2

So I have a list:

s = ['cat','dog','cat','mouse','dog']

And I want to be able to iterate through the list and remove the duplicates, WITHOUT using the set() function! So for example it should remove 'cat' and position s[2] BUT keep 'cat' at position s[0]. It then needs to do the same thing for 'dog', ie. keep 'dog' at position s[1] but remove 'dog' from position s[4].

So the output is then:

s = ['cat','dog','mouse']

I have tried to use i and j as index positions in the list, and check whether the element at position i is equal to the element at position j. If so, it will remove it and increment the value of j by 1, if not then it will leave it and just increment the value of j. After the whole list has been iterated through, it will increment the value of i and then check the whole list again, for the new element. Below:

i = 0
j = 1
for a in range(len(s)):
    for b in range(len(s)):
        if s[i] == s[j]:
            s.remove(s[j])
            j = j + 1
        else:
            j = j + 1
    i = i + 1

What am I doing wrong here?

  • Use in instead of ==. Store them in a sepate array if that value doesn't exist in that array. – almost a beginner Apr 26 '17 at 1:06
  • 2
    Is there any reason you need to update the list in place vs. create a new list? l = []; for e in s: if e not in l: l.append(e) – AChampion Apr 26 '17 at 1:07
  • 2
    Another problem is that you are iterating through all the indexes up to the end of the list. If there actually are any duplicates, the list will be shorter by the time you get there, and you will get an IndexError. – zondo Apr 26 '17 at 1:09
  • 1
    Why don't you use set ? – luoluo Apr 26 '17 at 4:25
4

The issue is with "automatic" for loops - you have to be careful about using them when modifying that which you are iterating through. Here's the proper solution:

def remove_dup(a):
   i = 0
   while i < len(a):
      j = i + 1
      while j < len(a):
         if a[i] == a[j]:
            del a[j]
         else:
            j += 1
      i += 1

s = ['cat','dog','cat','mouse','dog']
remove_dup(s)
print(s)

Output: ['cat', 'dog', 'mouse']

This solution is in-place, modifying the original array rather than creating a new one. It also doesn't use any extra data structures.

  • Thanks mate! Was thinking about using a while loop, missed the part about the j, after the first while, and the list.remove() just wasn't working for me! Thanks! – Liam G Apr 26 '17 at 6:03
4

You shouldn't alter the list while you iterate over it, you'll likely either skip elements or get an IndexError. If you just can't use set use collections.OrderedDict:

>>> from collections import OrderedDict

>>> s = ['cat','dog','cat','mouse','dog']

>>> list(OrderedDict.fromkeys(s).keys())
['cat', 'dog', 'mouse']
  • Not OP but thank you for the answer. I'm trying to understand your code. So you can use OrderedDict because the list can be regarded as a dictionary with just keys but no values? What does 'fromkeys' do? Thanks. – Bowen Liu Sep 20 '18 at 13:33
  • @BowenLiu fromkeys creates a dictionary with the specified keys. I used an ordered dictionary because it's ordered and removes duplicate keys, we don't care about the values of the dictionary - but there's no builtin ordered set... – MSeifert Sep 24 '18 at 9:38
  • Thanks a lot for your explanation and introducing this new method. I didn't know that you can create dictionaries without value corresponding to each key. Thanks. – Bowen Liu Sep 24 '18 at 13:15
3

You can loop through the list and check if the animal has already been added.

s = ['cat','dog','mouse','cat','horse','bird','dog','mouse']

sNew = []
for animal in s:
    if animal not in sNew:
        sNew.append(animal)

s = sNew
  • Is there an alternative to "not in"? The purpose of my task is to understand how the sorting algorithms work, so "not in" is kind of cheating I guess. – Liam G Apr 26 '17 at 1:18
1

Here's a one line solution:

s = ['dog', 'cat', 'cat', 'mouse', 'dog']   

answer = [animal for idx, animal in enumerate(s) if a not in s[:idx]]

And you'll see:

>>> answer
['cat', 'dog', 'mouse']
0

I am not sure why you wouldn't use a set, but here is an alternative. Iterate over your original list, placing each element into a new list if it is not already in the new list. Example:

l = []
s = ['dog', 'cat', 'cat', 'mouse', 'dog']

for i in range(len(s)):
    if s[i] not in l:
        l.append(s[i])

Now:

>>> s
['dog', 'cat', 'mouse']
  • 1
    More canonical would be just to iterate of the list s vs. indices. – AChampion Apr 26 '17 at 1:11
  • Very true. It would likely be more Pythonic. – Remolten Apr 26 '17 at 1:12
  • Is there an alternative to "not in"? The purpose of my task is to understand how the sorting algorithms work, so "not in" is kind of cheating I guess. – Liam G Apr 26 '17 at 1:18

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