Shen Che-Chou, Hsieh Pei-Ying
Department of Electrical Engineering, National Taiwan University of Science and Technology, Taipei, Taiwan.
Department of Electrical Engineering, National Taiwan University of Science and Technology, Taipei, Taiwan.
Ultrasonics. 2019 Jul;96:165-174. doi: 10.1016/j.ultras.2019.01.010. Epub 2019 Jan 31.
Compared to conventional Delay-and-Sum (DAS) beamforming, Delay-Multiply-and-Sum (DMAS) imaging uses multiplicative coupling of channel pairs for spatial coherence of receiving aperture to improve image resolution and contrast. However, present DMAS imaging is based on the radio-frequency (RF) channel signals (RF-DMAS) and thus requires large oversampling to avoid aliasing and switching of band-pass filtering to isolate the corresponding spectral components for imaging. Baseband DMAS (BB-DMAS) beamforming in this study is based on the demodulated channel signals to provide similar results but with simplified signal processing. The BB-DMAS beamforming scales the magnitude of time-delayed channel signal by p-th root while maintaining the phase. After channel sum, the output dimensionality is restored by p-th power. The multiplicative coupling in BB-DMAS always renders baseband signal and thus the need for oversampling is eliminated. Besides, the BB-DMAS can use any rational p values to provide flexible image quality and an explicit relation between BB-DMAS beamforming and channel-domain phase coherence exists. Our results show that the image characteristics between BB-DMAS and RF-DMAS are similar. The suppression of lateral side lobe level, grating lobe level and uncorrelated random noises gradually increases with the rational p value in BB-DMAS beamforming. The image contrast improves from -24.8 dB in DAS to -34.3 dB, -43.0 dB and -51.4 dB in BB-DMAS, respectively with p value of 1.5, 2.0 and 2.5. In conclusion, BB-DMAS beamforming provides flexible manipulation of image quality by introducing baseband spatial coherence in the ultrasonic imaging.
与传统的延迟求和(DAS)波束形成相比,延迟相乘求和(DMAS)成像利用通道对的乘法耦合来实现接收孔径的空间相干性,以提高图像分辨率和对比度。然而,目前的DMAS成像基于射频(RF)通道信号(RF-DMAS),因此需要大量的过采样以避免混叠,并切换带通滤波以隔离相应的频谱分量用于成像。本研究中的基带DMAS(BB-DMAS)波束形成基于解调后的通道信号,以提供相似的结果,但信号处理更简单。BB-DMAS波束形成在保持相位的同时,将延迟后的通道信号幅度按p次方根进行缩放。通道求和后,通过p次方恢复输出维度。BB-DMAS中的乘法耦合始终产生基带信号,因此消除了过采样的需要。此外,BB-DMAS可以使用任何有理p值来提供灵活的图像质量,并且BB-DMAS波束形成与通道域相位相干之间存在明确的关系。我们的结果表明,BB-DMAS和RF-DMAS之间的图像特征相似。在BB-DMAS波束形成中,随着有理p值的增加,旁瓣电平、栅瓣电平以及不相关随机噪声的抑制逐渐增强。图像对比度从DAS中的-24.8 dB分别提高到BB-DMAS中p值为1.5、2.0和2.5时的-34.3 dB、-43.0 dB和-51.4 dB。总之,BB-DMAS波束形成通过在超声成像中引入基带空间相干性,提供了对图像质量的灵活操控。