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Given a list of instances, say clients I'm trying to pluck an item from the list based on the value of a single instance variable screenName. I know I can do this:

for client in clients:
  if client.screenName = search:
    return client

But is there a nicer way of doing this without the loop?

Thanks for your help :)

share|improve this question
2  
I suppose you mean client.screen == search – Charles Brunet Apr 13 '11 at 20:32
up vote 6 down vote accepted

You can use filter

try:
    filter(lambda client: client.screenName == search, clients)[0]
except IndexError:
    # handle error. May be use a default value
share|improve this answer
    
Won't this raise IndexError if no client in clients has screenName == search ? ... – neurino Apr 13 '11 at 20:44
    
@neurino I kind of assumed that the exception would be handled. But added the try-except block for sake of completeness. – Praveen Gollakota Apr 13 '11 at 20:58
    
I'd simply remove the [0] and return a list of results. After all there could be more than one match, then if only the first is needed... – neurino Apr 13 '11 at 21:06

I would use list comprehensions. Suppose this is your Client class:

>>> class Client:
...    def __init__(self, screenName):
...        self.screenName = screenName

If I got this list of clients:

>>> l = [Client('a'), Client('b'), Client('c')]

...I can get a list containing only the clients with a given name:

>>> [e for e in l if e.screenName == 'b']
[<__main__.Client instance at 0x2e52b0>]

Now, just get the first - and assumedly only - element:

>>> [e for e in l if e.screenName == 'b'][0]
<__main__.Client instance at 0x2e52b0>
>>> c = [e for e in l if e.screenName == 'b'][0]
>>> c.screenName
'b'

This is pretty short and IMHO elegant but can be less efficient because the list comprehension will iterate over all the list. If you do want to avoid this overhead, you can get an generator instead of a new list using parenthesis instead of square brackets:

>>> g = (e for e in l if e.screenName == 'b')
>>> g
<generator object <genexpr> at 0x2e5440>
>>> g.next()
<__main__.Client instance at 0x2e52b0>

However, note that the next() method can be called just once.

HTH!

share|improve this answer
    
Very concise and nice. I assume next() can be called multiple times if l contains multiple objects with the same screenName. – Daniel Jun 15 '15 at 7:55

You could use a generator expression,

client=next(client for client in clients if client.screenName == search)

but not that you still looping, just in a different way.

Note: If no client satisfies the condition client.screenName == search then the above will raise a StopIteration exception. This is different than your for-loop, which falls out of the loop without returning anything.

Depending on your situation, raising an exception might be better than failing silently.

If you do not want a default value instead of a StopIteration exception, then you could use the 2-parameter version of next:

client=next(client for client in clients if client.screenName == search, 
            default_value)
share|improve this answer

using a dictionary for this:

assuming this :

d[screeName] = client

you can just do this:

return d[search]  
share|improve this answer

If clients is a dict then you can just use clients[search]. If the order of elements in your list is important, then you can use an OrderedDict from collections.

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Best discussion of this topic is on this link

return find(lambda client: client.screenName == search, clients)

This requires you define a generic find function which would work for all types of lists like thus:

def find(f, seq):
  """Return first item in sequence where f(item) == True."""
  for item in seq:
    if f(item): 
      return item
share|improve this answer
    
I think you mean s/find/filter/? – Will McCutchen Apr 13 '11 at 20:40
    
no i meant what i wrote, dont get the downvote. See here: tomayko.com/writings/cleanest-python-find-in-list-function – Yasser Apr 13 '11 at 20:44
    
well you should define 'find' in your answer..however.. – Ant Apr 13 '11 at 20:51

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