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I have a VB script that adds a program shortcut to the Windows Startup folder. In my script, I'm able to retrieve the Startup folder location in 32-bit Windows with this:

  Set objShell = CreateObject("WScript.Shell")
  startupFolder = objShell.SpecialFolders("Startup")

but it returns nothing when I try this on 64-bit Windows. Specifically, I'm testing on 64-bit Vista. I can't seem to find the appropriate environment variable or syntax for this. Thanks.

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Works fine for me on 64-bit Windows Vista Enterprise and returns C:\Users\<user>\AppData\Roaming\Microsoft\Windows\Start Menu\Programs\Startup. Ran the script under both 32-bit and 64-bit script hosts. –  Helen Aug 20 '10 at 14:51
    
Strange. I'm not sure why my code doesn't work. Oh well, your answer below works. –  Banjer Aug 20 '10 at 15:25

2 Answers 2

up vote 5 down vote accepted

Try an alternative variant using the Shell.Application object:

Const ssfSTARTUP = &H7

Set oShell = CreateObject("Shell.Application")
Set startupFolder = oShell.NameSpace(ssfSTARTUP)

If Not startupFolder Is Nothing Then
  WScript.Echo startupFolder.Self.Path
End If

Does it work for you?

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Yeah! Works on 32 and 64-bit. Thanks Helen. –  Banjer Aug 20 '10 at 15:23

See if this works. This actually reads the registry value where the folder is stored. I can' imagine why the other method doesn't work in 64-bit.

Dim startupFolder As String
startupFolder = My.Computer.Registry.GetValue _
("HKEY_CURRENT_USER\Software\Microsoft\Windows\CurrentVersion\Explorer\User Shell Folders", "Startup", Nothing)
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I just realized I had my question tagged as vb and not vbscript. Your code doesn't work in vbscript...thanks though. For now, I'll just hardcode the startup location (!!) for 64-bit. –  Banjer Aug 20 '10 at 14:17

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