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[{'id':44}, {'name':'alexa'},{'color':'blue'}]

I want to select whatever in the list that is "id". Basically, I want to print 44, since that's "id" in the list.

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If there's always just one key in each elem, you're better off using tuples. – Torsten Marek Feb 5 '10 at 10:48
What Torsten suggests not only makes sense, but it also simplifies the problem, because having this: L = [('id', 44), ('name', 'alexa'), ('color', 'blue')], you can do this: dict(L)['id'] – Ricardo Cárdenes Feb 5 '10 at 14:51
could refine question with editing is "id". because "id", "name" or "color" doesn't resemble object identity of the items, but is in python implies a search for object identity. even if I gather that you didn't mean this sense of 'is', the question does not seem overly clear. – n611x007 Apr 30 '14 at 10:27

6 Answers 6

up vote 3 down vote accepted

Probably this is the best solution:

>>> L = [{'id':44}, {'name':'alexa'},{'color':'blue'}]

>>> newd = {}
>>> for d in L:
...    newd.update(d)
>>> newd['id']
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Or newd = dict(tuple(d.items()) for d in L) – Chris Lutz Feb 5 '10 at 20:13

That's a weird data structure... A list of one item dictionaries.

key = 'id'
l = [{'id':44}, {'name':'alexa'},{'color':'blue'}]

print [ x[key] for x in l if key in x ][0]

Assuming you can rely on key being present precisely once...

Maybe you should just convert the list into a dictionary first:

key = 'id'
l = [{'id':44}, {'name':'alexa'},{'color':'blue'}]

d = {}
for x in l:
print d[key]
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.has_key wtf? why is this being even upvoted? – SilentGhost Feb 5 '10 at 11:25
Perhaps because it answers the question? has_key Deprecated, but still works... – Douglas Leeder Feb 5 '10 at 16:33
has been deprecated for 4.5 years, and of course it doesn't even exist in py3k. So, I don't think that it'd qualify as still works. – SilentGhost Feb 5 '10 at 16:37
I wonder why has_key doesn't trigger a deprecation warning in 2.6 :( – John La Rooy Feb 5 '10 at 20:13
@SilentGhost I've changed it anyway - in is twice as fast... – Douglas Leeder Feb 6 '10 at 10:36

All the other answers solve your problem, I am just suggesting an alternative way of going about doing this.

Instead of having a list of dicts where you query on the key and have to iterate over all list items to get values, just use a dict of lists. Each key would map to a list of values (or just one value if all your dicts had distinct sets of keys).


data=[{'id':44}, {'name':'alexa'},{'color':'blue'}]


data={'id':[44], 'name':['alexa'], 'color':['blue']}

and you can neatly access the value for 'id' using data['id'] (or data['id'][0] if you only need one value).

If all your keys are distinct across the dicts (as in your example) you don't even have to have lists of values.

data={'id':44, 'name':'alexa', 'color':'blue'}

Not only does this make your code cleaner, it also speeds up your queries which no longer have to iterate over a list.

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You could do something like this:

>>> KEY = 'id'
>>> my_list = [{'id':44}, {'name':'alexa'},{'color':'blue'}]
>>> my_ids = [x[KEY] for x in my_list if KEY in x]
>>> print my_ids

Which is obviously a list of the values you want. You can then print them as required.

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 >>> from itertools import dropwhile
 >>> def find_value(l, key):
 ...    return dropwhile(lambda x: key not in x, l).next()[key]
 >>> find_value([{'id':44}, {'name':'alexa'},{'color':'blue'}], "id")

This will do a linear search, but only until the element is found.

If you want to have proper error handling, use:

def find_value(l, key):
        return dropwhile(lambda x: key not in x, l).next()[key]
    except StopIteration:
        raise ValueError(key)
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Instead of using, you can use next(generator,def_val). The latter method will return a def_val when StopIteration is reached, so you don't need to wrap it up in a try\catch block. – HS. Feb 5 '10 at 11:11
But then you'd have to check the default value, since not finding the element is exception---unless the function should be extended to include a default value, too. Good suggestion, though. – Torsten Marek Feb 5 '10 at 11:34
>>> L = [{'id':44}, {'name':'alexa'},{'color':'blue'}]
>>> newd=dict(d.items()[0] for d in L)
>>> newd['id']
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