Synthetic ultrasound images to benchmark echocardiography-based biomechanics.

Tanmay Mukherjee, Sunder Neelakantan, Kyle Myers, Carl Tong, Reza Avazmohammadi
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Abstract

Brightness mode (B-mode) ultrasound is a common imaging modality in the clinical assessment of several cardiovascular diseases. The utility of ultrasound-based functional indices such as the ejection fraction (EF) and stroke volume (SV) is widely described in diagnosing advanced-stage cardiovascular diseases. Additionally, structural indices obtained through the analysis of cardiac motion have been found to be important in the early-stage assessment of structural heart diseases, such as hypertrophic cardiomyopathy and myocardial infarction. Estimating heterogeneous variations in cardiac motion through B-mode ultrasound imaging is a crucial component of patient care. Despite the benefits of such imaging techniques, motion estimation algorithms are susceptible to variability between vendors due to the lack of benchmark motion quantities. In contrast, finite element (FE) simulations of cardiac biomechanics leverage well-established constitutive models of the myocardium to ensure reproducibility. In this study, we developed a methodology to create synthetic B-mode ultrasound images from FE simulations. The proposed methodology provides a detailed representation of displacements and strains under complex mouse-specific loading protocols of the LV. A comparison between the synthetic images and FE simulations revealed qualitative similarity in displacement patterns, thereby yielding benchmark quantities to improve the reproducibility of motion estimation algorithms. Thus, the study provides a methodology to create an extensive repository of images describing complex motion patterns to facilitate the enhanced reproducibility of cardiac motion analysis.

合成超声图像,为基于超声心动图的生物力学提供基准。
亮度模式(b型)超声是几种心血管疾病临床评估中常用的成像方式。基于超声的功能指标,如射血分数(EF)和卒中容量(SV)在诊断晚期心血管疾病中被广泛描述。此外,通过心脏运动分析获得的结构性指标在肥厚性心肌病和心肌梗死等结构性心脏病的早期评估中具有重要意义。通过b超成像估计心脏运动的异质性变化是患者护理的重要组成部分。尽管这种成像技术有好处,但由于缺乏基准运动量,运动估计算法容易受到供应商之间变化的影响。相比之下,心脏生物力学的有限元(FE)模拟利用已建立的心肌本构模型来确保再现性。在这项研究中,我们开发了一种方法来创建合成b型超声图像从有限元模拟。所提出的方法提供了在复杂的小鼠特异性左心室加载协议下的位移和应变的详细表示。合成图像与有限元模拟之间的比较揭示了位移模式的定性相似性,从而产生基准量,以提高运动估计算法的可重复性。因此,该研究提供了一种方法来创建一个广泛的图像库,描述复杂的运动模式,以促进心脏运动分析的可重复性。
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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