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首页> 外文期刊>IEEE Transactions on Ultrasonics, Ferroelectrics, and Frequency Control >Maximum likelihood blood velocity estimator incorporating properties of flow physics
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Maximum likelihood blood velocity estimator incorporating properties of flow physics

机译:结合流动物理学性质的最大似然血流速度估计器

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The aspect of correlation among the blood velocities in time and space has not received much attention in previous blood velocity estimators. The theory of fluid mechanics predicts this property of the blood flow. Additionally, most estimators based on a cross-correlation analysis are limited on the maximum velocity detectable. This is due to the occurrence of multiple peaks in the cross-correlation function. In this study a new estimator (CMLE), which is based on correlation (C) properties inherited from fluid flow and maximum likelihood estimation (MLE), is derived and evaluated on a set of simulated and in vivo data from the carotid artery. The estimator is meant for two-dimensional (2-D) color flow imaging. The resulting mathematical relation for the estimator consists of two terms. The first term performs a cross-correlation analysis on the signal segment in the radio frequency (RF)-data under investigation. The flow physics properties are exploited in the second term, as the range of velocity values investigated in the cross-correlation analysis are compared to the velocity estimates in the temporal and spatial neighborhood of the signal segment under investigation. The new estimator has been compared to the cross-correlation (CC) estimator and the previously developed maximum likelihood estimator (MLE). The results show that the CMLE can handle a larger velocity search range and is capable of estimating even low velocity levels from tissue motion. The CC and the MLE produce incorrect velocity estimates due to the multiple peaks, when the velocity search range is increased above the maximum detectable velocity. The root-mean square error (RMS) on the velocity estimates for the simulated data is on the order of 7 cm/s (14%) for the CMLE, and it is comparable to the RMS for the CC and the MLE. When the velocity search range is set to twice the limit of the CC and the MLE, the number of incorrect velocity estimates are 0, 19.1, and 7.2% for the CMLE, CC, and MLE,-n-n respectively. The ability to handle a larger search range and estimating low velocity levels was confirmed on in vivo data.
机译:在先前的血流速度估计器中,时空中的血流速度之间的相关性方面并未受到太多关注。流体力学理论预测了血流的这种特性。另外,大多数基于互相关分析的估计器都限于可检测的最大速度。这是由于互相关函数中出现了多个峰值。在这项研究中,一个新的估计器(CMLE)基于从流体流动和最大似然估计(MLE)继承的相关(C)属性,并根据一组来自颈动脉的模拟和体内数据进行了评估。估计器用于二维(2-D)彩色流成像。估算器的最终数学关系包括两个项。第一项对所研究的射频(RF)数据中的信号段执行互相关分析。在第二项中利用了流动物理特性,因为将互相关分析中研究的速度值范围与所研究信号段的时间和空间邻域中的速度估计值进行了比较。新的估计器已与互相关(CC)估计器和先前开发的最大似然估计器(MLE)进行了比较。结果表明,CMLE可以处理更大的速度搜索范围,并且能够根据组织运动估计甚至较低的速度水平。当速度搜索范围增加到最大可检测速度以上时,由于多个峰值,CC和MLE会产生错误的速度估计。对于CMLE,模拟数据的速度估计值的均方根误差(RMS)约为7 cm / s(14%),与CC和MLE的RMS相当。当速度搜索范围设置为CC和MLE限制的两倍时,CMLE,CC和MLE,-n-n的错误速度估计数分别为0、19.1和7.2%。体内数据证实了能够处理更大的搜索范围并估计低速水平的能力。

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