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Local Geometric Consensus: A General Purpose Point Pattern-Based Tracking Algorithm

机译:局部几何共识:基于通用点模式的跟踪算法

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摘要

We present a method which can quickly and robustly match 2D and 3D point patterns based on their sole spatial distribution, but it can also handle other cues if available. This method can be easily adapted to many transformations such as similarity transformations in 2D/3D, and affine and perspective transformations in 2D. It is based on local geometric consensus among several local matchings and a refinement scheme. We provide two implementations of this general scheme, one for the 2D homography case (which can be used for marker or image tracking) and one for the 3D similarity case. We demonstrate the robustness and speed performance of our proposal on both synthetic and real images and show that our method can be used to augment any (textured/textureless) planar objects but also 3D objects.
机译:我们提出了一种方法,该方法可以根据其唯一的空间分布快速而稳健地匹配2D和3D点模式,但也可以处理其他提示(如果有)。此方法可以轻松地适应许多转换,例如2D / 3D中的相似度转换以及2D中的仿射和透视转换。它基于几个局部匹配中的局部几何共识和改进方案。我们提供了此一般方案的两种实现方式,一种用于2D单应性情况(可用于标记或图像跟踪),一种用于3D相似性情况。我们在合成图像和真实图像上展示了我们的建议的鲁棒性和速度性能,并表明我们的方法可用于增强任何(纹理/无纹理)平面对象以及3D对象。

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