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Measurements of the posterior structures of the human eye in vivo by partial-coherence interferometry using diffractive optics

机译:使用衍射光学的部分相干干涉法在体内测量人眼的后部结构

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Abstract: In the past ten years, the dual beam version of partial coherence interferometry has been developed for measuring intraocular distances in vivo with a precision on the order of 0.3 to 3 micrometer. This technique has now been further improved by using diffractive optics. A special diffractive optical element focuses part of the laser beam on the vertex of the cornea and lets the other collimated parallel part of the beam pass through. The beams remitted from the eye will thereby be converted into parallel beams. The light power oscillations in the corresponding interferograms are much stronger than those of the narrow interference fringes obtained without that technique what significantly improves the signal to noise ratio. This makes it possible to clearly differentiate signals from different fundus layers. High precision in vivo fundus measurements have been performed at various positions on the human retina in order to obtain fundus profiles. These measurements have been synthesized to tomographic images of the human eye fundus. In order to localize the exact measurement point on the retina simultaneously to the fundus scans, a fundus camera has been implemented into the partial coherence interferometry system that allows a clear identification of the individual A-scan positions. !26
机译:摘要:在过去的十年中,已经开发出了双光束版本的部分相干干涉术,用于在体内测量眼内距离,其精度约为0.3到3微米。现在,通过使用衍射光学器件,该技术得到了进一步的改进。一个特殊的衍射光学元件将一部分激光束聚焦在角膜的顶点上,并使另一束平行的平行光束通过。从眼睛反射的光束将因此转换为平行光束。相应干涉图中的光功率振荡要比没有采用该技术获得的窄干涉条纹的光功率振荡强得多,这可以显着改善信噪比。这使得可以清楚地区分来自不同眼底层的信号。为了获得眼底轮廓,已经在人视网膜上的各个位置进行了高精度的体内眼底测量。这些测量结果已合成为人眼眼底的断层图像。为了同时在眼底扫描上定位视网膜上的精确测量点,已将眼底照相机安装到部分相干干涉测量系统中,该系统可以清楚地识别各个A扫描位置。 !26

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