用于考古应用的低重叠范围图像配准

Luciano Silva, O. Bellon, K. Boyer, P. Gotardo
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引用次数: 12

摘要

在数字考古学中,从距离视图对物理对象进行三维建模是一个重要的问题。通常,应用程序需要大量的视图来通过注册过程创建精确的3D模型。大多数距离图像配准技术是基于ICP(迭代最近点)算法的变体。ICP算法有两个主要缺点:收敛到局部最小值的可能性,以及需要对图像进行预对齐。遗传算法(GAs)最近被应用于距离图像配准,提供了良好的收敛结果,而没有在ICP方法中观察到的约束。为了改善距离图像配准,我们探索了遗传算法的使用,并开发了一种将遗传算法与爬坡启发式(GH)相结合的新方法。实验结果表明,该方法可以有效地对准低重叠视图,并且比ICP或标准GA方法获得更准确的配准结果。我们的方法在考古应用中非常有优势,因为数据采集非常昂贵,需要减少要对齐的视图数量,并且还可以最大限度地减少3D模型中的误差积累。我们还提出了一种新的表面互穿测量方法来评价配准,并用实验结果证明了它的实用性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Low-Overlap Range Image Registration for Archaeological Applications
In digital Archaeology, the 3D modeling of physical objects from range views is an important issue. Generally, the applications demand a great number of views to create a precise 3D model through a registration process. Most range image registration techniques are based on variants of the ICP (Iterative Closest Point) algorithm. The ICP algorithm has two main drawbacks: the possibility of convergence to a local minimum, and the need to prealign the images. Genetic Algorithms (GAs) were recently applied to range image registration providing good convergence results without the constraints observed in the ICP approaches. To improve range image registration, we explore the use of GAs and develop a novel approach that combines a GA with hillclimbing heuristics (GH). The experimental results show that our method is effective in aligning low overlap views and yield more accurate registration results than either ICP or standard GA approaches. Our method is highly advantageous in archaeological applications, where it is necessary to reduce the number of views to be aligned because data acquisition is expensive and also to minimize error accumulation in the 3D model. We also present a new measure of surface interpenetration with which to evaluate the registration and prove its utility with experimental results.
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