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Robust three-dimensional registration on optical coherence tomography angiography for speckle reduction and visualization

机译:光相干断层造影血管造影的强大的三维注册,用于减少和可视化

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Background: In the clinical applications of optical coherence tomography angiography (OCTA), the repeated scanning and averaging method can provide better contrast with reduced speckle noises in the final results, which are useful for visualizing and quantifying vascular components with high accuracy, reproducibility, and reliability. However, the inevitable patient motion presents a challenge to this method. The objective of this study is to meet this challenge by introducing a 3D registration method to register optical coherence tomography (OCT)/OCTA scans for precise volume averaging of multiple scans to improve the signal-to-noise ratio (SNR) and increase quantification accuracy. Methods: The proposed method utilized both rigid affine transformation and non-rigid B-spline transformation in which their parameters were optimized and calculated by the average stochastic gradient descent on OCT structural images. In addition, we also introduced a multi-level resolution approach to further improve the robustness and computational speed of our proposed method. The imaging performance was tested on in vivo imaging of human skin and eye and assessed by SNR, peak signal-to-noise ratio (PSNR) and normalized correlation coefficient (NCC). Results: Five subjects were enrolled in this study for obtaining in vivo images of skin and retina. The proposed registration and averaging method provided substantial improvements of the imaging performance in terms of vessel connectivity and signal to noise ratio. The increase of repeated volume numbers in the averaging improves all the metrics assessed, i.e., SNR, PSNR and NCC. An improvement of the SNR from 10 to 40 dB after 10 repeated volumetric averaging was achieved. Conclusions: The proposed 3D registration and averaging method is effective in reducing speckle noises and suppressing motion artifacts, thereby improving SNR, PSNR and NCC metrics for final averaged images. It is expected that the proposed algorithm would be practically useful in better visualization and more reliable quantification of in vivo OCT and OCTA data, which would be beneficial to OCT clinical applications.
机译:背景:在光学相干断层造影血管造影(OctA)的临床应用中,重复的扫描和平均方法可以在最终结果中具有降低的散斑噪声来提供更好的对比,这对于以高精度,再现性和更高的血管组件可用于可视化和定量血管组分。可靠性。然而,不可避免的患者运动对这种方法提出了挑战。本研究的目的是通过引入光学相干断层扫描(OCT)/ OctA扫描的3D登记方法来满足这一挑战,以便对多次扫描的精确体积平均来提高信噪比(SNR)并提高量化精度。方法:该方法利用刚性仿射变换和非刚性B样条转化,其中通过OCT结构图像上的平均随机梯度下降进行了优化和计算了它们的参数。此外,我们还引入了一种多级解决方法,以进一步提高我们提出的方法的鲁棒性和计算速度。在人体皮肤和眼睛的体内成像中测试了成像性能,并通过SNR,峰值信噪比(PSNR)和归一化相关系数(NCC)进行评估。结果:在本研究中注册了五个受试者,以获得皮肤和视网膜的体内图像。所提出的登记和平均方法在血管连接和信噪比方面提供了成像性能的大量改进。平均值中重复的体积数的增加改善了评估的所有度量,即SNR,PSNR和NCC。实现了10次重复体积平均后10至40dB的SNR的改善。结论:所提出的3D注册和平均方法在减少散斑噪声和抑制运动伪影中,从而改善了最终平均图像的SNR,PSNR和NCC度量。预计该算法实际上在更好的可视化和更可靠地定量的体内OCT和Octa数据中是有益的,这将有利于OCT临床应用。

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