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An emergent approach to construct behavior arbitration mechanism for autonomous mobile robot

机译:一种构建自主移动机器人行为仲裁机制的紧急方法

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Conventional artificial intelligence (AI) system has been criticized for its brittleness under dynamically changing environments. Therefore, in recent years much attention has been focused on the reactive planning approach such as behavior-based AI, new AI, animat approach and so on. However, in behavior-based AI approaches, the arbitration among competence modules is still an open question. On the other hand, biological information processing systems have various interesting characteristics viewed from the engineering standpoint. Among them, the immune system plays an important role in maintaining its own system against hostile environments. Based on this consideration, we have been investigating a new decentralized consensus-making system for the behavior arbitration of autonomous mobile robots inspired from the idiotypic network hypothesis in immunology. In this paper, we propose a new reinforcement learning method using advantage of the proposed network architecture. To confirm the validity of our proposed method, we carried out some simulations.
机译:传统的人工智能(AI)系统在动态变化的环境下被批评了其脆性。因此,近年来,很多关注已经专注于基于行为的AI,新的AI,Animat方法等的反应性规划方法。然而,在基于行为的AI方法中,能力模块之间的仲裁仍然是一个开放的问题。另一方面,生物信息处理系统具有从工程立场观察的各种有趣特性。其中,免疫系统在维护其自身的敌对环境中起着重要作用。基于这一考虑,我们一直在研究自主移动机器人的行为仲裁的新分散共识制度,这是从Immunology中的独一无二的网络假设的启发。在本文中,我们提出了一种利用所提出的网络架构的新加强学习方法。为了确认我们提出的方法的有效性,我们进行了一些模拟。

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