1

Each row of my document contains a dictionary of informations :

{'O':34, 'D': 75, '2015-01':{'c':30,'f':90},'2016-01':{'c':100,'f':78,'r':90.5}}

The expected is :

{'2015-01,c':30,'2015-01,f':90,'2016-01,c':100....}

I tried this in python :

for row in cursor:
       d = dict((''.join([l,',',row[l].keys()]),row[l].values())
                     for l in row.keys - ['O','D'])

But I got this error : TypeError: sequence item 2: expected str instance, dict_keys found Any help please. Thank you

6
  • 1
    You are only wanting to manipulate data where you have a valid four digit year? Because your expected output is ignoring the first two items in your dictionary.
    – idjaw
    Commented Oct 4, 2016 at 12:45
  • I'm looking to join only for date
    – MAYA
    Commented Oct 4, 2016 at 12:47
  • 1
    @idjaw Since the code contains row.keys - ['O','D'], I guess this is the desired behaviour.
    – Efferalgan
    Commented Oct 4, 2016 at 12:47
  • @Efferalgan exactly I'm ignoring my other keys
    – MAYA
    Commented Oct 4, 2016 at 12:50
  • 1
    Are those keys strings, and that =? That dictionary is invalid sysntax Commented Oct 4, 2016 at 13:18

2 Answers 2

4

Assuming your nesting is always one level deep, you could do following:

d = {'O':34, 'D': 75, '2015':{'c':30,'f':90},'2016':{'c':100,'f':78,'r':90.5}}

def join_dict(d):
    for k, v in d.items():
        if isinstance(v, dict):
            for k2, v2 in v.items():
                yield '{},{}'.format(k, k2), v2


result = {k: v for k, v in join_dict(d)}
print(result)
# {'2016,f': 78, '2016,r': 90.5, '2016,c': 100, '2015,f': 90, '2015,c': 30}
9
  • Where do you ignore the other keys?
    – MAYA
    Commented Oct 4, 2016 at 13:02
  • 2
    Your date strings have nested dicts. Using isinstance(..., dict) handles that. Commented Oct 4, 2016 at 13:03
  • The only thing that could break this is if the real data does have cases where the invalid keys have dictionaries as values. But the only person who can confirm this is the OP.
    – idjaw
    Commented Oct 4, 2016 at 13:06
  • Even if it's like that : 2015-01 (year-month) ?
    – MAYA
    Commented Oct 4, 2016 at 13:06
  • 1
    @MAYA rule of thumb. Please don't change the requirements of your question after people have already answered and provided valid solutions. Luckily what you changed does not change this solution and this solution is still valid and will work. But, again, in the future do not change requirements after solutions have been posted.
    – idjaw
    Commented Oct 4, 2016 at 13:20
0

I suggest this :

row = {'O':34, 'D': 75, '2015':{'c':30,'f':90},'2016':{'c':100,'f':78,'r':90.5}}
dic = {}

for key in row :
    if key != 'O' and key != 'D':
        subdic = row[key]
        for subkey in subdic :
            dic[key+","+subkey] = subdic[subkey]

print dic
3
  • there is other keys and it's not same for all rows, this is way I tried row.keys -['O','D']
    – MAYA
    Commented Oct 4, 2016 at 13:01
  • Well I ignored the key you showed, but it can easily be completed with a list of ignored keys.
    – Daneel
    Commented Oct 4, 2016 at 13:04
  • It is not a fix number. Sometimes, some keys are absent in my row
    – MAYA
    Commented Oct 4, 2016 at 13:18

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