使用大型多智能体网络的数据融合:网络结构和性能分析

A. Knoll, J. Meinkoehn
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引用次数: 31

摘要

研究了大型信息源网络中构建数据融合的多智能体范式。总体目标是以最小的成本实现结果质量的最大化。为此,智能体竞争稀缺资源或并行工作。代理社会的一般粒度和分配给每个个体代理的能力决定了信息流。所涉及的众多参数使得网络结构难以最优地适应给定类型的传感任务。我们概述了可能的网络结构,并提出了一种方法来分析表征网络的一些重要参数。这种抽象可以比较不同的结构。这种分析方法可以很容易地加以改进,以评价某一具体问题。在此基础上提出了一种横向协调控制模型。它基于自主传感器代理对之间协商合作的概念。在合作阶段之前,通过投标方案建立逻辑通信链接。这种合作是以人类社会行为为模型的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Data fusion using large multi-agent networks: an analysis of network structure and performance
Concerns the multi-agent paradigm for structuring the data fusion in large networks of information sources. The general goal is the maximisation of the quality of the result at minimum cost. To this end agents compete for scarce resources or they work in parallel. Both the general granularity of the agent society and the competence assigned to each individual agent determine the information flow. The multitude of parameters involved makes it difficult to optimally adapt the network structure to a given class of sensing tasks. We outline possible network structures and present an approach for analysing a number of important parameters characterising the network. The abstraction enables comparison of different structures. The methods for the analysis may be readily refined to evaluate a specific problem. A model of lateral coordination control in proposed as a result. It is based on the notion of negotiated cooperation between pairs of autonomous sensor agents. The cooperation phase is preceded by a bidding scheme to establish logical communication links. The cooperation is modelled on human social behaviour.<>
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