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I have a list that contains near-duplicate elements, with the exception of a number that identifies the element. I want to remove all duplicates while preserving the number of the first element containing a duplicate.

For example, I want to replace l with lnew:

l = ['iter1apple','iter2banana','iter3carrot','iter4apple','iter5orange','iter6banana','iter7mango']

lnew = ['iter1apple','iter2banana','iter3carrot','iter5orange','iter7mango']

I'm guessing this has something to do with splitting the number from the rest of the list element, converting the list to set and using defaultdict with the elements from the split, but I can't figure out how.

Any suggestions would be appreciated.

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So how did you decide to remove iter4apple and iter6banana? The general solution would be something like lnew = [elem for elem in l if elem not in discardable] where discardable is a set of the ones you want removed. –  hughdbrown Mar 24 '13 at 21:15
    
@hughdbrown: discardable is not predefined. I'm trying to determine what constitutes as discardable based on the element position and whether or not it is a duplicate of an element with a lower iter number. –  user1185790 Mar 24 '13 at 21:28

1 Answer 1

up vote 1 down vote accepted

If I have understood you correctly, you want to discard the items which end in one element that is already contained in the list. In that case, you can use a regular expression and a list to track the elements that have been used:

import re

l = ['iter1apple', 'iter2banana', 'iter3carrot', 'iter4apple', 'iter5orange', 'iter6banana', 'iter7mango']
duplicates = []
lnew = []
for item in l:
    match = re.match("^iter\d+(\w+)$", item)
    if match and not match.group(1) in duplicates:
        duplicates.append(match.group(1))
        lnew.append(item)

# lnew = ['iter1apple','iter2banana','iter3carrot','iter5orange','iter7mango']
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That did the trick! Thanks A. Rodas! –  user1185790 Mar 24 '13 at 21:37
    
@user1185790 You're welcome, glad it helped! –  A. Rodas Mar 24 '13 at 21:52

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