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Intelligent Built-in Test Design of Controller Module By Improved Biologically Inspired Neural Network

机译:通过改进的生物启发神经网络智能内置控制器模块测试设计

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Built-in test (BIT) technology is widely employed in heavy-duty gas turbine control systems for fault recognition. However, it is difficult to obtain an excellent fault diagnostic ability by using the conventional BIT technology, and the false alarm rate is high. In this paper, a design of intelligent BIT based on improved biologically inspired neural network (BINN) is proposed to reduce false alarm. Firstly, massive historical measurement data of controller module is collected and used as training dataset and test dataset. Secondly, intelligent BIT based on improved BINN is designed to deal with the issue of module state identification and reduce false alarm rate. Finally, the effectiveness of proposed approach is validated by the given extensive numerical simulation results and experimental results.
机译:内置测试(位)技术广泛用于重型燃气轮机控制系统以进行故障识别。 然而,难以使用传统比特技术获得优异的故障诊断能力,并且误报率高。 本文提出了一种基于改进的生物启发神经网络(BINN)的智能比特设计,以减少误报。 首先,收集控制器模块的大规模历史测量数据并用作训练数据集和测试数据集。 其次,基于改进的BINN的智能比特旨在处理模块状态识别问题并降低误报率。 最后,通过给定的大量数值模拟结果和实验结果验证了所提出的方法的有效性。

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