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I've spent hours trying to debug this code. I want to get the second-to-last element of a list.

for x, y in itertools.groupby(range(0,10), lambda x: int(x / 3)):
    print("the group's key is %d and values are %s" % (x, ','.join(map(str,y))))

temp = itertools.groupby(range(0,10), lambda x: int(x / 3))
the_last_one = None
second_to_last = None
for x,y in temp:
    second_to_last = the_last_one
    the_last_one = y
print(next(iter(second_to_last)))

The output of the first part, for demonstration, is:

the group's key is 0 and values are 0,1,2
the group's key is 1 and values are 3,4,5
the group's key is 2 and values are 6,7,8
the group's key is 3 and values are 9

The goal in the second part is to output the first element in the second-to-last group. I expect 6 but instead, I get the exception StopIteration. If I change the last line to:

print(next(the_last_one))

then I get the expected result of 9. Using a list of tuples with the same structure as the output of groupby works, too. This code only fails on iterators.

share|improve this question
    
Have you looked at what groupby is returning? It's returning four tuples of the form (0, <itertools.grouper_object>). The contents of the second the grouper objects are empty except for the last one, which contains the number 9. – Joel Cornett May 22 '12 at 5:33
    
I'm not quite sure what you are asking for. The second to last element of range(0,10) is simply range(0,10)[-2], which equals 8 – Joel Cornett May 22 '12 at 5:34
    
@Joel I'm not looking for the second to last result of range, I'm looking for the second to last result of the groupby. The example that I gave was contrived and trivial. The real code was working with a list of GPS coordinates, grouped by a function that converts lat/lon to x/y pixel on a mercator projection. Try to write a function to next the second-to-last output of any groupby. It'll fail. – Eyal May 22 '12 at 5:42
    
If the list used by groupby is small, the best way to retrieve the second to last value is list(temp)[-2]. I'm assuming your list is very large? – Joel Cornett May 22 '12 at 5:44
    
You're getting the exception StopIteration because the second to last iterable generated by groupby is empty. – Joel Cornett May 22 '12 at 5:46
up vote 1 down vote accepted

According to the documentation on itertools.groupby:

The returned group is itself an iterator that shares the underlying iterable with groupby(). Because the source is shared, when the groupby() object is advanced, the previous group is no longer visible. So, if that data is needed later, it should be stored as a list:

This means that the iterable is being consumed the first time you iterate through it.

Change

for x,y in temp:
    second_to_last = the_last_one
    the_last_one = y

To

for x,y in temp:
    second_to_last = the_last_one
    the_last_one = list(y)

to store the values as they are iterated over.

share|improve this answer

(I think that I know what's happening but I'm new to Python. Feel free to edit this!)

groupby is yielding tuples of (int, iterator). The iterator calls the repeat() to get values.

When I called next() and advance passed the [6,7,8] iterator, those values disappeared from the output of repeat() forever. 9 is the next output of repeat() and second_to_last is an iterator pointing into the iterator's unsaved past. (Not sure about this part...)

It's not enough to save the iterator in second_to_last, I need to save the values. The solution is to change the line to:

the_last_one = list(y)

list() forces the results of the iterator saved into memory.

share|improve this answer
    
Sounds like you have worked it out, now since second_to_last is a list you can just print second_to_last[0] – John La Rooy May 22 '12 at 5:49

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