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.

Is there a better way to iterate to my dictionary data without using 3 nested for loops like what I am currently doing given this data below? Btw, i am using python 2.6.

data = {'08132012': 
           {
            'id01': [{'code': '02343','status': 'P'},{'code': '03343','status': 'F'}],
            'id02': [{'code': '18141','status': 'F'},{'code': '07777','status': 'F'}]
           }
        }   

Here is the 3 for loops current code:

  for date in data:
      for id in data[date]:
          for trans in data[date][id]:
              print "Date: %s" % date
              print "Processing id: %s" % id
              print trans['code']
              print trans['status']

              //query to database

EDITED: valid data values

share|improve this question
    
Pretty sure you missed an 'date' in your 'data', can you double check? –  Kay Zhu Aug 25 '12 at 6:03
    
Your code sample is syntactically invalid. Either the entry for '08132012' must be surrounded by parentheses, or something else needs to be changed. –  Tim Pietzcker Aug 25 '12 at 6:03
    
@KayZhu it's the main key of data dict but not date-formatted yet. :) –  Bob Aug 25 '12 at 6:08
    
@TimPietzcker thanks edited –  Bob Aug 25 '12 at 6:12
    
props for asking the question that I ask myself everyday –  Greg Aug 25 '12 at 7:43
add comment

3 Answers

up vote 6 down vote accepted

Given the nested nature of the data, I don't think there's any way avoid some nested loops somewhere.

However, you can avoid having to nest most of your program logic by writing a flattening generator for your data, like so:

def flatten(data):
    for date in data:
        for id in data[date]:
            for trans in data[date][id]:
                yield (date, id, trans)

def process(data):
    for date, id, trans in flatten(data):
        # do stuff with date, id, trans
share|improve this answer
add comment

Without knowing more detail of the origin of the data, the solution I would go for is to perhaps consider using namedtuple if it's possible to change the structure of how data is stored. It will make things a little cleaner and more readable.

Here is an example:

>>> from collections import namedtuple
>>> Record = namedtuple('Record', ['date', 'id', 'code', 'status'])
>>> records = []
>>> records.append(Record('08132012', 'id01', '02343','P'))
>>> records.append(Record('08132012', 'id01', '03343','F'))
>>> records.append(Record('08132012', 'id02', '18131','F'))
>>> records.append(Record('08132012', 'id02', '07777','F'))
>>> for record in records:
...     print "Date: %s" %record.date
...     print "Processing id: %s" %record.id
...     print record.code
...     print record.status
... 
Date: 08132012
Processing id: id01
02343
P
Date: 08132012
Processing id: id01
03343
F
Date: 08132012
Processing id: id02
18131
F
Date: 08132012
Processing id: id02
07777
F

More fun:

Get a list of records where status is 'F':

>>> Fs = [record for record in records if record.status == 'F']
>>> Fs
[Record(date='08132012', id='id01', code='03343', status='F'),
Record(date='08132012', id='id02', code='18131', status='F'),
Record(date='08132012', id='id02', code='07777', status='F')]

Sort by code:

>>> records.append(Record('08122012', 'id03', '00001', 'P'))
>>> records.sort(key=lambda x:x.code)
>>> records
[Record(date='08122012', id='id03', code='00001', status='P'),
 Record(date='08132012', id='id01', code='02343', status='P'),
 Record(date='08132012', id='id01', code='03343', status='F'),
 Record(date='08132012', id='id02', code='07777', status='F'),
 Record(date='08132012', id='id02', code='18131', status='F')]
share|improve this answer
1  
I would say that the innermost records would be best stored as a namedtuple for space efficiency and ease of processing, but the outer levels might be best left as dicts if there are many records with the same date and/or id. –  nneonneo Aug 25 '12 at 6:31
    
@nneonneo agreed, that would probably be a more flexible solution given data structure in the question :) But that way it will still involve nested for-loops, which I think is what op is trying to avoid here. –  Kay Zhu Aug 25 '12 at 6:35
    
Dynamically created the dict using text file as input. –  Bob Aug 25 '12 at 6:37
    
@Bob so you can indeed use namedtuple to some degree, as @nneoneo suggested. Or switch to namedtuple completely as I've shown. –  Kay Zhu Aug 25 '12 at 6:39
    
i will look into this –  Bob Aug 25 '12 at 7:37
add comment

A generator is fairly simple:

>>> flat = ((d, id, t) for d in data for id in data[d] for t in data[d][id])
>>> for date, id, trans in flat:
...     print date, id, trans
...
08132012 id02 {'status': 'F', 'code': '18141'}
08132012 id02 {'status': 'F', 'code': '07777'}
08132012 id01 {'status': 'P', 'code': '02343'}
08132012 id01 {'status': 'F', 'code': '03343'}
>>>
share|improve this answer
add comment

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.