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Text Detection in Binarized Text Images of Korean Signboard by Stroke Width Feature

机译:通过笔划宽度特征检测韩国招牌的二值化文本图像中的文本

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Noise is common phenomenon in every data. Non-text components in binarized text images, which are the results of the text extraction, are considered as noise. It degrades the performance of character recognition module. In this paper, a robust algorithm is proposed to detect text in the binarized text image with noise by extracting a new feature, called stroke width. Firstly, stroke width feature is extracted by finding pairs of stroke boundary pixels. And then text component candidates are detected by employing stroke width feature. Finally, text verification is designed to remove non text components which are mis-detected as text components in the previous step. Experiments on a wide variety of binarized signboard images reveal the feasibility and effectiveness of our proposed approach for detecting text component in noise images.
机译:噪声是每个数据中的常见现象。二值化文本图像中的非文本成分是文本提取的结果,被认为是噪声。它会降低字符识别模块的性能。本文提出了一种鲁棒的算法,通过提取称为笔画宽度的新特征来检测二值化文本图像中带有噪声的文本。首先,通过找到成对的笔划边界像素来提取笔划宽度特征。然后,通过使用笔划宽度特征来检测候选文本成分。最后,文本验证旨在删除在上一步中被误检测为文本组件的非文本组件。在各种二值化的招牌图像上进行的实验证明了我们提出的方法在噪声图像中检测文本成分的可行性和有效性。

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