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Using Association Rule Mining to Predict Opponent Deck Content in Android: Netrunner

机译:使用关联规则挖掘预测android中的对手甲板内容:Netrunner

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摘要

As part of their design, card games often include information that is hidden from opponents and represents a strategic advantage if discovered. A player that can discover this information will be able to alter their strategy based on the nature of that information, and therefore become a more competent opponent. In this paper, we employ association rule-mining techniques for predicting item multisets, and show them to be effective in predicting the content of Netrunner decks. We then apply different modifications based on heuristic knowledge of the Netrunner game, and show the effectiveness of techniques which consider this knowledge during rule generation and prediction.
机译:作为其设计的一部分,纸牌游戏通常包含对对手隐藏的信息,如果被发现,则代表着战略优势。能够发现此信息的玩家将能够根据该信息的性质更改其策略,从而成为更有能力的对手。在本文中,我们采用关联规则挖掘技术来预测项目多集,并证明它们在预测Netrunner牌组内容方面是有效的。然后,我们基于Netrunner游戏的启发式知识应用不同的修改,并展示在规则生成和预测过程中考虑该知识的技术的有效性。

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