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trying to print the words and num of occurrence. like that:

in 1.txt:

a aba aaa
dd ddd dd

my out shold contains:

[[a,1],[dd,2],[aba ,1],[ddd,1],[aaa,1]]

but it is :

 [[a,1],[dd,2],[aba ,1],[dd,2],[ddd,1],[aaa,1]]

here is the full code:

import re

def get_words_from_string(s):
    return  (re.findall(re.compile('\w+'), s.lower()))


def merge(seq):
    merged = []
    for s in seq:
        for x in s:
            merged.append(x)
    return merged


fp1 =  open('1.txt' , 'r');

set1 = set(line.strip() for line in fp1);

l1 =[]
for x in set1:
    x.split()
    x = get_words_from_string(x)
    l1.append(x)

l1= merge(l1);

out = []
out = [[word , l1.count(word)] for word in l1 if (1 > out.count(word))]

the problem is it throws exception if the word is not in out for the first occurrence is there a safe way to find if list contains an item in it?

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1  
Please try to figure out why you think it does not work, then revise your question to include your findings. –  Tom Dignan Dec 17 '11 at 2:58
1  
What happens when you run this code and what should happen? –  Blender Dec 17 '11 at 3:00

4 Answers 4

up vote 1 down vote accepted

And a solution without imports could be:

>>> f = open('1.txt', 'r')
>>> words = f.read().split()
>>> word_counter = {}
>>> for word in words:
...    word_counter[word] = word_counter.get(word, 0) + 1
...
>>> word_counter
{'a': 1, 'aba': 1, 'dd': 2, 'aaa': 1, 'ddd': 1}

word_counter is now a dict with the frequences of all the words. If you want it as a list of list, you can use a list comprehension:

>>> word_counter_as_list = [ [k, v] for k, v in word_counter.items() ]
>>> word_counter_as_list
[['a', 1], ['aba', 1], ['dd', 2], ['aaa', 1], ['ddd', 1]]
share|improve this answer
fp1 =  open('1.txt' , 'r');   
l1 = fp1.read();
    set1 = set(l1.split());
    for it in set1 :
        print it, "count = " , l1.count(it);
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from collections import Counter

with open("1.txt") as f:
   words = f.read().split()

c = Counter(words)

print [[word,count] for word, count in c.iteritems()]
share|improve this answer

This line

out = [[word , l1.count(word)] for word in l1 if (not(-1<l1.index(word)))]

says "create a list of word/count lists for each word such that -1 is not less than the index of the word in l1". But -1 is always less than the index of the word in l1, because the index is always positive. So this filters out all the results.

If you remove the not, this works as expected. But then the filter is completely pointless. The result of index is always greater than -1, so nothing is ever filter. That is, unless word isn't in l1 at all, in which case an exception is thrown!

Looking more at your code, you have created a ridiculously overcomplicated program. There's a 3-line program that does what you want. Why are you creating a set of lines and then just iterating over them? Why are you using a regex? This is such a simple problem that I'd feel wrong just showing you the best way. But here are some hints:

>>> fp1 =  open('1.txt' , 'r');
>>> s = fp1.read()
>>> s
'a aba aaa\ndd ddd dd\n'
>>> s.split()
['a', 'aba', 'aaa', 'dd', 'ddd', 'dd']
>>> set(s.split())
set(['a', 'aba', 'dd', 'aaa', 'ddd'])
share|improve this answer
    
yes i uploaded the wrong version of the question, now i fixed it, it should be out.index of course. sorry for that again, i have problems issues with the wifi here. thanks –  0x90 Dec 17 '11 at 3:34
    
@ZoZo123, the new code you posted doesn't work at all. out is an empty list while the list comprehension is being run, index throws an exception. –  senderle Dec 17 '11 at 3:38
    
This will iterate over the entire list for every iteration in the list comprehension. –  Noufal Ibrahim Dec 17 '11 at 3:55
    
@NoufalIbrahim, I'm confused by your comment. There is no list comprehension here. I intentionally did not present a complete solution. –  senderle Dec 17 '11 at 4:31
    
Mea Culpa. I read the first line in your answer and made some assumptions that were wrong. Sorry about that. –  Noufal Ibrahim Dec 17 '11 at 10:14

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