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Text line segmentation using Viterbi algorithm for the palm leaf manuscripts of Dai

机译:用戴掌叶稿的维特比算法进行文本线分割

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The text line segmentation process is a key step in an optical character recognition (OCR) system. Several common approaches, such as projection-based methods and stochastic methods, have been put forward to fulfill this task. However, most of existing methods cannot be directly applied to process the palm leaf manuscripts of Dai which the images have poor quality and include smudges, creases, stroke deformation and character touching. To solve this problem, an improved Viterbi algorithm based on Hidden Markov Model (HMM) is proposed to find all possible segmentation paths firstly. And then, a path filtering method is used to detect the optimal paths for the segmented text blocks. The performance of the method is compared with relevant methods and the experimental results demonstrate the effectiveness of the proposed method.
机译:文本线段分割过程是光学字符识别(OCR)系统的关键步骤。已经提出了几种常见方法,例如基于投影的方法和随机方法,以满足这项任务。然而,大多数现有方法不能直接应用于处理图像质量差,包括污迹,折痕,行程变形和性格触摸的戴戴的戴戴的戴棕榈叶手稿。为了解决这个问题,提出了一种基于隐马尔可夫模型(HMM)的改进的维特比算法,首先找到所有可能的分段路径。然后,用于检测分段文本块的最佳路径来检测路径滤波方法。将该方法的性能与相关方法进行比较,实验结果证明了所提出的方法的有效性。

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