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Formulating Major League Baseball Playoff Prediction as a Ranking Problem

  • Cleveland State University
  • University of Science and Technology Beijing

科研成果: 书/报告/会议事项章节会议稿件同行评审

摘要

Among all professional sports, the major league baseball (MLB) in the United States is the first that embraced extensive data collection for player and team performance evaluation and analysis. The practice has been recognized as sabermetrics. Indeed, MLB has the most abundant data available for performing sports analytics. In MLB, data-driven analysis has been carried out to predict various aspects of the game, ranging from player-specific characteristics (such as performance, valuation, contract renewal) to team-specific performance (single-game outcome, playoff probability, and championship probability). In this paper, we focus on the prediction of playoff probability in MLB using publicly available team statistics. Unlike the popular approach to making binary classification for each team regarding whether or not the team can make the playoff, we propose to formulate the playoff prediction as a ranking problem. We argue that formulating playoff prediction as a ranking problem is a much better fit for the MLB playoff team selection rules. We also show that our playoff prediction is significantly better than those reported in the literature and online articles.

源语言英语
主期刊名Proceedings - 2024 6th International Conference on Pattern Recognition and Intelligent Systems, PRIS 2024
编辑Wenbing Zhao, Yonghong Peng, Yulin Wang
出版商Association for Computing Machinery
74-81
页数8
ISBN(电子版)9798400718250
DOI
出版状态已出版 - 3 10月 2024
活动6th International Conference on Pattern Recognition and Intelligent Systems, PRIS 2024 - Virtual, Online, 香港特别行政区
期限: 26 7月 2024 → …

出版系列

姓名ACM International Conference Proceeding Series

会议

会议6th International Conference on Pattern Recognition and Intelligent Systems, PRIS 2024
国家/地区香港特别行政区
Virtual, Online
时期26/07/24 → …

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