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Decision fusion of horizontal and vertical trajectories for recognition of online Farsi subwords

机译:水平和垂直轨迹的决策融合,用于在线波斯词识别

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摘要

Online handwriting is formed by a combination of horizontal and vertical trajectories. If these trajectories are treated separately, new recognition methods are emerged. In contrast, one classifier is often used to recognize handwriting. In this work, some features for x(r) and y{t) signals were proposed and used to make two separate classifiers. After initial recognition by these classifiers, their results were fused for final recognition. Using HMM classifiers and simple product rule for decision fusion, the recognition results of 42 classes of Farsi subwords showed promising achievements.
机译:在线笔迹由水平和垂直轨迹的组合形成。如果将这些轨迹分开处理,就会出现新的识别方法。相反,通常使用一个分类器来识别笔迹。在这项工作中,提出了x(r)和y {t)信号的一些特征,并用于制作两个单独的分类器。这些分类器初步识别后,将其结果融合起来以进行最终识别。使用HMM分类器和简单乘积规则进行决策融合,对42类波斯词进行了识别。

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