-7
listim=[['1' ,'2'], ['3' , '4'], ['1', '5'], ['4', '1']]

I am trying to make dictionary using listim for each number,

I want to have d={'1': 2 , 4, 5 ,'2':1, '3': 4, (...and so on)}

my code is(I can't find the mistake but probably about dictionaries):

a=1
dic={}
while a<6:
    for number in listim:
        if number[0]==a:
            if number[1] not in dic[a]:
                dic[a].append(number[1])
        elif number[1]==a:
            if number[0] not in dic[a]:
                dic[a].append(number[0])
        a+=1

I couldn't find enough information on web,(I know I can). I hope I was clear enough. Thank you

3
  • 3
    This d={'1': 2 , 4, 5 ,'2':1, '3': 4 ... makes no sense. Explain better. – khelwood Dec 27 '17 at 20:30
  • Your example output isn't a valid Python literal, and it isn't clear what you desire. – juanpa.arrivillaga Dec 27 '17 at 20:31
  • I'm voting to close this question as unclear because the desired result is not valid Python. – timgeb Dec 27 '17 at 20:34
1

Let's use defaultdict from collections using list as a factory:

from collections import defaultdict

d = defaultdict(list)

listim=[['1' ,'2'], ['3' , '4'], ['1', '5'], ['4', '1']]

for i in listim:
    d[i[0]].append(int(i[1]))

dict(d)

Output:

{'1': [2, 5], '3': [4], '4': [1]}
3
  • 1
    This output doesn't match d={'1': 2 , 4, 5 ,'2':1, '3': 4, (...and so on)} – vaultah Dec 27 '17 at 20:32
  • Agreed, but I assumed OP wanted a list of values for each key and this method provides that. – Scott Boston Dec 27 '17 at 20:33
  • I think the OP requests another line in the for loop: d[i[1]].append(int(i[0])) – Jacques Gaudin Dec 28 '17 at 6:28
-1
dic = {}
for k,v in listim:
    dic[k] = int(v)

or even shorter:

dic = {k:int(v) for k,v in listim}

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