问题
Here's a function. My intent is to use keyword argument defaults to make the dictionary an empty dictionary if it is not supplied.
>>> def f( i, d={}, x=3 ) :
... d[i] = i*i
... x += i
... return x, d
...
>>> f( 2 )
(5, {2: 4})
But when I next call f, I get:
>>> f(3)
(6, {2: 4, 3: 9})
It looks like the keyword argument d at the second call does not point to an empty dictionary, but rather to the dictionary as it was left at the end of the preceding call. The number x is reset to three on each call.
Now I can work around this, but I would like your help understanding this. I believed that keyword arguments are in the local scope of the function, and would be deleted once the function returned. (Excuse and correct my terminology if I am being imprecise.)
So the local value pointed to by the name d should be deleted, and on the next call, if I don't supply the keyword argument d, then d should be set to the default {}. But as you can see, d is being set to the dictionary that d pointed to in the preceding call.
What is going on?
Is the literal {} in the def line in the enclosing scope?
This behavior is seen in 2.5, 2.6 and 3.1.
回答1:
>>> def f(i, d=None, x=3):
... if not d:
... d={}
... d[i] = i*i
... x += i
... return x,d
...
>>> f(2)
(5, {2: 4})
>>> f(3)
(6, {3: 9})
>>>
来源:https://stackoverflow.com/questions/5712904/empty-dictionary-as-default-value-for-keyword-argument-in-python-function-dicti