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Say I have:

t = (
    ('dog', 'Dog'),
    ('cat', 'Cat'),
    ('fish', 'Fish'),
)

And I need to check if a value is in the first bit of the nested tuple (ie. the lowercase bits). How can I do this? The capitalised values do not matter really, I want to search for a string in only the lowercase values.

if 'fish' in t:
    print "Fish in t."

Doesn't work.

Is there a good way of doing this without doing a for loop with if statements?

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1  
I wish I could give you all the 'best answer'. Sorry, it has to go to someone. –  Marek Kalinowski Jul 17 '09 at 16:13

4 Answers 4

up vote 5 down vote accepted

The elements of a tuple can be extracted by specifying an index: ('a', 'b')[0] == 'a'. You can use a list comprehension to iterate over all elements of some iterable. A tuple is also iterable. Lastly, any() tells whether any element in a given iterable evaluates to True. Putting all this together:

>>> t = (
...     ('dog', 'Dog'),
...     ('cat', 'Cat'),
...     ('fish', 'Fish'),
... )
>>> def contains(w, t):
...     return any(w == e[0] for e in t)
... 
>>> contains('fish', t)
True
>>> contains('dish', t)
False
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Try:

any('fish' == tup[0] for tup in t)

EDIT: Stephan is right; fixed 'fish' == tup[0]. Also see his more complete answer.

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2  
That should be == instead of in, cause otherwise e.g. "ish" also matches. –  Stephan202 Jul 17 '09 at 16:06

You could do something like this:

if 'fish' in (item[0] for item in t):
    print "Fish in t."

or this:

if any(item[0] == 'fish' for item in t):
    print "Fish in t."

If you don't care about the order but want to keep the association between 'dog' and 'Dog', you may want to use a dictionary instead:

t = {
    'dog': 'Dog',
    'cat': 'Cat',
    'fish': 'Fish',
}

if 'fish' in t:
    print "Fish in t."
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When you have an iterable of key-value pairs such as:

t = (
    ('dog', 'Dog'),
    ('cat', 'Cat'),
    ('fish', 'Fish'),
)

You can "cast" it to a dictionary using the dict() constructor, then use the in keyword.

if 'fish' in dict(t):
    print 'fish is in t'

This is very similar to the above answer.

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