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Pattern Matching by Scan-Convert ing Polygons

机译:通过扫描转换多边形进行图案匹配

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摘要

Pattern matching is one of the well-known pattern recognition techniques. When using points as matching features, a pattern matching problem becomes a point pattern matching problem. This paper proposes a novel point pattern matching algorithm that searches transformation space by transformation sampling. The algorithm defines a constraint set (a polygonal region in transformation space) for each possible pairing of a template point and a target point. Under constrained polynomial transformations that have no more than two parameters on each coordinate, the constraint sets and the transformation space can be represented as Cartesian products of 2D polygonal regions. The algorithm then rasterizes the transformation space into a discrete canvas and calculates the optimal matching at each sampled transformation efficiently by scan-converting polygons. Preliminary experiments on randomly generated point patterns show that the algorithm is effective and efficient. In addition, the running time of the algorithm is stable with respect to missing points.
机译:模式匹配是众所周知的模式识别技术之一。当使用点作为匹配特征时,模式匹配问题成为点模式匹配问题。提出了一种新颖的点模式匹配算法,该算法通过变换采样来搜索变换空间。该算法为模板点和目标点的每个可能配对定义了一个约束集(变换空间中的多边形区域)。在每个坐标上具有不超过两个参数的约束多项式变换下,约束集和变换空间可以表示为2D多边形区域的笛卡尔积。然后,该算法将转换空间栅格化为离散的画布,并通过扫描转换多边形来有效地计算每个采样转换处的最佳匹配。对随机生成的点模式的初步实验表明该算法是有效的。另外,该算法的运行时间相对于缺失点是稳定的。

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