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I need to extract the filename from a path (a string):

e.g., "C:\folder\folder\folder\file.txt" = "file" (or even "file.txt" to get me started)

Essentially everything before and including the last \

I've heard of using wildcards in place of Regex (as it's an odd implementation in VBA?) but can't find anything solid.

Cheers in advance.

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using which programming language? –  Luixv May 9 '11 at 5:35
    
VBA (specified in tag) –  Matt Rowles May 9 '11 at 5:36
    
Sorry, I didn't see it. My answer includes Java code. –  Luixv May 9 '11 at 5:40
1  
You might do well to have a look at the VBA help for the 'FileSystemObject, and its 'GetFileName method... –  jtolle May 9 '11 at 13:01

6 Answers 6

I believe this works, using VBA:

Dim strPath As String
strPath = "C:\folder\folder\folder\file.txt"

Dim strFile As String
strFile = Right(strPath, Len(strPath) - InStrRev(strPath, "\"))

InStrRev looks for the first instance of "\" from the end, and returns the position. Right makes a substring starting from the right of given length, so you calculate the needed length using Len - InStrRev

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sorry I had to edit that: you need to use Len(..) - InStrRev(..) to get the difference in length from the whole string and the position of the last "\", which is the length of the substring you would like to take from the right. I tried this in Excel2007 and it gave me "file.txt" –  kaveman May 9 '11 at 5:48
    
This is spot on mate, thanks a bunch! –  Matt Rowles May 9 '11 at 6:03
    
I added an extension of your solution that solves my exact scenario. Thanks for the help bud! –  Matt Rowles May 11 '11 at 5:36

I was looking for a solution without code. This VBA works in the Excel Formula Bar:

To extract the file name:

=RIGHT(A1,LEN(A1)-FIND("~",SUBSTITUTE(A1,"\","~",LEN(A1)-LEN(SUBSTITUTE(A1,"\","")))))

To extract the file path:

=MID(A1,1,LEN(A1)-LEN(MID(A1,FIND(CHAR(1),SUBSTITUTE(A1,"\",CHAR(1),LEN(A1)-LEN(SUBSTITUTE(A1,"\",""))))+1,LEN(A1))))
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You might substitute ~ for any special character, if your file has ~ in it. –  40-Love Sep 4 '13 at 21:14
up vote 3 down vote accepted

Thanks to kaveman for the help. Here is the full code I used to remove both the path and the extension (it is not full proof, does not take into consideration files that contain more than 2 decimals eg. *.tar.gz)

sFullPath = "C:\dir\dir\dir\file.txt"   
sFullFilename = Right(sFullPath, Len(sFullPath) - InStrRev(sFullPath, "\"))
sFilename = Left(sFullFilename, (InStr(sFullFilename, ".") - 1))

sFilename = "file"

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Using Java:

String myPath="C:\folder\folder\folder\file.txt";
System.out.println("filename " +  myPath.lastIndexOf('\\'));
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I used kaveman's suggestion successfully as well to get the Full File name but sometimes when i have lots of Dots in my Full File Name, I used the following to get rid of the .txt bit:

FileName = Left(FullFileName, (InStrRev(FullFileName, ".") - 1))
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Is this a question? A comment? It doesn't look like an answer... –  Okuma.Scott Sep 11 '14 at 16:52
    
It was intended as a thanks and an alternative answer. It was my very first time here, so sorry if I did something wrong? –  Alan Elston Sep 11 '14 at 18:37

`You can also try:

Sub filen() Dim parts() As String Dim Inputfolder As String, a As String 'Takes input as any file on disk Inputfolder = Application.GetOpenFilename("Folder, *") parts = Split(Inputfolder, "\") a = parts(UBound(parts())) MsgBox ("File is: " & a) End Sub

This sub can display Folder name of any file

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