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Erschienen in: International Journal of Computer Assisted Radiology and Surgery 9/2019

07.06.2019 | Original Article

Registration of vascular structures using a hybrid mixture model

verfasst von: Siming Bayer, Zhiwei Zhai, Maddalena Strumia, Xiaoguang Tong, Ying Gao, Marius Staring, Berend Stoel, Rebecca Fahrig, Arya Nabavi, Andreas Maier, Nishant Ravikumar

Erschienen in: International Journal of Computer Assisted Radiology and Surgery | Ausgabe 9/2019

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Abstract

Purpose

Morphological changes to anatomy resulting from invasive surgical procedures or pathology, typically alter the surrounding vasculature. This makes it useful as a descriptor for feature-driven image registration in various clinical applications. However, registration of vasculature remains challenging, as vessels often differ in size and shape, and may even miss branches, due to surgical interventions or pathological changes. Furthermore, existing vessel registration methods are typically designed for a specific application. To address this limitation, we propose a generic vessel registration approach useful for a variety of clinical applications, involving different anatomical regions.

Methods

A probabilistic registration framework based on a hybrid mixture model, with a refinement mechanism to identify missing branches (denoted as HdMM+) during vasculature matching, is introduced. Vascular structures are represented as 6-dimensional hybrid point sets comprising spatial positions and centerline orientations, using Student’s t-distributions to model the former and Watson distributions for the latter.

Results

The proposed framework is evaluated for intraoperative brain shift compensation, and monitoring changes in pulmonary vasculature resulting from chronic lung disease. Registration accuracy is validated using both synthetic and patient data. Our results demonstrate, HdMM+ is able to reduce more than \(85\%\) of the initial error for both applications, and outperforms the state-of-the-art point-based registration methods such as coherent point drift and Student’s t-distribution mixture model, in terms of mean surface distance, modified Hausdorff distance, Dice and Jaccard scores.

Conclusion

The proposed registration framework models complex vascular structures using a hybrid representation of vessel centerlines, and accommodates intricate variations in vascular morphology. Furthermore, it is generic and flexible in its design, enabling its use in a variety of clinical applications.
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Metadaten
Titel
Registration of vascular structures using a hybrid mixture model
verfasst von
Siming Bayer
Zhiwei Zhai
Maddalena Strumia
Xiaoguang Tong
Ying Gao
Marius Staring
Berend Stoel
Rebecca Fahrig
Arya Nabavi
Andreas Maier
Nishant Ravikumar
Publikationsdatum
07.06.2019
Verlag
Springer International Publishing
Erschienen in
International Journal of Computer Assisted Radiology and Surgery / Ausgabe 9/2019
Print ISSN: 1861-6410
Elektronische ISSN: 1861-6429
DOI
https://doi.org/10.1007/s11548-019-02007-y

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