0

I have adapted a VB macro to insert extra rows below values (see "interval" in column A) when there are duplicate instances of associated values occur (see "count" in Column C). More specifically, when there is a count of duplicates that is greater than 1 (0 = no instances, 1 = single instance) with a particular time interval, I want to insert extra rows so that there will be room to insert the duplicated values in order of their appearance.

Images of the Excel data before execution, after execution.

Below is the code I have been working with, and it appears to be working. But, it draws an error code every time I run the macro. Could someone please explain why this section of code is triggering the error, and how to fix it? here is the error code that appears: "Run-time error code '13' Type: mismatch", and debugging points to this line of code: temp = Range("B" & n)

Sub dupeIntervals()
' insert new rows to match how many utterances are in a particular time interval
    Worksheets("Align").Activate
    Dim r, count As Range
    Dim LastRow As Long
    Dim temp As Integer
    Set r = Range("A:C")
    Set count = Range("B:B")
    LastRow = Range("B" & Rows.count).End(xlUp).Row
    For n = LastRow To 1 Step -1
        temp = Range("B" & n) ' << run-time error 13 / "type mismatch"
        If (temp > 1) Then
            Rows(n + 1 & ":" & n + temp - 1).Insert Shift:=xlDown
        End If
    Next n
End Sub

Thanks!

P.S. here is the anecdotal explanation of how I am using this macro: I am transforming utterances from transcribed interviews from continuous data (millisecond time-stamp of when utterance began) into 5-second time intervals. on occasion, there will be more than one utterance per 5s interval, which requires extra rows for inserting those extra utterances within a given interval.

  • What is the value of the relevant cell in column B when it errors? Not an integer perhaps? – SJR Apr 3 '18 at 20:54
  • all values in column B are the result from a countif function, so i believe they're all integers – jaeger Apr 3 '18 at 20:58
  • 1
    I didn't ask what you believed, but what it actually is when you run the code. – SJR Apr 3 '18 at 21:02
  • 1
    Looks like Range("B" & n) contains an error value. Hit the error, and when VBA breaks on that instruction hit Ctrl+G and type ?n, Range("B" & n).Value - I expect that to output something like 17 Error2042 - now go to the active sheet and look at what B17 contains. If that's an error value, then there's your problem: you can't coerce an error into an Integer. – Mathieu Guindon Apr 3 '18 at 21:04
  • 1
    well then, bingo. Row 1 contains "count" - what's the numeric value for that? – Mathieu Guindon Apr 3 '18 at 21:22
2
0

Your loop includes row 1:

LastRow To 1 Step -1

Make that To 2 Step -1 to skip the heading.


That said...

You have declared temp as an Integer.

Dim temp As Integer

That means whatever you assign to temp must be compatible with a 16-bit signed integer value, i.e. any numeric value between -32677 and 32767.

Some values will implicitly convert to an Integer. e.g. 44.634 will assign temp with 45.

Some values won't convert though.

  • An empty string "" (or any non-numeric string for that matter) can't be converted to an Integer.
  • An error value (e.g. #NA) can't be converted to anything.

Your code is making assumptions:

temp = Range("B" & n) ' << run-time error 13 / "type mismatch"

It's assuming that the ActiveSheet is the sheet you want to be working with. It's assuming n has a value that represents a valid worksheet row number - you haven't declared n, so it's likely a Variant/Long, or Variant/Integer, so n is probably fine (still, it should be declared).

It's assuming that the value of the range can be coerced into an Integer.

Remove these assumptions.

Dim cellValue As Variant
cellValue = ActiveSheet.Range("B" & n).Value

If IsNumeric(cellValue) Then
    temp = CInt(cellValue)
Else
    'skip. cell is invalid.
    Debug.Print "Row# " & n & " contains an invalid value."
End If

I'd recommend using a 32-bit integer type (i.e. Long) instead of Integer.

| improve this answer | |
  • changing LastRow To 1 Step -1 to LastRow To 2 Step -1 did the trick! + thanks for the valuable (and kind) lessons on declarations and assumptions – jaeger Apr 3 '18 at 21:50
  • @jaeger my pleasure! Check out my user profile for some valuable links, too! Rubberduck inspections can probably spare you a Stack Overflow question or two ;-) – Mathieu Guindon Apr 3 '18 at 22:19

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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