基于集成学习的传输设备图像识别

S. Huang, Zhaoyun Zhang, L. Yanxin, Li Hui, Qitong Wang, Zhi-Li Zhang, Yang Zhao
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引用次数: 0

摘要

无人机巡检是输电线路巡检中最常用的巡检方式。无人机检测主要是通过机器视觉获取动力传动设备的检测图像并进行检测。图像分类技术主要用于对输变电设备的识别,对设备进行分类后可用于故障诊断。为了对传输设备图像进行准确分类,提出了一种基于集成学习的分类方法。本文对输电线路中的绝缘子、阻尼器、间隔棒、电晕环等四种设备进行了分类和识别。实验结果表明,所提出的集成学习方法的效率优于单个机器学习分类器。
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Transmission equipment image recognition based on Ensemble Learning
Unmanned aerial vehicle (UAV) inspection is the most popular inspection method in power transmission line inspection. UAV inspection mainly obtains the inspection image of power transmission equipment through machine vision and detects it. Image classification technology is mainly used for the identification of power transmission equipment, which can be used for fault diagnosis after sorting out the equipment. In order to accurately classify transmission equipment images, a classification method based on ensemble learning is proposed. This paper classifies and identifies four kinds of equipment in transmission line, including insulator, damper, interval rods, and corona ring. The experimental results show that the efficiency of the proposed ensemble learning method is better than that of single machine learning classifier.
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