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Text-Line Extraction in Handwritten Chinese Documents Based on an Energy Minimization Framework

机译:基于能量最小化框架的手写中文文档文本行提取

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Text-line extraction in unconstrained handwritten documents remains a challenging problem due to nonuniform character scale, spatially varying text orientation, and the interference between text lines. In order to address these problems, we propose a new cost function that considers the interactions between text lines and the curvilinearity of each text line. Precisely, we achieve this goal by introducing normalized measures for them, which are based on an estimated line spacing. We also present an optimization method that exploits the properties of our cost function. Experimental results on a database consisting of 853 handwritten Chinese document images have shown that our method achieves a detection rate of 99.52% and an error rate of 0.32%, which outperforms conventional methods.
机译:由于字符比例不统一,文本方向在空间上变化以及文本行之间的干扰,无约束的手写文档中的文本行提取仍然是一个具有挑战性的问题。为了解决这些问题,我们提出了一个新的成本函数,该函数考虑了文本行之间的相互作用以及每个文本行的曲线线性。确切地讲,我们通过基于估计的行距引入针对它们的归一化度量来实现此目标。我们还提出了一种利用成本函数属性的优化方法。在由853张手写的中文文档图像组成的数据库中的实验结果表明,该方法的检测率达99.52%,错误率达0.32%,优于传统方法。

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