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Segmentation and recognition system for unknown-length handwritten digit strings

机译:未知长度手写数字字符串的分割和识别系统

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The segmentation of handwritten digit strings into isolated digits remains a challenging task. The difficulty for recognizing handwritten digit strings is related to several factors such as sloping, overlapping, connecting and unknown length of the digit string. Hence, this paper aims to propose a segmentation and recognition system for unknown-length handwritten digit strings by combining several explicit segmentation methods depending on the configuration link between digits. Three segmentation methods are combined based on histogram of the vertical projection, the contour analysis and the sliding window Radon transform. A recognition and verification module based on support vector machine classifiers allows analyzing and deciding the rejection or acceptance each segmented digit image. Moreover, various submodules are included leading to enhance the robustness of the proposed system. Experimental results conducted on the benchmark dataset show that the proposed system is effective for segmenting handwritten digit strings without prior knowledge of their length comparatively to the state of the art.
机译:将手写数字字符串分割成孤立的数字仍然是一项艰巨的任务。识别手写数字字符串的难度与多个因素有关,例如倾斜,重叠,连接以及数字字符串的未知长度。因此,本文旨在通过结合数字之间的配置链接,结合几种显式的分割方法,为未知长度的手写数字串提出一种分割和识别系统。基于垂直投影的直方图,轮廓分析和滑动窗口Radon变换,结合了三种分割方法。基于支持向量机分类器的识别和验证模块允许分析和确定拒绝或接受每个分段数字图像。而且,包括各种子模块,以增强所提出系统的鲁棒性。在基准数据集上进行的实验结果表明,与现有技术相比,该系统可有效地分割手写数字字符串,而无需事先知道其长度。

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