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Ultrasound DMAS beamforming for estimation of tissue speed of sound in multi-angle plane-wave imaging

机译:超声DMAS波束成形用于估计多角度平面波成像中声音的组织速度

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Various methods have been proposed to estimate the tissue speed of sound (SOS) of propagating medium using the curvature of received channel waveform or the analysis of resultant image quality. In our previous study, baseband delay-multiply-and-sum (DMAS) beamforming methods have been developed for multi-angle plane-wave (PW) imaging which relies on signal coherence among transmit events (Tx-DMAS) or receive channel (Rx-DMAS) or both (2D-DMAS) to suppress low-coherence clutters. In this study, we further extend our DMAS beamforming to quantify the level of signal coherence for determining the average SOS in multi-angle PW imaging. The signal coherence in multi-angle PW imaging is represented as the phase coherence factor (PCF) which can be easily estimated from the magnitude ratio of the pixel value of DMAS image to that of DAS image. By searching the beamforming velocity that provides the highest signal coherence of echo matrix, the averaged tissue SOS of the image object can be determined. For the PICMUS experimental dataset, the optimal beamforming velocity $(C_{opt})$ estimated by the proposed PCF method does provide the best image quality. For the Prodigy dataset, the estimated tissue SOS is 1426±6 m/s which is very close to the actual tissue SOS of 1427 m/s and the estimated SOS also corresponds to the $C_{opt}$ with the minimal −6-dB LW and the maximal CR within an error of 10 m/s.
机译:已经提出了各种方法来使用接收的通道波形的曲率或对所得图像质量的分析来估计传播介质的组织声速(SOS)。在我们之前的研究中,已经开发了用于多角度平面波(PW)成像的基带延迟乘和和(DMAS)波束成形方法,该方法依赖于发射事件(Tx-DMAS)或接收通道(Rx)之间的信号相干性-DMAS)或同时使用两者(2D-DMAS)来抑制低相干杂波。在这项研究中,我们进一步扩展了DMAS波束成形以量化信号相干性水平,以确定多角度PW成像中的平均SOS。多角度PW成像中的信号相干性表示为相干性因子(PCF),可以从DMAS图像的像素值与DAS图像的像素值的大小比容易地估计出相干因子。通过搜索提供回波矩阵最高信号相干性的波束形成速度,可以确定图像对象的平均组织SOS。对于PICMUS实验数据集,最佳波束形成速度 $(C_ {opt}) $ 所提出的PCF方法估算出的图像确实提供了最佳的图像质量。对于Prodigy数据集,估计的组织SOS为1426±6 m / s,非常接近1427 m / s的实际组织SOS,并且估计的SOS也对应于 $ C_ {opt} $ < / tex> 在-10 m / s的误差范围内具有最小-6 dB的LW和最大的CR。

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