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Goal-Oriented Rectification of Camera-Based Document Images

机译:基于目标的基于相机的文档图像校正

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Document digitization with either flatbed scanners or camera-based systems results in document images which often suffer from warping and perspective distortions that deteriorate the performance of current OCR approaches. In this paper, we present a goal-oriented rectification methodology to compensate for undesirable document image distortions aiming to improve the OCR result. Our approach relies upon a coarse-to-fine strategy. First, a coarse rectification is accomplished with the aid of a computationally low cost transformation which addresses the projection of a curved surface to a 2-D rectangular area. The projection of the curved surface on the plane is guided only by the textual content's appearance in the document image while incorporating a transformation which does not depend on specific model primitives or camera setup parameters. Second, pose normalization is applied on the word level aiming to restore all the local distortions of the document image. Experimental results on various document images with a variety of distortions demonstrate the robustness and effectiveness of the proposed rectification methodology using a consistent evaluation methodology that encounters OCR accuracy and a newly introduced measure using a semi-automatic procedure.
机译:使用平板扫描仪或基于相机的系统对文档进行数字化处理后,文档图像通常会出现翘曲和透视变形,从而降低了当前OCR方法的性能。在本文中,我们提出了一种面向目标的校正方法,以补偿不良的文档图像失真,旨在改善OCR结果。我们的方法依赖于从粗到精的策略。首先,借助于计算上低成本的转换来完成粗调,该转换解决了曲面到二维矩形区域的投影。曲面在平面上的投影仅受文本内容在文档图像中的显示的引导,同时包含不依赖于特定模型原语或相机设置参数的转换。其次,将姿势归一化应用于单词级别,旨在恢复文档图像的所有局部失真。在具有各种失真的各种文档图像上的实验结果证明,使用遇到OCR精度的一致性评估方法和使用半自动程序的新引入方法,提出的整流方法的鲁棒性和有效性。

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