Evaluation of array signal processing methods for ultrasound-based arterial pulse wave velocity measurements on in vitro and in vivo data

A. Dentinger, R. Hoctor, K. Thomenius
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引用次数: 1

Abstract

In this paper we evaluate an improved version of a signal processing approach recently proposed by the authors for estimating arterial pulse wave velocity (PWV) in a uniform arterial segment based on ultrasound measurements. The modifications are described, along with the experimental set-up for their evaluation. In general, results of physical experiments and simulations indicate that the new modifications provide a robust approach to PWV estimation. Non-invasive, in vivo assessment of the local elastic properties of an artery is a desirable capability, both in experimental physiology and in medicine. The arterial pulse wave velocity (PWV) in a short uniform segment of an artery is indicative of the local elastic state of the segment, but pulse wave reflections are always present throughout the arterial system and are a well-recognized source of error in PWV measurement (1). Elimination of estimation bias due to reflections is required if the PWV is to be used to compute parameters such as the compliance of the artery. Ultrasound is a suitable modality for the local PWV estimation problem, as it is for many problems of noninvasive, in vivo biomechanical assessment. Recently the authors (2) showed that pulse wave velocity estimation from several ultrasound measurements taken along a uniform arterial segment is mathematically equivalent to the broadband directional of arrival problem found in radar and sonar. The presence of a reflection wave traveling at the PWV, but in the opposite direction from the forward wave makes the PWV problem similar to the symmetric multipath case in the direction-of-arrival problem (3). Consequently, there is a great deal of work in signal processing literature dealing with the direction-of-arrival estimation problem in this form that can be applied the arterial PWV estimation using ultrasound by way of the problem formulation given in (2). In (4), a method for the PWV problem based on a least squares approach was presented and results of application to in vivo were presented for data taken using a 10 MHz linear probe positioned to acquire 8 beams spaced by 5.6 mm along the flow axis of the left common carotid artery (CCA). The technique of (4) produced estimates in a realistic range, but with large estimation variance on the order of 30-40%. This paper seeks to provide a more detailed evaluation of the general method, using new signal processing approaches for reduction of estimation bias. This evaluation is done by simulation, test tank experiments and further data from the CCAs of healthy volunteers.
基于体外和体内数据的超声动脉脉搏波速度测量阵列信号处理方法的评价
在本文中,我们评估了一个改进版本的信号处理方法最近提出的作者估计动脉脉搏波速度(PWV)在均匀动脉段基于超声测量。描述了这些修改,以及对其进行评估的实验设置。总的来说,物理实验和仿真结果表明,新的修正方法提供了一种鲁棒的PWV估计方法。在实验生理学和医学中,对动脉局部弹性特性进行无创的活体评估是一种理想的能力。动脉短均匀段中的动脉脉搏波速度(PWV)表明了该段的局部弹性状态,但脉冲波反射始终存在于整个动脉系统中,并且是PWV测量中公认的误差来源(1)。如果要使用PWV计算动脉顺应性等参数,则需要消除由于反射引起的估计偏差。超声是局部PWV估计问题的一种合适的方式,因为它适用于许多无创的体内生物力学评估问题。最近,作者(2)表明,从沿着均匀动脉段进行的几次超声测量得出的脉冲波速度估计在数学上等同于雷达和声纳中发现的宽带到达方向问题。在PWV处存在与正向波方向相反的反射波,使得PWV问题类似于到达方向问题中的对称多径情况(3)。因此,在信号处理文献中有大量的工作处理这种形式的到达方向估计问题,可以通过(2)中给出的问题公式应用于超声动脉PWV估计。在(4)中,提出了一种基于最小二乘方法的PWV问题的方法,并给出了在体内应用的结果,该数据使用10 MHz线性探头定位,沿左颈总动脉(CCA)的流轴获取间隔为5.6 mm的8束。(4)的技术产生了一个现实范围内的估计,但是估计方差很大,大约在30-40%之间。本文试图提供一个更详细的评估一般方法,使用新的信号处理方法来减少估计偏差。这一评估是通过模拟、测试罐实验和健康志愿者cca的进一步数据来完成的。
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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