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If my list has values that appears more than once I want to do the following:

my_list = ['a','b','c','a','a','b']

I want that my_list becomes ['a','b','c']
and at the same time new_list = ['a','a','b']

I have started with the code but can't manage to finish it:

def func(word):
    tgt = 1
    found = []
    lst = [1,2,3,45,6,1]
    if lst.count(word)> 1:
        found.append(word)
    return found, lst
print(func(1))

5 Answers 5

1

You can iterate through the list, store the element in one list if it is not visited or in a new list if it is already visited:

my_list = ['a','b','c','a','a','b']
visited, lst, new_list = set(), [], []
for x in my_list:
    if x not in visited:
        lst.append(x)
        visited.add(x)
    else:
         new_list.append(x)
         
print(lst, new_list)
# ['a', 'b', 'c'] ['a', 'a', 'b']
3
  • Wouldn't it be better forvisited to be a set/dict instead of list? Or the reason is since we only going to have 26 letters, the list search would be faster than set/dict?
    – Max
    Feb 5 at 14:02
  • 1
    @MaxMiller, Nice point. It would be rather efficient to use set for the membership check though I'd assume for a very few elements like in the OP's example, it won't greatly matter.
    – Austin
    Feb 5 at 14:16
  • visited seems pointless, just use lst Feb 5 at 14:17
1
my_list = ['a','b','c','a','a','b']
new_list = my_list.copy()

my_list = list(set(my_list))
my_list.sort()

# remove unique items from new_list
for item in my_list:
    new_list.pop(new_list.index(item))

0

I'm going to use a collections.Counter() to count up the occurrences of each items in the list. At that point the keys() become your new my_list and then we will use some list multiplication to construct your new_list.

import collections
data = ['a','b','c','a','a','b']
counted = collections.Counter(data)

At this point finding your new my_list is dead simple:

my_list  = list(counted)
print(my_list)

gives you:

['a', 'b', 'c']

Now we can leverage the fact that ['a'] * 4 == ['a', 'a', 'a', 'a'] to construct a list from they keys of counted based on the number of times they were identified.

new_list = []
for key, value in counted.items():
    if value > 1:
        new_list.extend([key]*(value-1))
print(new_list)

This will give us back:

['a', 'a', 'b']

Full Solution:

import collections
data = ['a','b','c','a','a','b']
counted = collections.Counter(data)

my_list  = list(counted)
new_list = []
for key, value in counted.items():
    if value > 1:
        new_list.extend([key]*(value-1))

print(my_list, new_list)
0
lst = ["a","b","a","c","d","b"]
new_list=[]
for i in lst:
    if i not in new_list: # check the new list if values repeat or not
        new_list.append(i) # add the repeating values in new list
for i in new_list: 
    if i in lst: 
        lst.remove(i) # remove the repeating values from first list
print(lst,new_list)

at first you can add the repeating values in a different list then remove these values from your first list.

1
  • Your answer could be improved with additional supporting information. Please edit to add further details, such as citations or documentation, so that others can confirm that your answer is correct. You can find more information on how to write good answers in the help center.
    – Community Bot
    Feb 5 at 14:31
-2
  l = ['a', 'b', 'c', 'a', 'c']
  arr = []
  for x in l:
      if x not in a:
          arr.append(x)
  # now arr only have the non repeating elements of the array l
3

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