-1

I've searched all around the web but couldn't find the answer. There are two lists like this:

A = [1,2,3,4,3,2,1]
B = [1,2,3]

I wanna get output like this:

Out = [4,3,2,1]

First match of duplicate values will remove. SUGGESTED LINK DIDN'T SOLVE MY PROBLEM. If I use that, output will be:

Out =[4]
6
  • 1
    This example is not enough, what happens in case of A=[1,2,3,1,4,3,2,1] and B=[1,2,1]? Sep 5, 2019 at 10:22
  • It would be [3,4,3,2,1] wanna delete first match. AND MY QUESTION ISN'T DUPLICATE
    – Gone
    Sep 5, 2019 at 10:27
  • what happens in case of A = [1,2,1] and B = [1,2,3,1,4,3,2,1] Sep 5, 2019 at 11:05
  • Does the order have to match? If A = [1, 2, 3, 4] does B = [3, 2, 1] behave differently from B = [1, 2, 3]? Sep 5, 2019 at 22:07
  • @Darkknight: Unless there is some subtlety you haven't explained, your question is a duplicate; the linked duplicate also wants to be able to remove exactly one of each copy of a value in one list from another list. You just need to read more of the answers, e.g. this one. Sep 6, 2019 at 18:19

3 Answers 3

3

Loop through the second list and remove the first one of each in B:

out = A[:]  # If you don't care about A being changed, this isn't needed

for b in B:
   out.remove(b)

Now out contains what you need. Remove() removes the first item that matches.

6
  • what if A = [1,2,1] and B = [1,2,3,1,4,3,2,1] Sep 5, 2019 at 11:01
  • That raises a ValueError, which doesn't seem unreasonable to me. Sep 5, 2019 at 11:12
  • This does O(m * n) work (m being length of B, n length of A), which is sub-optimal; for large inputs, building a new output by converting B to something like collections.Counter, then making a new list from A by appending to the new list only if the count for the value is 0, otherwise decrementing the count, would reduce the work to O(m + n). Sep 5, 2019 at 22:11
  • @ShadowRanger: but isn't appending to a list linear, so that that would be quadratic if all elements of A are appended one by one? Sep 6, 2019 at 7:35
  • @RemcoGerlich: It's amortized O(1); some appends require a resize, but it overallocates by a multiple of the current size, so most do not require a resize, they just put the pointer in an existing slot and increment the logical length. Sep 6, 2019 at 18:52
0
A = [1,2,1]
B = [1,2,3,1,4,3,2,1]
for b in B:
    if b in A:
        A.remove(b)
        B.remove(b)
print(A+B)

This is waht I suggest!

-1

Try this:

Out = list(set(A)^set(B))

Full solution:

A = [1,2,3,4,3,2,1]
B = [1,2,3]
Out = list(set(A)^set(B))
print (Out)

To print in sorted order:

print (sorted(Out))

OR

print (list(set(A).difference(B)))
4
  • This will return only 4. 'cause if an object repeats in a set, it doesn't make diffrance. Than {4}=={4,4,4,4,4}.
    – Gone
    Sep 6, 2019 at 7:19
  • I asked this question myself :) you mean I don't know what I asked? :)
    – Gone
    Sep 6, 2019 at 7:30
  • Even if this were correct, list(set(A)^set(B)) doesn't do the right thing when B contains elements not found in A; the result will add those B-only elements. You wanted set(A) - set(B), not set(A) ^ set(B). Sep 6, 2019 at 10:24
  • It is about removing duplicate values and this does that perfectly!
    – Shamsheer
    Sep 6, 2019 at 11:22

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