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首页> 外文期刊>Tamkang Journal of Science and Engineering >Design Of An Action Select Mechanism For Soccer Robot Systems Using Artificial Immune Network
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Design Of An Action Select Mechanism For Soccer Robot Systems Using Artificial Immune Network

机译:基于人工免疫网络的足球机器人系统动作选择机制设计

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摘要

In a small-size robot soccer game, the game strategy is implemented by two major procedures, namely, Role Selection Mechanism (RSM) and Action Select Mechanism (ASM). In role-select procedure, a formation is planned for the soccer team and a role is assigned to each individual robot. In action-select procedure, each robot executes an action provided by an action selection mechanism to fulfill its role-playing. The RSM was often designed efficiently by using the geometry approach. However, the ASM developed based on geometry approach will become a very complex procedure. In this paper, a novel ASM for soccer robots is proposed by using the concepts of artificial immune network (AIN). This AIN-based ASM provides an efficient and robust algorithm for robot role select. Meanwhile, a reinforcement learning mechanism is applied in the proposed ASM to enhance the response of the adaptive immune system. Simulation and experiment are carried out in this paper to verify the proposed AIN-based ASM and the results show that the proposed algorithm provide an efficient and applicable algorithm for mobile robots to play soccer game.
机译:在小型机器人足球游戏中,游戏策略是通过两个主要过程来实现的,即角色选择机制(RSM)和动作选择机制(ASM)。在角色选择过程中,计划为足球队组队,并为每个机器人分配一个角色。在动作选择过程中,每个机器人执行动作选择机制提供的动作来完成其角色扮演。 RSM通常使用几何方法进行有效设计。但是,基于几何方法开发的ASM将成为一个非常复杂的过程。本文利用人工免疫网络(AIN)的概念,提出了一种新型的足球机器人ASM。这种基于AIN的ASM为机器人角色选择提供了有效而强大的算法。同时,在提出的ASM中采用了强化学习机制来增强自适应免疫系统的反应。通过仿真和实验验证了基于AIN的ASM算法的有效性,结果表明该算法为移动机器人进行足球比赛提供了一种有效的算法。

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