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Automatic detection of modal spacing (Yellotts ring) in adaptive optics scanning light ophthalmoscope images

机译:在自适应光学扫描光学检眼镜图像中自动检测模态间距(耶洛特环)

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摘要

>Purpose An impediment for the clinical utilisation of ophthalmic adaptive optics imaging systems is the automated assessment of photoreceptor mosaic integrity. Here we propose a fully automated algorithm for estimating photoreceptor density based on the radius of Yellott's ring.>Methods The discrete Fourier transform (DFT) was used to obtain the power spectrum for a series of images of the human photoreceptor mosaic. Cell spacing is estimated by least-square fitting an annular pattern with a Gaussian cross section to the power spectrum; the radius of the resulting annulus provides an estimate of the modal spacing of the photoreceptors in the retinal image. The intrasession repeatability of the cone density estimates from the algorithm was evaluated, and the accuracy of the algorithm was validated against direct count estimates from a previous study. Accuracy in the presence of multiple cell types and disruptions in the mosaic was examined using images from four patients with retinal pathology and perifoveal images from two subjects with normal vision.>Results Intrasession repeatability of the power spectrum method was comparable to a fully automated direct counting algorithm, but worse than that for the manually adjusted direct count values. In images of the normal parafoveal cone mosaic, we find good agreement between the power-spectrum derived density and that from the direct counting algorithm. In diseased eyes, the power spectrum method is insensitive to photoreceptor loss, with cone density estimates overestimating the density determined with direct counting. The automated power spectrum method also produced unreliable estimates of rod and cone density in perifoveal images of the photoreceptor mosaic, though manual correction of the initial algorithm output results in density estimates in better agreement with direct count values.>Conclusions We developed and validated an automated algorithm based on the power spectrum for extracting estimates of cone spacing, from which estimates of density can be derived. This approach may be used to estimate cone density in images where not every single cone is visible, though caution is needed, as this robustness becomes a weakness when dealing with images from patients with some retinal diseases. This study represents an important first step in carefully assessing the relative utility of metrics for analysing the photoreceptor mosaic, and similar analyses of other metrics/algorithms are needed.
机译:>目的:眼科自适应光学成像系统临床应用的障碍是对感光体镶嵌完整性的自动评估。在此,我们提出了一种基于耶洛特环半径的全自动估计光感受器密度的算法。>方法使用离散傅里叶变换(DFT)来获取一系列人体感光图像的功率谱镶嵌。单元格间距是通过最小二乘拟合具有高斯截面的环形图案与功率谱来估计的;所产生的环的半径提供了视网膜图像中感光体的模态间隔的估计。评估了算法中视锥细胞密度估计的术中可重复性,并根据先前研究的直接计数估计值验证了算法的准确性。使用来自四名视网膜病理学患者的图像和来自两名视力正常的受试者的中央凹图像,检查了多种细胞类型和镶嵌体破裂的准确性。>结果功率谱法的术中重复性相当完全自动化的直接计数算法,但比手动调整的直接计数值要差。在正常的中心凹旁圆锥形马赛克图像中,我们发现功率谱导出的密度与直接计数算法得到的密度之间具有良好的一致性。在患病的眼睛中,功率谱方法对感光器损耗不敏感,视锥细胞密度估计高估了直接计数确定的密度。自动功率谱方法还产生了不可靠的光感受器镶嵌术的凹面图像中的视杆和视锥密度估计,尽管手动校正初始算法输出会导致密度估计与直接计数值更好地吻合。>结论我们开发并验证了基于功率谱的自动算法,用于提取圆锥间距的估计值,从中可以得出密度估计值。该方法可用于估计并非每个锥体可见的图像中的锥体密度,尽管需要谨慎,因为当处理来自某些视网膜疾病患者的图像时,这种鲁棒性变得很弱。这项研究代表着重要的第一步,即认真评估用于分析感光体镶嵌的指标的相对效用,并且需要对其他指标/算法进行类似的分析。

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