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Improved local binary pattern for real scene optical character recognition

机译:改进的本地二进制模式,用于真实场景的光学字符识别

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摘要

A strong edge descriptor is an important topic in a wide range of applications. Local binary pattern (LBP) techniques have been applied to numerous fields and are invariant with respect to luminance and rotation. However, the performance of LBP for optical character recognition is not as good as expected. In this study, we propose a robust edge descriptor called improved LBP (ILBP), which is designed for optical character recognition. ILBP overcomes the noise problems observed in the original LBP by searching over scale space, which is implemented using an integral image with a reduced number of features to achieve recognition speed. In experiments, we evaluated ILBP's performance on the ICDAR03, chars74K, IIIT5K, and Bib digital databases. The results show that ILBP is more robust to blur and noise than LBP. (C) 2017 Elsevier B.V. All rights reserved.
机译:强大的边缘描述符是广泛应用中的重要主题。局部二进制模式(LBP)技术已应用于许多领域,并且在亮度和旋转方面是不变的。但是,LBP用于光学字符识别的性能不如预期的好。在这项研究中,我们提出了一种称为改进的LBP(ILBP)的鲁棒边缘描述符,该描述符用于光学字符识别。 ILBP通过在比例空间上搜索来克服原始LBP中观察到的噪声问题,该问题是使用具有减少数量的特征的积分图像实现的,以实现识别速度。在实验中,我们在ICDAR03,chars74K,IIIT5K和Bib数字数据库上评估了ILBP的性能。结果表明,ILBP比LBP对模糊和噪声的鲁棒性更高。 (C)2017 Elsevier B.V.保留所有权利。

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