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Enhanced Character Segmentation for Multi-Language Data Plate in Substation Transformer Based on Connected Component Analysis

机译:基于连通分量分析的变电站变压器多语言数据板增强字符分割

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Intelligent inspection in the substation transformer using optical character recognizer has been developing rapidly. Character segmentation from the text line of data plate is an important step for localization and recognition of electrical equipment. However, on-site character segmentation is challenging if the data plate contains multiple languages, especially when the width between Chinese and non-Chinese character differs significantly and the complex environments cause the light reflection and fading. This paper proposes a new method, based on analyzing the connected component and Chinese character's structure, to segment characters from multi-language data plate of substations. The proposed method uses the combination of the HSV color space and multi-scale MSRCP to reduce the effect of illumination and complex background. The proposed method utilized the width of each kind character, the interval between characters and the relationship within the left-right structure Chinese character to improve the segmentation accuracy. Experimental results show that the text lines from the data plate in substation transformer, including Chinese, English, Roman numerals, Arabic numerals and symbols, can be segmented correctly. Results show that the proposed method outperforms two existing character segmentation methods and achieves 99.4% precision in the multi-language data plate dataset.
机译:使用光学字符识别器的变电站变压器智能检查已得到迅速发展。从数据铭牌的文本行进行字符分割是电气设备定位和识别的重要步骤。但是,如果数据板包含多种语言,则特别是当中文字符与非中文字符之间的宽度明显不同并且复杂的环境导致光反射和褪色时,现场字符分割将面临挑战。本文在分析变电站连接部件和汉字结构的基础上,提出了一种从变电站多语言铭牌上对字符进行分割的新方法。所提出的方法结合了HSV色彩空间和多尺度MSRCP来减少照明和复杂背景的影响。该方法利用了每种字符的宽度,字符之间的间隔以及左右结构汉字之间的关系来提高分割精度。实验结果表明,变电站变压器铭牌上的文字行可以正确分割,包括中文,英文,罗马数字,阿拉伯数字和符号。结果表明,该方法优于现有的两种字符分割方法,在多语言数据板数据集中的精度达到99.4%。

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