Learning bridge numbers of knots

Fuente: arXiv
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Main Authors: Vo, Hanh, Pongtanapaisan, Puttipong, Nguyen, Thieu
Format: Preprint
Published: 2024
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_version_ 1866917661746659328
author Vo, Hanh
Pongtanapaisan, Puttipong
Nguyen, Thieu
author_facet Vo, Hanh
Pongtanapaisan, Puttipong
Nguyen, Thieu
contents This paper employs various computational techniques to determine the bridge numbers of both classical and virtual knots. For classical knots, there is no ambiguity of what the bridge number means. For virtual knots, there are multiple natural definitions of bridge number, and we demonstrate that the difference can be arbitrarily far apart. We then acquired two datasets, one for classical and one for virtual knots, each comprising over one million labeled data points. With the data, we conduct experiments to evaluate the effectiveness of common machine learning models in classifying knots based on their bridge numbers.
format Preprint
id arxiv_https___arxiv_org_abs_2405_05272
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Learning bridge numbers of knots
Vo, Hanh
Pongtanapaisan, Puttipong
Nguyen, Thieu
Geometric Topology
Machine Learning
This paper employs various computational techniques to determine the bridge numbers of both classical and virtual knots. For classical knots, there is no ambiguity of what the bridge number means. For virtual knots, there are multiple natural definitions of bridge number, and we demonstrate that the difference can be arbitrarily far apart. We then acquired two datasets, one for classical and one for virtual knots, each comprising over one million labeled data points. With the data, we conduct experiments to evaluate the effectiveness of common machine learning models in classifying knots based on their bridge numbers.
title Learning bridge numbers of knots
topic Geometric Topology
Machine Learning
url https://arxiv.org/abs/2405.05272