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I looked up and found a close example, but the answer found in this link: Remove adjacent duplicate elements from a list won't run the test cases for this problem. So this is all I have so far:

def remove_dups(thelist):
    """Returns: a COPY of thelist with adjacent duplicates removed.

    Example: for thelist = [1,2,2,3,3,3,4,5,1,1,1],
    the answer is [1,2,3,4,5,1]

    Precondition: thelist is a list of ints"""
    i = 1
    if len(thelist) == 0:
        return []
    elif len(thelist) == 1:
        return thelist
    elif thelist[i] == thelist[i-1]:
        del thelist[i]
    return remove_dups(thelist[i:])


def test_remove_dups():
    assert_equals([], remove_dups([]))
    assert_equals([3], remove_dups([3,3]))
    assert_equals([4], remove_dups([4]))
    assert_equals([5], remove_dups([5, 5]))
    assert_equals([1,2,3,4,5,1], remove_dups([1,2,2,3,3,3,4,5,1,1,1]))

# test for whether the code is really returning a copy of the original list
    mylist = [3]
    assert_equals(False, mylist is remove_dups(mylist))

EDIT while I do understand that the accepted answer linked above using itertools.groupby would work, I think it wouldn't teach me what's wrong with my code & and would defeat the purpose of the exercise if I imported grouby from itertools.

share|improve this question
    
Must it be recursive? Can you sort it and then iterate over it? –  AndyG Mar 26 at 20:01
    
I would think sorting would be wrong, else you'd just do sorted(set(list)) –  Aaron Hall Mar 26 at 20:01
    
@andyG yes, it has to be recursive –  user3348439 Mar 26 at 20:03
    
@AaronHall: Ah yeah, the set function. I'm still learning Python myself! –  AndyG Mar 26 at 20:26
    
@AndyG It's actually the constructor for the set datatpype, read the data model documentation for more. –  Aaron Hall Mar 26 at 21:02

4 Answers 4

up vote 1 down vote accepted
from itertools import groupby

def remove_dups(lst):
    return [k for k,items in groupby(lst)]

If you really want a recursive solution, I would suggest something like

def remove_dups(lst):
    if lst:
        firstval = lst[0]

        # find lowest index of val != firstval
        for index, value in enumerate(lst):
            if value != firstval:
                return [firstval] + remove_dups(lst[index:])

        # no such value found
        return [firstval]
    else:
        # empty list
        return []
share|improve this answer

Your assertion fails, because in

return thelist

you are returning the same list, and not a copy as specified in the comments.

Try:

return thelist[:]
share|improve this answer
    
You're right, but that doesn't change what I end up with - I think I need to alter the last three lines of the first set of code. –  user3348439 Mar 26 at 20:16

When using recursion with list it is most of the time a problem of returning a sub-list or part of that list. Which makes the termination case testing for an empty list. And then you have the two cases:

  1. The current value is different from the last one we saw so we want to keep it
  2. The current value is the same as the last one we saw so we discard it and keep iterating on the "rest" of the values.

Which translate in this code:

l = [1,2,2,3,3,3,4,5,1,1,1]

def dedup(values, uniq):
  # The list of values is empty our work here is done
  if not values:
    return uniq
  # We add a value in 'uniq' for two reasons:
  #  1/ it is empty and we need to start somewhere
  #  2/ it is different from the last value that was added
  if not uniq or values[0] != uniq[-1]:
    uniq.append(values.pop(0))
    return dedup(values, uniq)
  # We just added the exact same value so we remove it from 'values' and 
  # move to the next iteration
  return dedup(values[1:], uniq)

print dedup(l, []) # output: [1, 2, 3, 4, 5, 1]
share|improve this answer
    
Thank you for the indepth explanation - I appreciate the comments between lines. –  user3348439 Mar 26 at 20:49

problem is with your return statement,

you are returning

return remove_dups(thelist[i:])

output will be always last n single element of list

like for above soon,

print remove_dups([1,2,2,3,3,3,4,5,1,1,1])
>>> [1] #as your desired is [1,2,3,4,5,1]

which returns finally a list of single element as it don't consider Oth element.

here is recursive solution.

def remove_dups(lst):
    if len(lst)>1:

        if lst[0] != lst[1]:
            return [lst[0]] + remove_dups(lst[1:])

        del lst[1]
        return remove_dups(lst)
    else:
        return lst
share|improve this answer
    
you're right! I kept getting just the one value. Thank you. –  user3348439 Mar 26 at 20:40
    
i have edited answer for solution, you can review it. i think its more better solution. –  roshan Mar 26 at 20:52

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