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NetMets: software for quantifying and visualizing errors in biological network segmentation

机译:NetMets:用于量化和可视化生物网络分段错误的软件

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摘要

One of the major goals in biomedical image processing is accurate segmentation of networks embedded in volumetric data sets. Biological networks are composed of a meshwork of thin filaments that span large volumes of tissue. Examples of these structures include neurons and microvasculature, which can take the form of both hierarchical trees and fully connected networks, depending on the imaging modality and resolution. Network function depends on both the geometric structure and connectivity. Therefore, there is considerable demand for algorithms that segment biological networks embedded in three-dimensional data. While a large number of tracking and segmentation algorithms have been published, most of these do not generalize well across data sets. One of the major reasons for the lack of general-purpose algorithms is the limited availability of metrics that can be used to quantitatively compare their effectiveness against a pre-constructed ground-truth. In this paper, we propose a robust metric for measuring and visualizing the differences between network models. Our algorithm takes into account both geometry and connectivity to measure network similarity. These metrics are then mapped back onto an explicit model for visualization.
机译:生物医学图像处理的主要目标之一是精确分割嵌入体积数据集的网络。生物网络由跨越大量组织的细丝网状结构组成。这些结构的示例包括神经元和微脉管系统,视成像方式和分辨率而定,神经元和微脉管系统可以采用分层树和完全连接的网络的形式。网络功能取决于几何结构和连通性。因此,对分割嵌入在三维数据中的生物网络的算法有相当大的需求。尽管已经发布了大量的跟踪和分割算法,但是其中大多数算法在数据集之间的推广都不够好。缺乏通用算法的主要原因之一是度量标准的可用性有限,这些度量标准可用于将其有效性与预先构建的事实真相进行定量比较。在本文中,我们提出了一个健壮的度量标准,用于度量和可视化网络模型之间的差异。我们的算法同时考虑了几何形状和连通性,以衡量网络的相似性。然后将这些指标映射回显式模型以进行可视化。

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