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I have a list of tuples. The first part is an identifier that may or may not be repeated. I want to process this list into a dictionary, keyed by identifier. The problem, I've been unable to think around overwriting by key:

def response_items(self):
        ri = self.response_items_listing#(gets the list)          
        response_items = {}
        for k, g in groupby(ri, itemgetter(0)):
            x = list(g)
            l = [(xx[1],xx[2]) for xx in x]
            response_items[k] = l
        return response_items

e.g. A list like:

[('123', 'abc', 'def'),('123', 'efg', 'hij'),('456', 'klm','nop')]

will come back as

{123:('efg', 'hij'), 456:('klm', 'nop')}

but I need:

{123:[('abc', 'def'),('efg', 'hij')], 456:('klm', 'nop')}

I need to put in a step to merge/aggregate by key but I am not seeing it exactly atm.

What is a better or more efficient solution?

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marked as duplicate by Martijn Pieters Oct 30 '14 at 15:26

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

3  
Yet another question about defaultdict? –  Oleh Prypin Oct 22 '12 at 16:17
    
l = [xx[1:] for xx in x] would be better. Also there is no reason to do x = list(g). –  Nathan Villaescusa Oct 22 '12 at 16:18
    
is this your expected output? or you want something like :{123:('efg', 'hij','abc','def'), 456:('klm', 'nop')} –  Ashwini Chaudhary Oct 22 '12 at 16:18
    
Actually I want {123:[('efg', 'hij'),('abc','def')]} for k,v –  blueblank Oct 22 '12 at 16:19
1  
Since the current code gives the expected answer, this is probably a better fit for codereview.stackexchange.com. –  Andrew Clark Oct 22 '12 at 16:21

3 Answers 3

up vote 2 down vote accepted

A simple approach would be

from collections import defaultdict

ri = [('123', 'abc', 'def'),('123', 'efg', 'hij'),('456', 'klm','nop')]
response_items = defaultdict(list)
for r in ri:
    response_items[r[0]].append(r[1:])
print response_items

which gives

defaultdict(<type 'list'>, {'123': [('abc', 'def'), ('efg', 'hij')],
                            '456': [('klm', 'nop')]})

If you want

defaultdict(<type 'list'>, {'123': ['abc', 'def', 'efg', 'hij'],
                            '456': ['klm', 'nop']})

as output, you can use response_items[r[0]].extend(r[1:]).

share|improve this answer

If there's some reason to be using itertools.groupby, then you can avoid using a defaultdict or setdefault methodology - [in fact, if you want to go down those routes, then you don't really need the groupby!] - by:

mydict = {}
for k, g in groupby(some_list, itemgetter(0)):
    mydict[k] = [el[1:] for el in g]
share|improve this answer

you can use setdefault():

In [79]: dic={}
In [80]: for x in lis:
    dic.setdefault(x[0],[]).append(x[1:])
   ....:     
   ....:     

In [82]: dic
Out[82]: {'123': [('abc', 'def'), ('efg', 'hij')], '456': [('klm', 'nop')]}
share|improve this answer
    
This is really nice if you want to initialize the dict in one spot but want to continue to get KeyErrors for invalid keys after initialization. –  grinch Dec 3 '14 at 16:05

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