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.

I would like to convert a POST from Webob MultiDict to nested dictionary. E.g.

So from a POST of:

'name=Kyle&phone.number=1234&phone.type=home&phone.number=5678&phone.type=work'

to a multidict;

[('name', 'Kyle'), ('phone.number', '1234'), ('phone.type', 'home'), ('phone.number', '5678'), ('phone.type', 'work')]

to a nested dictionary

{'name': 'Kyle',
 'phone': [
  {
    'number': '12345',
    'type': 'home',
  },{
    'number': '5678',
    'type': 'work',
  },

Any ideas?

EDIT

I ended up extracting the variable_decode method from the formencode package as posted by Will. The only change that was required is to make the lists explicit, E.g.

'name=Kyle&phone-1.number=1234&phone-1.type=home&phone-2.number=5678&phone-2.type=work'

Which is better for many reasons.

share|improve this question

3 Answers 3

up vote 4 down vote accepted

If you have formencode installed or can install it, checkout out their variabledecode module

share|improve this answer
    
I extracted the variable_decode() method and it works, perfectly, thank you. –  Kyle Finley Jan 30 '12 at 15:46

I haven't had the time to test it and it's quite restrictive, but hopefully this will work (I'm only posting because it's been a while since you posted the question):

>>> def toList(s):
...     answer = []
...     L = s.split("&")
...     for i in L:
...             answer.append(tuple(i.split('=')))
...     return answer

>>> def toDict(L):
...     answer = {}
...     answer[L[0][0]] = L[0][1]
...     for i in L[1:]:
...             pk,sk = L[i][0].split('.')
...             if pk not in answer:
...                     answer[pk] = []
...             if sk not in answer[pk][-1]:
...                     answer[pk][sk] = L[i][1]
...             else:
...                     answer[pk].append({sk:L[i][1]})

If this is not 100%, it should at least get you on a good start.

Hope this helps

share|improve this answer
    
Thank you for your response, it gave me a better understand of a limitation I had created by not making Lists explicit. It's difficult to know when to create a list unless it's indicated in the key name. –  Kyle Finley Jan 30 '12 at 15:56

I prefer an explicit way to solve your problem:

  1. Divide the members which belong to the same structure (or dict) into a same group with same field name, like

    'name=Kyle&phone1=1234&phone1=home&phone2=5678&phone2=work'
    
  2. The order of the fields in the form is guaranteed, so the multidict will be: (('name', 'Kyle'), ('phone1', '1234', 'home'), ('phone2', '5678', 'work'))

  3. Then the code will be like:

    def extract(key, values):
        extractor = {
           "name":str,
           "phone":lambda *args:dict(zip(('number', 'type'), args)
        }
        trimed_key = re.match(r"^(\w+)", key).group(1)
        return trimed_key, extractor(trimed_key, *values)
    
    nested_dict = {}
    for i in multidict():
        key, values = i[0], i[1:]
        nested_dict.setdefault(key, [])
        trimed_key, data_wanted = extract(key, values) 
        nested_dict[trimed_key].append(data_wanted)
    
    for key in nested_dict:
        if len(nested_dict[key]) == 1:
           nested_dict[key] = nested_dict[key][0]
    
share|improve this answer
    
Thank you for the response. Explicit is the way to solve this. I ended using the variable_decode() method from the formencode package as posted by Will. –  Kyle Finley Jan 30 '12 at 16:02

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.