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Distance Metric Between 3D Models and 3D Images for Recognition and Classification

机译:用于识别和分类的3D模型和3D图像之间的距离度量

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摘要

Similarity measurements between 3D objects and 2D images are useful for the tasks of object recognition and classification. We distinguish between two types of similarity metrics: metrics computed in image-space (image metrics) and metrics computed in transformation-space (transformation metrics). Existing methods typically use image and the nearest view of the object. Example for such a measure is the Euclidean distance between feature points in the image and corresponding points in the nearest view. (Computing this measure is equivalent to solving the exterior orientation calibration problem.) In this paper we introduce a different type of metrics: transformation metrics. These metrics penalize for the deformatoins applied to the object to produce the observed image. We present a transformation metric that optimally penalizes for "affine deformations" under weak-perspective. A closed-form solution, together with the nearest view according to this metric, are derived. The metric is shown to be equivalent to the Euclidean image metric, in the sense that they bound each other from both above and below. For Euclidean image metric we offier a sub-optimal closed-form solution and an iterative scheme to compute the exact solution.
机译:3D对象和2D图像之间的相似性测量对于对象识别和分类任务很有用。我们区分两种类型的相似性度量:在图像空间中计算的度量(图像度量)和在变换空间中计算的度量(转换度量)。现有方法通常使用图像和对象的最近视图。这种度量的示例是图像中特征点与最近视图中相应点之间的欧几里得距离。 (计算此度量等效于解决外部方向校准问题。)在本文中,我们介绍了另一种类型的度量:转换度量。这些度量对施加到对象以产生观察到的图像的变形蛋白是不利的。我们提出了一种转换指标,该指标在弱透视条件下可以对“仿射变形”进行最佳惩罚。得出封闭形式的解决方案以及根据该度量的最近视图。从它们从上方和下方相互绑定的意义上,该度量显示为等效于欧几里得图像度量。对于欧几里得图像度量,我们提供了次优闭合形式解和一个迭代方案来计算精确解。

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