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Automatic Classification of Remarks in Werewolf BBS

机译:狼人论坛中言论的自动分类

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In the recent years, the evolution of artificial intelligence (AI) has influenced the development of human-interactive communication games. The Werewolf game was originally a real-world, face-to-face, indoor game played between a minimum of four players. In this research, we focus on Werewolf BBS, which is a web-based game, based on the real-life Werewolf game. In Werewolf BBS, players can send various messages among themselves, including a wide variety of chat messages and discussions on current affairs. Thus, it is challenging for AI to understand the phrases being passed on by players. The aim of this study is to understand the content of the messages being communicated in Werewolf BBS. In this paper, we have introduce an automatic classification method based on machine learning to categorize the phrases into six groups. Previous studies have used unavailable information that must be excluded when introducing AI to the game. Thus, we hereby propose a method to classify phrases without additional information using a support vector machine (SVM). SVMs are discriminative classifier models of machine learning. In this paper, an SVM is used as a tool for categorization; it discriminates the different expressions shared by the players into the six groups. The results of an experiment confirm that the messages can be classified without preconditions. This verifies the effectiveness of the present research.
机译:近年来,人工智能(AI)的发展影响了人机交互通信游戏的发展。狼人游戏原本是一个真实的,面对面的室内游戏,至少要有四个玩家玩。在这项研究中,我们重点研究狼人BBS,这是一款基于网络游戏,基于现实生活中的狼人游戏。在狼人论坛中,玩家可以相互发送各种消息,包括各种聊天消息和有关时事的讨论。因此,人工智能要理解玩家所传递的短语是一项挑战。这项研究的目的是了解狼人BBS中正在传达的消息的内容。在本文中,我们介绍了一种基于机器学习的自动分类方法,将短语分为六组。先前的研究使用了不可用的信息,在将AI引入游戏时必须将其排除。因此,我们在此提出一种使用支持​​向量机(SVM)在没有附加信息的情况下对短语进行分类的方法。 SVM是机器学习的判别式分类器模型。在本文中,将SVM用作分类工具。它将玩家共享的不同表情区分为六个组。实验的结果证实了可以在没有先决条件的情况下对消息进行分类。这验证了本研究的有效性。

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