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There is an external application which we get from our external suppliers, lets say the executable is a file named "SomeApplication.exe".

In a past version of this application, when it was started and I was looking in Taskmanager->Processes, I saw it appearing in 8.3 format with the name "SOMEAP~1.EXE".

Now we got a newer version, and in this one, in Taskmanager it is displayed normally as "SomeApplication.exe", exactly like the file name and as I would expect it.

To make it clear again: Same filename, one time process name appears in long format, one time on 8.3.

Can someone explain this behavior to me? Is it somehow controllable from implementation-side or OS-side how the process name appears?

PS: OS is always Windows Server 2008 R2 64Bit.

share|improve this question
    
How is the process started? In my experience task manager shows the path of a process as it was invoked by its parent. – Luke Aug 6 '13 at 14:46
    
It seems very independent of how the process was started. Starting it from a cmd, from within another application or from a explorer by double-clicking the exe does not make any difference. – Flagg1980 Aug 7 '13 at 6:20
    
No, I mean the path used to invoke it. CreateProcess("SomeApplication.exe") vs CreateProcess("SOMEAP~1.EXE"). – Luke Aug 7 '13 at 10:50
    
This is probably determined by one or more of the flags in the executable. For example, there may be a flag indicating whether or not the process is long-name aware. Or perhaps the original version is a 16-bit executable and the new one is 32-bit. – Harry Johnston Aug 8 '13 at 0:55
    
@HarryJohnston: I checked with CFF-Explorer but did not find any related flag. Executable is always 32-Bit. – Flagg1980 Aug 8 '13 at 6:20

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