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Fault Diagnosis and Optimization for Agent Based on the D-S Evidence Theory

机译:基于D-S证据理论的Agent故障诊断与优化

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To solve only consider the evidence oneself in fault diagnosis conflict using Dempster-Shafer evidence theory(D-S), not consider environment influence and the different capacities of diagnosis method, and sometimes because of the more subjectivity, the more qualitative factor and the less quantitative analysis, the fairness of tender evaluation is suspected. The fault diagnosis and optimization for Agent based on the D-S evidence theory is proposed. Firstly, the dynamical adjustment of Agent weight which is integrated into the D-S classified optimization and Agent with rewards and punishments mechanism as the main content is introduced. Secondly, the weight is constantly corrected according to the Agent diagnosis result to avoid the subjectivity and form a closed loop using the adjustment weight, the optimization result and environment feedback. Finally, the test result shows that our proposed method can raise the accuracy rates of diagnosis and improve optimization precision and ensure algorithm reliability.
机译:使用Dempster-Shafer证据理论(DS)仅解决故障诊断冲突中的证据本身,而不考虑环境影响和诊断方法的能力不同,有时是因为主观性越强,定性因素越多,定量分析越少,怀疑招标评估的公平性。提出了基于D-S证据理论的Agent故障诊断与优化方法。首先,介绍了以权衡奖惩机制为主要内容的D-S分类优化和Agent集成的Agent权重动态调整方法。其次,根据Agent的诊断结果对权重进行不断修正,以避免主观性,并利用调整权重,优化结果和环境反馈形成闭环。最后,测试结果表明,本文提出的方法可以提高诊断的准确率,提高优化精度,保证算法的可靠性。

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