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Shear wave arrival time estimates correlate with local speckle pattern

机译:剪切波到达时间估计值与局部散斑图相关

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摘要

We present simulation and phantom studies demonstrating a strong correlation between errors in shear wave arrival time estimates and the lateral position of the local speckle pattern in targets with fully developed speckle. We hypothesize that the observed arrival time variations are largely due to the underlying speckle pattern, and call the effect speckle bias. Arrival time estimation is a key step in quantitative shear wave elastography, performed by tracking tissue motion via cross-correlation of RF ultrasound echoes or similar methods. Variations in scatterer strength and interference of echoes from scatterers within the tracking beam result in an echo that does not necessarily describe the average motion within the beam, but one favoring areas of constructive interference and strong scattering. A swept-receive image, formed by fixing the transmit beam and sweeping the receive aperture over the region of interest, is used to estimate the local speckle pattern. Metrics for the lateral position of the speckle are found to correlate strongly (r > 0.7) with the estimated shear wave arrival times both in simulations and in phantoms. Lateral weighting of the swept-receive pattern improved the correlation between arrival time estimates and speckle position. The simulations indicate that high RF echo correlation does not equate to an accurate shear wave arrival time estimate???a high correlation coefficient indicates that motion is being tracked with high precision, but the location tracked is uncertain within the tracking beam width. The presence of a strong on-axis speckle is seen to imply high RF correlation and low bias. The converse does not appear to be true???highly correlated RF echoes can still produce biased arrival time estimates. The shear wave arrival time bias is relatively stable with variations in shear wave amplitude and sign (???20 μm to 20 μm simulated) compared with the variation with different speckle realizations obtained along a - iven tracking vector. We show that the arrival time bias is weakly dependent on shear wave amplitude compared with the variation with axial position/ local speckle pattern. Apertures of f/3 to f/8 on transmit and f/2 and f/4 on receive were simulated. Arrival time error and correlation with speckle pattern are most strongly determined by the receive aperture.
机译:我们目前的仿真和幻像研究表明,在剪切波到达时间估计的误差与局部散斑图样在具有充分发达散斑的目标中的横向位置之间存在很强的相关性。我们假设观察到的到达时间变化主要是由于潜在的斑点图案,因此将其称为斑点效应。到达时间估算是定量剪切波弹性成像中的关键步骤,它是通过RF超声回波的互相关或类似方法跟踪组织运动来执行的。散射强度的变化和跟踪光束中散射源回波的干扰会导致产生回波,该回波不一定描述光束内的平均运动,而是一个有利于相长干涉和强散射的区域。通过固定发射光束并在感兴趣区域上扫过接收孔径形成的扫描接收图像可用于估计局部斑点图案。发现斑点的横向位置的度量在模拟和幻像中均与估计的剪切波到达时间密切相关(r> 0.7)。扫描接收模式的横向加权改善了到达时间估计与斑点位置之间的相关性。仿真表明,高RF回波相关性不等于精确的剪切波到达时间估计值。高相关系数表示正在以高精度跟踪运动,但是在跟踪波束宽度内跟踪的位置不确定。可以看到存在强的轴上斑点,这意味着高RF相关性和低偏差。相反,事实似乎并非如此。高度相关的RF回波仍会产生有偏差的到达时间估计。与沿纵波跟踪矢量获得的具有不同散斑实现方式的变化相比,横波到达时间的偏置在横波幅度和符号变化(模拟的20μm至20μm)方面相对稳定。我们表明,与轴向位置/局部散斑图样的变化相比,到达时间偏差与剪切波幅值的关系较小。模拟了发射时f / 3至f / 8的光圈以及接收时f / 2和f / 4的光圈。到达时间误差以及与斑点图案的相关性最强地由接收孔径决定。

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