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An Approach to Condition Assessment of High-Voltage Insulators by Ultrasound and an Ensemble of Convolutional Neural Networks

机译:超声和卷积神经网络集成的高压绝缘子状态评估方法

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摘要

This paper proposes an approach and proof of concept for evaluating the condition of high-voltage insulators of power distribution networks (up to 145 kV) using ultrasonic tests provided by a probe equipment in a methodology based on an ensemble of convolutional neural networks and robust pre-processing techniques. It presents the laboratory tests and the conditions in which several real situations were simulated. Next, pre-processing, the neural network architectures and the flowchart of the insulation condition analysis methodology are detailed. Finally, the results of the diagnostics from the methodology with the training, validation and test sets are presented and discussed. The proposed methodology achieved 100% accuracy in validation and test data.
机译:本文提出了一种基于卷积神经网络和鲁棒预兆集合体的方法,利用探棒设备提供的超声测试来评估配电网络高压绝缘子(最高145 kV)的状况的方法和概念验证。处理技术。它介绍了实验室测试以及模拟几种实际情况的条件。接下来,详细介绍了预处理,神经网络架构以及绝缘条件分析方法的流程图。最后,介绍并讨论了该方法的诊断结果,包括培训,验证和测试集。所提出的方法论在验证和测试数据方面达到了100%的准确性。

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