Digital-Display Temperature and Humidity Instrument Recognition Based on YOLOv3 and Character Structure Clustering

Lei Geng, Fengfeng Yan, Zhitao Xiao, Fang Zhang, Yanbei Liu
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Abstract

In this paper, in order to more efficiently verify digital-display temperature and humidity instruments and better evaluate the quality of digital-display temperature and humidity instruments, we propose a new recognition method of digital-display temperature and humidity instrument based on YOLOv3 and character structure clustering. First, the screen region of digitaldisplay temperature and humidity instrument contains all valid characters, so we define the smallest bounding rectangle region of the screen region as the region of interest. We extract the region of interest through YOLOv3-tiny neural network. Then we use YOLOv3 neural network to detect characters on the region of interest. Finally, according to the intra-class correlation of characters, we use character structure clustering to obtain temperature and humidity values. In addition, in this paper, we verify the effectiveness of this method through experiments.
基于YOLOv3和特征结构聚类的数显温湿度仪识别
为了更有效地验证数显温湿度仪,更好地评价数显温湿度仪的质量,本文提出了一种基于YOLOv3和字符结构聚类的数显温湿度仪识别新方法。首先,数显温湿度仪的屏幕区域包含所有有效字符,因此我们将屏幕区域的最小边界矩形区域定义为感兴趣区域。我们通过YOLOv3-tiny神经网络提取感兴趣区域。然后利用YOLOv3神经网络对感兴趣区域上的字符进行检测。最后,根据字符的类内相关性,利用字符结构聚类获得温湿度值。此外,本文还通过实验验证了该方法的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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