Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

How to convert the tuple:

t=(('1','a'), ('1','A'), ('2','b'), ('2','B'), ('3','c'),('3', 'C'))

into a dictionary:

{'1':('a','A'),'2':('b','B'),'3':('c','C')}

I have tried in a console:

>>> d={}
>>> t[0]
(1, 'a')
>>> d[t[0][0]]=t[0][1]
>>> d
{1: 'a'}
>>> t[0][0] in d
True
>>> d[t[1][0]]=t[1][1]
>>> d
{1: 'A'}
>>> d[t[0][0]]=t[0][1]
>>> d[t[1][0]]=d[t[1][0]],t[1][1]
>>> d
{1: ('a', 'A')}

Now the following script fails doing the job:

t=(('1','a'), ('1','A'), ('2','b'), ('2','B'), ('3','c'),('3', 'C'))
print "{'1':('a','A'),'2':('b','B'),'3':('c','C')} wanted, not:",dict(t)
d={}

for c, ob in enumerate(t):
   print c,ob[0], ob[1]
   if ob[0] in d:
       print 'test'
       d[ob[0]]=d[ob[0]],ob[1]
       print d

   else:
       print 'else', d, ob[0],ob[1]
       d[ob[0]]=d[ob[1]]           # Errror is here
       print d
print d

I have the error:

Traceback (most recent call last):
  File "/home/simon/ProjetPython/python general/tuple_vers_dic_pbkey.py", line 20, in <module>
    d[ob[0]]=d[ob[1]]
KeyError: 'a'

It seems to be different from $>>> d[t[0][0]]=t[0][1]$ . Thanks for your help

JP

PS Is there a better way to do the convertion?

share|improve this question
    
{'1':('a','A') ... Does it matter that you have a tuple instead of a list as the value? –  Waleed Khan Sep 27 '12 at 11:36
    
Sorry, I get the error: should be d[ob[0]]=ob[1] not d[ob[0]]=d[ob[1]] –  Jean-Pat Sep 27 '12 at 11:36
    
@Waleed Khan: not really, a list could be fine too. –  Jean-Pat Sep 27 '12 at 11:38

6 Answers 6

You can use defaultdict from the collections module (although it will work better for lists, not tuples):

t=(('1','a'), ('1','A'), ('2','b'), ('2','B'), ('3','c'),('3', 'C'))

from collections import defaultdict
d = defaultdict(list)
for k, v in t:
    d[k].append(v)

d = {k:tuple(v) for k, v in d.items()}
print d

or simply add tuples together:

t = (('1','a'), ('1','A'), ('2','b'), ('2','B'), ('3','c'),('3', 'C'))
d = {}
for k, v in t:
    d[k] = d.get(k, ()) + (v,)
print d    
share|improve this answer
import itertools as it
t=(('1','a'), ('1','A'), ('2','b'), ('2','B'), ('3','c'),('3', 'C'))

{k:tuple(x[1] for x in v) for k,v in it.groupby(sorted(t), key=lambda x: x[0])}

returns

{'1': ('A', 'a'), '2': ('B', 'b'), '3': ('C', 'c')}
share|improve this answer
    
This only works for python 2.7 or later. –  John Sep 27 '12 at 11:58

To be complete, you can use a side effect of a list comprehension to do this in one line:

>>> tups=t=(('1','a'), ('1','A'), ('2','b'), ('2','B'), ('3','c'),('3', 'C'))
>>> d={}
>>> [d.setdefault(k,[]).append(v) for k,v in tups]
[None, None, None, None, None, None]
>>> d
{'1': ['a', 'A'], '3': ['c', 'C'], '2': ['b', 'B']}

Or side-effect of a set comprehension (Py 2.7+ or 3.1+):

>>> d={}
>>> {d.setdefault(k,[]).append(v) for k,v in tups}
set([None])
>>> d
{'1': ['a', 'A'], '3': ['c', 'C'], '2': ['b', 'B']}

This is more for interest -- not recommended syntax -- but interesting nonetheless.

share|improve this answer
t = (('1','a'), ('1','A'), ('2','b'), ('2','B'), ('3','c'),('3', 'C'))
foo = {}
for i in t:
    if i[0] not in foo:
        foo[i[0]] = [i[1]]
    else:
        foo[i[0]].append(i[1])
foo # {'3': ['c', 'C'], '2': ['b', 'B'], '1': ['a', 'A']}
share|improve this answer

A super clean and elegant option would be to do the following:

>>> d = {}
>>> for k,v in (('1','a'), ('1','A'), ('2','b'), ('2','B'), ('3','c'),('3', 'C')):
...     d.setdefault(k, []).append(v)
... 
>>> d
{'1': ['a', 'A'], '3': ['c', 'C'], '2': ['b', 'B']}
share|improve this answer
    
Note that they want tuples, not lists. –  georg Sep 27 '12 at 13:59
>>> t=(('1','a'), ('1','A'), ('2','b'), ('2','B'), ('3','c'),('3', 'C'))
>>> d1 = {}
>>> for each_tuple in t:
    if each_tuple[0] in d1:
        d1[each_tuple[0]] = d1[each_tuple[0]] + list(each_tuple[1])
    else:
        d1[each_tuple[0]] = list(each_tuple[1])

>>> d1
{'1': ['a', 'A'], '3': ['c', 'C'], '2': ['b', 'B']}
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.