基于红外热成像的电气设备组件识别研究 |
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引用本文: | 曾军,王东杰,范伟,刘滨滨,赵洪山. 基于红外热成像的电气设备组件识别研究[J]. 红外技术, 2021, 43(7): 679-687 |
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作者姓名: | 曾军 王东杰 范伟 刘滨滨 赵洪山 |
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作者单位: | 国网河北省电力有限公司,河北石家庄 050000;国网河北省电力有限公司保定供电分公司,河北保定 071000;华北电力大学,河北保定 071000 |
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基金项目: | 国家重点研发计划项目2018YFE012220 |
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摘 要: | 常见的电力设备有变压器、开关柜、断路器等,这些设备都由多个组件构成.通过这类设备的红外热成像实现了对其组件的识别.基于红外热成像信息量较少的特点,采用多种算法融合.首先是基于Lab模型采用改进的K-means聚类和形态学的结合,提取红外图像中的高温区域,充分保证了效率和可靠性.其次采用改进的SURF(speeded-u...
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关 键 词: | 图像处理 红外热成像 K-means SURF 感知哈希算法 |
收稿时间: | 2020-12-25 |
Research on Component Identification for Electrical Equipment Based on Infrared Thermography |
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Affiliation: | 1.State Grid Hebei Electric Power Co. Ltd., Shijiazhuang 050000, China2.State Grid Hebei Electric Power Co. Ltd, Baoding Power Supply Branch, Baoding 071000, China3.North China Electric Power University, Baoding 071000, China |
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Abstract: | Common electrical equipment includes transformers, switchgears, and circuit breakers, which are composed of multiple components. In this study, the identification of these components was realized via infrared thermal imaging of such devices. Based on the characteristics of infrared thermal imaging with less information, a variety of algorithms have been used for fusion. First, based on the Lab model, a combination of improved K-means clustering and morphology was used to extract the high-temperature region in the infrared image, which guaranteed efficiency and reliability. Second, a combination of improved SURF and perceptual hash algorithms was used to determine the three-phase components in the extracted area. The role of SURF was to compare the visible image of the known electrical device with all the images in the extracted area to determine the area with the most matching feature points in the infrared image. Compared with other infrared regions, we found two regions with the highest matching degree in other regions via the perceptual hash algorithm to locate the three-phase devices in the infrared image. This study is applicable to infrared image recognition and positioning without a large number of image data sets and provides ideas for the extraction of fault information of electrical equipment based on infrared imaging. |
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