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Stochastic speckle noise compensation in optical coherence tomography using non-stationary spline-based speckle noise modelling

机译:基于非平稳样条的斑点噪声建模的光学相干层析成像中的随机斑点噪声补偿

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Optical coherence tomography (OCT) allows for non-invasive 3D visualization of biological tissue at cellular level resolution. Often hindered by speckle noise, the visualization of important biological tissue details in OCT that can aid disease diagnosis can be improved by speckle noise compensation. A challenge with handling speckle noise is its inherent non-stationary nature, where the underlying noise characteristics vary with the spatial location. In this study, an innovative speckle noise compensation method is presented for handling the non-stationary traits of speckle noise in OCT imagery. The proposed approach centers on a non-stationary spline-based speckle noise modeling strategy to characterize the speckle noise. The novel method was applied to ultra high-resolution OCT (UHROCT) images of the human retina and corneo-scleral limbus acquired in-vivo that vary in tissue structure and optical properties. Test results showed improved performance of the proposed novel algorithm compared to a number of previously published speckle noise compensation approaches in terms of higher signal-to-noise ratio (SNR), contrast-to-noise ratio (CNR) and better overall visual assessment.
机译:光学相干断层扫描(OCT)允许以细胞水平的分辨率对生物组织进行非侵入式3D可视化。通常,由于斑点噪声的影响,可以通过斑点噪声补偿来改善OCT中重要的生物组织细节的可视化,从而有助于疾病诊断。处理斑点噪声的挑战是其固有的非平稳特性,其中潜在的噪声特性随空间位置而变化。在这项研究中,提出了一种创新的斑点噪声补偿方法来处理OCT图像中斑点噪声的非平稳性状。所提出的方法集中于基于非平稳样条的斑点噪声建模策略来表征斑点噪声。该新方法已应用于体内获取的人视网膜和角膜巩膜角膜缘的超高分辨率OCT(UHROCT)图像,这些图像在组织结构和光学特性方面有所不同。测试结果表明,相对于更高的信噪比(SNR),对比噪声比(CNR)和更好的整体视觉评估,与许多以前发布的斑点噪声补偿方法相比,该提议算法的性能有所提高。

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