Cui Manxiu, Zuo Hongzhi, Wang Xunahao, Deng Kexin, Luo Jianwen, Ma Cheng
Department of Electronic Engineering, Tsinghua University, Beijing, 100084, China.
Department of Biomedical Engineering, School of Medicine, Tsinghua University, Beijing, 100084, China.
Photoacoustics. 2020 Nov 30;21:100223. doi: 10.1016/j.pacs.2020.100223. eCollection 2021 Mar.
For many optical imaging modalities, image qualities are inevitably degraded by wavefront distortions caused by varying light speed. In optical microscopy and astronomy, adaptive optics (AO) has long been applied to compensate for such unwanted aberrations. Photoacoustic computed tomography (PACT), despite relying on the ultrasonic wave for image formation, suffers from the acoustic version of the same problem. However, this problem has traditionally been regarded as an inverse problem of jointly reconstructing both the initial pressure and the sound speed distributions. In this work, we proposed a method similar to indirect wavefront sensing in AO. We argued that wavefront distortions can be extracted and corrected by a frequency domain analysis of local images. In addition to an adaptively reconstructed aberration-free image, the speed of sound map can be subsequently estimated. We demonstrated the method by , phantom, and experiments.
对于许多光学成像模态而言,图像质量不可避免地会因光速变化所引起的波前畸变而下降。在光学显微镜和天文学领域,自适应光学(AO)早已被用于补偿此类有害像差。光声计算机断层扫描(PACT)尽管依靠超声波进行成像,但也存在同样问题的声学版本。然而,传统上这个问题一直被视为一个联合重建初始压力和声速分布的逆问题。在这项工作中,我们提出了一种类似于自适应光学中间接波前传感的方法。我们认为可以通过对局部图像进行频域分析来提取和校正波前畸变。除了自适应重建的无像差图像外,随后还可以估计声速图。我们通过体模和实验验证了该方法。