generating numbers via Mod 3 introduces a heavy bias in the random numbers – they are no longer even remotely uniformly distributed. This is what the Random.Next method is there for.

Notice that the actual code for adding the random numbers is only three lines long – exactly like your Perl code.

share|improve this answer
    
what would be a better algorithm for a random value? mod 1337 ? or another high prime number?. –  Tyzak Nov 3 '11 at 15:25
    
cstr converts the integer value into a string, because my dict wants a string-value :> –  Tyzak Nov 3 '11 at 15:26
    
@Tyzak Mod is always bad due to the way it works. See my code for a better way. As for CStr, why do you want string values? Your original code is storing integers in the dictionary, and that sounds right. Don’t store numbers as strings. String is for text data only. Only convert data to string for the purpose of displaying it, and then as late as possible. Always do your calculations on the real type. –  Konrad Rudolph Nov 3 '11 at 17:05
    
"Heavy bias"??? If a 32-bit number is returned, the odds are 1,431,655,766 : 1,431,655,765 : 1,431,655,765 –  ikegami Nov 3 '11 at 19:15
    
@ikegami They aren’t. Classical PRNGs have known weaknesses in the distribution of their lower bits. The skew will be much more pronounced. –  Konrad Rudolph Nov 4 '11 at 7:16

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.