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Straightening 3-D Surface Scans of Curved Natural History Specimens for Taxonomic Research

机译:分类学研究弯曲自然历史标本的3-D表面扫描

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Two challenges for taxonomists are proper identification of specimens to known species and extracting information from specimens to diagnose new species. Both tasks are complicated by the very large numbers of known and unknown species and the dwindling numbers of qualified taxonomists to identify/diagnose them all. Automated species identification is a tool that can assist taxonomists facing this challenge. This paper looks at one aspect of automated species identification: unfolding curved specimens, which commonly occurs when specimens are prepared for storage in natural history collections. Here we attempt to address the rather extreme case of an elongate fish specimen coiled along its medial axis. The medial axis is the set of all points within an object with the shortest distance to at least two different points on that object's surface, where "distance" (typically Euclidean) is determined by the application. Medial Axis Estimation is a challenging problem that arises when the surface itself is sampled (i.e. incomplete). In this paper, we look at various techniques for estimating the medial axis of an object, then we propose a new method for medial axis estimation based on localized spatial depth. We extend the idea of localized spatial depth-based medial axis further by applying an original ridge detector. We conclude with a comparison of our approach with The Power Crust approach using artificial data.
机译:分类师的两个挑战是正确鉴定已知物种的标本,并从标本中提取信息以诊断新物种。这两个任务都是由大量已知和未知的物种以及合格的分类学家的DWWindling数量复杂化,以识别/诊断它们。自动化物种识别是一种工具,可以帮助分类家面临这一挑战。本文介绍了自动化物种的一个方面识别:展开弯曲标本,当准备在自然历史集合中储存标本时常常发生。在这里,我们试图解决沿着其内侧轴线盘绕的细长鱼标本的相当极端情况。内侧轴是对象内的所有点的集合,其距离最短到该物体表面上的至少两个不同点,其​​中“距离”(通常是欧几里德)由应用确定。内侧轴估计是一种具有挑战性的问题,当表面本身被采样时出现(即不完整)。在本文中,我们看看用于估计物体的内侧轴的各种技术,然后我们提出了一种基于局部空间深度的内侧轴估计的新方法。通过应用原始脊检测器,我们进一步扩展了局部空间深度型内侧轴的思想。我们在使用人工数据的电力地壳方法比较了我们的方法比较了。

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