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基于自适应核回归的胎儿脑 MRI 稀疏体积重建方法。

A Sparse Volume Reconstruction Method for Fetal Brain MRI Using Adaptive Kernel Regression.

机构信息

Shenzhen Hospital of Guangzhou University of Chinese Medicine, Shenzhen, China.

Radiology & Vascular Surgery, Department of Radiology, Zhongda Hospital, Medical School, Southeast University, Nanjing, China.

出版信息

Biomed Res Int. 2021 Mar 5;2021:6685943. doi: 10.1155/2021/6685943. eCollection 2021.

Abstract

Slice-to-volume reconstruction (SVR) method can deal well with motion artifacts and provide high-quality 3D image data for fetal brain MRI. However, the problem of sparse sampling is not well addressed in the SVR method. In this paper, we mainly focus on the sparse volume reconstruction of fetal brain MRI from multiple stacks corrupted with motion artifacts. Based on the SVR framework, our approach includes the slice-to-volume 2D/3D registration, the point spread function- (PSF-) based volume update, and the adaptive kernel regression-based volume update. The adaptive kernel regression can deal well with the sparse sampling data and enhance the detailed preservation by capturing the local structure through covariance matrix. Experimental results performed on clinical data show that kernel regression results in statistical improvement of image quality for sparse sampling data with the parameter setting of the structure sensitivity 0.4, the steering kernel size of 7 × 7 × 7 and steering smoothing bandwidth of 0.5. The computational performance of the proposed GPU-based method can be over 90 times faster than that on CPU.

摘要

切片到体积重建(SVR)方法可以很好地处理运动伪影,并为胎儿脑 MRI 提供高质量的 3D 图像数据。然而,SVR 方法并没有很好地解决稀疏采样的问题。在本文中,我们主要关注从多个带有运动伪影的堆栈中对胎儿脑 MRI 进行稀疏体积重建。基于 SVR 框架,我们的方法包括切片到体积的 2D/3D 配准、基于点扩散函数(PSF)的体积更新和基于自适应核回归的体积更新。自适应核回归可以很好地处理稀疏采样数据,并通过捕获协方差矩阵的局部结构来增强细节保留。在临床数据上的实验结果表明,核回归在稀疏采样数据的图像质量方面取得了统计上的改善,其结构灵敏度参数设置为 0.4、引导核大小为 7×7×7 和引导平滑带宽为 0.5。基于 GPU 的方法的计算性能可以比基于 CPU 的方法快 90 多倍。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/674c/7960018/806a0cdc411d/BMRI2021-6685943.001.jpg

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