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I'm trying to write a function to validate a list.

Basically, for any given element in a list, either the item in front of it, or the item behind it has to be the same.

A good list is defined as:

good_list = ["H", "H", "H", "M", "M", "L", "L", "M", "M", "H", "H", "H"]

A bad list is defined as:

bad_list = ["H", "M", "H", "M", "M", "L", "L", "M", "M", "H", "H", "H"]

I've spent a couple days trying different solutions (and reading on stackoverflow) and below is what I currently have, but it is not returning the right answer. Based on the feedback (thanks!), I've updated it and changed the name of the argument from list to season and made it an OR. It is still returning a "valid list" when it shouldn't though?

bad_list = ["H", "M", "H", "M", "M", "L", "L", "M", "M", "H", "H", "H"]

def check_list(season):     
   for i, a in enumerate(season):
        if season[i] == season[i-1] or season[i] == season[i+1]:
            return True
   return False

result = check_list(bad_list)

if result == True:
    print "Valid list"
    print "Invalid list"
share|improve this question
1. Don't use list because it is already a function. 2. You should check the bounds of your list before accessing things that are potentially out of bounds; remember that Python allows negative indices which may not be desirable here. 3. and should be or, or else the entire list would have to be the same element. –  Waleed Khan Feb 13 '13 at 20:07
thanks for the help, I changed it to 'or', but it is still returning valid list for bad list, when it should be invalid? –  RJP Feb 13 '13 at 20:41

3 Answers 3

I'd simply use itertools.groupby:

if all(len(tuple(group)) > 1 for key, group in itertools.groupby(the_list)):
    print "valid"
    print "invalid"

Basically the request "each element should have an equal element right before or after it" is equivalent to "the list must be composed of groups of consecutive elements of minimum length 2". The groupby function makes these groups, and you simply have to check all their lengths are bigger than 1.

share|improve this answer
nice trick. don't know if this actually work, i take it it does, but explicit and readbililty is important. –  CppLearner Feb 13 '13 at 20:09
@CppLearner Well, I think it is readable. I mean: all -> condition that must be satisfied by all the elements, groupby groups equal elements, len(tuple(group)) > 1 every group of consecutive equal elements must be of at least 2 elements, meaning that every element in the list has either a predecessor or successor equal to itself. –  Bakuriu Feb 13 '13 at 20:11
and I just forced you to explain it. hahaha. mind to put that in your answer? :D i know it's opinionated. just 0.00001 cents. –  CppLearner Feb 13 '13 at 20:12
You can always break the groupby call, the generator expression, and the all call up into separate lines. (And by "you" I mean @CppLearner, the person who's having trouble understanding it—Bakuriu shouldn't be expected to break up perfectly readable and idiomatic code.) Then, if you don't understand what one of the three lines does, you can ask a specific question instead of just saying "explain this". –  abarnert Feb 13 '13 at 21:02
@abarnert I don't want to open a flame war. Let's be reasonable. The for loop is still far better readable. At any day I can look at the for loop and understand what it does. I understand itertools and I use it all the time. I am pointing out the obvious - if OP was using for-loop, give it a for-loop solution. An altnerative is nice, but shouldn't deserve higher vote. –  CppLearner Feb 13 '13 at 21:08

To fix your code use or instead of and:

if list[i] == list[i-1] or list[i] == list[i+1]:

Also you should only perform these checks if the indices i-1 and respectively i+1 do not "fall out" of the list.

This is by far not the best performing solution but should work.

I will not fix your code as I guess you are supposed to come up with it on your own.

share|improve this answer

For the more general case of 'comparing element in front and element behind', I would use itertools.tee and itertools.izip -- perhaps gathering the follow pattern into a utility function.

Also, the logic in your loop is inside-out.

# (inside the function)
_behind, _current, _ahead = itertools.tee(the_list, 3)
# should error check as well
for behind, current, ahead in itertools.izip(_behind, _current, _ahead):
    # fixing logic here
    if behind != current and current != ahead:
        return False
return True


return not any(behind != current and current != ahead for behind, current, ahead in itertools.izip(_behind, _current, _ahead))

Note that you'll need to handle 1-length and 2-length lists with a special case.

share|improve this answer
I think it should be itertools.tee(the_list, 3), otherwise you'd get a ValueError: need more than 2 values to unpack. –  Bakuriu Feb 13 '13 at 21:06
oops, I was thinking of that when I wrote it but forgot to put it in. Fixed. –  forivall Feb 13 '13 at 23:29

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