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I've got following text: sherlock.txt And I want to create a list of every word in it (punctuations are part of the word and are therefore not seperated elements e.g.:'glad.'). what I did was following:

>>> def wordlist(text):
...    input= open(text,'r')
...    data= input.read()
...    input.close()
...    data=data.replace('\n',' ')
...    data=data.replace(chr(13),' ')
...    data=data.replace(chr(9),' ')
...    data=data.split(' ')
...    while '' in data:
...        data.remove('')
...    return data

The problem is it returns a list of words but it takes approx. 7 seconds to do so. Is there a faster method to do this?I know that the while loop is the problem here.

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What should this strange while loop do? –  Andreas Jung Dec 11 '12 at 16:48
    
if I remove the while loop then it returns following list: ['ADVENTURE', 'I.', 'A', 'SCANDAL', 'IN', 'BOHEMIA', '', 'I.', '', 'To',...] As you can see there are '' in the list –  user1830011 Dec 11 '12 at 16:51

5 Answers 5

up vote 7 down vote accepted

Was this not doing it? Calling split without arguments splits the string on all whitespace characters, eliminating those '' that were giving you problems before they even get considered part of data. Since you're going to the trouble of changing those other whitespace characters to ' ', you might as well just get the same effect for free with built-in, default behavior.

def wordlist(text):
    with open(text, "r") as fp:
        data = fp.read().split()
    return data
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Yes you could just split the string.

data.split()

Which will split on whitespace and return an array.

Documentation for split.

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I believe the following does what you're looking for:

words = list(itertools.chain(*map(str.split, open('sherlock.txt'))))

On my machine, this takes 16.5ms.

By removing the call to list(), this could be converted into a generator that would return words as it's reading them, instead of storing all words in memory.

The following is simpler and faster, but is less memory-efficient (this might matter for larger input files):

words = open('sherlock.txt').read().split()

This takes about 6.7ms.

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Try using the split() function without any argument at all. You don't need to do any replace-ing first, because it splits on any whitespace.

def wordlist(text):
...    input= open(text,'r')
...    data= input.read().split()
...    input.close()
...    return data
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For argument's sake we'll assume you can't get the blank strings out of your input. Obviously if you can do that it's the preferred method. A list comprehension can remove them otherwise:

data = [word for word in data if word]

The if part is simplified because an empty string evaluates to False.

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