我有一个老咸菜文件,当我尝试加载它,我得到的错误如何加载旧的pickle文件?
ImportError: No module named oldname.submodule
这是因为oldname早就已经更名为newname。
如何加载这个pickle文件?
我可以创建oldname到newname一个符号链接,但我不知道是否有一种方法,使oldname.*指newname.*模块时不接触的文件系统?
而不是创建第二个并行模块和外部依赖项的符号链接,请在sys.modules中添加一个条目。为了测试,我再腌渍类实例改名模块
[email protected] ~/tmp $ cat oldname.py
class Foo(object):
def __init__(self):
self.name = 'bar'
[email protected] ~/tmp $ python
Python 2.7.6 (default, Oct 26 2016, 20:30:19)
[GCC 4.8.4] on linux2
Type "help", "copyright", "credits" or "license" for more information.
>>> import oldname
>>> foo = oldname.Foo()
>>> foo.name
'bar'
>>> import pickle
>>> pickle.dump(foo, open('test.pkl', 'wb'), 2)
>>> exit()
[email protected] ~/tmp $ mv oldname.py newname.py
[email protected] ~/tmp $ rm oldname.*
现在正在加载失败
[email protected] ~/tmp $ python
Python 2.7.6 (default, Oct 26 2016, 20:30:19)
[GCC 4.8.4] on linux2
Type "help", "copyright", "credits" or "license" for more information.
>>> import newname
>>> import pickle
>>> foo = pickle.load(open('test.pkl', 'rb'))
Traceback (most recent call last):
File "<stdin>", line 1, in <module>
File "/usr/lib/python2.7/pickle.py", line 1378, in load
return Unpickler(file).load()
File "/usr/lib/python2.7/pickle.py", line 858, in load
dispatch[key](self)
File "/usr/lib/python2.7/pickle.py", line 1090, in load_global
klass = self.find_class(module, name)
File "/usr/lib/python2.7/pickle.py", line 1124, in find_class
__import__(module)
ImportError: No module named oldname
但是,如果我重复在sys.modules中的模块,它的工作原理。有趣的是,类实例具有新的模块名称。
>>> import sys
>>> sys.modules['oldname'] = sys.modules['newname']
>>> foo = pickle.load(open('test.pkl', 'rb'))
>>> foo
<newname.Foo object at 0x7f6b837d3310>
注意事项:如果班级本身改变了很多腌菜会失败。
即使符号链接也是有风险的,因为如果您还导入了真实模块,则会有两个名称空间。如果模块使用全局状态,可能会有麻烦。也许你可以'sys.modules ['oldname'] = sys.modules ['newname']'。 – tdelaney