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I am attempting open a csv file with this code and it keeps giving me an "error 52 bad file name or number"

 Sub ShowFileDialog()
   Dim x As String
     Dim FF1 As Integer
    Dim dlgOpen As FileDialog
    Set dlgOpen = Application.FileDialog( _
    With dlgOpen

    End With

x = CStr(dlgOpen.SelectedItems(1))
MsgBox x

Open x For Input As #FF1

Do While Not EOF(FF1)

Line Input #FF1, inputdata

Dim lineData() As String
lineData() = Split(inputdata, ",")

Close #FF1
End Sub

The debugger is highlighting the Open for X line but I am feeding it the path name as a string

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You never set FF1 to a file no. FF1 = FreeFile before opening. – Jacob Oct 12 '12 at 14:45

1 Answer 1

up vote 1 down vote accepted

Add this line directly before the line causing the error:

FF1 = FreeFile

Because Open For Input Requires a number between 1 and 512, which should be obtained via a call to FreeFile.

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