1

I want to split dictionary into two lists. one list is for key, another list is for value.

And it should be ordered as original

Original list:

[{"car":45845},{"house": 123}]

Expected result:

list1 = ["car", "house"]

list2 = [45845, 123]
  • 3
    what kinda crappy data structure is this? thats not a dictionary... thats a list of one element dictionaries – Joran Beasley Apr 28 '15 at 23:58
  • 1
    Agreed. What is the point? – Malik Brahimi Apr 28 '15 at 23:59
4
fixed_list = [x.items() for x in list]
keys,values = zip(*fixed_list)
5
list1 = [k for item in [{"car":45845},{"house": 123}] for k,v in item.iteritems()]
list2 = [v for item in [{"car":45845},{"house": 123}] for k,v in item.iteritems()]

For Python 3 use dict.items() instead of dict.iteritems()

  • good readability gets +1 from me (even if you are iterating it twice as many times as you need to) – Joran Beasley Apr 29 '15 at 0:01
  • True but I'm leaving work so it is the fastest thing to do at this time – Daniel Apr 29 '15 at 0:03
0
original = [{"car":45845},{"house": 123}]
a_dict = {}
for o in original:
    a_dict.update(o)
print a_dict
print a_dict.keys()
print a_dict.values()

Output:

{'car': 45845, 'house': 123}
['car', 'house']
[45845, 123]
  • this will not give the expected output in the case of duplicate keys (which may or may not be a valid concern) it also loses the original ordering (since dicts are unordered) which OP specifically asked to preserve – Joran Beasley Apr 29 '15 at 2:38
0
a =[{"car":45845},{"house": 123}]

list1 = [i.values()[0] for i in a] #iterate over values 
list2=  [i.keys()[0] for i in a]   #iterate over keys
  • Although the code is appreciated, it should always have an accompanying explanation. This doesn't have to be long but it is expected. – peterh - Reinstate Monica Apr 29 '15 at 0:44

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