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Local Phase Tensor Features for 3-D Ultrasound to Statistical Shape+Pose Spine Model Registration

机译:3-D超声到统计形状+姿势脊柱模型配准的局部相张量特征

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摘要

Most conventional spine interventions are performed under X-ray fluoroscopy guidance. In recent years, there has been a growing interest to develop nonionizing imaging alternatives to guide these procedures. Ultrasound guidance has emerged as a leading alternative. However, a challenging problem is automatic identification of the spinal anatomy in ultrasound data. In this paper, we propose a local phase-based bone feature enhancement technique that can robustly identify the spine surface in ultrasound images. The local phase information is obtained using a gradient energy tensor filter. This information is used to construct local phase tensors in ultrasound images, which highlight the spine surface. We show that our proposed approach results in a more distinct enhancement of the bone surfaces compared to recently proposed techniques based on monogenic scale-space filters and logarithmic Gabor filters. We also demonstrate that registration accuracy of a statistical shape+pose model of the spine to 3-D ultrasound images can be significantly improved, using the proposed method, compared to those obtained using monogenic scale-space filters and logarithmic Gabor filters.
机译:大多数常规的脊柱干预都是在X射线透视检查的指导下进行的。近年来,对开发非电离成像替代品以指导这些程序的兴趣日益浓厚。超声引导已成为一种领先的替代方法。然而,具有挑战性的问题是超声数据中脊柱解剖结构的自动识别。在本文中,我们提出了一种基于局部相位的骨特征增强技术,该技术可以在超声图像中可靠地识别出脊柱表面。使用梯度能量张量滤波器获得局部相位信息。此信息用于在超声图像中构造局部相量张量,从而突出显示脊柱表面。我们表明,与最近提出的基于单基因比例空间过滤器和对数Gabor过滤器的技术相比,我们提出的方法可导致骨骼表面更明显的增强。我们还证明,与使用单尺度尺度空间滤波器和对数Gabor滤波器获得的结果相比,使用提议的方法可以显着提高脊柱的统计形状+姿势模型到3D超声图像的配准精度。

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