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Multi-agent distributed model predictive control with fuzzy negotiation

机译:具有模糊协商的多主体分布式模型预测控制

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In this work, a multi-agent distributed model predictive control (DMPC) including fuzzy negotiation has been developed. A novel fuzzy inference system is introduced as a negotiation technique between agents in a cooperative game algorithm, allowing for the consideration of economic criteria and process constraints within the negotiation process, providing an easier interpretation of the available knowledge. The fuzzy negotiation produces smoother control actions than where the negotiation is based only on costs evaluation, because both agents provide their best to generate the final control action. The results show good tracking and disturbance rejection in the case study proposed. The methodology has been implemented in a JAVA based platform with a friendly user interface to deploy the multi-agent system (MAS), and it has been validated in the water level control in a four coupled tanks system. (C) 2019 Elsevier Ltd. All rights reserved.
机译:在这项工作中,已开发出包括模糊协商的多主体分布式模型预测控制(DMPC)。引入了一种新颖的模糊推理系统,作为合作博弈算法中代理之间的一种协商技术,可以考虑经济标准和协商过程中的过程约束,从而更容易地解释可用的知识。与仅基于成本评估的协商相比,模糊协商产生的控制动作更平滑,因为这两个代理都竭尽所能生成最终控制动作。结果表明,该案例研究具有良好的跟踪和干扰抑制能力。该方法已在具有友好用户界面的基于JAVA的平台中实施,以部署多主体系统(MAS),并且已在四联水箱系统的水位控制中得到验证。 (C)2019 Elsevier Ltd.保留所有权利。

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