I have a list of lists that looks like this:

[['Tom', 'Dick'], ['Harry', 'John', 'Mike'], ['Bob']]

and I want to turn it into a dictionary where each key is a name and each value is a number corresponding to the position of its sublist in the list:

{'Tom': 0, 'Dick': 0, 'Harry': 1, 'John': 1, 'Mike': 1, 'Bob': 2}

I tried various list comprehensions, but I couldn't get it to work right with the nested lists. I could use a nested loop, like this:

names = [['Tom', 'Dick'], ['Harry', 'John', 'Mike'], ['Bob']]
names_dict = {}
for i, name_sublist in enumerate(names):
    for name in name_sublist:
        names_dict[name] = i

but I suspect there is a shorter, more elegant way of doing it.

  • The way I remember nesting list comprehensions correctly is that left to right corresponds to shallow to deep in the equivalent nested loop. So to rewrite your loop as a nested comprehension, the outermost loop comes first, then the inner loop. Hope that made some sense :) – Kiv Feb 10 '09 at 23:38
  • In your question it is implicit that the names are unique. If this is not so, the answers you have got will give the index of the LAST sublist in which a non-unique name appears. The best laid schemas o' Mice an' Men gang aft agley -- assuming 1:1 relationships without checking is a common cause :-) – John Machin Jun 28 '09 at 2:02
  • Change the last sentence to "not checking for many-to-many relationships is a common cause" :-) – John Machin Jun 28 '09 at 2:29
up vote 14 down vote accepted
names_dict = dict((name,index)
                  for index,lst in enumerate(names)
                  for name in lst)

Example:

>>> names = [['Tom', 'Dick'], ['Harry', 'John', 'Mike'], ['Bob']]
>>> names_dict = dict((name,index)
...                   for index,lst in enumerate(names)
...                   for name in lst)
>>> names_dict
{'Tom': 0, 'Mike': 1, 'Dick': 0, 'Harry': 1, 'Bob': 2, 'John': 1}

Same idea as MizardX, but slightly smaller and prettier in Python 3.0 using dict comprehensions:

>>> names = [['Tom', 'Dick'], ['Harry', 'John', 'Mike'], ['Bob']]
>>> names_dict = {name:index for index, lst in enumerate(names) for name in lst}
>>> names_dict
{'Tom': 0, 'Mike': 1, 'Dick': 0, 'Harry': 1, 'Bob': 2, 'John': 1}

python 2.6

dict([(t,l.index(x)) for x in l for t in x])

python3.0

{t:l.index(x) for x in l for t in x}

if l is the list of names

Your Answer

 

By clicking "Post Your Answer", you acknowledge that you have read our updated terms of service, privacy policy and cookie policy, and that your continued use of the website is subject to these policies.