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Probably an example will be easier to explain this.

So imagine i have something like this:

 word_dict = {"word": frequency}

example would I loop thru a paragraph and in that paragraph I found the word freq as

 word_dict = {"this":2,"that":4} # assume that all the cases have just these two words..

yepp its a strange dict..

Now, each paragraph is assigned to a story and this story has an id:

lets say i get this:

{1234: {word_dict}} # where 1234 is the story id

and then this story is contanined in a book: So if do something like book_dict[book_id][story_id], this would return me word_dict.

But there is a good chance that a same book_id, story_id will have different word_dict

i Know it sounds weird..

So what I want is that book_dict[book_id][story_id] = [{word_dict}] so it returns me a list of word dictionary..

How do I implement this.

Err. is the question making any sense?

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as for your last question: not a lot ;) please separate code from text – Niklas B. Apr 15 '12 at 23:11
Can you rephrase your question more clearly? What do you have in input, what do you want in output? – Charles Menguy Apr 15 '12 at 23:12
As a sidenote, you might look up the Counter object if you're looking up word frequencies: (no need to reinvent the wheel when such a nice one is provided!) – hexparrot Apr 16 '12 at 1:00

3 Answers 3

up vote 3 down vote accepted
book_dict = {}
for each book_id, story_id, word_dict in who_knows_what:
    if book_id not in book_dict:
        book_dict[book_id] = {}
    if story_id not in book_dict[book_id]:
        book_dict[book_id][story_id] = []
    book_dict[book_id][story_id].append( word_dict )
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I stumbled on your answer and wonder if I could ask you to explain the 'each' keyword in the second line. I thought Python's for was a for each. So, does the each refer to each member of the tuple? – mac389 Nov 27 '12 at 14:36

Another option is using setdefault:

book_dict = {}
for each book_id, story_id, word_dict in who_knows_what:
    book_dict.setdefault(book_id, {}).setdefault(story_id, []).append(word_dict) 
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Here's a shortened version of the answer by Scott Hunter:

book_dict = {}
for book_id, story_id, word_dict in who_knows_what:
    book_dict[book_id] = book_dict.get(book_id, {})
    book_dict[book_id][story_id] = book_dict[book_id].get(story_id, [])
    book_dict[book_id][story_id].append( word_dict )
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