2025年度 人工知能学会全国大会(第39回)

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国際セッション » IS-2 Machine learning

[3K5-IS-2b] Machine learning

2025年5月29日(木) 15:40 〜 17:20 K会場 (会議室1006)

Chair: 矢田 勝俊

17:00 〜 17:20

[3K5-IS-2b-05] Online Learning of Counter Categories and Ratings in PvP Games

〇Chiu-Chou Lin1, I-Chen Wu1,2 (1. National Yang Ming Chiao Tung University, 2. Academia Sinica)

キーワード:Rating System, Game, Counter Relationship, Matchmaking

In competitive games, strength ratings like Elo are widely used to quantify player skill and support matchmaking by accounting for skill disparities better than simple win rate statistics. However, scalar ratings cannot handle complex intransitive relationships, such as counter strategies seen in Rock-Paper-Scissors. To address this, recent work introduced Neural Rating Table and Neural Counter Table, which combine scalar ratings with discrete counter categories to model intransitivity. While effective, these methods rely on neural network training and cannot perform real-time updates. In this paper, we propose an online update algorithm that extends Elo principles to incorporate real-time learning of counter categories. Our method dynamically adjusts both ratings and counter relationships after each match, preserving the explainability of scalar ratings while addressing intransitivity. Experiments on zero-sum competitive games demonstrate its practicality, particularly in scenarios without complex team compositions.

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