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Frame Deformation Energy Matching of On-Line Handwritten Characters

机译:框架变形能量匹配在线手写字符

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The coarse to fine search methodology is frequently applied to a wide variety of problems in computer vision. In this paper it is shown that this strategy can be used to enhance the recognition of on-line handwritten characters. Some explicit knowledge about the structure of a handwritten character can be obtained through a structural parameterization. The Frame Deformation Energy matching (FDE) method is a method optimized to include such knowledge in the discrimination process. This paper presents a novel parameterization strategy, the Djikstra Curve Maximization (DCM) method, for the segments of the structural frame. Since this method distributes points unevenly on each segment, point-to-point matching strategies are not suitable. A new distance measure for these segment-to-segment comparisons have been developed. Experiments have been conducted with various settings for the new FDE on a large data set both with a single model matching scheme and with a kNN type template matching scheme. The results reveal that the FDE even in an ad hoc implementation is a robust matching method with recognition results well comparing to the existing state-of-the-art methods.
机译:粗略搜索方法经常应用于计算机视觉中的各种问题。在本文中,表明该策略可用于增强对在线手写字符的识别。关于手写字符结构的一些显式知识可以通过结构参数化获得。帧变形能量匹配(FDE)方法是优化的方法,以包括在识别过程中的这种知识。本文介绍了一种新颖的参数化策略,Djikstra曲线最大化(DCM)方法,用于结构框架的段。由于此方法在每个段中不均匀分配点,因此点对点匹配策略不合适。已经开发出用于这些分段与段比较的新距离度量。通过单一模型匹配方案和KNN型模板匹配方案,通过对大数据集的新FDE进行各种设置进行了实验。结果表明,即使在临时实现中的FDE也是一种强大的匹配方法,识别结果与现有的最先进方法相比。

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