Appl Opt. 2021 Nov 1;60(31):9951-9956. doi: 10.1364/AO.428048.
Effective and accurate in vivo diagnosis of retinal pathologies requires high performance imaging devices, combining a large field of view and the ability to discriminate the ballistic signal from the diffuse background in order to provide a highly contrasted image of the retinal structures. Here, we have implemented the partial-field illumination ophthalmoscope, a patterned illumination modality, integrated to a high pixel rate adaptive optics full-field microscope. This non-invasive technique enables us to mitigate the low signal-to-noise ratio, intrinsic of full-field ophthalmoscopes, by partially illuminating the retina with complementary patterns to reconstruct a wide-field image. This new, to the best of our knowledge, modality provides an image contrast spanning from the full-field to the confocal contrast, depending on the pattern size. As a result, it offers various trade-offs in terms of contrast and acquisition speed, guiding the users towards the most efficient system for a particular clinical application.
有效的和准确的视网膜病变的体内诊断需要高性能的成像设备, 结合大视场和区分弹道信号从漫射背景的能力, 以提供一个高度对比的视网膜结构的图像。在这里, 我们已经实现了部分场照明眼底镜, 一种模式化照明方式, 集成到一个高像素率自适应光学全场显微镜。这种非侵入性的技术使我们能够减轻低信噪比, 固有全场眼底镜, 通过部分照亮视网膜与互补模式来重建一个大视场图像。这种新的, 据我们所知, 模式提供了一个图像对比度从全场到共聚焦对比度, 取决于模式的大小。因此, 它提供了在对比度和采集速度方面的各种权衡, 为特定的临床应用引导用户选择最有效的系统。