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Actually i have a dict of this type

d={'a':{'s':'100100.sss','s1':'100200.ss2','s2':'100200.333'},
  'b':{'t':'100100.yyy','u':'100100.rrr','i':'1001500ttt'},'c':{'f':'g','y':'o'}}

From this i am creating dict of this type

temp={'a':['100100','100200','100200'],'b':['100100',100100'],'c'=[]}

For this i am using code like this

temp={}
for k,v in d.items():
    temp[k]=[]
    for key,val in v.items():
    templist=val.split(".")
    if templist[0].isdigit():
            if templist[0] not in a.values():
                temp[k].append(templist[0])
            else:
                continue

Actually i want dict in this type

temp={'a':['100100','100200'],'b':['100100'],'c'=[]}
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4 Answers 4

up vote 1 down vote accepted
temp = {}
for k,v in d.items():
    for key,val in v.items():
        fn = val.split('.')[0]
        if fn.isdigit():
            temp.setdefault(k, set()).add(fn)
print dict((k, list(v)) for k, v in temp.items())

prints

{'a': ['100100', '100200'], 'b': ['100100']}

or as a one-liner:

dict((k, list(set(e.split('.')[0] for e in v.values() if e.split('.')[0].isdigit()))) for k,v in d.items())
share|improve this answer
    
i have updated my question –  user1182090 Apr 17 '12 at 9:55
    
@-eumiro thanks its working –  user1182090 Apr 17 '12 at 10:12
d={'a':{'s':'100100.sss','s1':'100200.ss2','s2':'100200.333'},
  'b':{'t':'100100.yyy','u':'100100.rrr'}}

temp = dict([(k, list(set([x.split('.')[0] for x in v.values()]))) \
       for k,v in d.items()])

Bit of explanation what it does. It iterates over all items in d, giving key/value pairs. Each value is dictionary, of which you ignore keys, thus it iterates over values. These are passed trough split. Resulting list is converted to set, which makes values unique, then back to list (not sure if you actually need that step). In the end the list of key, value pairs is converted back to dictionary.

share|improve this answer
    
Beat me in time. Great method. –  DonCallisto Apr 17 '12 at 9:41
    
@jamylak: sorry, missed out on the string split. updated –  vartec Apr 17 '12 at 9:44
    
Yeah i noticed, it works now –  jamylak Apr 17 '12 at 9:45
    
you don't need two pairs of square brackets. –  Roman Bodnarchuk Apr 17 '12 at 9:46
2  
@vartec so don't write such one-liners:) –  Roman Bodnarchuk Apr 17 '12 at 9:51

Works only in in Python 2.7+ and 3+

>>> d = {'a': {'s': '100100.sss', 's1': '100200.ss2', 's2': '100200.333'},
         'b': {'t': '100100.yyy', 'u': '100100.rrr'}}
>>> {k:{el.split('.')[0] for el in v.itervalues()} for k,v in d.iteritems()}
{'a': set(['100100', '100200']), 'b': set(['100100'])}
share|improve this answer
    
You forgot to mention that this will work in Python 3+ only. –  vartec Apr 17 '12 at 9:50
    
Works in 2.7+ and 3+ –  jamylak Apr 17 '12 at 9:51
    
Ah, right dictionary and set comprehensions got backported. –  vartec Apr 17 '12 at 9:53

Here is a solution to your problem worked out in IDLE. The output is broken artificially to avoid scrolling.

{k: list(set([i.split('.')[0] for i in v.values()])) for k, v in d.iteritems()}

{'a': ['100100', '100200'], 
 'b': ['100100']}{'a': ['100100', '100200'], 
 'c': ['g', 'o'], 
 'b': ['100100', '1001500ttt']}
share|improve this answer
    
their is no condition to check whether "i.split('.')[0] is digit or not and i updated my dict –  user1182090 Apr 17 '12 at 10:01

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