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I have situation like that, If number is less than 1000, 20 come up 1001-2000 ,40 come up 2001-3000, 60 come up in another text box

I am looking for a proper formula.

If number <= 1000 Then
    Return 20
ElseIf number <= 2000 Then
    Return 40
ElseIf number <= 3000 Then
    Return 60
ElseIf number <= 4000 Then
    Return 80
ElseIf number <= 5000 Then
    Return 100
ElseIf number <= 6000 Then
    Return 120
ElseIf number <= 7000 Then
    Return 140
ElseIf number <= 8000 Then
    Return 160
ElseIf number <= 9000 Then
    Return 180
ElseIf number <= 10000 Then
    Return 200
ElseIf number <= 11000 Then
    Return 220
ElseIf number <= 12000 Then
    Return 240
ElseIf number <= 13000 Then
    Return 260
ElseIf number <= 14000 Then
    Return 280
ElseIf number <= 15000 Then
    Return 300
End If
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closed as too localized by burning_LEGION, Griwes, James, KillianDS, Asif Mushtaq Oct 10 '12 at 11:32

This question is unlikely to help any future visitors; it is only relevant to a small geographic area, a specific moment in time, or an extraordinarily narrow situation that is not generally applicable to the worldwide audience of the internet. For help making this question more broadly applicable, visit the help center. If this question can be reworded to fit the rules in the help center, please edit the question.

    
Should the last Return be 240 not 220? –  Curt Oct 10 '12 at 10:27
    
@Irvin For every case does your result increase by 20? –  freebird Oct 10 '12 at 10:27
    
@raman a switch statement is not going to change anything here. –  James Oct 10 '12 at 10:28
    
@raman sorry its 240 –  Irvin Dua Oct 10 '12 at 10:29
2  
Why does the returned result go back to 40 when number < 5000? –  Jon Egerton Oct 10 '12 at 10:29

4 Answers 4

up vote 1 down vote accepted

Here is your answer:

VB.Net:

If (number Mod 1000 = 0)
    result = 20 * (number / 1000)
Else
    result = 20 * (number / 1000 + 1)

C#:

if (number % 1000 == 0)
    result = 20 * (number / 1000);
else
    result = 20 * (number / 1000 + 1);
share|improve this answer
    
The VB modulo operator is Mod not %. But anyway Jon Egerton's anwer is much shorter –  MarkJ Oct 10 '12 at 11:05
    
Its C# based syntax, i suspect one case is missing in Jon's answer, number % 1000 == 0, not sure as little weak in VB.Net –  FSX Oct 10 '12 at 11:08

You could use a custom Range class and a Dicitonary to store the range+value:

Function GetValue(number As Int32) As Int32
    Dim rangeValues = New Dictionary(Of Range(Of Int32), Int32)
    rangeValues.Add(New Range(Of Int32)(1000), 20)
    rangeValues.Add(New Range(Of Int32)(1001, 2000), 40)
    rangeValues.Add(New Range(Of Int32)(2001, 3000), 60)
    rangeValues.Add(New Range(Of Int32)(3001, 4000), 80)
    rangeValues.Add(New Range(Of Int32)(4001, 5000), 40)
    rangeValues.Add(New Range(Of Int32)(5001, 6000), 40)
    rangeValues.Add(New Range(Of Int32)(6001, 7000), 60)
    rangeValues.Add(New Range(Of Int32)(7001, 8000), 80)
    rangeValues.Add(New Range(Of Int32)(8001, 9000), 100)
    rangeValues.Add(New Range(Of Int32)(9001, 10000), 120)
    rangeValues.Add(New Range(Of Int32)(10001, 11000), 140)
    rangeValues.Add(New Range(Of Int32)(11001, 12000), 160)
    rangeValues.Add(New Range(Of Int32)(12001, 13000), 180)
    rangeValues.Add(New Range(Of Int32)(13001, 14000), 200)
    rangeValues.Add(New Range(Of Int32)(14001, 15000), 220)

    Dim firstMatchingRange = rangeValues.Keys.
        FirstOrDefault(Function(r) r.Minimum <= number AndAlso r.Maximum >= number)
    If firstMatchingRange IsNot Nothing Then
        Return rangeValues(firstMatchingRange)
    Else
        Throw New ArgumentException("invalid number", "number")
    End If
End Function

Here's the Range class

Public Class Range(Of T As IComparable(Of T))
    Public Sub New()
    End Sub
    Public Sub New(minimum As T, maximum As T)
        minimum = minimum
        maximum = maximum
    End Sub
    Public Sub New(maximum As T)
        maximum = maximum
    End Sub

    ''' <summary>
    ''' Minimum value of the range
    ''' </summary>
    Public Property Minimum() As T
        Get
            Return m_Minimum
        End Get
        Set(value As T)
            m_Minimum = value
        End Set
    End Property
    Private m_Minimum As T

    ''' <summary>
    ''' Maximum value of the range
    ''' </summary>
    Public Property Maximum() As T
        Get
            Return m_Maximum
        End Get
        Set(value As T)
            m_Maximum = value
        End Set
    End Property
    Private m_Maximum As T

    ''' <summary>
    ''' Presents the Range in readable format
    ''' </summary>
    ''' <returns>String representation of the Range</returns>
    Public Overrides Function ToString() As String
        Return [String].Format("[{0} - {1}]", Minimum, Maximum)
    End Function

    ''' <summary>
    ''' Determines if the range is valid
    ''' </summary>
    ''' <returns>True if range is valid, else false</returns>
    Public Function IsValid() As [Boolean]
        Return Minimum.CompareTo(Maximum) <= 0
    End Function

    ''' <summary>
    ''' Determines if the provided value is inside the range
    ''' </summary>
    ''' <param name="value">The value to test</param>
    ''' <returns>True if the value is inside Range, else false</returns>
    Public Function ContainsValue(value As T) As [Boolean]
        Return (Minimum.CompareTo(value) <= 0) AndAlso (value.CompareTo(Maximum) <= 0)
    End Function

    ''' <summary>
    ''' Determines if this Range is inside the bounds of another range
    ''' </summary>
    ''' <param name="Range">The parent range to test on</param>
    ''' <returns>True if range is inclusive, else false</returns>
    Public Function IsInsideRange(Range As Range(Of T)) As [Boolean]
        Return Me.IsValid() AndAlso Range.IsValid() AndAlso Range.ContainsValue(Me.Minimum) AndAlso Range.ContainsValue(Me.Maximum)
    End Function

    ''' <summary>
    ''' Determines if another range is inside the bounds of this range
    ''' </summary>
    ''' <param name="Range">The child range to test</param>
    ''' <returns>True if range is inside, else false</returns>
    Public Function ContainsRange(Range As Range(Of T)) As [Boolean]
        Return Me.IsValid() AndAlso Range.IsValid() AndAlso Me.ContainsValue(Range.Minimum) AndAlso Me.ContainsValue(Range.Maximum)
    End Function
End Class
share|improve this answer

I can't make it any shorter than:

Return ((number \ 1000) + 1) * 20
share|improve this answer
    
This won't work. if the number is 1, 20 should be returned. –  Curt Oct 10 '12 at 10:28
    
you wrong, it's not linear dependence –  burning_LEGION Oct 10 '12 at 10:28
    
Yes - just needed to handle the boudary condition. –  Jon Egerton Oct 10 '12 at 10:29
    
ElseIf number <= 5000 Then Return 40 –  R. Martinho Fernandes Oct 10 '12 at 10:30
    
ElseIf number <= 15000 Then Return 240 (15000/1000-1)*20!=240 –  burning_LEGION Oct 10 '12 at 10:30

First you need to round the number up to the nearest thousand so we get consistent results.

(Math.Ceiling(number/1000)*1000)

Then assuming you mean to increment by 20 each time (I've seen comments referring to incorrect values), you can divide by 50.

Therefore:

Return (Math.Ceiling(number/1000)*1000) / 50
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