TY - JOUR
T1 - Optical Design of a Snapshot Nonmydriatic Fundus-imaging Spectrometer Based on the Eye Model
AU - Zhao, Xuehui
AU - Chang, Jun
AU - Zhang, Wenchao
AU - Wang, Dajiang
AU - Chen, Weilin
AU - Cao, Jiajing
N1 - Publisher Copyright:
© 2022 Current Optics and Photonics.
PY - 2022/4
Y1 - 2022/4
N2 - Fundus images can reflect ocular diseases and systemic diseases such as glaucoma, diabetes mellitus, and hypertension. Thus, research on fundus-detection equipment is of great importance. The fundus camera has been widely used as a kind of noninvasive detection equipment. Most existing devices can only obtain two-dimensional (2D) retinal-image information, yet the fundus of the human eye also has spectral characteristics. The fundus has many pigments, and their different distributions in the eye lead to dissimilar tissue penetration for light waves, which can reflect the corresponding fundus structure. To obtain more abundant information and improve the detection level of equipment, a snapshot nonmydriatic fundus imaging spectral system, including fundus-imaging spectrometer and illumination system, is studied in this paper. The system uses a microlens array to realize snapshot technology; information can be obtained from only a single exposure. The system does not need to dilate the pupil. Hence, the operation is simple, which reduces its influence on the detected object. The system works in the visible and near-infrared bands (550–800 nm), with a volume less than 400 mm × 120 mm × 75 mm and a spectral resolution better than 6 nm.
AB - Fundus images can reflect ocular diseases and systemic diseases such as glaucoma, diabetes mellitus, and hypertension. Thus, research on fundus-detection equipment is of great importance. The fundus camera has been widely used as a kind of noninvasive detection equipment. Most existing devices can only obtain two-dimensional (2D) retinal-image information, yet the fundus of the human eye also has spectral characteristics. The fundus has many pigments, and their different distributions in the eye lead to dissimilar tissue penetration for light waves, which can reflect the corresponding fundus structure. To obtain more abundant information and improve the detection level of equipment, a snapshot nonmydriatic fundus imaging spectral system, including fundus-imaging spectrometer and illumination system, is studied in this paper. The system uses a microlens array to realize snapshot technology; information can be obtained from only a single exposure. The system does not need to dilate the pupil. Hence, the operation is simple, which reduces its influence on the detected object. The system works in the visible and near-infrared bands (550–800 nm), with a volume less than 400 mm × 120 mm × 75 mm and a spectral resolution better than 6 nm.
KW - Fundus camera
KW - Fundus spectrum
KW - Imaging spectroscopy
KW - Optical design
UR - http://www.scopus.com/inward/record.url?scp=85132413285&partnerID=8YFLogxK
U2 - 10.3807/COPP.2022.6.2.151
DO - 10.3807/COPP.2022.6.2.151
M3 - Article
AN - SCOPUS:85132413285
SN - 2508-7266
VL - 6
SP - 151
EP - 160
JO - Current Optics and Photonics
JF - Current Optics and Photonics
IS - 2
ER -