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首页> 外文期刊>Canadian acoustics >FREQUENCY-BASED SIGNAL PROCESSING FOR ULTRASOUND COLOR FLOW IMAGING
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FREQUENCY-BASED SIGNAL PROCESSING FOR ULTRASOUND COLOR FLOW IMAGING

机译:基于频率的超声彩色流成像信号处理

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摘要

In ultrasound color flow imaging, the computation of flow estimates is well-recognized as a challenging problem from a signal processing perspective. The flow visualization performance of this imaging tool is often affected by error sources such as the lack of abundant signal samples available for processing, the presence of wideband clutter in the acquired signals, and the flow signal distortions that may arise during clutter suppression. In this article, we review existing frequency-based signal processing approaches reported in the ultrasound literature and evaluate their theoretical advantages as well as limitations. In particular, four major classes of clutter filter designs are considered: FIR/IIR filtering, polynomial regression, clutter-downmixing, and eigen-regression. Also, three types of frequency estimators are discussed: lag-one autocorrelation, autoregressive modeling, and MUSIC. In examining these approaches, it was concluded that eigen-based methods like the eigen-regression filter and the MUSIC estimator can better adapt to the Doppler signal characteristics, and thus they seem to have more potential for obtaining flow estimates that are less affected by the signal processing error sources.
机译:在超声彩色流动成像中,从信号处理的角度来看,流量估计的计算已被公认为是具有挑战性的问题。该成像工具的流量可视化性能通常受错误源的影响,例如缺少可用于处理的大量信号样本,所采集信号中是否存在宽带杂波以及在杂波抑制期间可能出现的流量信号失真。在本文中,我们回顾了超声文献中报道的现有基于频率的信号处理方法,并评估了它们的理论优势和局限性。特别是,考虑了四类主要的杂波滤波器设计:FIR / IIR滤波,多项式回归,杂波降混和本征回归。此外,还讨论了三种类型的频率估算器:滞后一自相关,自回归建模和MUSIC。在检查这些方法时,得出的结论是,基于特征的方法(例如特征回归滤波器和MUSIC估计器)可以更好地适应多普勒信号特征,因此,它们似乎更有可能获得受估计影响较小的流量估计。信号处理错误源。

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