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Temporal diffeomorphic free-form deformation: application to motion and strain estimation from 3D echocardiography

机译:时间微分形式自由变形:应用于三维超声心动图的运动和应变估计

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摘要

This paper presents a new registration algorithm, called Temporal Di eomorphic Free Form Deformation (TDFFD), and its application to motion and strain quanti cation from a sequence of 3D ultrasound (US) images. The originality of our approach resides in enforcing time consistency by representing the 4D velocity eld as the sum of continuous spatiotemporal B-Spline kernels. The spatiotemporal displacement eld is then recovered through forward Eulerian integration of the non-stationary velocity eld. The strain tensor is/ncomputed locally using the spatial derivatives of the reconstructed displacement eld. The energy functional considered in this paper weighs two terms: the image similarity and a regularization term. The image similarity metric is the sum of squared di erences between the intensities of each frame and a reference one. Any frame in the sequence can be chosen as reference. The regularization term is based on the/nincompressibility of myocardial tissue. TDFFD was compared to pairwise 3D FFD and 3D+t FFD, both/non displacement and velocity elds, on a set of synthetic 3D US images with di erent noise levels. TDFFD/nshowed increased robustness to noise compared to these two state-of-the-art algorithms. TDFFD also proved to be more resistant to a reduced temporal resolution when decimating this synthetic sequence. Finally, this synthetic dataset was used to determine optimal settings of the TDFFD algorithm. Subsequently, TDFFD/nwas applied to a database of cardiac 3D US images of the left ventricle acquired from 9 healthy volunteers and 13 patients treated by Cardiac Resynchronization Therapy (CRT). On healthy cases, uniform strain patterns were observed over all myocardial segments, as physiologically expected. On all CRT patients, the/nimprovement in synchrony of regional longitudinal strain correlated with CRT clinical outcome as quanti ed by the reduction of end-systolic left ventricular volume at follow-up (6 and 12 months), showing the potential of the proposed algorithm for the assessment of CRT.
机译:本文提出了一种新的配准算法,称为时间二次变形自由形式变形(TDFFD),并将其应用于一系列3D超声(US)图像中的运动和应变定量。我们方法的独创性在于通过将4D速度场表示为连续的时空B样条内核之和来增强时间一致性。然后通过对非平稳速度场进行正向欧拉积分来恢复时空位移场。使用重构位移场的空间导数局部计算应变张量。本文中考虑的能量函数具有两个术语:图像相似性和正则化术语。图像相似性度量是每帧强度与参考帧强度之间的平方差之和。序列中的任何帧都可以选择作为参考。正则化项基于心肌组织的/不可压缩性。在一组具有不同噪声水平的合成3D US图像上,将TDFFD与成对的3D FFD和3D + t FFD(非位移和速度场)进行了比较。与这两种最新算法相比,TDDFD / n显示出更高的抗噪声能力。当抽取该合成序列时,TDDFD还被证明对减小的时间分辨率具有更高的抵抗力。最后,该综合数据集用于确定TDFFD算法的最佳设置。随后,将TDFFD / n应用于从9位健康志愿者和13位接受心脏再同步治疗(CRT)治疗的患者的左心室心脏3D US图像数据库中。在健康情况下,如生理上预期的那样,在所有心肌节段均观察到均匀的应变模式。在所有CRT患者中,通过随访(6和12个月)收缩末期左心室容积的减少来量化,区域纵向应变的同步性/改善与CRT临床结果相关,显示了所提出算法的潜力用于评估CRT。

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