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EFFICIENTLY LOCATING OBJECTS USING THE HAUSDORFF DISTANCE

机译:使用HAUSORFF距离有效地定位对象

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The Hausdorff distance is a measure defined between two point sets, here representing a model and an image. The Hausdorff distance is reliable even when the image contains multiple objects, noise, spurious features, and occlusions. In the past, it has been used to search images for instances of a model that has been translated, or translated and scaled, by finding transformations that bring a large number of model features close to image features, and vice versa. In this paper, we apply it to the task of locating an affine transformation of a model in an image; this corresponds to determining the pose of a planar object that has undergone weak-perspective projection. We develop a rasterised approach to the search and a number of techniques that allow us io locate quickly all transformations of the model that satisfy two quality criteria; we can also efficiently locate only the best transformation. We discuss an implementation of this approach, and present some examples of its use. [References: 15]
机译:Hausdorff距离是在两个点集之间定义的度量,此处代表模型和图像。即使图像包含多个对象,噪点,虚假特征和遮挡,Hausdorff距离也是可靠的。过去,通过查找使大量模型特征与图像特征接近的转换,反之亦然,它已被用于搜索图像以查找已转换,或翻译和缩放的模型实例。在本文中,我们将其应用于在图像中定位模型的仿射变换的任务;这对应于确定经过弱透视投影的平面对象的姿态。我们开发了一种栅格化的搜索方法以及多种技术,这些技术使我们能够快速找到满足两个质量标准的模型的所有转换;我们还可以仅有效地定位最佳转换。我们讨论了这种方法的实现,并提供了一些使用示例。 [参考:15]

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