利用嵌入式算法最小化循环不稳定性

J. Salinas, V. Zamudio, M. A. Casillas, Rosario Baltazar, Carlos Lino Ramírez, V. Callaghan, F. Doctor
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引用次数: 0

摘要

近年来,循环不稳定性问题的研究主要采用两种方法:分析系统的拓扑性质(寻找环路或反馈)和仿生优化。分析系统拓扑(即环境中涉及的代理的连通性)的主要缺点之一是计算成本(如果环境中包含游移代理,则计算成本可能会增加)。基于优化的方法已被证明工作得非常好,即使在游移代理的情况下也是如此。然而,优化方法主要是使用计算机模拟来部署的。随着集成电路的突破,允许各种低成本微控制器,在嵌入式代理上实现智能算法(如模糊逻辑,神经网络等)的可能性成为现实。在本文中,我们提出了对嵌入式系统上的生物启发优化算法的实施的初步分析。我们的长期目标是能够在嵌入式系统上使用优化算法来防止真实和复杂的基于规则的多代理环境中的循环不稳定性。
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Towards the Minimization of Cyclic Instability Using Embedded Algorithms
In recent years, the problem of cyclic instability has been investigated mainly using two approaches: analysing the topological properties of the system (finding loops or feedback) and bio-inspired optimization. One of the main disadvantages of analysing the topology of the system (i.e. The connectivity of the agents involved in the environment) is the computational cost (that could be increased if the environment includes nomadic agents). Optimization-based approaches have been proven to work very well, even in the case of nomadic agents. However, the optimisation approach has been deployed mainly using computer simulations. With the breakthrough of integrated circuits, allowing a wide variety of low cost microcontrollers, the possibility of implementing intelligent algorithms (such as fuzzy logic, neural networks, etc.) on embedded agents is a reality. In this paper, we present a preliminary analysis toward the implementation of bio-inspired optimisation algorithms on embedded systems. Our long-term goal is to be able to prevent cyclic instability in real and complex rule based multi-agent environments using optimisation algorithms on embedded system.
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