Fully spherical 3D datasets on sedimentary particles: Fast measurement and evaluation

Eszter Fehér, Balázs Havasi-Tóth, Balázs Ludmány
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引用次数: 2

Abstract

Recently it became increasingly evident that the statistical distributions of size and shape descriptors of sedimentary particles reveal crucial information on their evolution and may even carry the fingerprints of their provenance as fragments. However, to unlock this trove of information, measurement of traditional geophysical shape descriptors (mostly detectable on 2D projections) is not sufficient; fully spherical 3D imaging and mathematical algorithms suitable to extract new types of inherently 3D shape descriptors are necessary. Available 3D imaging technologies force users to choose either speed or full sphericity. Only partial morphological information can be extracted in the absence of the latter (e.g., LIDAR imaging). In the case of fully spherical imaging, speed was proved to be prohibitive for obtaining meaningful statistical samples, and inherently 3D shape descriptors were not extracted. Here we present a new method by complementing a commercial, portable 3D scanner with simple hardware to quickly obtain fully spherical 3D datasets from large collections of sedimentary particles. We also present software for the automated extraction of 3D shapes and automated measurement of inherently 3D-shape properties. This technique allows for examining large samples without the need for transportation or storage of the samples, and it may also facilitate the collaboration of geographically distant research groups. We validated our software on a large sample of pebbles by comparing previously hand-measured parameters with the results of automated shape analysis. We also tested our hardware and software tools on a large pebble sample in Kawakawa Bay, New Zealand.
沉积颗粒的全球面三维数据集:快速测量和评估
最近,越来越明显的是,沉积颗粒的大小和形状描述符的统计分布揭示了它们进化的关键信息,甚至可能以碎片的形式携带其来源的指纹。然而,为了解开这一信息宝库,传统的地球物理形状描述符(大多在2D投影上可检测)的测量是不够的;全球面3D成像和适合于提取新类型的固有3D形状描述符的数学算法是必要的。可用的3D成像技术迫使用户选择速度或全球度。在没有后者的情况下(例如,LIDAR成像),只能提取部分形态信息。在全球面成像的情况下,速度被证明无法获得有意义的统计样本,并且无法提取固有的3D形状描述符。在这里,我们提出了一种新方法,用简单的硬件补充商业便携式3D扫描仪,从大量沉积颗粒中快速获得全球形3D数据集。我们还提供了用于自动提取三维形状和自动测量固有三维形状特性的软件。这项技术可以在不需要运输或储存样本的情况下检查大样本,还可以促进地理位置遥远的研究小组的合作。我们通过将之前手工测量的参数与自动形状分析的结果进行比较,在大量卵石样本上验证了我们的软件。我们还在新西兰川川湾的一个大卵石样本上测试了我们的硬件和软件工具。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Central European Geology
Central European Geology Earth and Planetary Sciences-Geology
CiteScore
1.40
自引率
0.00%
发文量
8
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