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Cooperative learning model based on multi-agent architecture for embedded intelligent systems

机译:基于多智能系统多智能体系结构的合作学习模型

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摘要

Cooperative systems are suitable for many types of applications and nowadays these system are vastly used to improve a previously defined system or to coordinate multiple devices working together. This paper provides an alternative to improve the reliability of a previous intelligent identification system. The proposed approach implements a cooperative model based on multi-agent architecture. This new system is composed of several radar-based systems which identify a detected object and transmit its own partial result by implementing several agents and by using a wireless network to transfer data. The proposed topology is a centralized architecture where the coordinator device is in charge of providing the final identification result depending on the group behavior. In order to find the final outcome, three different mechanisms are introduced. The simplest one is based on majority voting whereas the others use two different weighting voting procedures, both providing the system with learning capabilities. Using an appropriate network configuration, the success rate can be improved from the initial 80% up to more than 90%.
机译:协作系统适用于许多类型的应用程序,如今,这些系统已广泛用于改进先前定义的系统或协调多个协同工作的设备。本文提供了另一种方法来提高以前的智能识别系统的可靠性。所提出的方法实现了基于多主体体系结构的协作模型。这个新系统由几个基于雷达的系统组成,这些雷达系统通过实现多个代理并使用无线网络传输数据来识别检测到的物体并传输其自身的部分结果。所提出的拓扑是集中式架构,其中协调器设备负责根据组行为提供最终标识结果。为了找到最终结果,引入了三种不同的机制。最简单的一种是基于多数投票,而其他的则使用两种不同的加权投票程序,两者都为系统提供了学习能力。使用适当的网络配置,成功率可以从最初的80%提高到90%以上。

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