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New spectral imaging techniques for blood oximetry in the retina

机译:视网膜血氧饱和度的新光谱成像技术

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Hyperspectral imaging of the retina presents a unique opportunity for direct and quantitative mapping of retinal biochemistry - particularly of the vasculature where blood oximetry is enabled by the strong variation of absorption spectra with oxygenation. This is particularly pertinent both to research and to clinical investigation and diagnosis of retinal diseases such as diabetes, glaucoma and age-related macular degeneration. The optimal exploitation of hyperspectral imaging however, presents a set of challenging problems, including; the poorly characterised and controlled optical environment of structures within the retina to be imaged; the erratic motion of the eye ball; and the compounding effects of the optical sensitivity of the retina and the low numerical aperture of the eye. We have developed two spectral imaging techniques to address these issues. We describe first a system in which a liquid crystal tuneable filter is integrated into the illumination system of a conventional fundus camera to enable time-sequential, random access recording of narrow-band spectral images. Image processing techniques are described to eradicate the artefacts that may be introduced by time-sequential imaging. In addition we describe a unique snapshot spectral imaging technique dubbed IRIS that employs polarising interferometry and Wollaston prism beam splitters to simultaneously replicate and spectrally filter images of the retina into multiple spectral bands onto a single detector array. Results of early clinical trials acquired with these two techniques together with a physical model which enables oximetry map are reported.
机译:视网膜的高光谱成像为视网膜生物化学-尤其是脉管系统的直接和定量作图提供了独特的机会,在这种系统中,血氧测定法是由于吸收光谱随氧合的强烈变化而启用的。这与诸如糖尿病,青光眼和年龄相关性黄斑变性的视网膜疾病的研究以及临床研究和诊断特别相关。然而,高光谱成像的最佳利用提出了一系列挑战性的问题,包括:要成像的视网膜内部结构的光学环境的特征不佳且无法控制;眼球不稳定的运动;以及视网膜光学灵敏度和低数值孔径的复合效应。我们已经开发了两种光谱成像技术来解决这些问题。我们首先描述一个系统,其中将液晶可调滤光片集成到常规眼底照相机的照明系统中,以实现按时间顺序进行窄带光谱图像的随机访问记录。描述了图像处理技术以消除可能由时间序列成像引入的伪像。此外,我们描述了一种独特的快照光谱成像技术,称为IRIS,该技术采用偏振干涉测量法和Wollaston棱镜分束器,将视网膜图像同时复制和光谱过滤到多个光谱带上,并在一个检测器阵列上进行光谱过滤。报告了通过这两种技术获得的早期临床试验结果以及能够进行血氧定量图的物理模型。

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