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I am trying to register a dll from my code(Windows 7, 64-bit Application). The code snippet as below.

hinst = ShellExecute(NULL, _T("open"), L"regsvr32.exe", str, NULL, SW_SHOWNORMAL);
str -> fully qualified path of the file like  C:\\XXXX\\XXXX\\XXXX.dll"

The ShellExecute returns the following:

"0x0000002a" and fails to register the file

What could be the issue?

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  • As per ShellExecute documentation, it returns value greater than 0x20 on success. In your case it indeed returns value greater than 0x20, so the call to ShellExecute itself succeeds. Why do you think it does not work as expected? – iehrlich May 29 '17 at 9:07
  • The .dll dosent get registered and a window pops up saying. The module C:\XXXX\XXX failed to load blah blah . The specified module could not be found – Sandeep Kumar May 29 '17 at 9:14
  • Well, this means that regsvr32 is failing, not ShellExecute itself. Please share the actual value of str that causes the failure. – iehrlich May 29 '17 at 9:22
  • str is simply a path of the .dll on my system . – Sandeep Kumar May 29 '17 at 9:26
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    At this point, feel free to use Google to your advantage. Also note how you've been consistently hiding your problem under XXXX, like anyone really cares of your folder structure. – iehrlich May 30 '17 at 10:33

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