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I need to take a list and use a dictionary to catalogue where a particular item occurs in a list, as an example:

L = ['a', 'b', 'c', 'b', 'c', 'a', 'e']

the dictionary needs to contain the following:

D = {'a': 0, 5 , 'b': 1, 3 , 'c': 2, 4 , 'e': 6}

However if I use what I wrote:

for i in range(len(word_list)):
    if D.has_key('word_list[i]') == False:
        D['word_list[i]'] = i
        D[word_list[i]] += i

Then I get a KeyError for a certain word and I don't understand why I should be getting an error.

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Showing off: D = dict((k, map(operator.itemgetter(1), v)) for k, v in (itertools.groupby(sorted(x[::-1] for x in enumerate(L)), operator.itemgetter(0)))) – Karl Knechtel Dec 12 '11 at 19:55

3 Answers 3

up vote 4 down vote accepted

I modified you solution a bit to work

word_list = ['a', 'b', 'c', 'b', 'c', 'a', 'e']
dict = {'a': [], 'b': [], 'c': [], 'e': []}
for i in range(len(word_list)):
    if word_list[i] not in dict:
        dict[word_list[i]] = [i]


{'a': [0, 5], 'c': [2, 4], 'b': [1, 3], 'e': [6]}
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Your code will work, although it deersve some remarks: (1) you don't need to prepopulat your dict - your code does create new keys for words as they appear; (2) you should use "enumerate" in the for to get both the content of each word an its index number, like for i, word in enumerate(word_list) ; (3) you should not use dict as a variable name in Python code, as it is the dictionary class name - which becomes shadowed – jsbueno Dec 12 '11 at 18:39
Aha thank you! However my only question would be: If you are adding new entries if the item does not exist in the dictionary, isn't the: dict = {'a': [], 'b': [], 'c': [], 'e': []} superfluous? I only ask because I may need to modify this code to list the positions of words in a book, and I won't be able to list every word that occurs for such a large collection of words. Then again, I know very little of Python but it seems to work with the dict line omitted. Thanks again! – George Burrows Dec 12 '11 at 18:43
I didn't see jsbueno's comment appear, damn. – George Burrows Dec 12 '11 at 18:43
@jsbueno I prepopulated the dictionary simple because he did, I know there was no reason to do so. Didn't know about 2 and 3, never really used Python much, I'll keep those in mind in the future. – Danny Dec 12 '11 at 18:45
if D.has_key('word_list[i]') == False:

Uh, what?

At the very least, you should drop the quotes:

if D.has_key(word_list[i]) == False:

But you're also misusing a number of Python structures:

  1. Why are summing up the indices?
  2. Why are you comparing to False?
  3. Shouldn't you be using setdefault

Like this:

for i in range(len(word_list)):
   D.setdefault(word_list[i], []).append(i)
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And then spell it if word_list[i] not in D:. – Wooble Dec 12 '11 at 18:30
I had that originally, but then from what I can tell it adds the indices of each occurence together instead of listing them. I fail at programming. – George Burrows Dec 12 '11 at 18:35
@GeorgeBurrows -- what do you want it to do? The code I posted will set the value at x to the list of all the indices where x appears. – Malvolio Dec 12 '11 at 18:37
I was using False so if an item from the list is not present in the dictionary then it gets added? Also I haven't been taught things such as setdefault so I don't know how to use them. – George Burrows Dec 12 '11 at 18:38
The idiomatic way to write that is if not D.has_key(.... In fact, it's generally considered good form when you have an if-else situation to put the "positive" clause first instead of indulging in code lototes. As for "having been taught" something, read Asimov's "Profession". – Malvolio Dec 12 '11 at 19:32

I think this would be the shortest solution for your problem:

>>> from collections import defaultdict
>>> D = defaultdict(list)
>>> for i,el in enumerate(L):

>>> D
defaultdict(<type 'list'>, {'a': [0, 5], 'c': [2, 4], 'b': [1, 3], 'e': [6]})

If you want to stick with dict, correcting your code I would came up with:

>>> D = {}
>>> for i,el in enumerate(L):
    if el not in D:
        D[el] = [i] #crate a new list
        D[el].append(i) #appending to the existing list

>>> D
{'a': [0, 5], 'c': [2, 4], 'b': [1, 3], 'e': [6]}

Also, there is a setdefault method in dict which can be used:

>>> D = {}
>>> for i,el in enumerate(L):

>>> D
{'a': [0, 5], 'c': [2, 4], 'b': [1, 3], 'e': [6]}

But I prefer to use defaultdict from collections.

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