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首页> 外文期刊>IEEE Transactions on Ultrasonics, Ferroelectrics, and Frequency Control >Effects of parameters on the accuracy and precision of ultrasound-based local pulse wave velocity measurement: a simulation study
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Effects of parameters on the accuracy and precision of ultrasound-based local pulse wave velocity measurement: a simulation study

机译:参数对基于超声的局部脉搏波速度测量准确性和精度的影响:仿真研究

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Quantification of arterial stiffness, such as pulse wave velocity (PWV), is increasingly used in the risk assessment of cardiovascular disease. Pulse wave imaging (PWI) is an emerging ultrasound-based technique to noninvasively measure the local PWV instead of the global PWV, as in conventional methods. In PWI, several key parameters, including the frame rate of ultrasound imaging, motion estimation rate (MER), number of scan lines, image width, PWV value, and sonographic signal-to-noise ratio (SNRs), play an important but still unclear role in the accuracy and precision of PWV measurement. In this study, computer simulations were performed to investigate the fundamental effects of these parameters on the PWV measurement. The pulse waveform was estimated by speckle tracking on ultrasound RF signals acquired at a frame rate of 2083 Hz from a location on the common carotid artery of a healthy subject. By applying different time delays on the estimated waveform based on specific PWI parameters, the pulse waveforms at others locations were simulated. Ultrasound RF signals of the artery during the pulse wave propagation were generated from a 2-D convolutional image formation model. The PWI technique was applied to estimate the PWV at different values of frame rate, MER, number of scan lines, image width, PWV, and SNRs. The performance of the PWV estimation was evaluated by measuring the relative error, coefficient of variation (CV) and coefficient of determination (R). The results showed that PWVs could be correctly measured when the frame rate was higher than a certain value (i.e., minimum frame rate), below which the estimated error increased rapidly. The minimum frame rate required for PWV estimation was found to increase with the value of PWV. An optimal MER was found (i.e., about 200 Hz) and allowed better performance of PWV measurement. The CV of PWV estimation decreased and R increased with number of scan lines and image width, indicating - hat the performance of the PWV estimation could be improved with a larger number of scan lines and image width. For a given sufficiently high frame rate, a higher PWV value was found to deteriorate the PWV estimation, as indicated by an increasing CV and decreasing R. The simulation results were in good agreement with the theoretical analysis. Finally, high-quality PWV estimation could be obtained as long as the SNRs was higher than about 30 dB. The quantitative effects of the key parameters obtained from this study might provide important guidelines for parameter optimization in ultrasound-based local PWV measurement in vivo.
机译:诸如脉搏波速度(PWV)等动脉僵硬度的量化越来越多地用于心血管疾病的风险评估。脉搏波成像(PWI)是一种新兴的基于超声的技术,可以像传统方法一样无创地测量局部PWV而不是整体PWV。在PWI中,超声成像的帧率,运动估计率(MER),扫描线数,图像宽度,PWV值和超声图像信噪比(SNR)等几个关键参数起着重要作用,但仍然在PWV测量的准确性和精度中的作用尚不清楚。在这项研究中,进行了计算机模拟以研究这些参数对PWV测量的基本影响。通过对从健康受试者的颈总动脉上的位置以2083 Hz帧频采集的超声RF信号进行斑点跟踪来估算脉冲波形。通过基于特定的PWI参数对估计的波形应用不同的时间延迟,可以模拟其他位置的脉冲波形。脉搏波传播过程中动脉的超声RF信号是从二维卷积成像模型生成的。应用PWI技术来估计帧速率,MER,扫描线数,图像宽度,PWV和SNR的不同值下的PWV。通过测量相对误差,变异系数(CV)和确定系数(R)来评估PWV估算的性能。结果表明,当帧速率高于特定值(即最小帧速率)时,可以正确测量PWV,在此值以下,估计的误差会迅速增加。发现PWV估计所需的最小帧速率随PWV的值而增加。发现了最佳的MER(即,大约200Hz)并且允许更好的PWV测量性能。随着扫描线数量和图像宽度的增加,PWV估计的CV降低,R值增加,这表明-随着扫描线数量和图像宽度的增加,PWV估计的性能可以得到改善。对于给定的足够高的帧速率,发现较高的PWV值会使PWV估计变差,这由CV增大和R​​减小表示。仿真结果与理论分析非常吻合。最后,只要SNR高于大约30 dB,就可以获得高质量的PWV估计。从这项研究中获得的关键参数的定量效果可能为体内基于超声的局部PWV测量中的参数优化提供重要指导。

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