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I begin with a simple python dictionary like this:-

In [29]: date_dict
Out[29]: 
{'2003-06-24': 2,
 '2003-08-13': 1,
 '2003-08-19': 2,
 '2003-08-22': 1,
 '2003-08-24': 5}

with the key being a date and the value an integer.

My goal is to reorganize the data in this dictionary into:-

{'datetime': ['2003-08-13',
  '2003-08-19',
  '2003-06-24',
  '2003-08-24',
  '2003-08-22'],
 'observations': [1, 2, 2, 5, 1]}

which maintains the data relationship between the list held by the datetime key and the list held by the observations key.

This is my solution to get this done:-

In [35]: new_dict
Out[35]: {'datetime': [], 'observations': []}

In [36]: for key, value in date_dict.iteritems():
   ....:     new_dict['datetime'].append(key)
   ....:     new_dict['observations'].append(value)

In [37]: new_dict
Out[37]: 
{'datetime': ['2003-08-13',
  '2003-08-19',
  '2003-06-24',
  '2003-08-24',
  '2003-08-22'],
 'observations': [1, 2, 2, 5, 1]}

My question is - are there alternative (better still, if more efficient) methods of doing this?

(Note that it is critical to maintain the data-relationship across the two lists, i.e. in the original date_dict, "2003-08-24" corresponds to value "5". After the data is reorganized, the 3rd index of the 'datetime' list is "2003-08-24" which correctly corresponds to the 3rd index of the 'observations list' as "5".)

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3 Answers 3

up vote 5 down vote accepted

Maybe:

new_dict = {'datetime': date_dict.keys(), 'observations': date_dict.values()}

In case you need order try to use OrderedDict instead of dict:

Return an instance of a dict subclass, supporting the usual dict methods. An OrderedDict is a dict that remembers the order that keys were first inserted. If a new entry overwrites an existing entry, the original insertion position is left unchanged. Deleting an entry and reinserting it will move it to the end.

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First thing I tried. This doesn't retain the data order and relationship. –  Calvin Cheng Nov 14 '12 at 2:32
    
O, it does match... –  Calvin Cheng Nov 14 '12 at 2:34
    
@CalvinCheng -- What do you mean the data order and relationship? zip(d.keys(),d.values()) is functionally equivalent to d.items() –  mgilson Nov 14 '12 at 2:34
    
My bad... somehow I misread the output when I attempted your exact solution earlier. It works. –  Calvin Cheng Nov 14 '12 at 2:35
    
Nice mention about OrderedDict. –  Calvin Cheng Nov 14 '12 at 2:44

How about:

dates, observations = zip(*date_dict.items())

Then pack up the dates and observations lists however you like.

You can sort with the same construct:

dates, observations = zip(*sorted(date_dict.items()))
share|improve this answer
    
Good one about zip. –  Calvin Cheng Nov 14 '12 at 2:45

Are you sure you need a dictionary? I think a list of tuples does what you want better:

observations = [('2003-08-13',1),...]
share|improve this answer
    
I don't need dictionary per say. I just need to reorganize the data set into that format. –  Calvin Cheng Nov 14 '12 at 2:46

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