2022
DOI: 10.48550/arxiv.2206.05373
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An application of neural networks to a problem in knot theory and group theory (untangling braids)

Abstract: We report on our success on solving the problem of untangling braids up to length 20 and width 4. We use feed-forward neural networks in the framework of reinforcement learning to train the agent to choose Reidemeister moves to untangle braids in the minimal number of moves.

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