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Study of Intelligent Diagnosis System for Photoelectric Tracking Devices Based on Multiple Knowledge Representation

机译:基于多知识表示的光电跟踪装置智能诊断系统研究

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Aiming at the fatal flaws of the traditional diagnosis methods for the large-scale photoelectric tracking devices, such as poor stability and adaptive capacity, lack of inspiration and narrow domain knowledge of expert system, etc, more importantly, fundamentally improve the diagnostic efficiency and universality, in this paper, an intelligent mixed inference diagnosis expert system based on multiple knowledge representation and BP neural network is put forward. Firstly, some related key basic concepts and principles of intelligent fault diagnosis technology and several major applied diagnosis knowledge representation methods such as diagnosis fault tree, frame representation production rule and so on, were elaborated. Secondly, in view of high concurrency and relevancy of the system faults, a mixed reasoning mechanism combining BPNN and ES was researched. Finally, some interrelated essential implementation techniques, such as system architecture and VR technology, were also presented. Actual applications and experiments demonstrate that the proposed approach is robust and effective.
机译:针对传统诊断方法的大型光电跟踪装置的致命缺陷,如稳定性和自适应容量差,缺乏灵感和狭隘的专家系统知识等,更重要的是,从根本上提高了诊断效率和普遍性本文提出了一种基于多知识表示和BP神经网络的智能混合推理诊断专家系统。首先,一些相关的关键基本概念和智能故障诊断技术的原则以及诸如诊断故障树,帧表示生产规则等的几个主要应用诊断知识表示方法。其次,考虑到系统故障的高并发性和相关性,研究了组合BPNN和ES的混合推理机制。最后,还提出了一些相互关联的基本实现技术,例如系统架构和VR技术。实际应用和实验表明,所提出的方法是强大而有效的。

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