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VesselBoost:用于人类磁共振血管造影数据中小血管分割的Python工具箱。

VesselBoost: A Python Toolbox for Small Blood Vessel Segmentation in Human Magnetic Resonance Angiography Data.

作者信息

Xu Marshall, Ribeiro Fernanda L, Barth Markus, Bernier Michaël, Bollmann Steffen, Chatterjee Soumick, Cognolato Francesco, Gulban Omer Faruk, Itkyal Vaibhavi, Liu Siyu, Mattern Hendrik, Polimeni Jonathan R, Shaw Thomas B, Speck Oliver, Bollmann Saskia

机构信息

School of Electrical Engineering and Computer Science, The University of Queensland, Brisbane, QLD, Australia.

Athinoula A. Martinos Center for Biomedical Imaging, Massachusetts General Hospital, Charlestown, MA, USA.

出版信息

bioRxiv. 2024 May 22:2024.05.22.595251. doi: 10.1101/2024.05.22.595251.

Abstract

Magnetic resonance angiography (MRA) performed at ultra-high magnetic field provides a unique opportunity to study the arteries of the living human brain at the mesoscopic level. From this, we can gain new insights into the brain's blood supply and vascular disease affecting small vessels. However, for quantitative characterization and precise representation of human angioarchitecture to, for example, inform blood-flow simulations, detailed segmentations of the smallest vessels are required. Given the success of deep learning-based methods in many segmentation tasks, we here explore their application to high-resolution MRA data, and address the difficulty of obtaining large data sets of correctly and comprehensively labelled data. We introduce , a vessel segmentation package, which utilizes deep learning and imperfect training labels for accurate vasculature segmentation. Combined with an innovative data augmentation technique, which leverages the resemblance of vascular structures, enables detailed vascular segmentations.

摘要

在超高磁场下进行的磁共振血管造影(MRA)为在介观水平研究活体人类大脑的动脉提供了独特的机会。由此,我们可以对大脑的血液供应以及影响小血管的血管疾病获得新的见解。然而,为了对人体血管结构进行定量表征和精确呈现,例如为血流模拟提供信息,需要对最小的血管进行详细分割。鉴于基于深度学习的方法在许多分割任务中取得的成功,我们在此探索它们在高分辨率MRA数据中的应用,并解决获取正确且全面标注的大数据集的困难。我们引入了一个血管分割软件包,它利用深度学习和不完美的训练标签进行精确的血管系统分割。结合一种创新的数据增强技术,该技术利用血管结构的相似性,能够实现详细的血管分割。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/229f/11142164/80e839039274/nihpp-2024.05.22.595251v1-f0001.jpg

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