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A Statistics-Based Approach to Binary Image Registration with Uncertainty Analysis

机译:基于统计的不确定性二值图像配准方法

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摘要

A new technique is described for the registration of edge-detected images. While an extensive literature exists on the problem of image registration, few of the current approaches include a well-defined measure of the statistical confidence associated with the solution. Such a measure is essential for many autonomous applications, where registration solutions that are dubious (involving poorly focused images or terrain that is obscured by clouds) must be distinguished from those that are reliable (based on clear images of highly structured scenes). The technique developed herein utilizes straightforward edge pixel matching to determine the "best" among a class of candidate translations. A well-established statistical procedure, the McNemar test, is then applied to identify which other candidate solutions are not significantly worse than the best solution. This allows for the construction of confidence regions in the space of the registration parameters. The approach is validated through a simulation study and examples are provided of its application in numerous challenging scenarios. While the algorithm is limited to solving for two-dimensional translations, its use in validating solutions to higher-order (rigid body, affine) transformation problems is demonstrated
机译:描述了一种用于边缘检测图像的配准的新技术。尽管存在大量有关图像配准问题的文献,但当前的方法很少包括与解决方案相关的统计置信度的明确定义。对于许多自治应用程序来说,这种措施是必不可少的,在这种应用程序中,必须将可疑的注册解决方案(涉及聚焦不良的图像或被云遮挡的地形)与可靠的注册解决方案(基于高度结构化场景的清晰图像)区分开来。本文开发的技术利用简单的边缘像素匹配来确定一类候选翻译中的“最佳”。然后,使用公认的统计程序McNemar检验来确定哪些其他候选解决方案没有比最佳解决方案差很多。这允许在配准参数的空间中构造置信区域。通过仿真研究验证了该方法,并提供了在众多挑战性场景中的应用实例。虽然该算法仅限于求解二维平移,但展示了其在验证高阶(刚体,仿射)变换问题的解决方案中的用途

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