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A = [['Yes', 'lala', 'No'], ['Yes', 'lala', 'Idontknow'], ['No', 'lala', 'Yes'], ['No', 'lala', 'Idontknow']]

I want to know if ['Yes', X, 'No'] exist within A, where X is anything I don't care.

I attempted:

valid = False
for n in A:
    if n[0] == 'Yes' and n[2] == 'No':
        valid = True

I know set() is useful in this type of situations. But how can this be done? Is this possible? Or is it better for me to stick with my original code?

share|improve this question
what do you want to achieve? – gefei Jan 15 '13 at 7:03
Why do you think a set would be useful in this case? – Ignacio Vazquez-Abrams Jan 15 '13 at 7:03
Also, an else clause would probably be more efficient than the sentinel. – Ignacio Vazquez-Abrams Jan 15 '13 at 7:04
set() doesn't maintain any order, and from your code it looks like you're relying on index positions which is not possible with sets. – Ashwini Chaudhary Jan 15 '13 at 7:04
@gefei I want to check for the existence of n[0] == 'Yes' and n[1] == 'No'. – elwc Jan 15 '13 at 7:04

4 Answers 4

up vote 8 down vote accepted

if you want check for existance you can just ['Yes', 'No'] in A:

In [1]: A = [['Yes', 'No'], ['Yes', 'Idontknow'], ['No', 'Yes'], ['No', 'Idontknow']]

In [2]: ['Yes', 'No'] in A
Out[2]: True

for the next case try:

In [3]: A = [['Yes', 'lala', 'No'], ['Yes', 'lala', 'Idontknow'], ['No', 'lala', 'Yes'], ['No', 'lala', 'Idontknow']]

In [4]: any(i[0]=='Yes' and i[2] == 'No' for i in A)
Out[4]: True

or you can possibly define a little func:

In [5]: def want_to_know(l,item):
   ...:     for i in l:
   ...:         if i[0] == item[0] and i[2] == item[2]:
   ...:             return True
   ...:     return False

In [6]: want_to_know(A,['Yes', 'xxx', 'No'])
Out[6]: True

any(i[0]=='Yes' and i[2] == 'No' for i in A*10000) actually seems to be the 10 times faster than than the conversion itself.

In [8]: %timeit any({(x[0],x[-1]) == ('Yes','No') for x in A*10000})
100 loops, best of 3: 14 ms per loop

In [9]: % timeit {tuple([x[0],x[-1]]) for x in A*10000}
10 loops, best of 3: 33.4 ms per loop

In [10]: %timeit any(i[0]=='Yes' and i[2] == 'No' for i in A*10000)
1000 loops, best of 3: 334 us per loop
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Convert your list to set first, because it will improve the look up time from O(n) to O(1):

In [27]: A = [['Yes', 'No'], ['Yes', 'Idontknow'], ['No', 'Yes'], ['No', 'Idontknow']]

In [28]: s=set(tuple(map(tuple,A)))

In [29]: s
Out[29]: set([('Yes', 'No'), ('No', 'Idontknow'), ('Yes', 'Idontknow'), ('No', 'Yes')])

In [30]: ('Yes', 'No') in s
Out[30]: True

timeit comparisions:

%timeit ['Yes', 'No'] in A
1000000 loops, best of 3: 504 ns per loop  

%timeit ('Yes', 'No') in s
1000000 loops, best of 3: 442 ns per loop       #winner

%timeit ['No', 'Idontknow'] in A
1000000 loops, best of 3: 861 ns per loop

%timeit ('No', 'Idontknow') in s
1000000 loops, best of 3: 461 ns per loop       #winner


If you're only interested in first and last element:

In [69]: A = [['Yes', 'No'], ['Yes', 'Idontknow','hmmm'], ['No', 'Yes'], ['No', 'Idontknow']]

In [70]: s={tuple([x[0],x[-1]]) for x in A} # -1 or 2, change as per your requirement
                                         #or set(tuple([x[0],x[-1]]) for x in A)

In [71]: s
Out[71]: set([('Yes', 'No'), ('Yes', 'hmmm'), ('No', 'Idontknow'), ('No', 'Yes')])

In [73]: ('Yes', 'hmmm') in s
Out[73]: True

timeit comparison with any() :

In [77]: %timeit ('Yes', 'hmmm') in s
1000000 loops, best of 3: 428 ns per loop      #winner

In [78]: %timeit any(x[0]=="Yes" and x[-1]=="hmmm" for x in A)
100000 loops, best of 3: 2.87 us per loop
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Will be good if you can edit your answer to suit my edited question. – elwc Jan 15 '13 at 7:31
@elwc see the edited solution. – Ashwini Chaudhary Jan 15 '13 at 7:36
Nice comparisons – elwc Jan 15 '13 at 7:41
if you form a set {tuple([x[0],x[-1]]) for x in A} is almost twice as fast. – root Jan 15 '13 at 7:48
sorry for the spam, but %timeit any({(x[0],x[-1]) == ('Yes','No') for x in A*10000}) is two time faster than the conversion itself :P – root Jan 15 '13 at 8:03

Set doesn't support list, you can convert it into tuple,

A = [['Yes', 'No'], ['Yes', 'Idontknow'], ['No', 'Yes'], ['No', 'Idontknow']]
valid = ('Yes', 'No') in {tuple(item) for item in A}

and as @IgnacioVazquez-Abrams mentioned, the conversion from list to tuple is O(n), so if you are aware of performance, you need to choose other methods.

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The conversion to set is O(n), so profiling is required before this is suggested. – Ignacio Vazquez-Abrams Jan 15 '13 at 7:09

Following is how to do it using Set().

>>> A = Set([('Yes', 'No'), ('Yes', 'Idontknow'), ('No', 'Yes'), ('No', 'Idontknow')])
>>> ('Yes','No') in A

The elements of Set should be hashable.. so I have used tuples as Set elements and not lists.

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