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Automatic blur detection in mobile captured document images: Towards quality check in mobile based document imaging applications

机译:移动捕获的文档图像中的自动模糊检测:在基于移动的文档成像应用程序中进行质量检查

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Optical Character Recognition is widely used for automated processing of document images. While character recognition technology is mature, its application to mobile captured document image is still at its nascent stage. Capturing images from a mobile camera poses several challenges like motion blur, defocus and geometrical distortions which are usually not encountered in scanned or calibrated camera captured images. Therefore determining the quality of images automatically prior to recognition is an important problem. Quality check is especially useful in financial transaction instruments like bill payment where accuracy of text recognition for sensitive fields such as “amount due” should be high. Poor quality images can be rejected prior to OCR to avoid incorrect text recognition and save processing time. This paper discusses some techniques in literature for blur detection in mobile camera captured document images. We propose a simple yet elegant method that addresses some challenges faced in these document images. Extensive testing is performed on large dataset containing more than 4000 mobile captured images and optimum parameter values for performing quality check against motion blur and defocus are identified. Our experimental results demonstrate the effectiveness of the proposed method. In addition we realized a smart mobile application for blur detection and report its performance on several mobile devices.
机译:光学字符识别被广泛用于文档图像的自动处理。尽管字符识别技术已经成熟,但它在移动捕获的文档图像中的应用仍处于起步阶段。从移动相机捕获图像会带来一些挑战,例如运动模糊,散焦和几何变形,这在扫描或校准的相机捕获图像中通常不会遇到。因此,在识别之前自动确定图像质量是一个重要的问题。质量检查在诸如账单支付之类的金融交易工具中特别有用,在该金融交易工具中,诸如“应付金额”之类的敏感字段的文本识别准确性应该很高。可以在OCR之前拒绝质量较差的图像,以避免错误的文本识别并节省处理时间。本文讨论了文献中用于移动相机捕获的文档图像中模糊检测的一些技术。我们提出了一种简单而优雅的方法来解决这些文档图像中面临的一些挑战。对包含4000多个移动捕获图像的大型数据集进行了广泛的测试,并确定了用于针对运动模糊和散焦进行质量检查的最佳参数值。我们的实验结果证明了该方法的有效性。此外,我们实现了一个用于模糊检测的智能移动应用程序,并在多个移动设备上报告了其性能。

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