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Improving Thai Optical Character Recognition Using Circular-Scan Histogram

机译:使用圆形扫描直方图改进泰国光学字符识别

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While most previous works focus on invariant features that capture salient for higher recognition accuracy, they face an issue of misclassification among similar characters. This paper proposes a feature called circular-scan histogram that enables us to capture small salient parts of the Thai characters. With scanning distances, the distance from the edge to the first pixel on the character's boundary, a circular-scan histogram is constructed by rotating the characters during scanning, and counting frequency of each distance bin. By experiments, using approximately 60,000 single-character images of forty four Thai consonant characters with balance distribution, our proposed method can classify similar characters with accuracy of 95.72%. As baselines, we compare our method with Shape Context and Histogram of Oriented Gradient.
机译:虽然大多数以前的作品都集中于不变的特征,这些特征捕获显着性以提高识别精度,但它们仍面临着相似字符之间错误分类的问题。本文提出了一种称为“圆形扫描直方图”的功能,该功能使我们能够捕获泰语字符的较小显着部分。利用扫描距离(从边缘到字符边界上的第一个像素的距离),可以通过在扫描过程中旋转字符并计算每个距离仓的频率来构造圆形扫描直方图。通过实验,使用大约60,000个具有平衡分布的44个泰语辅音字符的单字符图像,我们提出的方法可以对相似字符进行分类,准确度为95.72 \%。作为基线,我们将我们的方法与“形状上下文”和“定向梯度直方图”进行了比较。

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