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A neural network-based multi-agent classifier system

机译:基于神经网络的多智能体分类器系统

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摘要

In this paper, we propose a neural network (NN)-based multi-agent classifier system (MACS) using the trust, negotiation, and communication (TNC) reasoning model. The main contribution of this work is that a novel trust measurement method, based on the recognition and rejection rates, is proposed. Besides, an auctioning procedure, based on the sealed bid, first price method, is adapted for the negotiation phase. Two agent teams are formed; each consists of three NN learning agents. The first is a fuzzy min-max (FMM) NN agent team and the second is a fuzzy ARTMAP (FAM) NN agent team. Modifications to the FMM and FAM models are also proposed so that they can be used for trust measurement in the TNC model. To assess the effectiveness of the proposed model and the bond (based on trust), five benchmark data sets are tested. The results compare favorably with those from a number of classification methods published in the literature.
机译:在本文中,我们使用信任,协商和通信(TNC)推理模型提出了一种基于神经网络(NN)的多主体分类器系统(MACS)。这项工作的主要贡献在于,提出了一种基于识别率和拒绝率的新型信任度量方法。此外,基于密封投标,第一价格法的拍卖程序适用于谈判阶段。组成两个特工团队;每个都包含三个NN学习代理。第一个是模糊最小-最大值(FMM)NN代理团队,第二个是模糊ARTMAP(FAM)NN代理团队。还提出了对FMM和FAM模型的修改,以便可以将它们用于TNC模型中的信任度度量。为了评估建议的模型和债券(基于信任)的有效性,测试了五个基准数据集。结果与文献中发表的许多分类方法的结果相比具有优势。

著录项

  • 来源
    《Neurocomputing 》 |2009年第9期| 1639-1647| 共9页
  • 作者单位

    School of Electrical and Electronic Engineering, University of Science Malaysia, Malaysia;

    School of Electrical and Electronic Engineering, University of Science Malaysia, Malaysia;

    School of Electrical and Information Engineering, University of South Australia, Australia Defence Science and Technology Organisation, Edinburgh, South Australia, Australia;

    School of Electrical and Information Engineering, University of South Australia, Australia;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    neural networks; multi-agent systems; pattern classification;

    机译:神经网络;多代理系统;模式分类;

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