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I've looked around the docs on the pytest website, but haven't found a clear example of working with 'test resources', such as reading in fixed files during unit tests. Something similar to what http://jlorenzen.blogspot.com/2007/06/proper-way-to-access-file-resources-in.html describes for Java.

For example, if I have a yaml file checked in to source control, what is the right way to write a test which loads from that file? I think this boils down to understanding the right way to access a 'resource file' on the python equivalent of the classpath (PYTHONPATH?).

This seems like it should be simple. Is there an easy solution?

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2 Answers 2

up vote 1 down vote accepted

I think "resource file" is whatever definition you give to it in python (in Java, resource files can be bundled into jar files with ordinary Java classes, and Java provides library functions to access this information).

An equivalent solution might be to access the PYTHONPATH environment variable, define your "resource file" as a relative path, and then troll the PYTHONPATH looking for it. Here's an example:

pythonpath = os.env['PYTHONPATH']
file_relative_path = os.path.join('subdir', 'resourcefile') // e.g. subdir/resourcefile
for dir in pythonpath.split(os.pathsep):
    resource_path = os.path.join(dir, file_relative_path)
    if os.path.exists(resource_path):
        return resource_path

This code snippet returns a full path for the first file that exists on the PYTHONPATH.

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Perhaps what you are looking for is pkg_resources or pkgutil. For example, if you have a module within your python source called "resources", you could read your "resourcefile" using:

with open(pkg_resources.resource_filename("resources", "resourcefile")) as infile:
    for line in infile:
        print(line)

or:

 with tempfile.TemporaryFile() as outfile:
        outfile.write(pkgutil.get_data("resources", "resourcefile"))

The latter even works when your "script" is an executable zip file. The former works without needing to unpack your resources from an egg.

Note that creating a subdirectory of your source does not make it a module. You need to add a file named __init__.py within the directory for it to be visible as a module for the purposes of pkg_resources and pkgutil. __init__.py can be empty.

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