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how to open an file's Properties dialog by a button

private void button_Click(object sender, EventArgs e)
{
    string path = @"C:\Users\test\Documents\tes.text";
    // how to open this propertie
}

Thank you.

For example if want the System properties

Process.Start("sysdm.cpl");

But how do i get the Properties dialog for a file path?

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Your question isn't clear. Can you elaborate? What do you mean by "open a file's properties"? –  Michael Petrotta Dec 20 '09 at 19:23
1  
You mean you want to show the Windows Explorer Property sheet for that file, right? –  Serge - appTranslator Dec 20 '09 at 19:23
    
hello agian, is I want to open the file Property like windows right click on a file and you can open the properties of the file –  Power-Mosfet Dec 20 '09 at 19:29

3 Answers 3

up vote 23 down vote accepted

Solution is:

using System.Runtime.InteropServices;

[DllImport("shell32.dll", CharSet = CharSet.Auto)]
static extern bool ShellExecuteEx(ref SHELLEXECUTEINFO lpExecInfo);

[StructLayout(LayoutKind.Sequential, CharSet = CharSet.Auto)]
public struct SHELLEXECUTEINFO
{
    public int cbSize;
    public uint fMask;
    public IntPtr hwnd;
    [MarshalAs(UnmanagedType.LPTStr)]
    public string lpVerb;
    [MarshalAs(UnmanagedType.LPTStr)]
    public string lpFile;
    [MarshalAs(UnmanagedType.LPTStr)]
    public string lpParameters;
    [MarshalAs(UnmanagedType.LPTStr)]
    public string lpDirectory;
    public int nShow;
    public IntPtr hInstApp;
    public IntPtr lpIDList;
    [MarshalAs(UnmanagedType.LPTStr)]
    public string lpClass;
    public IntPtr hkeyClass;
    public uint dwHotKey;
    public IntPtr hIcon;
    public IntPtr hProcess;
}

private const int SW_SHOW = 5;
private const uint SEE_MASK_INVOKEIDLIST = 12;
public static bool ShowFileProperties(string Filename)
{
    SHELLEXECUTEINFO info = new SHELLEXECUTEINFO();
    info.cbSize = System.Runtime.InteropServices.Marshal.SizeOf(info);
    info.lpVerb = "properties";
    info.lpFile = Filename;
    info.nShow = SW_SHOW;
    info.fMask = SEE_MASK_INVOKEIDLIST;
    return ShellExecuteEx(ref info);        
}

// button click
private void button1_Click(object sender, EventArgs e)
{
    string path = @"C:\Users\test\Documents\test.text";
    ShowFileProperties(path);
}
share|improve this answer
    
Nice wrapper, good job. –  Shimmy Jul 11 '10 at 13:26
    
When i run this code by stepping through it via VS 2010 it works, but it will not work whenever i run it via a build executable. It's really weird.. It won't even run within VS if I hit F5 (without manually stepping through the code).. Any suggestions? –  wasatchwizard Oct 15 '12 at 19:40
    
Is there a way to modify this that the Properties Window popping up is not getting focus? I would like to put this in a command line application but not lose focus of the command line window. Also it would be interesting to have the function wait for the window to close before returning.. –  MemphiZ Mar 29 '13 at 22:44

Call Process.Start, passing a ProcessStartInfo containing the name of the file, and with the ProcessStartInfo.Verb set to properties. (For more info, see the description of the unmanaged SHELLEXECUTEINFO structure, which is what ProcessStartInfo wraps, and in particular the lpVerb member.)

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1  
works but so hacky –  user195488 Dec 20 '09 at 19:51
6  
Could expand on why you think it's hacky? ProcessStartInfo/ShellExecuteEx is the standard way of invoking shell actions like "open", "print" and "show properties." There used to be a more direct way, SHObjectProperties, but this was removed beginning in Vista, so ShellExecuteEx remains the documented method as far as I know... open to corrections! –  itowlson Dec 20 '09 at 20:02
3  
I tried this: var startInfo = new ProcessStartInfo(FileFullPath); startInfo.UseShellExecute = true; startInfo.Verb = "properties"; Process.Start(startInfo); doesn't seem to work; I get a Win32Exception "No application is associated with the specified file for this operation" –  Dan Jun 24 '10 at 19:36
    
check the .Verbs property of the PSI beforehand. I was trying this on an .exe, maybe shell doesn't like this, but likes it on other file types. –  Epu Oct 7 '11 at 14:12

Various file properties are available from the FileInfo class:

FileInfo info = new FileInfo(path);
Console.WriteLine(info.CreationTime);
Console.WriteLine(info.Attributes);
...
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1  
+1 probably the preferred soln –  user195488 Dec 20 '09 at 19:50

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