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Feature extraction for online handwritten characters using Delaunay triangulation

机译:使用Delaunay三角剖分的在线手写字符特征提取

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摘要

We introduce a novel feature extraction scheme for online handwritten characters based on utilizing Delaunay triangles for describing each stroke segment. Central to the proposed approach is the idea of associating a unique topological structure with the handwritten shape using the Delaunay triangulation. This allows more 'meaningful' groups (i.e., triangles) to be chosen for representing global features, and makes full use of the rich temporal and topological characteristics of handwritten shapes. The Delaunay triangles used for feature extraction, called the Delaunay triangle descriptor, have good discrimination power since they are the only ones satisfying the properties of the Delaunay triangulation. A discrete HMM-based recognition system is used, as the test platform, and shows that the proposed representation can achieve good performance on the chosen data collection, improve recognition accuracy, elevate stability and robustness, and outperform other alternative feature combinations implemented for comparison.
机译:我们介绍了一种新颖的在线手写字符特征提取方案,该方案基于利用Delaunay三角形描述每个笔划段。提议的方法的中心思想是使用Delaunay三角剖分将独特的拓扑结构与手写形状相关联。这允许选择更多的“有意义的”组(即三角形)来表示全局特征,并充分利用手写形状的丰富时间和拓扑特征。用于特征提取的Delaunay三角形(称为Delaunay三角形描述符)具有良好的辨别力,因为它们是唯一满足Delaunay三角剖分的属性的三角形。使用基于HMM的离散识别系统作为测试平台,它表明,所提出的表示可以在所选数据集上实现良好的性能,提高识别精度,提高稳定性和鲁棒性,并且优于其他用于比较的特征组合。

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