Wei Shuwen, Kang Jin U
Opt Express. 2020 Aug 17;28(17):25502-25527. doi: 10.1364/OE.396708.
Determining micron-scale fluid flow velocities using optical coherence tomography (OCT) is important in both biomedical research and clinical diagnosis. Numerous methods have been explored to quantify the flow information, which can be divided into either phase-based or amplitude-based methods. However, phase-based methods, such as Doppler methods, are less sensitive to transverse velocity components and suffer from wrapped phase and phase instability problems for axial velocity components. On the other hand, amplitude-based methods, such as speckle variance OCT, correlation mapping OCT and split-spectrum amplitude-decorrelation angiography, focus more on segmenting flow areas than quantifying flow velocities. In this paper, we propose optical flow OCT (OFOCT) to quantify accurate velocity fields. The equivalence between optical flow and real velocity fields is validated in OCT imaging. The sensitivity fall-off of a Fourier-domain OCT (FDOCT) system is considered in the modified optical flow continuity constraint. Spatial-temporal smoothness constraints are used to make the optical flow problem well-posed and reduce noises in the velocity fields. An iteration solution to the optical flow problem is implemented in a graphics processing unit (GPU) for real-time processing. The accuracy of the velocity fields is verified through phantom flow experiments by using a diluted milk powder solution as a scattering medium. Velocity fields are then used to detect flow turbulence and reconstruct flow trajectory. The results show that OFOCT is accurate in determining velocity fields and applicable to research concerning fluid dynamics.
利用光学相干断层扫描(OCT)来确定微米级流体流速在生物医学研究和临床诊断中都非常重要。人们已经探索了许多方法来量化流动信息,这些方法可分为基于相位的方法或基于幅度的方法。然而,基于相位的方法,如多普勒方法,对横向速度分量不太敏感,并且对于轴向速度分量存在相位缠绕和相位不稳定问题。另一方面,基于幅度的方法,如散斑方差OCT、相关映射OCT和分裂谱幅度去相关血管造影,更多地关注流动区域的分割而不是流速的量化。在本文中,我们提出了光流OCT(OFOCT)来量化精确的速度场。在OCT成像中验证了光流与实际速度场之间的等效性。在改进的光流连续性约束中考虑了傅里叶域OCT(FDOCT)系统的灵敏度下降。使用时空平滑约束来使光流问题适定并减少速度场中的噪声。在图形处理单元(GPU)中实现了光流问题的迭代解以进行实时处理。通过使用稀释的奶粉溶液作为散射介质的体模流动实验验证了速度场的准确性。然后利用速度场来检测流动湍流并重建流动轨迹。结果表明,OFOCT在确定速度场方面是准确的,并且适用于流体动力学相关研究。