29

I am trying to figure out how to get the names of all decorators on a method. I can already get the method name and docstring, but cannot figure out how to get a list of decorators.

  • This seems needless. You have the source. What's wrong with reading the source? – S.Lott Jul 12 '10 at 20:52
  • 19
    @S.Lott: couldn't you answer the same way about any question involving introspection? And yet introspection is useful. – Ned Batchelder Jul 12 '10 at 20:55
  • 3
    @S.Lott: Nothing is wrong with reading the source, much the same as nothing is wrong with reading the contents of a database directly instead of using views or scripting, unless I want automation. I use decorators for authentication and I am generating reports with different views to show what user groups have access to which resources. So I need programmatic access to the source, the same as I need programmatic access to a data source. – Tony Jul 12 '10 at 22:36
  • 1
    @Ned Batchelder: I'm not "answering" -- at least I don't think I am. I'm asking what the use case is. Introspection is something the lawyers call an "attractive nuisance". I don't get the use case for this example of introspection. The question is too short and thin on details. – S.Lott Jul 12 '10 at 23:06
  • That's not a very helpful clarification. Can you provide some use case and some code? – S.Lott Jul 12 '10 at 23:06
26

If you can change the way you call the decorators from

class Foo(object):
    @many
    @decorators
    @here
    def bar(self):
        pass

to

class Foo(object):
    @register(many,decos,here)
    def bar(self):
        pass

then you could register the decorators this way:

def register(*decorators):
    def register_wrapper(func):
        for deco in decorators[::-1]:
            func=deco(func)
        func._decorators=decorators        
        return func
    return register_wrapper

For example:

def many(f):
    def wrapper(*args,**kwds):
        return f(*args,**kwds)
    return wrapper

decos = here = many

class Foo(object):
    @register(many,decos,here)
    def bar(self):
        pass

foo=Foo()

Here we access the tuple of decorators:

print(foo.bar._decorators)
# (<function many at 0xb76d9d14>, <function decos at 0xb76d9d4c>, <function here at 0xb76d9d84>)

Here we print just the names of the decorators:

print([d.func_name for d in foo.bar._decorators])
# ['many', 'decos', 'here']
  • 1
    This is a great solution. :D It does assume you have access to the code that's assigning the decorators, though... – Faisal Jul 12 '10 at 21:15
  • Ok this could work, but why can't I just add the code func._whatever='something' into my existing decorator, and test for the value of the _whatever attribute when performing introspection on the method? – Tony Jul 12 '10 at 21:23
  • You can, but then you'll have to dirty every decorator you write with the cross-cutting concern of leaving its tracks behind in the function it modifies. – Faisal Jul 12 '10 at 22:01
33

I'm surprised that this question is so old and no one has taken the time to add the actual introspective way to do this, so here it is:

The code you want to inspect...

def template(func):
    def wrapper(*args, **kwargs):
        return func(*args, **kwargs)
    return wrapper

baz = template
che = template

class Foo(object):
    @baz
    @che
    def bar(self):
        pass

Now you can inspect the above Foo class with something like this...

import ast
import inspect

def get_decorators(cls):
    target = cls
    decorators = {}

    def visit_FunctionDef(node):
        decorators[node.name] = []
        for n in node.decorator_list:
            name = ''
            if isinstance(n, ast.Call):
                name = n.func.attr if isinstance(n.func, ast.Attribute) else n.func.id
            else:
                name = n.attr if isinstance(n, ast.Attribute) else n.id

            decorators[node.name].append(name)

    node_iter = ast.NodeVisitor()
    node_iter.visit_FunctionDef = visit_FunctionDef
    node_iter.visit(ast.parse(inspect.getsource(target)))
    return decorators

print get_decorators(Foo)

That should print something like this...

{'bar': ['baz', 'che']}

or at least it did when I tested this with Python 2.7.9 real quick :)

  • Okay, this has problems in python 3 : (at least it seems to, and I'm sure I'm not the best person with knowledge of inspect/ast to comment with that level of certainty); basically I have a the code from what you have above, and inspect.getsource() seems to return with the spaces in front of the def wrapper , which then gives an unexpected indent error on the ast.parse call. – Jmons Jan 19 '18 at 11:35
  • ALSO when i tried to demonstrate this using hte online run-script tools (which I think script rather then run from a file), I jsut get OSError: source code not available so I suspect there are instances (perhaps also bin runs) where this process won't work. Perhaps it won't work when bin-only runs of python exist? – Jmons Jan 19 '18 at 11:35
  • 1
    Which version of python3? I just tested it in python 2.7.13 and python 3.6.4 (which are the versions I have on my computer) and they both worked fine. Also, I'm not sure this will work everywhere, but it's worked everywhere I've needed it. I could definitely see the online run-script having protections for modules like ast and inspect, and probably other things like opening files, since it is, by definition, a more contained environment. – Jaymon Jan 21 '18 at 1:35
  • Thanks for checking: I'll try to have another look but without being able to demonstrate with the nice helpful code sharing it makes it harder. If I can replicated it I'll open it up as a new question and tag you ;) – Jmons Jan 24 '18 at 9:49
3

That's because decorators are "syntactic sugar". Say you have the following decorator:

def MyDecorator(func):
    def transformed(*args):
        print "Calling func " + func.__name__
        func()
    return transformed

And you apply it to a function:

@MyDecorator
def thisFunction():
    print "Hello!"

This is equivalent to:

thisFunction = MyDecorator(thisFunction)

You could embed a "history" into the function object, perhaps, if you're in control of the decorators. I bet there's some other clever way to do this (perhaps by overriding assignment), but I'm not that well-versed in Python unfortunately. :(

2

As Faisal notes, you could have the decorators themselves attach metadata to the function, but to my knowledge it isn't automatically done.

1

You can't but even worse is there exists libraries to help hide the fact that you have decorated a function to begin with. See Functools or the decorator library (@decorator if I could find it) for more information.

0

That's not possible in my opinion. A decorator is not some kind of attribute or meta data of a method. A decorator is a convenient syntax for replacing a function with the result of a function call. See http://docs.python.org/whatsnew/2.4.html?highlight=decorators#pep-318-decorators-for-functions-and-methods for more details.

0

It is impossible to do in a general way, because

@foo
def bar ...

is exactly the same as

def bar ...
bar = foo (bar)

You may do it in certain special cases, like probably @staticmethod by analyzing function objects, but not better than that.

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