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'm presently populating my array Securities with the following code:

Option Base 1
Securities = Array(Worksheets(3).Range("A8:A" & SymbolCount).Value)

This produces a 2-dimensional array where every address is (1...1,1...N). I want a 1-dimensional array (1...N).

How can I either (a) populate Securities as a 1-dimensional array, or, (b) efficiently strip Securities to a 1-dimensional array (I'm stuck at a with each loop).

share|improve this question

4 Answers 4

up vote 1 down vote accepted
Sub test2()
    Dim arTmp
    Dim securities()
    Dim counter As Long, i As Long
    arTmp = Range("a1").CurrentRegion
    counter = UBound(arTmp, 1)
    ReDim securities(1 To counter)
    For i = 1 To counter
        securities(i) = arTmp(i, 1)
    Next i
    MsgBox "done"
End Sub
share|improve this answer
    
Option (a) simply does not work. Proposed code should be quite fast anyway. –  iDevlop Oct 4 '11 at 14:25
    
Sorry, newish to VBA, could you explain line 5? –  Felix Oct 4 '11 at 14:37
    
As a general rule: in VBE, click on the keyword and press F1 to get help. Ubound(arTmp, 2) returns the Upper Bound of arTemp, in the 2d dimension, which is the column dimension. And now I understand your question: I may have done a mistake there... :-/ –  iDevlop Oct 4 '11 at 14:41
    
I edited line 5 and 8. –  iDevlop Oct 4 '11 at 14:44
    
I get a "subscript out of range" error for the UBound line. The line 5 reference was inquiring about the CurrentRegion line - why is that necessary? –  Felix Oct 4 '11 at 15:08

I know you already accepted an answer but here is simpler code for you:

If you are grabbing a singe row (with multiple columns) then use:

Securities = application.transpose(application.transpose _
             (Worksheets(3).Range("A8:A" & SymbolCount).Value))

If you are grabbing a single column (with multiple rows) then use:

Securities = application.transpose(Worksheets(3).Range("A8:A" & SymbolCount).Value)

So, basically you just transpose twice for rows and once for columns.

Update:

Large tables might not work for this solution (as noted in the comment below):

I used this solution in a large table, and I found that there is a limitation to this trick: Application.Transpose(Range("D6:D65541").Value) 'runs without error, but Application.Transpose(Range("D6:D65542").Value) 'run-time error 13 Type mismatch

share|improve this answer
2  
Agreed that this is by far the easiest way to convert a row of data into 1d array –  Pynner Jan 2 '12 at 4:17
    
@Jon49 - Great trick, but this behaviour seems pretty surprising. I would have expected to just get back the same 1xn array. Do you know where this is documented? I tried google to no avail... –  Emma May 28 '13 at 0:28
2  
@Emma, I don't recall where I picked that trick up. But all I am doing is changing a 1xn matrix to nx1 which is just an array of n units. Not sure why the behavior is built into Excel to work that way. Many things in Excel aren't documented very well, it's such a large program! –  Jon49 May 29 '13 at 22:53
    
I used this solution in a large table, and I found that there is a limitation to this trick: Application.Transpose(Range("D6:D65541").Value) 'runs without error, but Application.Transpose(Range("D6:D65542").Value) 'run-time error 13 Type mismatch –  Sponge Apr 29 at 20:22
    
Thanks, I'll update the solution. –  Jon49 Apr 30 at 18:59

If you read values from a single column into an array as you have it then I do think you will end up with an array that needs to be accessed using array(1, n) syntax.

Alternatively, you can loop through all cells in your data and add them into an array:

Sub ReadIntoArray()
    Dim myArray(), myData As Range, cl As Range, cnt As Integer, i As Integer
    Set myData = Worksheets(3).Range("A8:A" & SymbolCount) //Not sure how you get SymbolCount

    ReDim myArray(myData.Count)

    cnt = 0
    For Each cl In myData
        myArray(cnt) = cl
        cnt = cnt + 1
    Next cl

    For i = 0 To UBound(myArray) //Print out the values in the array as check...
        Debug.Print myArray(i)
    Next i
End Sub
share|improve this answer
    
Looping through cells is slower and less efficient than dumping them into a 2D array first. –  Issun Oct 6 '11 at 4:48
    
@Issun - I agree with you. From my understading if you read in a single column range as an array then it has to be accessed using array(1, n) notation whereas OP wanted to be able to use array(n) notation. –  Alex P Oct 6 '11 at 8:17
1  
Yep, that's correct. The fastest way to do this is to dump the entire range into a 2D array then convert it to a 1D array (I also posted a solution on how to do this). I've tested this many times, and it's much faster than looping over cells (which I also use to do), even though looping seems to be more straight-forward. :) –  Issun Oct 6 '11 at 8:24
    
@Issun - do you have a link to your solution of converting 2D to 1D array? It would be good a learning opportunity for me... –  Alex P Oct 6 '11 at 9:52
    
I posted it on this question! –  Issun Oct 6 '11 at 10:37

This will reflect the answer iDevlop gave, but I wanted to give you some additional information on what it does.

Dim tmpArray As Variant
Dim Securities As Variant

'Dump the range into a 2D array
tmpArray = Sheets(3).Range("A8:A" & symbolcount).Value

'Resize the 1D array
ReDim Securities(1 To UBound(tmpArray, 1))

'Convert 2D to 1D
For i = 1 To UBound(Securities, 1)
    Securities(i) = tmpArray(i, 1)
Next

Probably the fastest way to get a 1D array from a range is to dump the range into a 2D array and convert it to a 1D array. This is done by declaring a second variant and using ReDim to re-size it to the appropriate size once you dump the range into the first variant (note you don't need to use Array(), you can do it as I have above, which is more clear).

The you just loop through the 2D array placing each element in the 1D array.

I hope this helps.

share|improve this answer

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.