Semple Thomas L, Peakall Rod, Tatarnic Nikolai J
Division of Ecology and Evolution, Research School of Biology, The Australian National University, Acton, Australia.
Department of Terrestrial Zoology, Western Australian Museum, Perth, Western Australia, Australia.
J Morphol. 2019 Feb;280(2):223-231. doi: 10.1002/jmor.20938.
Methods for 3D-imaging of biological samples are experiencing unprecedented development, with tools such as X-ray micro-computed tomography (μCT) becoming more accessible to biologists. These techniques are inherently suited to small subjects and can simultaneously image both external and internal morphology, thus offering considerable benefits for invertebrate research. However, methods for visualising 3D-data are trailing behind the development of tools for generating such data. Our aim in this article is to make the processing, visualisation and presentation of 3D-data easier, thereby encouraging more researchers to utilise 3D-imaging. Here, we present a comprehensive workflow for manipulating and visualising 3D-data, including basic and advanced options for producing images, videos and interactive 3D-PDFs, from both volume and surface-mesh renderings. We discuss the importance of visualisation for quantitative analysis of invertebrate morphology from 3D-data, and provide example figures illustrating the different options for generating 3D-figures for publication. As more biology journals adopt 3D-PDFs as a standard option, research on microscopic invertebrates and other organisms can be presented in high-resolution 3D-figures, enhancing the way we communicate science.
生物样本的三维成像方法正经历着前所未有的发展,诸如X射线显微计算机断层扫描(μCT)等工具正越来越容易被生物学家所使用。这些技术天生适用于小型研究对象,并且能够同时对外部和内部形态进行成像,因此为无脊椎动物研究带来了诸多益处。然而,三维数据的可视化方法却落后于生成此类数据的工具的发展。本文的目的是让三维数据的处理、可视化和展示变得更加容易,从而鼓励更多研究人员使用三维成像技术。在此,我们展示了一个用于处理和可视化三维数据的综合工作流程,包括从体数据和表面网格渲染生成图像、视频及交互式三维PDF的基本和高级选项。我们讨论了可视化对于从三维数据进行无脊椎动物形态定量分析的重要性,并提供示例图来说明生成用于发表的三维图形的不同选项。随着越来越多的生物学杂志将三维PDF作为标准选项采用,微观无脊椎动物和其他生物的研究可以通过高分辨率的三维图形来呈现,从而改进我们传播科学的方式。