IEEE Trans Med Imaging. 2018 Mar;37(3):767-780. doi: 10.1109/TMI.2017.2770118.
Numerical simulation of ultrasound images can facilitate the training of sonographers. An efficient and realistic model for the simulation of ultrasonic speckle is the convolution of the ultrasound point-spread function with a distribution of point scatterers. Nevertheless, for a given arbitrary tissue type, a scatterer map that would generate a realistic appearance of that tissue is not known a priori. In this paper, we introduce a principled approach to estimate (reconstruct) such a scatterer map from images, by solving the inverse-problem of ultrasound speckle formation, such that images from arbitrary view angles and transducer settings can be generated from those scatterer maps later in simulations. Robust reconstructions are achieved by using multiple measurements of the same tissue with different viewing parameters. For this purpose, a novel use of beam-steering to rapidly and conveniently acquire multiple images of the same scene is proposed. We demonstrate in numerical and physical phantoms and images that the appearance of synthesized images closely match real images for a range of viewing parameters and probe settings. We also present a scene editing scenario exploiting these scatterer representations to create realistic images of augmented anatomy.
超声图像的数值模拟可以帮助超声医师进行培训。超声散斑的高效且逼真的模拟模型是超声脉冲响应函数与点散射体分布的卷积。然而,对于给定的任意组织类型,事先并不知道会产生该组织真实外观的散射体图。在本文中,我们通过求解超声散斑形成的逆问题,提出了一种从图像中估计(重建)这种散射体图的原理方法,以便以后在模拟中可以从这些散射体图生成任意视角和换能器设置的图像。通过使用具有不同观察参数的相同组织的多次测量,可以实现稳健的重建。为此,我们提出了一种新颖的波束控制方法,可快速方便地获取同一场景的多个图像。我们在数值和物理体模以及图像中证明,对于一系列观察参数和探头设置,合成图像的外观与真实图像非常匹配。我们还展示了一个场景编辑场景,利用这些散射体表示来创建增强解剖结构的逼真图像。