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Ultrasound Time-Reversal MUSIC Imaging of Extended Targets

机译:扩展目标的超声时间反转MUSIC成像

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Ultrasound time-reversal imaging with multiple signal classification (TR-MUSIC) can produce images with subwavelength spatial resolution when the targets are point scatterers. In this experimental study, we evaluate the performance of the TR-MUSIC algorithm when the interrogated medium contains extended targets that cannot be considered as point scatterers, i.e., the size of the targets is on the order of the ultrasound wavelength or larger. We construct four tissue-mimicking phantoms, each of which contains glass spheres of a given size. We show that the quality of the phantom images obtained using the TR-MUSIC algorithm decreases with increasing sphere size. However, significant improvement is achieved when the image plane is divided into subregions, where each subregion is imaged separately. In this method, the TR-MUSIC calculations are performed on the windowed backscattered signals originating from each subregion. Our study demonstrates that the TR-MUSIC algorithm with time windowing can accurately locate extended targets but cannot provide the shape and reflectivity of the targets. We scan an inhomogeneous commercial tissue-mimicking phantom using an investigational synthetic-aperture ultrasound system, and show that the TR-MUSIC algorithm is capable of detecting small targets with high spatial resolution in inhomogeneous media.
机译:当目标是点散射体时,具有多个信号分类(TR-MUSIC)的超声时间反转成像可以产生具有亚波长空间分辨率的图像。在本实验研究中,当被询问的介质包含无法视为点散射体的扩展目标时,即目标大小在超声波长或更大的数量级时,我们评估TR-MUSIC算法的性能。我们构造了四个模仿组织的模型,每个模型都包含给定大小的玻璃球。我们表明,使用TR-MUSIC算法获得的幻像图像的质量会随着球体尺寸的增加而降低。但是,当将图像平面分为多个子区域时,每个子区域均会分别成像,因此可实现显着的改进。在这种方法中,对源自每个子区域的加窗后向散射信号进行TR-MUSIC计算。我们的研究表明,具有时间窗的TR-MUSIC算法可以精确定位扩展目标,但不能提供目标的形状和反射率。我们使用研究性合成孔径超声系统扫描不均匀的商业组织模拟体模,并显示TR-MUSIC算法能够在不均匀的介质中检测具有高空间分辨率的小目标。

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