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db = [('cat',15,22),('dog',28,30),('human',27,80)]

Now I want to create search for 'dog' so my returned value will be db[1]. I can't still figure it out (I know I would use sth like for item in db: if 'dog' in item[:] but don't know how to put it together really.

Please help?

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4 Answers 4

up vote 3 down vote accepted
items = [i for i in db if 'dog' in i]
items[0] if items else None
# ('dog', 28, 30)
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You don't need to convert the tuple into a list to use in. [i for i in db if 'dog' in i] would work as well. –  Utaal Mar 24 at 8:40
    
True, I fixed it. Thanks. –  Matt Mar 24 at 8:41
    
Also, @user3056783 wants his returned value to be db[1] so this should be [i for i in db if 'do' in i][0]; this of course would blow up with an IndexError: list index out of range if 'dog' was not found (as the list you constructed would be empty). –  Utaal Mar 24 at 8:49
1  
I added the code to safely check for an empty result. –  Matt Mar 24 at 8:57
    
Yes I like this one and sort of understand it. If i were to look more into it, what is this kind of coding called: [i for i in db if 'dog' in i] ? Just so I know what to search for. –  user3056783 Mar 24 at 10:40

If you're looking for the first item that matches (as suggested by you saying that your returned value should be db[1]) then you can use

next((x for x in db if x[0] == 'dog'), None)

In case 'dog' may be in any element of the tuple - so that (28, 'dog', 30) would also be matched - I'd go with

next((x for x in db if 'dog' in x), None)

See the answers to Python: find first element in a sequence that matches a predicate for how this works.

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You can use filter:

filter(lambda x:'dog' in x, db)

Output:

[('dog', 28, 30)]
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You mean this?

f = lambda db,x: [_t for _t in db if _t[0]==x][0]

Output:

>>> f(db,'dog')
('dog', 28, 30)
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