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A Comparison of Some Morphological Filters for Improving OCR Performance

机译:改进OCR性能的某些形态学过滤器的比较

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Studying discrete space representations has recently lead to the development of novel morphological operators. To date, there has been no study evaluating the performances of those novel operators with respect to a specific application. This article compares the capability of several morphological operators, both old and new, to improve OCR performance when used as preprocessing filters. We design an experiment using the Tesseract OCR engine on binary images degraded with a realistic document-dedicated noise model. We assess the performances of some morphological filters acting in complex, graph and vertex spaces, including the area filters. This experiment reveals the good overall performance of complex and graph filters. MSE measures have also been performed to evaluate the denoising capability of these filters, which again confirms the performances of both complex and graph filtering on this aspect.
机译:最近研究离散空间表示法已经导致了新型形态学算子的发展。迄今为止,还没有研究评估这些新型操作员在特定应用方面的性能。本文比较了一些旧的和新的形态运算符在用作预处理滤波器时提高OCR性能的能力。我们使用Tesseract OCR引擎针对实际文档专用噪声模型退化的二进制图像设计了一个实验。我们评估了在复杂,图形和顶点空间中起作用的某些形态滤波器的性能,包括面积滤波器。该实验揭示了复杂和图形过滤器的良好总体性能。还已经执行了MSE措施来评估这些滤波器的降噪能力,这再次证实了这方面复数滤波和图形滤波的性能。

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