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I am trying to organize news according to channels, i.e, I need to use the elements in list_a (below) to name my txt file, then write corresponding strings of the same channel into same document. These txt files can be written to my current fold, no hassle about this

My current concern is how to write it efficiently. Since I don't know how many strings would be written into the document, the current document needs to hold on until string exhausted and new document kicks in.

The following is an example:

Input: 2 string lists:

list_a=['abc','abc','fox','abc',....]

list_b=['campus shooting', 'Congress sucks', 'debt ceiling','1% rich', ...]

Output: 2 documents with title 'abc.txt' and 'fox.txt' respectively

In document abc.txt

campus shooting

congress sucks

In document fox.txt

debt ceiling
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So, the lists are always ordered that way? [chanX, chanY, chanZ] and [new_from_chan_x, new_from_chan_y, new_from_chan_z]?, if so, you can acomplish that with a zip() –  israelord Jan 10 '13 at 20:45

3 Answers 3

up vote 2 down vote accepted

you can use zip() here and open files in append mode( 'a') :

In [44]: list_a=['abc','abc','fox','abc']
In [45]: list_b=['campus shooting', 'Congress sucks', 'debt ceiling','1% rich']

In [46]: for x,y in zip(list_a,list_b):
   ....:     with open(x+".txt" , "a") as f:
   ....:         f.write(y+'\n')
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An alternate method that opens files only once:

from collections import defaultdict

list_a = ['abc', 'abc', 'fox', 'abc']
list_b = ['campus shooting', 'Congress sucks', 'debt ceiling','1% rich']

results = defaultdict(list)

for title, text in zip(list_a, list_b):
    results[title].append(text)

for title, result in results.iteritems():
    with open("%s.txt" % title , "w") as f:
        f.write('\n'.join(result))
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Opening a file for each item might be expensive (don't guess, compare performance with this version that avoids it):

from itertools import groupby
from operator import itemgetter

L = sorted(zip(list_a, list_b), key=itemgetter(0)) # sorted (a, b) pairs
for name, group in groupby(L, key=itemgetter(0)):
    with open(name + ".txt", "w") as file:
        for a, b in group:
            file.write(b + "\n")
share|improve this answer
1  
+1 this is nice, but it changes the order of the content. –  Ashwini Chaudhary Jan 10 '13 at 21:04
    
sort() is guaranteed to be stable since Python 2.2 i.e., the items with the same title should preserve order. –  J.F. Sebastian Jan 10 '13 at 21:07
    
@AshwiniChaudhary: you are right. I forgot to add key to sorted() to preserve order. Fixed. –  J.F. Sebastian Jan 10 '13 at 21:13

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