A Study on Reinforcement Learning Method for the Deception Behavior : Focusing on Marine Corps Amphibious Demonstrations

D. Park, Namsuk Cho
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Abstract

Military deception is an action executed to deliberately mislead enemy’s decision by deceiving friendly forces intention. In the lessons learned from war history, deception appears to be a critical factor in the battlefield for successful operations. As training using war-game simulation is growing more important, it is become necessary to implement military deception in war-game model. However, there is no logics or rules proven to be effective for CGF(Computer Generated Forces) to conduct deception behavior automatically. In this study, we investigate methodologies for CGF to learn and conduct military deception using Reinforcement Learning. The key idea of the research is to define a new criterion called a “deception index” which defines how agent learn the action of deception considering both their own combat objectives and deception objectives. We choose Korea Marine Corps Amphibious Demonstrations to show applicability of our methods. The study has an unique contribution as the first research that describes method of implementing deception behavior.
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欺骗行为的强化学习方法研究——以海军陆战队两栖演示为例
军事欺骗是通过欺骗友军意图,故意误导敌人决定的行为。从战争历史中吸取的教训来看,欺骗似乎是战场上作战成功的关键因素。随着兵棋模拟训练的日益重要,在兵棋模拟模型中实现军事欺骗已成为必要。然而,目前还没有被证明有效的逻辑或规则可以让CGF(Computer Generated Forces)自动进行欺骗行为。在本研究中,我们研究了CGF学习和使用强化学习进行军事欺骗的方法。研究的核心思想是定义一个新的标准,即“欺骗指数”,该标准定义了智能体如何在考虑自身作战目标和欺骗目标的情况下学习欺骗行为。我们选择韩国海军陆战队两栖示范是为了展示我们的方法的适用性。该研究具有独特的贡献,因为它是第一个描述实施欺骗行为方法的研究。
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