问题
>>> a = 1
>>> print { key: locals()[key] for key in ["a"] }
Traceback (most recent call last):
File "<stdin>", line 1, in <module>
File "<stdin>", line 1, in <dictcomp>
KeyError: 'a'
How can I create a dictionary with a comprehension like this?
回答1:
A dict comprehension has its own namespace, and locals() in that namespace has no a. Technically speaking, everything but the initial iterable for the outermost iterable (here ["a"]) is run almost as a nested function with the outermost iterable passed in as an argument.
Your code works if you used globals() instead, or created a reference to the locals() dictionary outside of the dict comprehension:
l = locals()
print { key: l[key] for key in ["a"] }
Demo:
>>> a = 1
>>> l = locals()
>>> { key: l[key] for key in ["a"] }
{'a': 1}
>>> { key: globals()[key] for key in ["a"] }
{'a': 1}
回答2:
You can try using globals() instead:
print {key : globals()[key] for key in ["a"]}
since a is not defined in the scope of the dict comprehension (as @MartijnPieters said).
来源:https://stackoverflow.com/questions/22485399/python-dictionary-comprehension-using-locals-gives-keyerror