Motion-Compensated Interpolation in Echocardiography: A Lie Advection-Based Approach

IF 4.4 2区 医学 Q2 ENGINEERING, BIOMEDICAL IEEE Transactions on Biomedical Engineering Pub Date : 2025-01-16 DOI:10.1109/TBME.2024.3440838
Hani Nozari Mirar;Sten Roar Snare;Anne H. Schistad Solberg
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Abstract

To better understand cardiac structures and dynamics via echocardiography, it is essential to have cardiac image sequences with sufficient spatio-temporal resolution. However, in echocardiography, there is an inherent tradeoff between temporal and spatial resolution, which limits the ability to acquire images with both high temporal and spatial resolution simultaneously. Motion-compensated interpolation, a post-acquisition technique, enhances the temporal resolution without compromising the spatial resolution. This paper introduces a novel motion-compensated interpolation algorithm based on the advection equation in fluid mechanics. Considering the incompressibility of cardiac tissue, we derive a solution in terms of Lie series for the advection problem. Subsequently, we construct a bidirectional advection energy model to estimate the optimal velocity fields that can simultaneously advect two cardiac images towards each other. The process continues until they converge at a midpoint where the image similarity peaks. To preserve the topology of the cardiac structures and ensure that image deformations are diffeomorphic, the advection process is carried out gradually with a smooth velocity field. To reduce the contribution of the blood signal in optimizing for the best tissue advection velocity, a nonlocal regularization pre-processing is applied to echocardiography data. Our algorithm, tested on 2D and 3D echocardiography, outperforms existing motion-compensated interpolation algorithms in estimating cardiac motions. It preserves cardiac topology during image deformations and reduces interpolation artifacts, especially in low frame rate recordings. By training a neural network on the data generated by our algorithm, we achieved over 75 times faster computation without compromising image quality.
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超声心动图中的运动补偿插值:一种基于平流的方法
为了通过超声心动图更好地了解心脏结构和动力学,必须有足够的时空分辨率的心脏图像序列。然而,在超声心动图中,时间和空间分辨率之间存在固有的权衡,这限制了同时获得高时间和空间分辨率图像的能力。运动补偿插值是一种采集后技术,在不影响空间分辨率的情况下提高了时间分辨率。本文介绍了一种基于流体力学中的平流方程的运动补偿插补算法。考虑到心脏组织的不可压缩性,我们导出了平流问题的李级数解。随后,我们构建了一个双向平流能量模型来估计可以同时使两幅心脏图像相互平流的最佳速度场。这个过程一直持续,直到它们在图像相似度达到峰值的中点收敛。为了保持心脏结构的拓扑结构并保证图像变形是微分同构的,平流过程以平滑的速度场逐步进行。为了减少血液信号对优化最佳组织平流速度的影响,对超声心动图数据进行了非局部正则化预处理。我们的算法在二维和三维超声心动图上进行了测试,在估计心脏运动方面优于现有的运动补偿插值算法。它保留心脏拓扑在图像变形和减少插值伪影,特别是在低帧率记录。通过在算法生成的数据上训练神经网络,我们在不影响图像质量的情况下实现了超过75倍的计算速度。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
IEEE Transactions on Biomedical Engineering
IEEE Transactions on Biomedical Engineering 工程技术-工程:生物医学
CiteScore
9.40
自引率
4.30%
发文量
880
审稿时长
2.5 months
期刊介绍: IEEE Transactions on Biomedical Engineering contains basic and applied papers dealing with biomedical engineering. Papers range from engineering development in methods and techniques with biomedical applications to experimental and clinical investigations with engineering contributions.
期刊最新文献
Table of Contents Front Cover IEEE Transactions on Biomedical Engineering Information for Authors IEEE Transactions on Biomedical Engineering Handling Editors Information IEEE Engineering in Medicine and Biology Society Information
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