1

I have a dictionary like:

d = {1: 'a', 2:'b', 3:'c', 4:'c', 5:'c', 6:'c'}

I want to slice this dictionary such that if the values in the end are same, it should return only the first value encountered. so the return is:

d = {1: 'a', 2:'b', 3:'c'}

I'm using collections.defaultdict(OrderedDict) to maintain sorting by the keys.

Currently, I'm using a loop. Is there a pythonic way of doing this?


UPDATE

the dictionary values can also be dictionaries:

d = {1: {'a': 'a1', 'b': 'b1'}, 2:{'a': 'a1', 'b': 'b2'}, 3:{'a': 'a1', 'b': 'c1'}, 4:{'a': 'a1', 'b': 'c1'}, 5:{'a': 'a1', 'b': 'c1'}, 6:{'a': 'a1', 'b': 'c1'}}

output:

d = {1: {'a': 'a1', 'b': 'b1'}, 2:{'a': 'a1', 'b': 'b2'}, 3:{'a': 'a1', 'b': 'c1'}}
  • 2
    Is the dict always ordered by its keys? I see that you have 1,2,3,4,5,6 for keys. If so, then use a list instead as a dictionary is unnecessary. – Mike Peder Mar 5 '18 at 10:00
  • 1
    Loops are pythonic. I wouldn't say comprehensions are always more pythonic than loops, this is subjective. – jpp Mar 5 '18 at 10:16
2

You can use itertools.groupy with a list-comprehension to achieve your result

>>> from itertools import groupby

>>> d = {1: 'a', 2:'b', 3:'c', 4:'c', 5:'c', 6:'c'}
>>> n = [(min([k[0] for k in list(g)]),k) for k,g in groupby(d.items(),key=lambda x: x[1])]
>>> n
>>> [(1, 'a'), (2, 'b'), (3, 'c')]

The above expression can also be written as

 >>> from operator import itemgetter
 >>> n = [(min(map(itemgetter(0), g)), k) for k, g in groupby(d.items(), key=itemgetter(1))]

You can cast this to dict by simply using

>>> dict(n)
>>> {1: 'a', 2: 'b', 3: 'c'}

This obviously don't maintain order of keys, so you can use OrderedDict

>>> OrderedDict(sorted(n))
>>> OrderedDict([(1, 'a'), (2, 'b'), (3, 'c')])
  • 1
    This comes down to a matter of preference, but you can also use operator.itemgetter: [(min(map(itemgetter(0), g)), k) for k, g in groupby(d.items(), key=itemgetter(1))]. I upvoted nonetheless :). – RoadRunner Mar 5 '18 at 10:35
  • thanks! this works but it doesnt when the values are also dictionaries. sorry, i have updated the OP – Abhishek Thakur Mar 5 '18 at 10:47
  • @AbhishekThakur I checked it is actually working if values are dict. Can you confirm? – Sohaib Farooqi Mar 5 '18 at 10:53
  • my bad. this does work! – Abhishek Thakur Mar 5 '18 at 11:18
0

If you want to get rid of for loop - you can do it this way:

{a:b for b,a in {y:x for x,y in sorted(d.iteritems(), reverse=True)}.iteritems()}

But it is not so pythonic and not so efficient.

  • I was also thinking the same thing. Not sure if this is a good idea or not. – Sohaib Farooqi Mar 5 '18 at 10:09
  • I would say efficient and readable for loop is much better =) – A. Haaji Mar 5 '18 at 10:13
0

Instead of using a ordered dictionary with the keys representing indexes, the more pythonic way is using a list. In this case, you will use indexes instead of keys and will be able to slice the list more effectively.

>>> d = {1: 'a', 2:'b', 3:'c', 4:'c', 5:'c', 6:'c'}
>>> a = list(d.values())
>>> a[:a.index(a[-1])+1]
['a', 'b', 'c']
0

Just in case, a solution with pandas

import pandas as pd

df = pd.DataFrame(dict(key=list(d.keys()),val=list(d.values())))
print(df)
   key val
0    1   a
1    2   b
2    3   c
3    4   c
4    5   c
5    6   c

df = df.drop_duplicates(subset=['val'])
df.index=df.key
df.val.to_dict()

{1: 'a', 2: 'b', 3: 'c'}

Don't know performances issues on biggest dataset or if it is more pythonic.
Nevertheless, no loops.

0

You can check if two last values are same:

d = OrderedDict({1: 'a', 2:'b', 3:'c', 4:'c', 5:'c', 6:'c'})

while d.values()[-1] == d.values()[-2]:
    d.popitem()

print d
# OrderedDict([(1, 'a'), (2, 'b'), (3, 'c')])

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