I have the need to open up a single file in two different instances of a process. The two ways that I open up the file (both within each process) are as follows:

m_Stream = new FileStream(name, FileMode.Open, FileAccess.ReadWrite, FileShare.ReadWrite,4*1024,FileOptions.WriteThrough);

and

            [DllImport("Kernel32.dll", SetLastError = true, CharSet = CharSet.Auto)]
        static extern SafeFileHandle CreateFile(
            string fileName,
            [MarshalAs(UnmanagedType.U4)] FileAccess fileAccess,
            [MarshalAs(UnmanagedType.U4)] FileShare fileShare,
            IntPtr securityAttributes,
            [MarshalAs(UnmanagedType.U4)] FileMode creationDisposition,
            int flags,
            IntPtr template);

m_Stream = new FileStream(                                                                                    //no buffering
                        CreateFile(name, FileAccess.ReadWrite, FileShare.ReadWrite, IntPtr.Zero, FileMode.Open, 0x20000000, IntPtr.Zero),
                        FileAccess.ReadWrite);

Now I realize this is a very specialized scenario with both the interop call and the FileOptions.WriteThrough. However, FileShare.ReadWrite does not seem to be working. The second process (using the same code) that tries to access the file gets the usual another process is accessing this file exception. Within the same process, seems to work fine for sharing. Any thoughts?