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I have a list that looks like this:

myList = [1, 1, 1, 1, 2, 2, 2, 3, 3, 3]

What I want to do is record the index where the items in the list changes value. So for my list above it would be 3, 6.

I know that using groupby like this:

[len(list(group)) for key, group in groupby(myList)]

will result in:

[4, 3, 3]

but what I want is the index where a group starts/ends rather than just then number of items in the groups. I know I could start summing each sucessive group count-1 to get the index but thought there may be a cleaner way of doing so.

Thoughts appreciated.

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3 Answers

up vote 2 down vote accepted

Just use enumerate to generate indexes along with the list.

from operator import itemgetter
from itertools import groupby
myList = [1, 1, 1, 1, 2, 2, 2, 3, 3, 3]

[next(group) for key, group in groupby(enumerate(myList), key=itemgetter(1))]
# [(0, 1), (4, 2), (7, 3)]

This gives pairs of (start_index, value) for each group.

If you really just want [3, 6], you can use

[tuple(group)[-1][0] for key, group in 
        groupby(enumerate(myList), key=itemgetter(1))][:-1]

or

indexes = (next(group)[0] - 1 for key, group in
                groupby(enumerate(myList), key=itemgetter(1)))

next(indexes)
indexes = list(indexes)
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This is great as it gives both the index of change and the value – user965586 Sep 30 '11 at 20:50
If I wanted to only return the index value rather than the key what bit of code would I need to modify? or is this not possible with group by? – user965586 Sep 30 '11 at 20:57
forgive my ignorance on the topic, your second answer does what I need, just provide the index. – user965586 Sep 30 '11 at 21:03
@user965586 nothing to forgive; glad I could help. – agf Sep 30 '11 at 21:11
This solution is cute, but way too complicated to be useful. The task in question is really simple, and should therefore entail a simple solution. Any time I use itemgetter I damn well better need it. Anyone looking at your code is gonna have a hard time figuring out what this line does. This is apparent in that the OP didn't even realize that your solution solved his problem at first. – machine yearning Sep 30 '11 at 22:29
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up vote 3 down vote 
[i for i in range(len(myList)-1) if myList[i] != myList[i+1]]

In Python 2, replace range with xrange.

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Another alternative: [i for i, (a, b) in enumerate(zip(myList, myList[1:])) if a != b], this should be faster but downside is that it requires a copy of myList. – F.J Sep 30 '11 at 21:26
1  
@agf: I don't mean to be rude, but your comment makes no sense. Do you think Python lists are implemented as linked lists? Quite the contrary; in fact, they are basically arrays, so list access is O(1). See wiki.python.org/moin/TimeComplexity – machine yearning Sep 30 '11 at 22:19
@machineyearning You're absolutely right, I don't know what I was thinking -- I know they're not linked lists, just had a brainfail. Nothing rude about correcting someone :). +1, This is a good way -- so long as whatever you're working on has a length and is indexable (as the example in the question is). – agf Oct 1 '11 at 4:28
up vote 1 down vote 
>>> x0 = myList[0]
... for i, x in enumerate(myList):
...     if x != x0:
...         print i - 1
...         x0 = x
3
6
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1  
This is a nice, simple example, but I would do it = iter(myList) then x0 = next(it) then for i, x in enumerate(it) and print i so you don't have to look at the first item in the list twice, and don't have to do the subtraction every time. – agf Sep 30 '11 at 21:14
@agf good point, thanks for the advice – F.C. Sep 30 '11 at 21:25

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