Who's the GOAT? Sports Rankings and Data-Driven Random Walks on the Symmetric Group

Gian-Gabriel P. Garcia, J. Carlos Martínez Mori
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Abstract

Given a collection of historical sports rankings, can one tell which player is the greatest of all time (i.e., the GOAT)? In this work, we design a data-driven random walk on the symmetric group to obtain a stationary distribution over player rankings, spanning across different time periods in sports history. We combine this distribution with a notion of stochastic dominance to obtain a partial order over the players. We implement our methods using publicly available data from the Association of Tennis Professionals (ATP) and the Women's Tennis Association (WTA) to find the GOATs in the respective categories.
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谁是 GOAT?体育排名和数据驱动的对称组随机行走
给定一组历史体育排名,人们能否知道哪位球员是史上最伟大的球员(即 GOAT)?在这项研究中,我们设计了对称组上的数据驱动随机行走,以获得跨越历史不同时期的球员排名的固定分布。我们将这一分布与随机优势的概念相结合,从而得到球员的部分排序。我们利用网球职业运动员协会(ATP)和女子网球协会(WTA)的公开数据来实现我们的方法,从而找到相应类别中的 GOAT。
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