Multi-object 3D segmentation of brain structures using a geometric deformable model with a priori knowledge

被引:0
|
作者
Baghdadi, Mohamed [1 ,2 ]
Benamrane, Nacera [2 ]
Boukadoum, Mounir [3 ]
Sais, Lakhdar [4 ]
机构
[1] Ibn Khaldoun Univ Tiaret, Fac Math & Comp Sci, Dept Comp Sci, Tiaret, Algeria
[2] Univ Sci & Technol Oran Mohamed Boudiaf, Fac Math & Comp Sci, Dept Comp Sci, SIMPA Lab,USTO MB, Oran, Algeria
[3] Univ Quebec Montreal UQAM, Dept Comp Engn, Montreal, PQ, Canada
[4] Univ Lille Nord France, CRIL CNRS, UMR 8188, Lens, France
来源
关键词
Brain image segmentation; geometric deformable model; multi-object generalized fast marching method (MOGFMM); spatial relationships; atlas; subcortical nuclei; ATLAS-BASED SEGMENTATION; FAST MARCHING METHOD; FIELD ESTIMATION; IMAGES; FUSION;
D O I
10.1080/13682199.2023.2256504
中图分类号
TB8 [摄影技术];
学科分类号
0804 ;
摘要
Brain structure segmentation in 3D Magnetic Resonance Images is crucial for understanding neurodegenerative disorders. Manual segmentation is error-prone, necessitating robust automated techniques. In this paper, we introduce a novel and robust approach for the simultaneous segmentation of multiple brain structures in MRI images. Our method involves the concurrent evolution of 3D surfaces toward predefined anatomical targets, employing an efficient multi-object generalized fast marching method (MOGFMM) for simultaneous object detection. Additionally, we propose an effective evolution function that integrates prior knowledge from anatomical and probabilistic atlases, as well as spatial relationships among the segmented structures. Each deformable surface corresponds to a specific structure. To validate our approach, we conducted experiments on a dataset of real brain images (IBSR) and compared the results with several state-of-the-art methods. The obtained results were promising, demonstrating the effectiveness and superiority of our developed method.
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页数:22
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