16

For instance I have a list A:

A = [100, 200, 300, 200, 400, 500, 600, 400, 700, 200, 500, 800]

And I have list B:

B = [100, 200, 200, 500, 600, 200, 500]

I need to identify the index of elements in B with comparison to A

I have tried:

list_index = [A.index(i) for i in B]

It returns:

[0, 1, 1, 5, 6, 1, 5]

But what I need is:

[0, 1, 3, 5, 6, 9, 10]

How can I solve it?

4
  • 1
    Gonna need to write more code. You'll want to keep track for each value what the latest index you've "used" is, and for the next occurrence of the value take the index after that one.
    – Samwise
    Jul 25 at 16:58
  • 1
    Do you mean [0, 1, 3, 5, 6, 9, 10], i.e., use every element in A only once? And what would you expect for, e.g. [500, 200]?
    – Nyps
    Jul 25 at 17:02
  • @Nyps for [500,200] it must return [5,9] Jul 25 at 17:05
  • 2
    What if one of them is not included or not in the correct order? e.g. x = [800, 200, 500] or y = [200, 500, 900] Jul 28 at 10:00
15

You can iterate through the enumeration of A to keep track of the indices and yield the values where they match:

A = [100,200,300,200,400,500,600,400,700,200,500,800]
B = [100,200,200,500,600,200,500]

def get_indices(A, B):
    a_it = enumerate(A)
    for n in B:
        for i, an in a_it:
            if n == an:
                yield i
                break
            
list(get_indices(A, B))
# [0, 1, 3, 5, 6, 9, 10]

This avoids using index() multiple times.

4

You can try something like this. Move over both lists and append the index when they are equal:

A = [100,200,300,200,400,500,600,400,700,200,500,800]

B = [100,200,200,500,600,200,500]

i, j = 0, 0
list_index = []
while j < len(B):
    if B[j] == A[i]:
        list_index.append(i)
        j += 1
    i += 1
print(list_index)

Output:

[0, 1, 3, 5, 6, 9, 10]

0
4

You can create a list called indices, and get the first index into it. Then iterate rest of the items in B, then take the slice of A from the last index in indices list and get the index of the item, add it to the last index + 1, then append it back to the indices list.

indices = [A.index(B[0])]
for i,v in enumerate(B[1:]):
    indices.append(A[indices[-1]+1:].index(v)+indices[-1]+1)


#indices: [0, 1, 3, 5, 6, 9, 10]
0
3

Here's what I would use:

A=[100,200,300,200,400,500,600,400,700,200,500,800]
B=[100,200,200,500,600,200,500]

list_index = []
removedElements = 0

for i in B:
  indexInA = A.index(i)
  A.pop(indexInA)
  list_index.append(indexInA+removedElements)
  removedElements+=1

print(list_index)
3
A = np.array([100,200,300,200,400,500,600,400,700,200,500,800])
B = [100, 200, 200, 500, 600, 200, 500]

idx = np.arange(len(A))
indices = {i: idx[A == i].tolist() for i in set(B)}
[indices[i].pop(0) for i in B]
1

I loop through B and set the checked index to None in A. Thus the code will alter A.

A = [100, 200, 300, 200, 400, 500, 600, 400, 700, 200, 500, 800]
B = [100, 200, 200, 500, 600, 200, 500]

res = []
for i in B:
    res.append(A.index(i))
    A[A.index(i)] = None

print(res)

Output:

[0, 1, 3, 5, 6, 9, 10]
0

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