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I have a list of many many words.

From it, I want to create a dictionary which contains each unique word in the list as key, and the first position it appears in (the list index) as value of the key.

Is there an efficient method to do this?

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5  
Before asking for an efficient method, do you at least have a working one? What have you tried so far? –  Rik Poggi Apr 20 '12 at 12:10
    
Actually, I have some code which is trying to do something WITHOUT such a dictionary. That code would be better written WITH this dictionary, which is why I want it. But that code isn't relevant to the topic here, so I didn't post it. –  Velvet Ghost Apr 20 '12 at 12:18
    
What I've tried so far is a linear search through the list to extract the position of each word - a horrible method to be sure. –  Velvet Ghost Apr 20 '12 at 12:19
    
@Atriya you cannot do it faster than looking at every word, since you do not know what the words are before you do a linear search. To eliminate duplicates takes O(n*log(n)), so any solution in O(n) is faster anyways. –  mensi Apr 20 '12 at 12:22

5 Answers 5

up vote 5 down vote accepted
>>> l = ['a', 'b', 'c', 'b', 'a', 'd']
>>> import itertools as it
>>> dict(it.izip(reversed(l), reversed(xrange(len(l)))))
{'a': 0, 'b': 1, 'c': 2, 'd': 5}
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1  
+1, but I bet you should use izip instead of zip. –  Tadeck Apr 20 '12 at 12:18
    
Nah zip is cross compatible with python 3 where it actually does return a generator. On that note you should probably use range instead of xrange. –  jamylak Apr 20 '12 at 12:19
1  
Suggestion: use reversed instead of [::-1] –  jamylak Apr 20 '12 at 12:20
    
I'm not sure if it makes much sense to use reversed on xrange... –  Rik Poggi Apr 20 '12 at 12:30
1  
@Marcin: It seems to return a rangeiterator, nice! –  Rik Poggi Apr 20 '12 at 12:37

Since you will have to look at every word anyways, it does not get faster than this:

index = {}

for position, word in enumerate(list_of_words):
    if word not in index:
        index[word] = position
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2  
How is this n^2? This is O(n) - for each of the n words in the list, this performs one or two constant time operations. –  Marcin Apr 20 '12 at 12:26
3  
@eumiro this is O(n) since hashmaps have an amortized cost of O(1) for everything. It's exactly the same as your solution –  mensi Apr 20 '12 at 12:26
    
@Marcin - oops, sorry, I was wrong. Of course, this is O(n) too. –  eumiro Apr 20 '12 at 12:37

Modified version of @eumiro 's solution

>>> from itertools import count, izip
>>> l = ['a', 'b', 'c', 'b', 'a', 'd']
>>> dict(izip(reversed(l),count(len(l)-1,-1))) #In Py 3 just use zip
{'a': 0, 'c': 2, 'b': 1, 'd': 5}
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1  
This is what he had originally. The iterator version is slightly better on large lists, because it doesn't need to construct intermediate datastructures. –  Marcin Apr 20 '12 at 12:30
    
What do you mean it's better. This is just a different way of writing his first solution that seems cleaner to me. I'm not sure what you mean by The iterator version is slightly better on large lists. If you are referring to izip it can easy be changed to that for python 2.x. –  jamylak Apr 20 '12 at 12:33
    
I mean that it's better in that it will not create intermediate objects in either (major) version of python. –  Marcin Apr 20 '12 at 12:42
    
But it won't work in python 3 since izip has been changed to zip. –  jamylak Apr 20 '12 at 12:44
    
Then wrap the import in a try. –  Marcin Apr 20 '12 at 12:50
>>> l = ['a', 'b', 'c', 'b', 'a', 'd']
>>> dic = {l[i]:i for i in range(len(l)-1,-1,-1)}
>>> print(dic)
{'a': 0, 'c': 2, 'b': 1, 'd': 5}
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Try this

l = ['a', 'b', 'c', 'b', 'a', 'd']
l2 = set(l)
mydict = {v:l.index(v) for  v in   l2}

output

{'a': 0, 'b': 1, 'c': 2, 'd': 5}

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