Ultrasound Group, School of Electronic and Electrical Engineering, University of Leeds, Leeds, United Kingdom.
Ultrasound Med Biol. 2010 Jun;36(6):949-56. doi: 10.1016/j.ultrasmedbio.2010.03.018.
In ultrasound harmonic imaging with chirp-coded excitation, a harmonic matched filter (HMF) is typically used on the received signal to perform pulse compression of the second harmonic component (SHC) to recover signal axial resolution. Designing the HMF for the compression of the SHC is a problematic issue because it requires optimal window selection. In the compressed second harmonic signal, the sidelobe level may increase and the mainlobe width (MLW) widen under a mismatched condition, resulting in loss of axial resolution. We propose the use of the fractional Fourier transform (FrFT) as an alternative tool to perform compression of the chirp-coded SHC generated as a result of the nonlinear propagation of an ultrasound signal. Two methods are used to experimentally assess the performance benefits of the FrFT technique over the HMF techniques. The first method uses chirp excitation with central frequency of 2.25 MHz and bandwidth of 1 MHz. The second method uses chirp excitation with pulse inversion to increase the bandwidth to 2 MHz. In this study, experiments were performed in a water tank with a single-element transducer mounted coaxially with a hydrophone in a pitch-catch configuration. Results are presented that indicate that the FrFT can perform pulse compression of the second harmonic chirp component, with a 14% reduction in the MLW of the compressed signal when compared with the HMF. Also, the FrFT provides at least 23% reduction in the MLW of the compressed signal when compared with the harmonic mismatched filter (HMMF). The FrFT maintains comparable peak and integrated sidelobe levels when compared with the HMF and HMMF techniques.
在超声谐波成象中,啁啾编码激励,通常在接收信号上使用谐波匹配滤波器(HMF)对二次谐波分量(SHC)进行脉冲压缩,以恢复信号轴向分辨率。设计用于压缩 SHC 的 HMF 是一个有问题的问题,因为它需要最佳的窗口选择。在压缩的二次谐波信号中,旁瓣电平可能会增加,主瓣宽度(MLW)在失配条件下变宽,导致轴向分辨率损失。我们提出使用分数傅里叶变换(FrFT)作为替代工具,对由于超声信号的非线性传播而产生的啁啾编码 SHC 进行压缩。使用两种方法来实验评估 FrFT 技术相对于 HMF 技术的性能优势。第一种方法使用中心频率为 2.25MHz 和带宽为 1MHz 的啁啾激励。第二种方法使用脉冲反转的啁啾激励将带宽增加到 2MHz。在这项研究中,实验是在一个水箱中进行的,一个单元素换能器与一个水听器同轴安装,采用的是收发配置。结果表明,FrFT 可以对二次谐波啁啾分量进行脉冲压缩,与 HMF 相比,压缩信号的 MLW 减少了 14%。此外,与谐波失配滤波器(HMMF)相比,FrFT 还将压缩信号的 MLW 减少了至少 23%。与 HMF 和 HMMF 技术相比,FrFT 保持了相当的峰值和积分旁瓣电平。