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A detection and recognition system of pointer meters in substations based on computer vision

机译:基于计算机视觉的变电站指针仪表的检测与识别系统

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In order to develop unattended intelligent substations, numerous automatic meter reading methods have been proposed with the invention of inspection robots. However, most methods have strict restrictions on the captured image quality, so they cannot meet the application requirements of the substation. In this paper, a versatile pointer meter detection and recognition system based on computer vision is proposed for different environments. A Faster Region-based Convolutional Network (Faster R-CNN) is first used to detect the position of the target meter and the camera is adjusted according to the detection box. Then, thanks to the feature correspondence algorithm and the Perspective Transform, the problem of specular reflection and image distortion is solved to obtain high quality images. Finally, reading can be obtained after the position of pointer detected by Hough Transform. The experimental results verify the stability and accuracy of recognition system which is proved to work well under different conditions. (C) 2019 Elsevier Ltd. All rights reserved.
机译:为了开发无人看管的智能变电站,已经提出了许多自动抄表方法,本发明的检查机器人发明。但是,大多数方法对捕获的图像质量有严格的限制,因此他们无法满足变电站的应用要求。本文提出了一种基于计算机视觉的多功能指针仪表检测和识别系统,用于不同的环境。首先使用更快的基于区域的卷积网络(更快的R-CNN)来检测目标仪表的位置,并根据检测盒调整相机。然后,由于特征对应算法和透视变换,解决了镜面反射和图像失真的问题以获得高质量的图像。最后,可以在霍夫变换检测到的指针位置之后获得读数。实验结果验证了识别系统的稳定性和准确性,证明在不同条件下运作良好。 (c)2019年elestvier有限公司保留所有权利。

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