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 keep only name and value ( key value pair ) This is list.

[{u'domain': u'.facebook.com',
  u'expiry': None,
  u'name': u'c_user',
  u'path': u'/',
  u'secure': True,
  u'value': u'100001724251788'},
 {u'domain': u'.facebook.com',
  u'expiry': None,
  u'name': u'csm',
  u'path': u'/',
  u'secure': False,
  u'value': u'2'},
 {u'domain': u'.facebook.com',
  u'expiry': 1441116441,
  u'name': u'datr',
  u'path': u'/',
  u'secure': False,
  u'value': u'AUojUqoBUYA2wj4j04GT5XvX'},
 {u'domain': u'.facebook.com',
  u'expiry': 1441116442,
  u'name': u'lu',
  u'path': u'/',
  u'secure': False,
  u'value': u'RitwQJMNRJ8siUh_9eIj4SMw'},
 {u'domain': u'.facebook.com',
  u'expiry': None,
  u'name': u's',
  u'path': u'/',
  u'secure': True,
  u'value': u'Aa7ebY1RvmeilCX8.BSI0od'},
 {u'domain': u'.facebook.com',
  u'expiry': None,
  u'name': u'xs',
  u'path': u'/',
  u'secure': True,
  u'value': u'62%3AjNm_3ySkegf7cg%3A2%3A1378044445%3A10945'},
 {u'domain': u'.facebook.com',
  u'expiry': 1380636479,
  u'name': u'fr',
  u'path': u'/',
  u'secure': False,
  u'value': u'0aU8cfDygWXo1ETQA.AWV9BQIzKARYURFpuxUdXLoXcl8.BSI0od.j_.FIj.AWXjyq2t'},
 {u'domain': u'.facebook.com',
  u'expiry': None,
  u'name': u'sub',
  u'path': u'/',
  u'secure': False,
  u'value': u'64'},
 {u'domain': u'.facebook.com',
  u'expiry': None,
  u'name': u'p',
  u'path': u'/',
  u'secure': False,
  u'value': u'125'},
 {u'domain': u'.facebook.com',
  u'expiry': None,
  u'name': u'presence',
  u'path': u'/',
  u'secure': True,
  u'value': u'EM378046939EuserFA21B01724251788A2EstateFDsb2F0Et2F_5b_5dElm2FnullEuct2F1378043847BEtrFnullEtwF2448105081EatF1378046499377G378046939504CEchFDp_5f1B01724251788F13CC'}]
[Dbg]>>> type(cookies)
<type 'list'>
[Dbg]>>> newlist = [{'domain': i['domain'], 'name': i['name'], 'value': i['value']} for i in cookies]
[Dbg]>>> newlist
[{'domain': u'.facebook.com', 'name': u'c_user', 'value': u'100001724251788'},
 {'domain': u'.facebook.com', 'name': u'csm', 'value': u'2'},
 {'domain': u'.facebook.com',
  'name': u'datr',
  'value': u'AUojUqoBUYA2wj4j04GT5XvX'},
 {'domain': u'.facebook.com',
  'name': u'lu',
  'value': u'RitwQJMNRJ8siUh_9eIj4SMw'},
 {'domain': u'.facebook.com',
  'name': u's',
  'value': u'Aa7ebY1RvmeilCX8.BSI0od'},
 {'domain': u'.facebook.com',
  'name': u'xs',
  'value': u'62%3AjNm_3ySkegf7cg%3A2%3A1378044445%3A10945'},
 {'domain': u'.facebook.com',
  'name': u'fr',
  'value': u'0aU8cfDygWXo1ETQA.AWV9BQIzKARYURFpuxUdXLoXcl8.BSI0od.j_.FIj.AWXjyq2t'},
 {'domain': u'.facebook.com', 'name': u'sub', 'value': u'64'},
 {'domain': u'.facebook.com', 'name': u'p', 'value': u'125'},
 {'domain': u'.facebook.com',
  'name': u'presence',
  'value': u'EM378046939EuserFA21B01724251788A2EstateFDsb2F0Et2F_5b_5dElm2FnullEuct2F1378043847BEtrFnullEtwF2448105081EatF1378046499377G378046939504CEchFDp_5f1B01724251788F13CC'}]

To:

    <Cookie>.facebook.com:datr:gyenULkNKjCIJFTYDz2qbp9I
    <Cookie>.facebook.com:c_user:120004707330532
    <Cookie>.facebook.com:fr:0LglznOeWFepXcvAF.AWVm9awu51UtdvT65f9HqxYXUsI.BQp4ej._Q.AAA.AWW8GKGl
    <Cookie>.facebook.com:lu:gg1dq7zzNjC6pd7W9W0SFHnA
    <Cookie>.facebook.com:s:Aa5Zmp1zeLF36x3s
    <Cookie>.facebook.com:xs:1%3AWvWR_uXSzC3p3w%3A0%3A1374938392
    <Cookie>
share|improve this question
    
But your output also has one instance of domain and expiry, not just name and value. –  interjay Sep 1 '13 at 15:03
    
In your example you're also keeping the "domain" and "expiry" keys as well. What is it you're after? –  Mark R. Wilkins Sep 1 '13 at 15:04
1  
Yes, i don't need domain and expiry. –  FastestWebServerYet Sep 1 '13 at 15:04
    
@MarkR.Wilkins, thank again. What i am trying to do this. Represent my data in format ( updated just now ). But i am confused how to sort and reprent data as string like that. –  FastestWebServerYet Sep 1 '13 at 15:39

2 Answers 2

up vote 5 down vote accepted

To extract arbitrary names from a list of dictionaries, you could use operator.itemgetter():

from operator import itemgetter

names = ["name", "value"] # fields to extract
values = itemgetter(*names) # function that extracts values from an input dict

result = [dict(zip(names, values(d))) for d in list_of_dicts]
print(result)

Output

[{'name': u'c_user', 'value': u'100001456251788'},
 {'name': u'csm', 'value': u'2'},
 {'name': u'datr', 'value': u'AUojdfkBUYA2wj4j04GT5XvX'}]
share|improve this answer
    
how to remove u' from all this? –  FastestWebServerYet Sep 1 '13 at 15:34
1  
The return value doesn't actually contain u'. That's just an indication that those are unicode strings, which you specified in your question. –  Mark R. Wilkins Sep 1 '13 at 15:35

You can use what's called a "list comprehension" to cull out the key/value pairs you want:

new_list = [{'name':x['name'], 'value':x['value']} for x in list]

A little extra explanation: What this does is loop over the entries in list, assigning each to x, then applying that value in the expression that comes at the front, in this case

{'name':x['name'], 'value':x['value']}

This can be a quick way to cull elements you want out of a more comprehensive list or to make a new list that you can define with a simple expression from the elements of an existing list.

It's also possible to do the same thing to make a new dictionary by replacing the outer square brackets [] with curly brackets {}.

Also: If you are making your new list to feed to a loop, and your original data set is quite large, you can make a "generator", which is a thing like a list that you can loop over but that doesn't store the new subset of data in memory. Making a generator replaces the square brackets [] with parentheses ().

new_generator = ({'name':x['name'], 'value':x['value']} for x in list)
for element in new_generator:
    ... do whatever ...

This avoids duplicating large amounts of data in memory and only computes each element as the loop proceeds.

share|improve this answer
    
Thanks for explanation! –  FastestWebServerYet Sep 1 '13 at 15:14

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.