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Effective Optical Braille Recognition Based on Two-Stage Learning for Double-Sided Braille Image

机译:基于两阶段学习的双面盲文图像有效光学盲文识别

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This paper proposes a novel two-stage learning framework TS-OBR for double-sided Braille images recognition. In the first stage, a Haar cascaded classifier with the sliding window strategy is adopted to quickly detect Braille recto dots with high confidence. Then a coarse-to-fine de-skewing method is proposed to correct original skewed Braille images, which maximizes the variance of horizontal and vertical projection at different angles. And an adaptive Braille cells grid construction method based on statistical analysis is proposed, which can dynamically generate the Braille cells grid for each Braille image. In the second stage, a decision-level SVM classifier with four classifiers recognition results is used to get recto dots detection results only on intersections of the Braille cells grid. Experimental results on the public double-sided Braille dataset and our Braille exam answer paper dataset show the proposed framework TS-OBR is effective, robust and fast for Braille dots detection and Braille characters recognition.
机译:本文提出了一种新颖的两阶段学习框架TS-OBR,用于双面盲文图像识别。在第一阶段,采用具有滑动窗口策略的Haar级联分类器,以高置信度快速检测盲文直肠点。然后提出了一种从粗到细的去歪斜方法来校正原始的偏斜盲文图像,该方法可以最大程度地提高水平和垂直投影在不同角度下的方差。提出了一种基于统计分析的自适应盲文网格构建方法,该方法可以动态生成每张盲文图像的盲文网格。在第二阶段中,使用具有四个分类器识别结果的决策级SVM分类器,仅在盲文单元格的交点上获得直肠点检测结果。在公共双面盲文数据集和我们的盲文考试答题数据集上的实验结果表明,提出的TS-OBR框架对于盲文点检测和盲文字符识别是有效,强大和快速的。

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