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lst = [{"id": 1, "name": "ernest"}, .... {"id": 16, name:"gellner"}]

for d in lst:
    if "id" in d and d["id"] == 16:
        return d

I want to extract the dictionary that the key "id" equals to "16" from the list.

Is there a more pythonic way of this?

Thanks in advance

share|improve this question
    
@TokenMacGuy well yeah I actually meant 16, I just didn't notice that I'll edit it –  Shaokan Aug 4 '11 at 23:05
2  
I think this is good enough. Anything more would be over-complicating things. –  utku.zih Aug 4 '11 at 23:11
    
Is there a reason this has to be a list? Because I would say that the most pythonic solution would be to use a different data structure. Querying a list like this is always inefficient. Unless there's a clear reason why you need a list of dictionaries, I would recommend using a dictionary of dictionaries. –  senderle Aug 4 '11 at 23:36
    
@senderle I am building a tree of nodes, that's why I have to use lists since dictionaries are not sorted :) –  Shaokan Aug 4 '11 at 23:37

3 Answers 3

up vote 4 down vote accepted

Riffing on existing answers to get out of the comments:

Consider using a generator expression when you only need the first matching element out of a sequence:

d16 = (d for d in lst if d.get('id') == 16).next()

This is a pattern you'll see in my code often. This will raise a StopIteration if it turns out there weren't any items in lst that matched the condition. When that's expected to happen, you can either catch the exception:

try:
    d16 = (d for d in lst if d.get('id') == 16).next()
except StopIteration:
    d16 = None

Or better yet, just unroll the whole thing into a for-loop that stops

for d16 in lst:
    if d16.get('id') == 16:
        break
else:
    d16 = None

(the else: clause only gets run if the for loop exhausts its input, but gets skipped if the for loop ends because break was used)

share|improve this answer
1  
I just tested @g.d.d.c 's answer and compared it with mine. There is a huge performance difference. Tested with a million dictionaries in a list and while his method returns back a value in 0.20 seconds the one that I provided in the question returns back only in a 0.01 sec. Am I doing something wrong or its actually true? –  Shaokan Aug 4 '11 at 23:21
    
Now things change, your generator expression works as fast as mine and its only one line. When you search the id 999 from a list that includes ids from 0 to 1 million it returns back the value in a 0.01 sec, so basically same as mine. But the thing is that, if you don't mind try and catch its only one sentence. Therefore I'll shift my answer from gddc to yours! Thanks! –  Shaokan Aug 4 '11 at 23:26
2  
From a strictly efficiency point of view, the only thing your original solution could use is substituting d.get('id') == 16 in favor of 'id' in d and d['id'] == 16. otherwise, yours actually should be faster. Often, questions like "more pythonic" result in answers that are "clever in some way", but not always "as efficient for my problem as possible". be careful what you ask for. –  IfLoop Aug 4 '11 at 23:28

This does it. Whether or not it's "cleaner" is a personal call.

d16 = [d for d in lst if d.get('id', 0) == 16][0]

This initial approach fails if there is no dictionary with id 0. You can overcome that somewhat like this:

d16 = [d for d in lst if d.get('id', 0) == 16]
if d16: d16 = d16[0]

This will prevent the index error, but d16 will be an empty list if there is no dictionary in the container that matches the criteria.

share|improve this answer
    
Note please that this could produce an IndexError if there is no dictionary in lst that has an id value of 16. –  g.d.d.c Aug 4 '11 at 22:55
    
perfect, thanks :) –  Shaokan Aug 4 '11 at 22:55
    
well what if I add and 'if d["id"]' before 'd.get("id", 0)' ? –  Shaokan Aug 4 '11 at 22:56
1  
@Shaokan - d.get(<key>[, <default>]) already takes care of that. The problem isn't in the list comprehension, it's in the [0] after it - if the list comprehension produces an empty list (because no dictionary has id 0) then attempting to retrieve position 0 of the resulting list will raise an error. –  g.d.d.c Aug 4 '11 at 22:58
    
hmm I got it. So I guess I should use this statement within a try catch bloc? –  Shaokan Aug 4 '11 at 23:00

One slight improvement if not found:

d16 = ([d for d in lst if d.get('id', 0) == 16] + [None])[0]
share|improve this answer
    
hah, nice hack :) –  Shaokan Aug 4 '11 at 23:04

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