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I have a list which contains a bunch of tuples, each containing three objects, an id number, a date and a status, all as strings. The following is an example of the structure.

[('1232', '07-10-13', 'yes'), ('1111', '07-10-13', 'no'), 
 ('90872', '07-05-13', 'no'), ('63563', '07-06-13', 'no'), 
 ('11111', '07-06-13', 'yes')]

I want to get, as output, each tuple's date and status, but also need the number of times that date appears in all the tuples in the list. Using the example above, the date 07-10-13 appears twice. So, for every tuple, I should get the date, the amount of times that date appears in the list as a whole and the status for that date, either 'yes' or 'no'.

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closed as off-topic by Haidro, John Zwinck, Wooble, Henry Keiter, Graviton Jul 10 '13 at 3:24

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Your description is a little unclear. can you provide sample output? Also, what have you tried? –  David Marx Jul 9 '13 at 13:21
    
i want to draw a graph. for that i want similar date and its status. i have a list of data as shown on top. –  user1939565 Jul 9 '13 at 13:27
    
I meant give a sample of what you want the counts to look like. I'm guessing you want something like: [('07-10-13','yes',1), ... ] ? –  David Marx Jul 9 '13 at 13:30
    
yes, that is what i am looking for. –  user1939565 Jul 9 '13 at 13:31
    
I edited your question heavily. Can you please check I haven't interpreted your question incorrectly? I was struggling to follow it. –  Carl Smith Jul 9 '13 at 13:37

2 Answers 2

up vote 2 down vote accepted
l = [('1232', '07-10-13', 'yes'), ('1111', '07-10-13', 'no'), ('90872', '07-05-13', 'no'), ('63563', '07-06-13', 'no'), ('11111', '07-06-13', 'yes')]

res = {}
for _, k, v in l:
    if k not in res:
        res[k] = [[v], 1]
    else:
        res[k][0].append(v)
        res[k][1] += 1

print res

You can also use itertools:

from itertools import groupby
from operator import itemgetter

l = [('1232', '07-10-13', 'yes'), ('1111', '07-10-13', 'no'), ('90872', '07-05-13', 'no'), ('63563', '07-06-13', 'no'), ('11111', '07-06-13', 'yes')]

res = {}
for k, v in groupby(l, itemgetter(1)):
    t = [x[2] for x in v]
    res[k] = [t, len(t)]

print res

or just one-liner :)

res = {k[0]: [k[1], len(k[1])] for k in [(date, [x[2] for x in gr]) for date, gr in groupby(l, itemgetter(1))]}

Check this link Python group by

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a=[('1232', '07-10-13', 'yes'), ('1111', '07-10-13', 'no'),('90872', '07-05-13', 'no'),('63563', '07-06-13', 'no'), ('11111', '07-06-13', 'yes')]
dates=set([d for x,d,v in a])
for date in dates:
   p=[v for x,d,v in a if d==date]
   print date + "=" + str(len(p)) + " , " + ','.join(p)

gives:

07-10-13=2 , yes,no
07-05-13=1 , no
07-06-13=2 , no,yes
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1  
I think performance for large number of elements would be not very good –  Roman Pekar Jul 9 '13 at 14:23

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