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快速鲁棒迭代最近点

Fast and Robust Iterative Closest Point.

作者信息

Zhang Juyong, Yao Yuxin, Deng Bailin

出版信息

IEEE Trans Pattern Anal Mach Intell. 2022 Jul;44(7):3450-3466. doi: 10.1109/TPAMI.2021.3054619. Epub 2022 Jun 3.

Abstract

The iterative closest point (ICP) algorithm and its variants are a fundamental technique for rigid registration between two point sets, with wide applications in different areas from robotics to 3D reconstruction. The main drawbacks for ICP are its slow convergence, as well as its sensitivity to outliers, missing data, and partial overlaps. Recent work such as Sparse ICP achieves robustness via sparsity optimization at the cost of computational speed. In this paper, we propose a new method for robust registration with fast convergence. First, we show that the classical point-to-point ICP can be treated as a majorization-minimization (MM) algorithm, and propose an Anderson acceleration approach to speed up its convergence. In addition, we introduce a robust error metric based on the Welsch's function, which is minimized efficiently using the MM algorithm with Anderson acceleration. On challenging datasets with noises and partial overlaps, we achieve similar or better accuracy than Sparse ICP while being at least an order of magnitude faster. Finally, we extend the robust formulation to point-to-plane ICP, and solve the resulting problem using a similar Anderson-accelerated MM strategy. Our robust ICP methods improve the registration accuracy on benchmark datasets while being competitive in computational time.

摘要

迭代最近点(ICP)算法及其变体是用于两个点集之间刚性配准的一项基本技术,在从机器人技术到三维重建的不同领域有着广泛应用。ICP的主要缺点是收敛速度慢,以及对离群值、缺失数据和部分重叠敏感。诸如稀疏ICP等近期工作通过稀疏优化实现了鲁棒性,但代价是计算速度。在本文中,我们提出了一种具有快速收敛性的鲁棒配准新方法。首先,我们表明经典的点对点ICP可被视为一种主元最小化(MM)算法,并提出一种安德森加速方法来加快其收敛速度。此外,我们引入了一种基于韦尔施函数的鲁棒误差度量,利用带有安德森加速的MM算法对其进行有效最小化。在具有噪声和部分重叠的具有挑战性的数据集上,我们实现了与稀疏ICP相似或更好的精度,同时速度至少快一个数量级。最后,我们将鲁棒公式扩展到点对面ICP,并使用类似的安德森加速MM策略解决由此产生的问题。我们的鲁棒ICP方法提高了基准数据集上的配准精度,同时在计算时间方面具有竞争力。

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