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I have a Python module, wrapper.py, that wraps a C DLL. The DLL lies in the same folder as the module. Therefore, I use the following code to load it:

myDll = ctypes.CDLL("MyCDLL.dll")

This works if I execute wrapper.py from its own folder. If, however, I run it from elsewhere, it fails. That's because ctypes computes the path relative to the current working directory.

My question is, is there a way by which I can specify the DLL's path relative to the wrapper instead of the current working directory? That will enable me to ship the two together and allow the user to run/import the wrapper from anywhere.

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1  
I use the approach in the selected answer but in one case I had a dll that imported an export from another dll, and it wouldn't load. The solution was to load the other dll first, EG: _DIRNAME = os.path.dirname(__file__); required_dll = ctypes.cdll.LoadLibrary(os.path.join(_DIRNAME, required.dll)); main_dll = ctypes.cdll.LoadLibrary(os.path.join(_DIRNAME, main.dll)) voila that works! –  Mark Mikofski Aug 20 '13 at 21:24

3 Answers 3

up vote 14 down vote accepted

You can use os.path.dirname(__file__) to get the directory where the Python source file is located.

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Thank you very much. That's exactly what I was looking for. –  Frederick The Fool Jun 5 '10 at 13:26
    
Relative path like this works just fine, no need for os.path.abspath() or adding this path to $PATH (%PATH%). One caveat, if your dll requires another dll, then you will have to load that too, before you load this one, see my comment under OP's question. –  Mark Mikofski Aug 20 '13 at 21:33

I always add the directory where my DLL is to the path. That works:

os.environ['PATH'] = os.path.dirname(__file__) + ';' + os.environ['PATH']
windll.LoadLibrary('mydll.dll')

Note that if you use py2exe, this doesn't work (because __file__ isn't set). In that case, you need to rely on the sys.executable attribute (full instructions at http://www.py2exe.org/index.cgi/WhereAmI)

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os.pathsep is platform safe way to indicate the separator used between path entries in the system $PATH or %PATH% environmental variable. However I would not advocate this answer because IMO it's unpythonic to edit environmental variables at runtime; IMO they should be set during installation by setup.py. Instead I think the selected answer does the trick! –  Mark Mikofski Aug 20 '13 at 21:45

Expanding on Matthew's answer:

import os.path
dll_name = "MyCDLL.dll"
dllabspath = os.path.dirname(os.path.abspath(__file__)) + os.path.sep + dll_name
myDll = ctypes.CDLL(dllabspath)

This will only work from a script, not the console nor from py2exe.

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I like the use of os.path.sep in general, but are there any Windows installations that don't use ';' for a path separator? –  Chris B. Jun 5 '10 at 13:36
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This path separator is a directory separator, i.e. '\' on Windows. This takes a different approach to yours, loading the dll through its absolute file path rather than modifying the PATH environmental variable. I think I like yours more, as it has a fallback to loading the default system dll if one is not supplied. –  fmark Jun 5 '10 at 13:43
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os.path.join is a lot easier on the fingers and the eyes. EG: os.path.abspath(os.path.join(os.path.dirname(__file__), dll_name)) –  Mark Mikofski Aug 20 '13 at 21:36
    
I think Chris B. was confusing os.pathsep with os.sep. FYI: os.sep and os.path.sep are equivalent. –  Mark Mikofski Aug 20 '13 at 21:48

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