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I am trying to parse a given path for python source files, import each file and DoStuff™ to each imported module.

def ParsePath(path):
    for root, dirs, files in os.walk(path):
        for source in (s for s in files if s.endswith(".py")):
            name = os.path.splitext(os.path.basename(source))[0]
            m = imp.load_module(name, *imp.find_module(name, [root]))
            DoStuff(m)

The above code works, but packages aren't recognized ValueError: Attempted relative import in non-package

My question is basically, how do I tell imp.load_module that a given module is part of a package?

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What kind of directory structure do you have? Is the path you pass to the function the root path of a package? –  shang Feb 5 '11 at 13:34
    
Part of the purpose of this question is to understand how to make something a package manually, regardless of it's path. Sure, I could wrench ParsePath around to always try to import directories containing __init__.py before any content. I'm guessing that would work, but it is not the right way to solve problems IMHO. –  porgarmingduod Feb 5 '11 at 13:39

2 Answers 2

up vote 2 down vote accepted

You cannot directly tell Importer Protocol method load_module that the module given is part of the package. Taken from PEP 302 New Import Hooks

The built-in import function (known as PyImport_ImportModuleEx in import.c) will then check to see whether the module doing the import is a package or a submodule of a package. If it is indeed a (submodule of a) package, it first tries to do the import relative to the package (the parent package for a submodule). For example if a package named "spam" does "import eggs", it will first look for a module named "spam.eggs". If that fails, the import continues as an absolute import: it will look for a module named "eggs". Dotted name imports work pretty much the same: if package "spam" does "import eggs.bacon" (and "spam.eggs" exists and is itself a package), "spam.eggs.bacon" is tried. If that fails "eggs.bacon" is tried. (There are more subtleties that are not described here, but these are not relevant for implementers of the Importer Protocol.)

Deeper down in the mechanism, a dotted name import is split up by its components. For "import spam.ham", first an "import spam" is done, and only when that succeeds is "ham" imported as a submodule of "spam".

The Importer Protocol operates at this level of individual imports. By the time an importer gets a request for "spam.ham", module "spam" has already been imported.

You must then simulate what the built-in import does and load parent packages before loading sub modules.

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I think modules, packages and importing things is the only part of Python that I am straight out unhappy about. I already made a hackish solution a couple of days ago where I did more or less this, but I appreciate that you were able to clear things up. A "you can't do that", if not satisfying, can at least be useful. –  porgarmingduod Feb 7 '11 at 14:26

The function imp.find_module always takes a plain module name without dots, but the documentation of imp.load_module says

The name argument indicates the full module name (including the package name, if this is a submodule of a package).

So you could try this:

def ParsePath(path):
    for root, dirs, files in os.walk(path):
        for source in (s for s in files if s.endswith(".py")):
            name = os.path.splitext(os.path.basename(source))[0]
            full_name = os.path.splitext(source)[0].replace(os.path.sep, '.')
            m = imp.load_module(full_name, *imp.find_module(name, [root]))
            DoStuff(m)
share|improve this answer
    
Well, you have sort of the right idea (apart from some errors in the code you posted, along with the fact that it absolutely doesn't work), but this doesn't actually help. As I explained answering your first comment, I am not looking for a monkey patch. I can make my own monkey patch. I am looking for an answer, and this is not it. –  porgarmingduod Feb 5 '11 at 14:09
    
Well, then I'm not understanding your question correctly. You said you are looking for a way to let imp.load_module know the module is part of a package, and the way is to give a fully qualified (i.e. dotted) name, which includes the package name. –  shang Feb 5 '11 at 14:16

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