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I have a Python list containing hundreds of thousands of words. The words appear in the order they are in the text.

I'm looking to create a dictionary of each word associated with a string containing that word with 2 (say) words that appear before and after it.

For example the list: "This" "is" "an" "example" "sentence"

Should become the dictionary:

"This" = "This is an"
"is" = "This is an example"
"an" = "This is an example sentence"
"example" = "is an example sentence"
"sentence" = "an example sentence"

Something like:

WordsInContext = Dict()
ContextSize = 2
wIndex = 0
for w in Words:
    WordsInContext.update(w = ' '.join(Words[wIndex-ContextSize:wIndex+ContextSize]))
    wIndex = wIndex + 1

This may contain a few syntax errors, but even if those were corrected, I'm sure it would be a hideously inefficient way of doing this.

Can someone suggest a more optimized method please?

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1  
You know you are going to overwrite entries with sentences like this one? – eumiro Apr 20 '12 at 7:31
    
For fast random-access, you keep list as your first part (if you have to access that list again, index(10), index(1212) for example. Otherwise, you might consider collections.deque. The only problem is that's a linked-list (double, actually). List is array, so it is not for random-access. Also, deqeue is a double-end queue.... However, deqeue might be useful if you have really large list (tens of thousands) and you are only walking down one at a time. But I don't think traversing a linked-list is as bad as walking down an array under modern compiler. My 2 cents. – CppLearner Apr 20 '12 at 7:47
    
@eumiro: Yes, I realize I'll be overwriting sentences, and that should be fine. All I need is one 'context' of a word. – Velvet Ghost Apr 20 '12 at 7:58
up vote 4 down vote accepted

My suggestion:

words = ["This", "is", "an", "example", "sentence" ]

dict = {}

// insert 2 items at front/back to avoid
// additional conditions in the for loop
words.insert(0, None)
words.insert(0, None)
words.append(None)
words.append(None)

for i in range(len(words)-4):   
    dict[ words[i+2] ] = [w for w in words[i:i+5] if w]
share|improve this answer
1  
and if you do [w for w in words[i:i+5] if w], the output should be exactly what the OP wanted. +1 for an elegant solution @Dirk! – Daren Thomas Apr 20 '12 at 8:05
    
@DarenThomas: Where do I use the [w for w in words[i:i+5] if w]? – Velvet Ghost Apr 20 '12 at 8:07
    
ah okay. good solution for this little problem. – Dirk Apr 20 '12 at 8:10
    
Actually, I decided that I don't need to store the context. I just need to write it to a file. Following your code, I was trying something like this: wPos = FIREWordsList.index(w); for cw in FIREWordsList[wPos - ContextSize: wPos + ContextSize + 1]: f2.write(cw + ' '). I have a feeling though that 'index' will do a linear search and be terribly slow. Is there a better way? – Velvet Ghost Apr 20 '12 at 10:38
    
try this: for i in range(len(words)-4): for w in words[i:i+5]: if w: f2.write(w + ' ') f2.write('\n') – Dirk Apr 21 '12 at 8:57
>>> from itertools import count
>>> words = ["This", "is", "an", "example", "sentence" ]
>>> context_size = 2
>>> dict((word,words[max(i-context_size,0):j]) for word,i,j in zip(words,count(0),count(context_size+1)))
{'This': ['This', 'is', 'an'], 'is': ['This', 'is', 'an', 'example'], 'sentence': ['an', 'example', 'sentence'], 'example': ['is', 'an', 'example', 'sentence'], 'an': ['This', 'is', 'an', 'example', 'sentence']}

In python 2.7+ or 3.x

{word:words[max(i-context_size,0):j] for word,i,j in zip(words,count(0),count(context_size+1))}
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