Swiss tournament - pairing algorithm

I am working on a Swiss Tournament system in Python and I'm trying to figure out an optimal pairing algorithm.
My biggest problem is that every algorithm I came with produced error in few sequences, where the last pair to be picked have already played each other, ruling the pairing is invalid.

The Swiss system I'm working on is simple: even players, everyone plays at each round and pairing is done based on the winning proximity (so strong players play against strong players, and weak against weak).
No Bye, only win/lose (no draw), opponents cannot play each other twice.

The current algorithm I did works as follow:

1. Produce a players list by ranking order (most wins to least wins)
2. Pick player, starting from player with most wins
3. Match him with the closest ranked player. If they already played, match him with the next one, until a match is found
4. Pop the pair out of the list and back to 1

For example:
Ranking after 2 rounds:

1. P1: [P2 win, P3 win] 2 wins
2. P5: [P6 win, P2 win] 2 wins
3. P3: [P4 win, P1 lost] 1 win, 1 loss
4. P4: [P6 win, P3 lost] 1 win, 1 loss
5. P2: [P1 lost, P5 lost] 2 losses
6. P6: [P5 lost, P4 lost] 2 losses

First pick would be P1 and the first match is P5. Taking (P1,P5) out of the list.

1. P3: [P4 win, P1 lost] 1 win, 1 loss
2. P4: [P6 win, P3 lost] 1 win, 1 loss
3. P2: [P1 lost, P5 lost] 2 losses
4. P6: [P5 lost, P4 lost] 2 losses

First pick would be P3, already played P4, so the match would be P2. Taking (P3,P2) out of the list.
In this sequence I finish with a pair that played against each other and the pairing is invalid:

1. P4: [P6 win, P3 lost] 1 win, 1 loss
2. P6: [P5 lost, P4 lost] 2 losses

Question: Is there any algorithm that guarantees an optimal pairing module while making sure I do not get 'stuck' at the end with two players who played each other?