在python中创建一个匿名类实例

Question

有时我需要在python中创建一个匿名类实例，就像c＃：

一样

var o= new {attr1="somehing", attr2=344};

但是在python中我这样做：

class Dummy: pass
o = Dummy()
o.attr1 = 'something'
o.attr2 = 344
#EDIT 1
print o.attr1, o.attr2

如何在单一语句中以pythonic方式做到这一点？

Answer 1

o = type('Dummy', (object,), { "attr1": "somehing", "attr2": 344 })

o.attr3 = "test"
print o.attr1, o.attr2, o.attr3

Answer 2

型

虽然这不是一个单一的陈述，但我认为围绕接受的答案的魔力创建一个包装器使它更具可读性。

import inspect 

# wrap the type call around a function 
# use kwargs to allow named function arguments
def create_type(name, **kwargs):
    return type(name, (object,), kwargs)

# example call to make a structure
p = create_type('foobar', xxx='barfoo', seti=0)

assert p.xxx == 'barfoo'
assert p.seti == 0

print inspect.getmembers(p)

<强>输出

[('__class__', <type 'type'>),
 ('__delattr__', <slot wrapper '__delattr__' of 'object' objects>),
 ('__dict__', <dictproxy object at 0x9a5050>),
 ('__doc__', None),
 ('__format__', <method '__format__' of 'object' objects>),
 ('__getattribute__', <slot wrapper '__getattribute__' of 'object' objects>),
 ('__hash__', <slot wrapper '__hash__' of 'object' objects>),
 ('__init__', <slot wrapper '__init__' of 'object' objects>),
 ('__module__', '__main__'),
 ('__new__', <built-in method __new__ of type object at 0x399c578460>),
 ('__reduce__', <method '__reduce__' of 'object' objects>),
 ('__reduce_ex__', <method '__reduce_ex__' of 'object' objects>),
 ('__repr__', <slot wrapper '__repr__' of 'object' objects>),
 ('__setattr__', <slot wrapper '__setattr__' of 'object' objects>),
 ('__sizeof__', <method '__sizeof__' of 'object' objects>),
 ('__str__', <slot wrapper '__str__' of 'object' objects>),
 ('__subclasshook__', <built-in method __subclasshook__ of type object at 0x919370>),
 ('__weakref__', <attribute '__weakref__' of 'foobar' objects>),
 # here they are
 ('seti', 0),
 ('xxx', 'barfoo')]

namedtuple

from collections import namedtuple

d = { 'a' : 'foo', 'b' : 'bar' }
foobar = namedtuple('foobar', d.keys())(**d)
print foobar

<强>输出

Python 2.7.5 (default, May 30 2013, 16:55:57) [GCC] on linux2
Type "help", "copyright", "credits" or "license" for more information.
>>> from collections import namedtuple
>>> d  =  { 'a' : 'foo', 'b' : 'bar' }
>>> foobar = namedtuple('foobar', d.keys())(**d)
>>> print foobar
foobar(a='foo', b='bar')
>>> 

Answer 3

如果您使用的是Python 3.3或更高版本，则可以使用types.SimpleNamespace：

from types import SimpleNamespace

o = SimpleNamespace(attr1="something", attr2=344)
print(o)

# namespace(attr1='something', attr2=344)

Answer 4

class attrdict(dict):
    def __getattr__(self, key):
        return self[key]

o = attrdict(attr1='something', attr2=344)

o.attr1

但似乎你应该只使用标准字典。

Answer 5

我更喜欢mwhite的dict答案，但是这里是我过去使用kwargs的“魔法”（双关语）所做的。

class ObjectFromDict(object):
    def __init__(**kwargs):
        for k in kwargs:
            if k not in self.__dict__:
                setattr(k,v)

myObj = ObjectFromDict(**{'foo': 'bar', 'baz': 'monkey'})
print myObj.foo #bar