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e56303798c
Initial SickGear for Python 3.
401 lines
12 KiB
Text
401 lines
12 KiB
Text
Pluggable Distributions of Python Software
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==========================================
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Distributions
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-------------
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A "Distribution" is a collection of files that represent a "Release" of a
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"Project" as of a particular point in time, denoted by a
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"Version"::
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>>> import sys, pkg_resources
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>>> from pkg_resources import Distribution
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>>> Distribution(project_name="Foo", version="1.2")
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Foo 1.2
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Distributions have a location, which can be a filename, URL, or really anything
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else you care to use::
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>>> dist = Distribution(
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... location="http://example.com/something",
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... project_name="Bar", version="0.9"
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... )
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>>> dist
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Bar 0.9 (http://example.com/something)
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Distributions have various introspectable attributes::
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>>> dist.location
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'http://example.com/something'
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>>> dist.project_name
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'Bar'
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>>> dist.version
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'0.9'
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>>> dist.py_version == '{}.{}'.format(*sys.version_info)
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True
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>>> print(dist.platform)
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None
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Including various computed attributes::
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>>> from pkg_resources import parse_version
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>>> dist.parsed_version == parse_version(dist.version)
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True
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>>> dist.key # case-insensitive form of the project name
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'bar'
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Distributions are compared (and hashed) by version first::
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>>> Distribution(version='1.0') == Distribution(version='1.0')
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True
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>>> Distribution(version='1.0') == Distribution(version='1.1')
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False
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>>> Distribution(version='1.0') < Distribution(version='1.1')
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True
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but also by project name (case-insensitive), platform, Python version,
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location, etc.::
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>>> Distribution(project_name="Foo",version="1.0") == \
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... Distribution(project_name="Foo",version="1.0")
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True
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>>> Distribution(project_name="Foo",version="1.0") == \
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... Distribution(project_name="foo",version="1.0")
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True
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>>> Distribution(project_name="Foo",version="1.0") == \
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... Distribution(project_name="Foo",version="1.1")
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False
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>>> Distribution(project_name="Foo",py_version="2.3",version="1.0") == \
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... Distribution(project_name="Foo",py_version="2.4",version="1.0")
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False
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>>> Distribution(location="spam",version="1.0") == \
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... Distribution(location="spam",version="1.0")
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True
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>>> Distribution(location="spam",version="1.0") == \
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... Distribution(location="baz",version="1.0")
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False
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Hash and compare distribution by prio/plat
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Get version from metadata
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provider capabilities
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egg_name()
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as_requirement()
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from_location, from_filename (w/path normalization)
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Releases may have zero or more "Requirements", which indicate
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what releases of another project the release requires in order to
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function. A Requirement names the other project, expresses some criteria
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as to what releases of that project are acceptable, and lists any "Extras"
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that the requiring release may need from that project. (An Extra is an
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optional feature of a Release, that can only be used if its additional
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Requirements are satisfied.)
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The Working Set
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---------------
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A collection of active distributions is called a Working Set. Note that a
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Working Set can contain any importable distribution, not just pluggable ones.
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For example, the Python standard library is an importable distribution that
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will usually be part of the Working Set, even though it is not pluggable.
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Similarly, when you are doing development work on a project, the files you are
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editing are also a Distribution. (And, with a little attention to the
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directory names used, and including some additional metadata, such a
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"development distribution" can be made pluggable as well.)
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>>> from pkg_resources import WorkingSet
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A working set's entries are the sys.path entries that correspond to the active
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distributions. By default, the working set's entries are the items on
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``sys.path``::
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>>> ws = WorkingSet()
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>>> ws.entries == sys.path
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True
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But you can also create an empty working set explicitly, and add distributions
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to it::
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>>> ws = WorkingSet([])
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>>> ws.add(dist)
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>>> ws.entries
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['http://example.com/something']
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>>> dist in ws
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True
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>>> Distribution('foo',version="") in ws
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False
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And you can iterate over its distributions::
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>>> list(ws)
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[Bar 0.9 (http://example.com/something)]
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Adding the same distribution more than once is a no-op::
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>>> ws.add(dist)
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>>> list(ws)
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[Bar 0.9 (http://example.com/something)]
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For that matter, adding multiple distributions for the same project also does
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nothing, because a working set can only hold one active distribution per
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project -- the first one added to it::
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>>> ws.add(
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... Distribution(
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... 'http://example.com/something', project_name="Bar",
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... version="7.2"
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... )
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... )
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>>> list(ws)
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[Bar 0.9 (http://example.com/something)]
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You can append a path entry to a working set using ``add_entry()``::
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>>> ws.entries
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['http://example.com/something']
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>>> ws.add_entry(pkg_resources.__file__)
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>>> ws.entries
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['http://example.com/something', '...pkg_resources...']
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Multiple additions result in multiple entries, even if the entry is already in
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the working set (because ``sys.path`` can contain the same entry more than
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once)::
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>>> ws.add_entry(pkg_resources.__file__)
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>>> ws.entries
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['...example.com...', '...pkg_resources...', '...pkg_resources...']
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And you can specify the path entry a distribution was found under, using the
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optional second parameter to ``add()``::
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>>> ws = WorkingSet([])
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>>> ws.add(dist,"foo")
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>>> ws.entries
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['foo']
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But even if a distribution is found under multiple path entries, it still only
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shows up once when iterating the working set:
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>>> ws.add_entry(ws.entries[0])
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>>> list(ws)
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[Bar 0.9 (http://example.com/something)]
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You can ask a WorkingSet to ``find()`` a distribution matching a requirement::
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>>> from pkg_resources import Requirement
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>>> print(ws.find(Requirement.parse("Foo==1.0"))) # no match, return None
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None
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>>> ws.find(Requirement.parse("Bar==0.9")) # match, return distribution
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Bar 0.9 (http://example.com/something)
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Note that asking for a conflicting version of a distribution already in a
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working set triggers a ``pkg_resources.VersionConflict`` error:
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>>> try:
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... ws.find(Requirement.parse("Bar==1.0"))
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... except pkg_resources.VersionConflict as exc:
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... print(str(exc))
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... else:
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... raise AssertionError("VersionConflict was not raised")
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(Bar 0.9 (http://example.com/something), Requirement.parse('Bar==1.0'))
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You can subscribe a callback function to receive notifications whenever a new
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distribution is added to a working set. The callback is immediately invoked
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once for each existing distribution in the working set, and then is called
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again for new distributions added thereafter::
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>>> def added(dist): print("Added %s" % dist)
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>>> ws.subscribe(added)
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Added Bar 0.9
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>>> foo12 = Distribution(project_name="Foo", version="1.2", location="f12")
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>>> ws.add(foo12)
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Added Foo 1.2
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Note, however, that only the first distribution added for a given project name
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will trigger a callback, even during the initial ``subscribe()`` callback::
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>>> foo14 = Distribution(project_name="Foo", version="1.4", location="f14")
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>>> ws.add(foo14) # no callback, because Foo 1.2 is already active
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>>> ws = WorkingSet([])
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>>> ws.add(foo12)
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>>> ws.add(foo14)
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>>> ws.subscribe(added)
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Added Foo 1.2
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And adding a callback more than once has no effect, either::
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>>> ws.subscribe(added) # no callbacks
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# and no double-callbacks on subsequent additions, either
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>>> just_a_test = Distribution(project_name="JustATest", version="0.99")
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>>> ws.add(just_a_test)
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Added JustATest 0.99
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Finding Plugins
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---------------
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``WorkingSet`` objects can be used to figure out what plugins in an
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``Environment`` can be loaded without any resolution errors::
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>>> from pkg_resources import Environment
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>>> plugins = Environment([]) # normally, a list of plugin directories
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>>> plugins.add(foo12)
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>>> plugins.add(foo14)
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>>> plugins.add(just_a_test)
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In the simplest case, we just get the newest version of each distribution in
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the plugin environment::
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>>> ws = WorkingSet([])
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>>> ws.find_plugins(plugins)
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([JustATest 0.99, Foo 1.4 (f14)], {})
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But if there's a problem with a version conflict or missing requirements, the
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method falls back to older versions, and the error info dict will contain an
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exception instance for each unloadable plugin::
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>>> ws.add(foo12) # this will conflict with Foo 1.4
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>>> ws.find_plugins(plugins)
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([JustATest 0.99, Foo 1.2 (f12)], {Foo 1.4 (f14): VersionConflict(...)})
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But if you disallow fallbacks, the failed plugin will be skipped instead of
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trying older versions::
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>>> ws.find_plugins(plugins, fallback=False)
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([JustATest 0.99], {Foo 1.4 (f14): VersionConflict(...)})
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Platform Compatibility Rules
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----------------------------
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On the Mac, there are potential compatibility issues for modules compiled
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on newer versions of macOS than what the user is running. Additionally,
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macOS will soon have two platforms to contend with: Intel and PowerPC.
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Basic equality works as on other platforms::
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>>> from pkg_resources import compatible_platforms as cp
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>>> reqd = 'macosx-10.4-ppc'
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>>> cp(reqd, reqd)
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True
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>>> cp("win32", reqd)
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False
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Distributions made on other machine types are not compatible::
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>>> cp("macosx-10.4-i386", reqd)
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False
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Distributions made on earlier versions of the OS are compatible, as
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long as they are from the same top-level version. The patchlevel version
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number does not matter::
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>>> cp("macosx-10.4-ppc", reqd)
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True
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>>> cp("macosx-10.3-ppc", reqd)
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True
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>>> cp("macosx-10.5-ppc", reqd)
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False
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>>> cp("macosx-9.5-ppc", reqd)
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False
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Backwards compatibility for packages made via earlier versions of
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setuptools is provided as well::
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>>> cp("darwin-8.2.0-Power_Macintosh", reqd)
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True
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>>> cp("darwin-7.2.0-Power_Macintosh", reqd)
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True
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>>> cp("darwin-8.2.0-Power_Macintosh", "macosx-10.3-ppc")
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False
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Environment Markers
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-------------------
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>>> from pkg_resources import invalid_marker as im, evaluate_marker as em
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>>> import os
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>>> print(im("sys_platform"))
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Invalid marker: 'sys_platform', parse error at ''
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>>> print(im("sys_platform=="))
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Invalid marker: 'sys_platform==', parse error at ''
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>>> print(im("sys_platform=='win32'"))
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False
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>>> print(im("sys=='x'"))
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Invalid marker: "sys=='x'", parse error at "sys=='x'"
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>>> print(im("(extra)"))
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Invalid marker: '(extra)', parse error at ')'
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>>> print(im("(extra"))
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Invalid marker: '(extra', parse error at ''
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>>> print(im("os.open('foo')=='y'"))
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Invalid marker: "os.open('foo')=='y'", parse error at 'os.open('
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>>> print(im("'x'=='y' and os.open('foo')=='y'")) # no short-circuit!
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Invalid marker: "'x'=='y' and os.open('foo')=='y'", parse error at 'and os.o'
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>>> print(im("'x'=='x' or os.open('foo')=='y'")) # no short-circuit!
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Invalid marker: "'x'=='x' or os.open('foo')=='y'", parse error at 'or os.op'
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>>> print(im("'x' < 'y' < 'z'"))
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Invalid marker: "'x' < 'y' < 'z'", parse error at "< 'z'"
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>>> print(im("r'x'=='x'"))
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Invalid marker: "r'x'=='x'", parse error at "r'x'=='x"
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>>> print(im("'''x'''=='x'"))
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Invalid marker: "'''x'''=='x'", parse error at "'x'''=='"
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>>> print(im('"""x"""=="x"'))
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Invalid marker: '"""x"""=="x"', parse error at '"x"""=="'
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>>> print(im(r"x\n=='x'"))
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Invalid marker: "x\\n=='x'", parse error at "x\\n=='x'"
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>>> print(im("os.open=='y'"))
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Invalid marker: "os.open=='y'", parse error at 'os.open='
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>>> em("sys_platform=='win32'") == (sys.platform=='win32')
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True
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>>> em("python_version >= '2.7'")
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True
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>>> em("python_version > '2.6'")
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True
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>>> im("implementation_name=='cpython'")
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False
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>>> im("platform_python_implementation=='CPython'")
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False
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>>> im("implementation_version=='3.5.1'")
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False
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