Towards Modern Card Games with Large-Scale Action Spaces Through Action Representation

被引:1
|
作者
Yao, Zhiyuan [1 ]
Shi, Tianyu [2 ]
Li, Site [3 ]
Xie, Yiting [3 ]
Qin, Yuanyuan [3 ]
Xie, Xiongjie [3 ]
Lu, Huan [3 ]
Zhang, Yan [3 ]
机构
[1] Stevens Inst Technol, Sch Business, Hoboken, NJ 07030 USA
[2] Univ Toronto, Intelligent Transportat Syst Ctr, Toronto, ON, Canada
[3] Rct AI, Deterrence, Burbank, CA USA
来源
2022 IEEE CONFERENCE ON GAMES, COG | 2022年
关键词
Game AI; Reinforcement Learning; Large-Scale Action Space; Action Representation; Axie Infinity; POKER;
D O I
10.1109/CoG51982.2022.9893589
中图分类号
TP39 [计算机的应用];
学科分类号
081203 ; 0835 ;
摘要
Axie infinity is a complicated card game with a huge-scale action space. This makes it difficult to solve this challenge using generic Reinforcement Learning (RL) algorithms. We propose a hybrid RL framework to learn action representations and game strategies. To avoid evaluating every action in the large feasible action set, our method evaluates actions in a fixed-size set which is determined using action representations. We compare the performance of our method with two baseline methods in terms of their sample efficiency and the winning rates of the trained models. We empirically show that our method achieves an overall best winning rate and the best sample efficiency among the three methods.
引用
收藏
页码:576 / 579
页数:4
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