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Fast Affine Invariant Shape Matching from 3D Images Based on the Distance Association Map and the Genetic Algorithm

机译:基于距离关联地图和遗传算法的快速仿射不变形状与3D图像匹配

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The decision on whether a pair of closed contours is derived from different views of the same object, a task commonly known as affine invariant matching, can be encapsulated as the search for the existence of an affine transform between them. Past research has demonstrated that such search process can be effectively and swiftly accomplished with the use of genetic algorithms. On this basis, a successful attempt was developed for the heavily broken contour situation. In essence, a distance image and a correspondence map are utilized to recover a closed boundary from a fragmented scene contour. However, the pre-processing task involved in generating the distance image and the correspondence map consumes large amount of computation. This paper proposes a solution to overcome this problem with a fast algorithm, namely labelled chamfer distance transform. In our method, the generation of the distance image and the correspondence map is integrated into a single process which only involves small amount of arithmetic operations. Evaluation reveals that the time taken to match a pair of object shapes is about 10 to 30 times faster than the parent method.
机译:关于一对封闭轮廓是否来自同一对象的不同视图的决定,通常称为仿射不变匹配的任务可以封装为搜索它们之间的仿射变换。过去的研究表明,使用遗传算法可以有效和迅速地完成这种搜索过程。在此基础上,为严重破碎的轮廓造型而开设了成功的尝试。实质上,利用距离图像和对应图来从碎片场景轮廓恢复闭合边界。然而,生成距离图像和对应图中涉及的预处理任务消耗了大量计算。本文提出了一种用快速算法克服这个问题的解决方案,即标记的倒角距离变换。在我们的方法中,距离图像和对应图的生成集成到仅涉及少量算术运算的单个过程中。评估表明,匹配一对物体形状所花费的时间比父方法快约10到30倍。

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