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Multi-agent Negotiation Mechanisms for Statistical Target Classification in Wireless Multimedia Sensor Networks

机译:无线多媒体传感器网络中用于统计目标分类的多主体协商机制

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摘要

The recent availability of low cost and miniaturized hardware has allowed wireless sensor networks (WSNs) to retrieve audio and video data in real world applications, which has fostered the development of wireless multimedia sensor networks (WMSNs). Resource constraints and challenging multimedia data volume make development of efficient algorithms to perform in-network processing of multimedia contents imperative. This paper proposes solving problems in the domain of WMSNs from the perspective of multi-agent systems. The multi-agent framework enables flexible network configuration and efficient collaborative in-network processing. The focus is placed on target classification in WMSNs where audio information is retrieved by microphones. To deal with the uncertainties related to audio information retrieval, the statistical approaches of power spectral density estimates, principal component analysis and Gaussian process classification are employed. A multi-agent negotiation mechanism is specially developed to efficiently utilize limited resources and simultaneously enhance classification accuracy and reliability. The negotiation is composed of two phases, where an auction based approach is first exploited to allocate the classification task among the agents and then individual agent decisions are combined by the committee decision mechanism. Simulation experiments with real world data are conducted and the results show that the proposed statistical approaches and negotiation mechanism not only reduce memory and computation requirements in WMSNs but also significantly enhance classification accuracy and reliability.
机译:低成本和小型化硬件的最新可用性使无线传感器网络(WSN)可以在实际应用中检索音频和视频数据,从而促进了无线多媒体传感器网络(WMSN)的发展。资源的限制和具有挑战性的多媒体数据量使开发高效的算法来执行多媒体内容的网络内处理势在必行。本文从多智能体系统的角度提出了解决WMSN领域的问题。多代理框架可实现灵活的网络配置和有效的协作式网络内处理。重点放在WMSN中的目标分类上,其中通过麦克风检索音频信息。为了处理与音频信息检索有关的不确定性,采用了功率谱密度估计,主成分分析和高斯过程分类的统计方法。专门开发了一种多主体协商机制,以有效利用有限的资源并同时提高分类准确性和可靠性。谈判由两个阶段组成,其中首先采用基于拍卖的方法在代理商之间分配分类任务,然后由委员会决策机制组合各个代理商的决策。进行了真实世界数据的仿真实验,结果表明,所提出的统计方法和协商机制不仅减少了WMSN中的存储和计算需求,而且显着提高了分类准确性和可靠性。

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