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Efficient Image Registration for Underwater Optical Mapping Using Geometric Invariants

机译:使用几何不变量进行水下光学映射的有效图像配准

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摘要

Image registration is one of the most fundamental and widely used tools in optical mapping applications. It is mostly achieved by extracting and matching salient points (features) described by vectors (feature descriptors) from images. While matching the descriptors, mismatches (outliers) do appear. Probabilistic methods are then applied to remove outliers and to find the transformation (motion) between images. These methods work in an iterative manner. In this paper, an efficient way of integrating geometric invariants into feature-based image registration is presented aiming at improving the performance of image registration in terms of both computational time and accuracy. To do so, geometrical properties that are invariant to coordinate transforms are studied. This would be beneficial to all methods that use image registration as an intermediate step. Experimental results are presented using both semi-synthetically generated data and real image pairs from underwater environments.
机译:图像配准是光学制图应用程序中最基本,使用最广泛的工具之一。它主要是通过从图像中提取和匹配由向量(特征描述符)描述的显着点(特征)来实现的。匹配描述符时,会出现不匹配(异常值)的情况。然后应用概率方法来去除异常值并找到图像之间的变换(运动)。这些方法以迭代方式工作。在本文中,提出了一种将几何不变量集成到基于特征的图像配准中的有效方法,旨在从计算时间和准确性两方面提高图像配准的性能。为此,研究了对于坐标变换而言不变的几何特性。这对于使用图像配准作为中间步骤的所有方法都是有益的。使用半合成生成的数据和水下环境中的真实图像对展示了实验结果。

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