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Reconstruction of 3D ultrasound images based on Cyclic Regularized Savitzky-Golay filters

机译:基于循环正则Savitzky-Golay滤波器的3D超声图像重建

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This paper presents a new three-dimensional (3D) ultrasound reconstruction algorithm for generation of 3D images from a series of two-dimensional (2D) B-scans acquired in the mechanical linear scanning framework. Unlike most existing 3D ultrasound reconstruction algorithms, which have been developed and evaluated in the freehand scanning framework, the new algorithm has been designed to capitalize the regularity pattern of the mechanical linear scanning, where all the B-scan slices are precisely parallel and evenly spaced. The new reconstruction algorithm, referred to as the Cyclic Regularized Savitzky-Golay (CRSG) filter, is a new variant of the Savitzky-Golay (SG) smoothing filter. The CRSG filter has been improved upon the original SG filter in two respects: First, the cyclic indicator function has been incorporated into the least square cost function to enable the CRSG filter to approximate nonuniformly spaced data of the unobserved image intensities contained in unfilled voxels and reduce speckle noise of the observed image intensities contained in filled voxels. Second, the regularization function has been augmented to the least squares cost function as a mechanism to balance between the degree of speckle reduction and the degree of detail preservation. The CRSG filter has been evaluated and compared with the Voxel Nearest-Neighbor (VNN) interpolation post-processed by the Adaptive Speckle Reduction (ASR) filter, the VNN interpolation post-processed by the Adaptive Weighted Median (AWM) filter, the Distance-Weighted (DW) interpolation, and the Adaptive Distance-Weighted (ADW) interpolation, on reconstructing a synthetic 3D spherical image and a clinical 3D carotid artery bifurcation in the mechanical linear scanning framework. This preliminary evaluation indicates that the CRSG filter is more effective in both speckle reduction and geometric reconstruction of 3D ultrasound images than the other methods.
机译:本文提出了一种新的三维(3D)超声重建算法,用于从在机械线性扫描框架中获取的一系列二维(2D)B扫描生成3D图像。与大多数现有的3D超声重建算法(已在徒手扫描框架中开发和评估)不同,该新算法旨在利用机械线性扫描的规律性模式,其中所有B扫描切片均精确平行且间隔均匀。新的重建算法称为循环正则Savitzky-Golay(CRSG)滤波器,它是Savitzky-Golay(SG)平滑滤波器的新变体。 CRSG滤镜在两个方面对原始SG滤镜进行了改进:首先,将循环指示符功能合并到最小二乘成本函数中,以使CRSG滤镜可以近似估计未填充体素中包含的未观察图​​像强度的不均匀间隔数据;以及减少填充体素中包含的观察到的图像强度的斑点噪声。第二,正则化函数已增加到最小二乘成本函数,作为平衡斑点减少程度和细节保留程度的一种机制。已对CRSG滤波器进行了评估,并将其与自适应散斑减少(ASR)滤波器后处理的Voxel最近邻(VNN)插值,自适应加权中位数(AWM)滤波器后处理的VNN插值,距离-加权(DW)插值和自适应距离加权(ADW)插值,用于在机械线性扫描框架中重建合成3D球形图像和临床3D颈动脉分叉。该初步评估表明,CRSG滤波器在斑点减少和3D超声图像的几何重构方面均比其他方法更有效。

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