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Synthetic transmit aperture beamforming for sound velocity estimation using channel-domain differential phase gradient - A phantom study

机译:合成透射孔径波束形成,用于使用通道域差分相位梯度的声速估计 - 幻影研究

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摘要

In medical ultrasound imaging system, degradation of image quality occurs due to mismatch between beamforming sound velocity and propagating sound velocity in tissue. Channel-domain differential phase gradient has been previously utilized to optimize the beamforming sound velocity but its efficacy is limited to transmit focal depth. Specifically, low spatial coherence of channel signal in the non-focal region could lead to over-estimation of beamforming sound velocity. In order to alleviate the estimation bias of beamforming sound velocity, synthetic transmit aperture beamforming is proposed in this study to maintain the spatial coherence of channel data over the entire imaging depth. By combining channel signals from adjacent scanlines to remedy the focusing quality in the non-focal region, the zero of differential phase gradient between the left and right sub-apertures can accurately determine the optimal sound velocity for beamforming. Results indicate that the synthetic transmit aperture beamforming effectively reduces the estimation bias of beamforming sound velocity from 4.3% to 0.1% in the simulations and from 8.8% to 0.1% in phantom measurement. With the optimized sound velocity, the lateral resolution improves by 14.5%. Compared to our previous work, the improved method also exhibits higher robustness of sound velocity estimation in the presence of random noises. The variation of sound velocity estimation decreases from 59.1 m/s with the previous method to 16.9 m/s with the improved method in our simulation when the channel SNR is - 25 dB.
机译:在医疗超声成像系统中,由于波束形成声速和组织中的传播声速之间的不匹配,发生图像质量的劣化。频带域差分相位梯度先前已经利用以优化波束形成声速,但其功效仅限于传输焦深。具体地,非焦点区域中的信道信号的低空间相干性可能导致波束形成声速的过度估计。为了减轻波束成形声速的估计偏差,在该研究中提出了合成发射孔径波束形成,以在整个成像深度上保持信道数据的空间相干性。通过将来自相邻扫描线的信道信号组合以解决非焦点区域中的聚焦质量,左侧和右子孔之间的差分相位梯度的零可以精确地确定波束形成的最佳声速。结果表明,合成发射孔径波束成形有效地将波束形成声速的估计偏置从模拟中的4.3%降低到0.1%,并且在幻影测量中的8.8%至0.1%。通过优化的声速,横向分辨率提高了14.5%。与我们之前的工作相比,改进的方法在随机噪声存在下也表现出更高的声速估计的稳健性。声速估计的变化从59.1米/秒从前一个方法降低到16.9 m / s,当信道SNR为-25b时,我们模拟中的改进方法。

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