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I'm trying to open a directory via my Windows Form created in VB.Net but every solution I've found doesn't seem to work.

Currently I'm using-

Dim path As String = Directory.GetCurrentDirectory()

Private Sub logDirBTN_Click(sender As Object, e As EventArgs) Handles logDirBTN.Click
    Process.Start(path + "\Resources\Logs")
End Sub

Which returns "The system cannot find the file specified" exception. That's interesting because I know the folder is there. Furthermore this button's functionality works without any issue and from what I can tell the only difference is I'm opening a text file rather than an empty directory-

Private Sub stationListBTN_Click(sender As Object, e As EventArgs) Handles stationListBTN.Click
    Process.Start("notepad.exe", path + "\Resources\StationList\StationList.txt")
End Sub

Here are all the other things I've tried-

Private Sub logDirBTN_Click(sender As Object, e As EventArgs) Handles logDirBTN.Click
    'Process.Start("explorer.exe", path + "\Resources\Logs")
    'Shell("explorer.exe", path + "\Resources\Logs", vbNormalFocus)
    'Application.StartupPath & path + "\Resources\Logs"
    'Shell(path + "\Resources\Logs", vbNormalFocus)
End Sub

Any help is greatly appreciated.

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It requires the path to a file, a directory cannot work. If you want to open an Explorer view on the directory then start Explorer.exe –  Hans Passant Jul 24 '14 at 17:52

2 Answers 2

up vote 3 down vote accepted
Dim MyProcess As New Process()
MyProcess.StartInfo.FileName = "explorer.exe"
MyProcess.StartInfo.Arguments = "C:\Blah"
MyProcess.Start()
MyProcess.WaitForExit()
MyProcess.Close()
MyProcess.Dispose()

Or just...

Process.Start("explorer.exe", "C:\FTP\")

Application.StartupPath is going to get you to your bin\Debug or bin\Release folder by the way, whatever folder the *.exe is in.

I'm guessing this is what you're looking for:

Process.Start("explorer.exe", Application.StartupPath & "\Resources\Logs")

Also, don't use + for joining strings. Use &

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What if I need to use the path that the application is run from? For my purposes a static path will not work. –  Brady Jul 24 '14 at 17:58
    
Check my edit at the bottom about Application.StartupPath –  Keith Jul 24 '14 at 17:59
    
I forgot to set the file inside the directory to "Always copy" and so the directory wasn't being created which is why the program couldn't find the file. Your answer about the Application.StartupPath led me to this conclusion. Thank you so much! –  Brady Jul 24 '14 at 18:04

I assume you are trying to invoke Windows Explorer.

Add a trailing \ in the call to .Start

    IO.Directory.CreateDirectory("C:\temp\temp")
    Process.Start("c:\temp\temp\")

In the OP first example you were trying to open a file 'Logs'

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