-1

I'm getting a dict (well, actually, a twitter.api.TwitterDictResponse) which basically looks like this

{
    'a_list' : 
        [
            {'key': 'value1', 'foo': 'bar1'},
            {'key': 'value2', 'foo': 'bar2', 'sup': 'dope'}                
            {'key': 'value3'}
        ]
}

I'm interested in getting value1, value2 and value3 in a list.

I know I can do this this way :

output_list = []
for i in my_dict["a_list"]:
    output_list.append(i["key"])

But there's gotta be a more efficient way ?

Something like my_dict["a_list"][0:3]["key"] or something.

4
  • 2
    For starters, don't loop on the index, loop over the list directly. – juanpa.arrivillaga Jun 14 '17 at 19:49
  • Obviously. Edited. – François M. Jun 14 '17 at 19:52
  • So it's unclear what you mean by "efficient". The way you've show is about as efficient as you will get and it is idiomatic. You might get marginal speed gains by using a list comprehension. – juanpa.arrivillaga Jun 14 '17 at 19:54
  • Alright. The syntax is cumbersome, though. Thanks – François M. Jun 14 '17 at 20:04
1

That's not a JSON, it is a Python dictionary.

You can boost performance (a bit) by using the following list comprehension:

output_list = [ x['key'] for x in my_dict['a_list'] ]

You can't do this (much) more efficiently, since you will have to loop over the elements, to obtain a list of these elements.

The only other way to do it is lazily, by for instance using a map(..):

output_list = map(lambda x : x['key'],my_dict['a_list'])

But then you do not generate a list, but a generator. Eventually it will take the same time (if you need all the elements). But the generator is constructed fast (because the mapping is postponed).

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