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首页> 外文期刊>Ultrasonics, Ferroelectrics and Frequency Control, IEEE Transactions on >Spectral doppler estimation utilizing 2-D spatial information and adaptive signal processing
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Spectral doppler estimation utilizing 2-D spatial information and adaptive signal processing

机译:利用二维空间信息和自适应信号处理的频谱多普勒估计

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The trade-off between temporal and spectral resolution in conventional pulsed wave (PW) Doppler may limit duplex/triplex quality and the depiction of rapid flow events. It is therefore desirable to reduce the required observation window (OW) of the Doppler signal while preserving the frequency resolution. This work investigates how the required observation time can be reduced by adaptive spectral estimation utilizing 2-D spatial information obtained by parallel receive beamforming. Four adaptive estimation techniques were investigated, the power spectral Capon (PSC) method, the amplitude and phase estimation (APES) technique, multiple signal classification (MUSIC), and a projection-based version of the Capon technique. By averaging radially and laterally, the required covariance matrix could successfully be estimated without temporal averaging. Useful PW spectra of high resolution and contrast could be generated from ensembles corresponding to those used in color flow imaging (CFI; OW = 10). For a given OW, the frequency resolution could be increased compared with the Welch approach, in cases in which the transit time was higher or comparable to the observation time. In such cases, using short or long pulses with unfocused or focused transmit, an increase in temporal resolution of up to 4 to 6 times could be obtained in in vivo examples. It was further shown that by using adaptive signal processing, velocity spectra may be generated without high-pass filtering the Doppler signal. With the proposed approach, spectra retrospectively calculated from CFI may become useful for unfocused as well as focused imaging. This application may provide new clinical information by inspection of velocity spectra simultaneously from several spatial locations.
机译:在常规脉冲波(PW)多普勒仪中,时间分辨率和频谱分辨率之间的权衡可能会限制双工/三工质量和快速流动事件的描述。因此,期望在保持频率分辨率的同时减小多普勒信号的所需观察窗(OW)。这项工作研究了如何利用并行接收波束成形获得的二维空间信息通过自适应频谱估计来减少所需的观察时间。研究了四种自适应估计技术:功率谱Capon(PSC)方法,幅度和相位估计(APES)技术,多信号分类(MUSIC)和Capon技术的基于投影的版本。通过径向和横向平均,可以成功估计所需的协方差矩阵,而无需进行时间平均。高分辨率和高对比度的有用PW光谱可以从与彩色流成像(CFI; OW = 10)中使用的对应的集合中生成。对于给定的OW,在渡越时间较长或与观测时间相当的情况下,与Welch方法相比,可以提高频率分辨率。在这种情况下,在体内实例中,使用具有未聚焦或聚焦发射的短脉冲或长脉冲,可以将时间分辨率提高多达4至6倍。进一步表明,通过使用自适应信号处理,可以在不对多普勒信号进行高通滤波的情况下生成速度谱。使用提出的方法,从CFI回顾性计算的光谱对于未聚焦和聚焦成像可能会很有用。通过同时从多个空间位置检查速度谱,该应用程序可以提供新的临床信息。

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