Rojas Renán, Ormachea Juvenal, Salo Arthur, Rodríguez Paul, Parker Kevin J, Castaneda Benjamin
Sección de Electricidad y Electrónica, Pontificia Universidad Católica del Perú, Lima, Peru.
Department of Biomedical Engineering, University of Rochester, Rochester, NY, USA.
Ultrason Imaging. 2015 Oct;37(4):341-55. doi: 10.1177/0161734614568651. Epub 2015 Jan 26.
A novel method for estimating the shear wave speed from crawling waves based on the amplitude modulation-frequency modulation model is proposed. Our method consists of a two-step approach for estimating the stiffness parameter at the central region of the material of interest. First, narrowband signals are isolated in the time dimension to recover the locally strongest component and to reject distortions from the ultrasound data. Then, the shear wave speed is computed by the dominant component analysis approach and its spatial instantaneous frequency is estimated by the discrete quasi-eigenfunction approximations method. Experimental results on phantoms with different compositions and operating frequencies show coherent speed estimations and accurate inclusion locations.
提出了一种基于调幅-调频模型从爬行波估计剪切波速度的新方法。我们的方法包括一个两步法,用于估计感兴趣材料中心区域的刚度参数。首先,在时间维度上分离窄带信号,以恢复局部最强分量并抑制超声数据中的失真。然后,通过主成分分析方法计算剪切波速度,并通过离散准本征函数近似方法估计其空间瞬时频率。对具有不同成分和工作频率的体模进行的实验结果表明,速度估计具有一致性,并且包含位置准确。