a = {0: 'PtpMotion', 1: 'PtpMotion', 2: 'LinMotion', 3: 'LinMotion', 4: 'LinMotion开发者_高级运维', 5: 'LinMotion', 6: 'LinMotion', 7: 'LinMotion', 8: 'LinMotion', 9: 'PtpMotion', 10: 'LinMotion', 11: 'Wait'}
b = {}
for key, val in a.items():
b[val] = key
print b
What I am trying to do is to swap value of the dictionary for key. But using this code, I lose some information of the dictionary, getting this output:
{'LinMotion': 10, 'PtpMotion': 9, 'Wait': 11}
Why does it happen?
Each key can only occur once in a dictionary. You could store a list of indices for each key:
import collections
b = collections.defaultdict(list)
for key, val in a.iteritems():
b[val].append(key)
print b
# {'LinMotion': [2, 3, 4, 5, 6, 7, 8, 10], 'PtpMotion': [0, 1, 9], 'Wait': [11]}
Edit: As pointed out by ecik in the comments, you could also use a defaultdict(set)
(and use .add()
instead of .append()
in the loop).
When you say
b[val] = key
and val already exists,it overrides the setting, getting what you see. To get all values, you must map the original values to lists of keys, such as
from collections import defaultdict
b = defaultdict(list)
for key, val in a.items():
b[val].append(key)
print b
When I do it (python 2.5.1), I get
defaultdict(<type 'list'>, {'LinMotion': [2, 3, 4, 5, 6, 7, 8, 10],
'PtpMotion': [0, 1, 9],
'Wait': [11]})
Dictionary keys must be unique. If you wanted to keep them all you'd have to make each value for b[val]
a list and add the values to those lists.
Perhaps you want lists in the output dictionary:
from collections import defaultdict
a = {0: 'PtpMotion', 1: 'PtpMotion', 2: 'LinMotion', 3: 'LinMotion', 4: 'LinMotion', 5: 'LinMotion', 6: 'LinMotion', 7: 'LinMotion', 8: 'LinMotion', 9: 'PtpMotion', 10: 'LinMotion', 11: 'Wait'}
b = defaultdict(list)
for key, val in a.items():
b[val].append(key)
print b
yields:
defaultdict(<type 'list'>, {'LinMotion': [2, 3, 4, 5, 6, 7, 8, 10], 'PtpMotion': [0, 1, 9], 'Wait': [11]})
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