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I have a string, call it paragraph that contains about 50-100 words separated by spaces. I have an array of 5500 strings all about 3-5 characters long. What I want to do is check each word in paragraph and see if any of the words are also contained in my array of 5500 strings.

does anyone have a rough estimate of the time it would take to do a once-over in Python? i want to check each word in the paragraph against the array

I will probably end up writing the code anyway as my guess is it won't take too long to process.

If this question is too lazy... how does one go about finding computation time for Python in a simple string example like this?

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4  
If you write the code correctly it will take a fraction of the time you spent writing this question. –  Lasse V. Karlsen Jul 29 '11 at 20:09
    
that's what i figured, lol –  Timtam Jul 29 '11 at 20:12
    
the fastest way to do that is probably set(paragraph.split()).intersect(words) with words being a set too. –  peufeu Jul 29 '11 at 20:20
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2 Answers

up vote 3 down vote accepted

I would convert your array of 5500 strings to a set and just use a set intersection.

>>> paragraph = "five hundred to one hundred words separated by spaces"
>>> array_of_strings = set(['hundred', 'spaces', ])  # make a set..

>>> print set(paragraph.split()).intersection(array_of_strings)
set(['hundred', 'spaces'])

Here's how you time it.

Read about the timeit module. Here's another tutorial: http://diveintopython.net/performance_tuning/timeit.html

import timeit
s = """paragraph = "five hundred to one hundred words separated by spaces"
array_of_strings = set(['hundred', 'spaces', ])  # make a set..

set(paragraph.split()).intersection(array_of_strings)
"""
t = timeit.Timer(stmt=s)
print "%.2f usec/pass" % (1000000 * t.timeit(number=100000)/100000)
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i like this though nobody has given me a time estimate... is that because it depends on what your machine/local settings are? –  Timtam Jul 29 '11 at 20:21
    
This is way better than what I was going to say. You might want to strip() punctuation out of the words in paragraph though. Oh, and normalize case. –  nmichaels Jul 29 '11 at 20:22
    
set intersections are lightning fast. I'll update my answer to reflect the timeit module –  Mahmoud Abdelkader Jul 29 '11 at 20:24
    
@Timtam yes the actual time spent processing is going to be machine dependent. However you can use something like Big-O notation if that is something you are more careful with. In Big-O time it would take roughly O(n) or linear time to check each word in your paragraph against a set. –  sampwing Jul 30 '11 at 1:06
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If you use list, sort it first and use binary search.

But it would be probably better to use a dictionary;)

import time

def timeo(fun, n=1000): 
    def void(  ): pass 
    start = time.clock(  ) 
    for i in range(n): void(  ) 
    stend = time.clock(  ) 
    overhead = stend - start 
    start = time.clock(  ) 
    for i in range(n): fun(  ) 
    stend = time.clock(  ) 
    fulltime = stend-start 
    return fun.__name__, fulltime-overhead 

for f in solution1, solution2, solution3:
    print "%s: %.2f" % timeo(f)
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