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Iterative Variance Stabilizing Transformation Denoising of Spectral Domain Optical Coherence Tomography Images Applied to Retinoblastoma

机译:应用于视网膜母细胞瘤的光谱域光学相干断层扫描图像的迭代方差稳定转化去噪

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Background: Due to the presence of speckle Poisson noise, the interpretation of spectral domain-optical coherence tomography (SD-OCT) images frequently requires the use of data averaging to improve the signal-to-noise ratio. This implies long acquisition times and requires patient sedation in some cases. Iterative variance stabilizing transformation (VST) is a possible approach by which to remove speckle Poisson noise on single images. Methods: We used SD-OCT images of human and murine (LH Beta-Tag mouse model) retinas with and without retinoblastoma acquired with 2 different imaging devices (Bioptigen and Micron IV). These images were processed using a denoising workflow implemented in Matlab. Results: We demonstrated the presence of speckle Poisson noise, which can be removed by a VST-based approach. This approach is robust as it works in all used imaging devices and in both human and mouse retinas, independently of the tumor status. The implemented algorithm is freely available from the authors on demand. Conclusions: On a single denoised image, the proposed method provides results similar to those expected from the SD-OCT averaging. Because of the friendly user interface, it can be easily used by clinicians and researchers in ophthalmology. (C) 2018 S. Karger AG, Basel
机译:背景:由于存在斑点泊松噪声,频谱域 - 光学相干断层扫描(SD-OCT)图像的解释经常需要使用数据平均来提高信噪比。这意味着在某些情况下需要患者镇静时间。迭代方差稳定转换(VST)是一种可能的方法,用于在单个图像上除去斑点泊松噪声。方法:我们使用了用2种不同的成像装置(Bioptigen和Micron IV)获得的人和鼠(LHβ标签鼠标模型)视网膜和没有视网膜母细胞瘤的SD-OCT图像。使用在Matlab中实现的去噪工作流程处理这些图像。结果:我们证明了斑点泊松噪声的存在,可通过基于VST的方法除去。这种方法是强大的,因为它在所有使用的成像装置和人类和小鼠视网膜中工作,独立于肿瘤状态。根据需要从作者自由获取所实现的算法。结论:在单个去噪图像上,所提出的方法提供类似于SD-OCT平均值的结果。由于用户界面友好,临床医生和眼科的研究人员可以很容易地使用。 (c)2018年S. Karger AG,巴塞尔

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