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First off, here is what I have so far:

Option Explicit

Dim y As Variant
Dim yforx As Variant
Dim yfork As Variant
Dim ynew As Variant
Dim ymin As Variant
Dim x As Variant
Dim xmin As Variant
Dim k As Variant
Dim kmin As Variant
Dim s As Variant
Dim Z As Variant
Dim Track As Variant


Sub PracticeProgram()

'Selects the right sheet
Sheets("PracticeProgram").Select

'y = k ^ 2 * (x ^ 2 + 2 * x * k - 6) / (x + k) ^ 2

'these are the bounds we are stepping through
Track = 0
x = 1
xmin = 1
k = 1
kmin = 1
y = 100000000
yforx = 100000
yfork = 1000000000

Do
    y = 100000000
    For x = 0 To 1000 Step 0.1
        ynew = kmin ^ 2 * (x ^ 2 + 2 * x * kmin - 6) / (x + kmin) ^ 2

        'This checks the new y-value against an absurdly high y-value we know is wrong. if it is less than this y-value, we keep the x-value that corresponds with it.
        If ynew < y Then
            xmin = x
            y = ynew
            yforx = y
            xmin = Application.Evaluate("=Round(" & xmin & ", 3)")
        Else
        End If

    Next
  MsgBox (yforx)


    For k = 0 To 1000 Step 0.1
        y = k ^ 2 * (xmin ^ 2 + 2 * xmin * k - 6) / (xmin + k) ^ 2
        If ynew < y Then
            kmin = k
            y = ynew
            yfork = y
            kmin = Application.Evaluate("=Round(" & kmin & ",3)")
        Else
        End If
        Next

    MsgBox (yfork)

Loop Until (Abs(yforx - yfork) < 10)

End Sub

This program is supposed to find the values of x and k in order to minimize the value of y. This is a practice for a much more complicated program that will use this same concept. In my actual program y, k, and x will all be greater than zero no matter what, but since it was hard to think of a simple equation whose results would be in the shape of a parabola opening up, I decided to allow negative answers for this practice program.

Basically, it should bounce back and forth between the equations finding the ideal values for x and k until finally it has a minimal answer for y using ideal answers for both x and k. I'm not sure what the actual answer is, so I'm letting it stop within a range of 10. If it works, I'll make it smaller, but I don't want the program going for forever, just in case.

MY PROBLEM: I keep getting overflow errors! I'm trying to round the values for xmin and kmin to three figures after the decimal, but it doesn't seem to be helping. Am I using them wrong? Can someone help me get this program working?

share|improve this question
    
VBA has a Round function. Why are you using Application.Evaluate? –  Zev Spitz Dec 20 '12 at 1:16
    
    
It's perhaps a little clearer to use Application.WorksheetFunction.Round –  Zev Spitz Dec 20 '12 at 1:20
    
Have you considered using Solver for this? It can be automated using VBA. –  Tim Williams Dec 20 '12 at 1:21
    
I would use the solver, but I need to evaluate this huge series using this basic idea, and I can't use the solver for that. So this is more of a proof of concept program. –  TheTreeMan Dec 20 '12 at 1:33
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1 Answer

up vote 3 down vote accepted

You're doing a division by zero. xmin = 0, k = 0, (xmin + k) ^ 2 = 0. (I'm not sure why it isn't reporting division by zero.)

A suggestion: use the Locals pane to see the value of local variables. You can also use the Watch pane to see the value of expressions you want to monitor.

share|improve this answer
    
I got a divide by zero error when I stepped from -1000 to positive 1000. But I changed it to -100 and it went away, so I don't think that's the issue, but I could be wrong. I set the values before the do while loop in order to prevent that from happening as well. But I think if it were a divide by zero error, it would tell me, since that is a specific error. Instead it's giving me an overflow error when I put my rounding expressions as comments, and data mismatch errors when I don't put them as comments. I had no idea about the Locals and Watch pane! Very useful. –  TheTreeMan Dec 20 '12 at 1:06
    
You may have set xmin before the Do..While but it's being changed in the first For loop. You have to look at the values at the second For loop, where the error is actually occurring. The values I listed in my post are the values at that point in the code. Setting xmin = 1 in the Immediate pane allowed the code to continue. –  Zev Spitz Dec 20 '12 at 1:08
    
Where do you ever step from -1000 to 10000? –  Zev Spitz Dec 20 '12 at 1:15
    
Sorry, I forgot that I changed it to 0 to 1000 to simplify things! So can I fix this by having it step starting at one instead of zero? –  TheTreeMan Dec 20 '12 at 1:35
    
In the second For loop? For k = 1 To 1000 Step 0.1? Yes, if that's what you want to do. –  Zev Spitz Dec 20 '12 at 1:53
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