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If I have a dict such as:

foo = {('foo', 45):5, ('bar', 34):3}

How can I check against part of that tuple?

if 'foo' in foo: #should be true
if 45 in foo: #also should be true

Or some other syntax.

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PEP8: no spaces after { or before }. No spaces before ':'. I guess you meant ('bar', 34) – tokland Mar 6 '11 at 19:03
one question: you want to make a lot of these checks? if that's the case, maybe you'll better build a set with 'foo', 45, 'bar', etc. from foo. – tokland Mar 6 '11 at 19:08
In general dictionaries are not optimised for this; if you require efficiency you should restructure your data so that you don't need to do it. – katrielalex Mar 6 '11 at 19:09
This shouldn't have to be a very common check; more of a collision test than anything. – The Communist Duck Mar 6 '11 at 19:22

3 Answers 3

up vote 5 down vote accepted
>>> foo = {('foo', 45): 5, ('bar', 34): 3}    
>>> any(t1 == "foo" for (t1, t2) in foo)
>>> any(t2 == 45 for (t1, t2) in foo)

If you don't know where the value is to be found you can just check the whole pair:

>>> any(45 in pair for pair in foo)

You can also a generators approach (flatten):

>>> 45 in flatten(foo)

That said, probably the best idea is to build your data so you can check this kind of inclussion in O(1) time (a set? a refactored dictionary?)

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You can use operator.concat to flatten all keys:

>>> import operator
>>> 'foo' in reduce(operator.concat, foo.keys())

...or any:

any('foo' in t for t in foo.keys())
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Ah too late! tokland has post before me! – rubik Mar 6 '11 at 19:07
+1 you have a nicer solution, though! (The latter; the former is somewhat overkill.) – katrielalex Mar 6 '11 at 19:08
yup, "any" is better than "reduce" because it will break on match. – tokland Mar 6 '11 at 19:12
And tokland edited in the more general solution before I could post :( – Vamana Mar 6 '11 at 19:12

Another possibility using list comprehension:

if 'foo' in [key[0] for key in foo]:
if 45 in [key[1] for key in foo]:
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