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Have dict like:

mydict= {'a':[],'b':[],'c':[],'d':[]}

list like:

log = [['a',917],['b', 312],['c',303],['d',212],['a',215],['b',212].['c',213],['d',202]]

How do i get all 'a' from list into mydict['a'] as a list.

ndict= {'a':[917,215],'b':[312,212],'c':[303,213],'d':[212,202]}
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3 Answers

up vote 7 down vote accepted

Iterate over the list, and append each value to the correct key:

for key, value in log:
    my_dict[key].append(value)

I renamed dict to my_dict to avoid shadowing the built-in type.

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This is a standard problem that collections.defaultdict solves:

from collections import defaultdict

mydict = defaultdict(list)
for key, value in log:
    mydict[key].append(value)
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Yep, this is the most elegant solution IMHO :) Although it might be mydict = defaultdict(list, mydict) if mydict already has values in it. –  Niklas B. Apr 1 '12 at 15:16
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myDict = {}
myLog = [['a', 917], ['b', 312], ['c', 303],['d', 212], ['a', 215],
         ['b', 212], ['c', 213], ['d', 202]]

# For each of the log in your input log
for log in myLog:
    # If it is already exist, you append it
    if log[0] in myDict:
        myDict[log[0]].append(log[1])
    # Otherwise you can create a new one
    else:
        myDict[log[0]] = [log[1]]

# Simple test to show it works
while True:
    lookup = input('Enter your key: ')
    if lookup in myDict:
        print(myDict[lookup])
    else:
        print('Item not found.')

Sven Marnach's answer is smarter and better, but that's the version I come up. I can see the limitation of my solution.

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@GC your trying, but at correct ans. Its simple. I couldnt figure out how to do 2nd line. –  Merlin Mar 31 '12 at 21:55
    
@Merline: Yea, I can see that solution is much simpler and better. –  George Mar 31 '12 at 21:56
    
Keep working at it....Think simple. try not use everything you know. thats python. giving u credit for trying. –  Merlin Mar 31 '12 at 21:58
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