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I need help in constructing a n x n matrix, where n is equal to the number of remaining stocks at time t for t = 0, ..., 10. Initially, I have in total 10 stocks, which I will discard one by one as time goes by.

Each element of the matrix will be equal to sigma(i) x sigma (j) x rho , where sigma(i)=sigma(j) = 0.25 and rho=0.2

And the last thing I want to do is to multiply that matrix by the transpose of that matrix

I am really confused where and how to start, and really thankful for your help

Sub Matrix() 
'Sigmai 'Sigmaj 'Rho 
    Dim Sigmai, Sigmaj, Rho As Single 
    Sigmai = Range("b12").Value 
    Sigmaj = Range("b13").Value 
    Rho = Range("b14").Value 
    Dim matrixelement(10, 10) As Single 
    For n = 1 To 10 
        For m = 1 To 10 
            matrixelement(n, m) = Sigmai * Sigmaj * Rho 
            Cells(n, m) = matrixelement(n, m) 
        Next m 
    Next n 
End Sub 
share|improve this question
    
please can you add some screen prints of your existing data structure and also an example of the table you are aiming to get? – whytheq Jul 14 '12 at 14:05
    
have you been playing with pivot tables at all to find a solution? – whytheq Jul 14 '12 at 15:20
    
From your description you have a 10x10 matrix with all values equal. Not sure that's what you want... – Tim Williams Jul 14 '12 at 19:15
    
to get a transposed version of a table it might be good to use the OFFSET function – whytheq Jul 14 '12 at 20:30
    
Sub Matrix() 'Sigmai 'Sigmaj 'Rho Dim Sigmai, Sigmaj, Rho As Single Sigmai = Range("b12").Value Sigmaj = Range("b13").Value Rho = Range("b14").Value Dim matrixelement(10, 10) As Single For n = 1 To 10 For m = 1 To 10 matrixelement(n, m) = Sigmai * Sigmaj * Rho Cells(n, m) = matrixelement(n, m) Next m Next n End Sub – user1525225 Jul 15 '12 at 4:14

There are a number of basic problems with your code, which you should clear up before progressing. See comments in code below:

Sub Matrix()
    ' declare ALL your variables
    Dim n As Long, m As Long
    Dim ws As Worksheet

    ' specify type for all variables, otherwise they will be Variant
    Dim Sigmai As Single, Sigmaj As Single, Rho As Single

    ' Explicitly reference the required sheet
    Set ws = Sheet1 ' or ActiveSheet or whatever

    ' qualify range references with worksheet
    Sigmai = ws.Range("b12").Value
    Sigmaj = ws.Range("b13").Value
    Rho = ws.Range("b14").Value

    ' Specify required lower bound. Default base is 0
    Dim matrixelement(1 To 10, 1 To 10) As Single
    For n = 1 To 10
        For m = 1 To 10
            matrixelement(n, m) = Sigmai * Sigmaj * Rho
        Next m
    Next n

    ' return result to sheet in one go
    ws.Range("A1:J10") = matrixelement

End Sub

For the

And the last thing I want to do is to multiply that matrix by the transpose of that matrix

part, I not sure what you are after exactly, but MMULT may be usefull, eg

ws.Range("L1:U10") = Application.WorksheetFunction.MMult(matrixelement, matrixelement)
share|improve this answer
    
+1 lovely code. ws.Range("A1:J10") = matrixelement is slick – whytheq Jul 15 '12 at 20:34

You could just pass go on the array and put the result straight to the worksheet. A worksheet if effectively just one big 2 dimensional array.

Cannibalising Chris Neilsen's code:

Sub Matrix()
' declare ALL your variables
Dim n As Long, m As Long
Dim ws As Excel.Worksheet

' specify type for all variables, otherwise they will be Variant
Dim Sigmai As Single, Sigmaj As Single, Rho As Single

' Explicitly reference the required sheet
Set ws = Sheet1 ' or ActiveSheet or whatever

' qualify range references with worksheet
Sigmai = ws.Range("b12").Value
Sigmaj = ws.Range("b13").Value
Rho = ws.Range("b14").Value

For n = 1 To 10
    For m = 1 To 10
        ws.cells(n,m).value = Sigmai * Sigmaj * Rho
    Next m
Next n

End Sub

a couple of things I don't understand:

  • if b12/b13/b14 are all constants then surely every number in the matrix will be the same ?!
  • if every number is the same then multiplying by the matrix transposed will just have the square of every number in each cell of the matrix ?!
share|improve this answer
1  
The reason to calculate into an array is efficiency: touching the sheet inside a loop is much slower than calculating into an array. Posting code like this just encourages bad practice. That said, for a small number of cells, the difference will not be noticable. – chris neilsen Jul 15 '12 at 23:44
    
+1 chris ... although "Posting code like this just encourages bad practice." is a little harsh! – whytheq Jul 16 '12 at 6:37

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