IEEE Trans Med Imaging. 2017 Feb;36(2):396-406. doi: 10.1109/TMI.2016.2610758. Epub 2016 Sep 16.
One of the major challenges in array-based medical ultrasound imaging is the image quality degradation caused by sidelobes and off-axis clutter, which is an inherent limitation of the conventional delay-and-sum (DAS) beamforming operating on a finite aperture. Ultrasound image quality is further degraded in imaging applications involving strong tissue attenuation and/or low transmit power. In order to effectively suppress acoustic clutter from off-axis targets and random noise in a robust manner, we introduce in this paper a new adaptive filtering technique called frequency-space (F-X) prediction filtering or FXPF, which was first developed in seismic imaging for random noise attenuation. Seismologists developed FXPF based on the fact that linear and quasilinear events or wavefronts in the time-space (T-X) domain are manifested as a superposition of harmonics in the frequency-space (F-X) domain, which can be predicted using an auto-regressive (AR) model. We describe the FXPF technique as a spectral estimation or a direction-of-arrival problem, and explain why adaptation of this technique into medical ultrasound imaging is beneficial. We apply our new technique to simulated and tissue-mimicking phantom data. Our results demonstrate that FXPF achieves CNR improvements of 26% in simulated noise-free anechoic cyst, 109% in simulated anechoic cyst contaminated with random noise of 15 dB SNR, and 93% for experimental anechoic cyst from a custom-made tissue-mimicking phantom. Our findings suggest that FXPF is an effective technique to enhance ultrasound image contrast and has potential to improve the visualization of clinically important anatomical structures and diagnosis of diseased conditions.
基于阵列的医学超声成像是一种强大的成像技术,在医学诊断中具有广泛的应用。然而,在这种成像技术中,存在着一个主要的挑战,即旁瓣和离轴杂波引起的图像质量下降。这些杂波会导致图像模糊、对比度降低,从而影响医生对疾病的诊断和治疗。为了解决这个问题,研究人员提出了许多方法,其中一种方法是使用自适应滤波技术。
在本文中,我们介绍了一种新的自适应滤波技术,称为频率-空间(F-X)预测滤波或 FXPF。这种技术最初是为地震成像中的随机噪声衰减而开发的,在地震成像中,FXPF 可以有效地抑制离轴目标和随机噪声的声学杂波。我们描述了 FXPF 技术作为一种谱估计或到达方向问题,并解释了为什么将这种技术应用于医学超声成像中是有益的。我们将我们的新方法应用于模拟和组织模拟体模数据。我们的结果表明,FXPF 在模拟无噪声的无回声囊肿中可以提高对比度噪声比(CNR)26%,在模拟有 15dB SNR 随机噪声污染的无回声囊肿中可以提高 109%,在来自定制组织模拟体模的实验无回声囊肿中可以提高 93%。我们的研究结果表明,FXPF 是一种有效的增强超声图像对比度的技术,有可能改善临床重要解剖结构的可视化和疾病诊断。