Method for detection the non-soluble deposit density of insulators based on hyperspectral technology

Tingting Wang, Chengfeng Yin, B. Luo, Yujun Guo, Xueqin Zhang
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引用次数: 1

Abstract

The rapid development of agriculture and industry in China leads to a fast increase in the non-soluble deposit density (NSDD) of insulators. At present, the detection of NSDD is concentrated in the use of optical principles, which is difficult to achieve quantitative detection. Hyperspectral technique is a new comprehensive image data technique based on imaging spectroscopy, which has the advantages of multi-band, high resolution. Therefore, a non-contact detection method for detecting NSDD based on hyperspectral technique is proposed. The hyperspectral images of the insulator were obtained and preprocessed with black-and-white correction, which were used to establish the model based on the extreme learning machine with the kernel (KELM). Finally, the detection of NSDD was realized. Consequently, this study can guide the prevention of flash and configuration of external insulation in transmission lines.
基于高光谱技术的绝缘子不溶性沉积密度检测方法
中国农业和工业的快速发展导致绝缘子的不溶性沉积密度(NSDD)迅速增加。目前对NSDD的检测主要集中在利用光学原理,难以实现定量检测。高光谱技术是一种基于成像光谱学的新型综合图像数据技术,具有多波段、高分辨率等优点。为此,提出了一种基于高光谱技术的非接触检测方法。获得绝缘子的高光谱图像并进行黑白校正预处理,建立基于核极值学习机(KELM)的模型。最后,实现了NSDD的检测。因此,该研究可指导输电线路闪络的预防和外绝缘的配置。
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