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Volume segmentation and analysis of biological materials using SuRVoS (Super-region Volume Segmentation) workbench

机译:使用SuRVoS(超区域体积分割)工作台进行生物材料的体积分割和分析

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摘要

Segmentation is the process of isolating specific regions or objects within an imaged volume, so that further study can be undertaken on these areas of interest. When considering the analysis of complex biological systems, the segmentation of three-dimensional image data is a time consuming and labor intensive step. With the increased availability of many imaging modalities and with automated data collection schemes, this poses an increased challenge for the modern experimental biologist to move from data to knowledge. This publication describes the use of SuRVoS Workbench, a program designed to address these issues by providing methods to semi-automatically segment complex biological volumetric data. Three datasets of differing magnification and imaging modalities are presented here, each highlighting different strategies of segmenting with SuRVoS. Phase contrast X-ray tomography (microCT) of the fruiting body of a plant is used to demonstrate segmentation using model training, cryo electron tomography (cryoET) of human platelets is used to demonstrate segmentation using super- and megavoxels, and cryo soft X-ray tomography (cryoSXT) of a mammalian cell line is used to demonstrate the label splitting tools. Strategies and parameters for each datatype are also presented. By blending a selection of semi-automatic processes into a single interactive tool, SuRVoS provides several benefits. Overall time to segment volumetric data is reduced by a factor of five when compared to manual segmentation, a mainstay in many image processing fields. This is a significant savings when full manual segmentation can take weeks of effort. Additionally, subjectivity is addressed through the use of computationally identified boundaries, and splitting complex collections of objects by their calculated properties rather than on a case-by-case basis.
机译:分割是隔离成像体积内特定区域或对象的过程,因此可以对这些感兴趣的区域进行进一步的研究。当考虑分析复杂的生物系统时,三维图像数据的分割是一个既费时又费力的步骤。随着越来越多的成像方式的可用性和自动化的数据收集方案,这给现代实验生物学家从数据到知识的转变带来了更大的挑战。该出版物描述了SuRVoS Workbench的使用,该程序旨在通过提供半自动分割复杂的生物体数据的方法来解决这些问题。这里介绍了三个不同放大倍率和成像方式的数据集,每个数据集都强调了使用SuRVoS进行分割的不同策略。植物子实体的相衬X射线断层扫描(microCT)用于通过模型训练演示分割,人类血小板的低温电子断层扫描(cryoET)用于演示使用超级素和大素体进行的分割,以及低温软X-射线哺乳动物细胞系的X射线断层扫描(cryoSXT)被用来证明标签分裂工具。还介绍了每种数据类型的策略和参数。通过将半自动过程的选择混合到单个交互式工具中,SuRVoS提供了许多好处。与手动分割相比,分割体积数据的总时间减少了五倍,而手动分割是许多图像处理领域的主流。当完全手动分割需要花费数周的精力时,这将是可观的节省。此外,通过使用计算上确定的边界来解决主观性,并根据对象的计算属性来分割复杂的对象集合,而不是逐案进行。

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