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I have a large dictionary constructed like so:

programs['New York'] = 'some values...' 
programs['Port Authority of New York'] = 'some values...' 
programs['New York City'] = 'some values...'
...

How can I return all programs whose key mentions "new york" (case insensitive) - which in the example above, would return all three items.

EDIT: The dictionary is quite large and expected to get larger over time.

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2  
What have you tried? –  Chris Morgan May 7 '12 at 14:58
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4 Answers

up vote 8 down vote accepted
[value for key, value in programs.items() if 'new york' in key.lower()]
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Exactly. Just don't expect it to be fast if your dictionary is large. –  Mark Ransom May 7 '12 at 15:07
    
@MarkRansom I was just about to add that my dictionary is quite large and expected to get larger. It has been doing programs.get('new york') up to now which has been very fast. –  Abid A May 7 '12 at 15:08
    
If going through all keys in the dictionary is too slow for your application, you need to build a datastructure targeted at this kind of query. That would probably be either some sort of word-based inverted index or a suffix tree. –  mensi May 7 '12 at 15:42
    
@mensi. Thanks. I'm making the change now to see how it performs. I'll look into other data structures as well. –  Abid A May 7 '12 at 15:45
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An iteritems and a generator expression will do this:

d={'New York':'some values',
    'Port Authority of New York':'some more values',
    'New York City':'lots more values'}

print list(v for k,v in d.iteritems() if 'new york' in k.lower())    

Output:

['lots more values', 'some more values', 'some values']
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You could generate all substrings ahead of time, and map them to their respective keys.

#generates all substrings of s.
def genSubstrings(s):
    #yield all substrings that contain the first character of the string
    for i in range(1, len(s)+1):
        yield s[:i]
    #yield all substrings that don't contain the first character
    if len(s) > 1:
        for j in genSubstrings(s[1:]):
            yield j

keys = ["New York", "Port Authority of New York", "New York City"]
substrings = {}
for key in keys:
    for substring in genSubstrings(key):
        if substring not in substrings:
            substrings[substring] = []
        substrings[substring].append(key)

Then you can query substrings to get the keys that contain that substring:

>>>substrings["New York"]
['New York', 'Port Authority of New York', 'New York City']
>>> substrings["of New York"]
['Port Authority of New York']

Pros:

  • getting keys by substring is as fast as accessing a dictionary.

Cons:

  • Generating substrings incurs a one-time cost at the beginning of your program, taking time proportional to the number of keys in programs.
  • substrings will grow approximately linearly with the number of keys in programs, increasing the memory usage of your script.
  • genSubstrings has O(n^2) performance in relation to the size of your key. For example, "Port Authority of New York" generates 351 substrings.
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Thanks for the suggestion. I was thinking of this when mensi above mentioned an inverted index. At this point in the project, I will have to choose performance over memory usage. So I'll test this out as well. –  Abid A May 7 '12 at 16:06
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You should use the brute force method given by mensi until it proves to be too slow.

Here's something that duplicates the data to give a speedier lookup. It only works if your search is for whole words only - i.e. you'll never need to match on "New Yorks Best Bagels" because "york" and "yorks" are different words.

words = {}
for key in programs.keys():
    for w in key.split():
        w = w.lower()
        if w not in words:
            words[w] = set()
        words[w].add(key)


def lookup(search_string, words, programs):
    result_keys = None
    for w in search_string.split():
        w = w.lower()
        if w not in words:
            return []
        result_keys = words[w] if result_keys is None else result_keys.intersection(words[w])
    return [programs[k] for k in result_keys]

If the words have to be in sequence (i.e. "York New" shouldn't match) you can apply the brute-force method to the short list of result_keys.

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Very cool suggestion, Mark. Thanks. –  Abid A May 8 '12 at 15:27
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