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Medical surface smoothing via adaptive diffusion of differential fields

机译:通过微分场的自适应扩散来平滑医疗表面

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For diagnosis, therapy planning and medical education, it is common to extract surface models from clinical data. Due to various factors, extracted surface models often contain artifacts and noise. Most existing smoothing techniques are mainly devised for non-medical models and have parameters which are difficult to be tuned manually and sensitive to smoothing, surface quality and volume shrinkage. Unlike most previous smoothing techniques that are vertex-based or normal-based, we present an adaptive smoothing algorithm based on differential fields. The accuracy and performance of our approach is experimentally validated via comparisons with conventional smoothing techniques on typical medical surface models. We show the presented algorithm can achieve a smoothing medical surface while preserving volume and fine structures of original objects.
机译:对于诊断,治疗计划和医学教育,通常从临床数据中提取表面模型。由于各种因素,提取的表面模型通常包含伪影和噪声。现有的大多数平滑技术主要是针对非医学模型设计的,其参数难以手动调整,并且对平滑,表面质量和体积收缩敏感。与以前的大多数基于顶点或基于法线的平滑技术不同,我们提出了一种基于差分场的自适应平滑算法。通过与典型医学表面模型上的常规平滑技术进行比较,我们的方法的准确性和性能已通过实验验证。我们证明了所提出的算法可以在保持原始对象的体积和精细结构的同时实现平滑的医疗表面。

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