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My program creates a folder in the executable's directory and saves some output files. When the application finishes, I have it automatically open the folder in an explorer window using ShellExecute(NULL, _T("Open"), _T("Explorer"), _T(m_strOutputPath), NULL, SW_SHOWDEFAULT);

Now, if I keep re-running the program, it will just keep opening the same folder even if it is already opened. For the absent-minded user (with me being one of them), this results in multiple windows of the same folder.

Is there a way to detect if the folder is already opened in an explorer window and not make it open a new window if it is already opened?

I'm developing in MSVS 2008 SP1 on Windows Vista, but the program will run on XP, Vista, and 7.

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2 Answers

You can use the SHOpenFolderAndSelectItems function. It will open a folder window and select the files given. If the window is already open, it'll bring it to the front.

Internally, it uses the IShellWindows interface, specifically the FindWindowSW method.

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What are the steps on how to use this to find a window's existence? –  alex Feb 3 '11 at 18:07
    
I could not get SHOpenFolderAndSelectItems to work. –  alex Feb 16 '11 at 20:34
    
You probably need to call it from a single-threaded COM apartment. That is: from a thread that's called OleInitialize, CoInitialize, or AfxOleInit. –  Roger Lipscombe Feb 16 '11 at 21:10
    
Or, rather than using ShellExecute and passing the "Open" verb, you could run explorer.exe directly. See support.microsoft.com/kb/130510 for the command-line arguments. –  Roger Lipscombe Feb 16 '11 at 21:11
    
Using the COM stuff is too advanced for me and running explorer still opens in separate windows. –  alex Feb 16 '11 at 22:19
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Try this:

ShellExecute(NULL, _T("Open"), _T(m_strOutputPath), NULL, NULL, SW_SHOWDEFAULT);
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