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A Novel Hybrid Model for Deformable Image Registration in Abdominal Procedures

机译:腹部手术中可变形图像配准的新型混合模型

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We propose a novel neuro-fuzzy hybrid transformation model for deformable image registration in intra-operative image guided procedures involving large soft tissue deformation. The hybrid model consists of two parts: a physics-based model and a mathematical approximation model. The physics-based model is based on elastic solid mechanics to model major deformation patterns of the central part of organs, and the mathematical approximation model depicts the deformation of the residual part along organ boundary. A neuro-fuzzy technique is employed to seamlessly integrate the two parts into a unified hybrid model. Its unique feature is to incorporate domain knowledge of soft tissue deformation patterns and significantly reduce the number of transformation parameters. We demonstrate the effectiveness of our hybrid model to register liver magnetic resonance (MR) images in human subject study. This technique has the potential to significantly improve intra-operative image guidance in abdominal and thoracic procedures.
机译:我们提出了一种新颖的神经-模糊混合变换模型,用于在涉及大的软组织变形的术中图像引导程序中进行变形图像配准。混合模型由两部分组成:基于物理的模型和数学近似模型。基于物理的模型基于弹性固体力学对器官中心部分的主要变形模式进行建模,而数学近似模型则描述了沿器官边界的残余部分的变形。采用神经模糊技术将这两个部分无缝集成到一个统一的混合模型中。它的独特功能是结合软组织变形模式的领域知识,并显着减少转换参数的数量。我们展示了我们的混合模型在人类受试者研究中注册肝磁共振(MR)图像的有效性。该技术具有显着改善腹部和胸部手术中术中图像引导的潜力。

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