Journal of the Optical Society of America A · 2002 · 266 citations · 38 references
The study aimed to investigate the relationship between foveal and peripheral refractive errors across myopic, emmetropic, and hyperopic young subjects. The authors measured binocular refractive parameters using an automated infrared photorefraction device and a double‑pass technique, generating two‑dimensional maps of spherical equivalents, cross cylinders, and meridian axes across the visual field. Peripheral refractive measurements revealed a small lower‑field myopia with a vertical gradient, general peripheral myopia in all groups, and at 45° eccentricity myopic subjects showed hyperopic shifts while hyperopic subjects showed myopic shifts relative to the fovea, suggesting peripheral astigmatism may influence foveal refractive development.
To gain more insight into the relationship between foveal and peripheral refractive errors in humans, spheres, cylinders, and their axes were binocularly measured across the visual field in myopic, emmetropic, and hyperopic groups of young subjects. Both automated infrared photorefraction (the "PowerRefractor"; www.plusoptix.de) and a double-pass technique were used because the PowerRefractor provided extensive data from the central 44 deg of the visual field in a very convenient and fast way. Two-dimensional maps for the average cross cylinders and spherical equivalents, as well as for the axes of the power meridians of the cylinders, were created. A small amount of lower-field myopia was detected with a significant vertical gradient in spherical equivalents. In the central visual field there was little difference among the three refractive groups. The established double-pass technique provided complementary data also from the far periphery. At 45 deg eccentricity the double-pass technique revealed relatively more hyperopic spherical equivalents in myopic subjects than in emmetropic subjects [±2.73±2.85 D relative to the fovea, p<0.01 (±standard deviation)] and more myopic spherical equivalents in hyperopic subjects (-3.84±2.86 D relative to the fovea, p<0.01). Owing to the pronounced peripheral astigmatism, spherical equivalents (refractions with respect to the plane of the circle of least confusion) became myopic relative to the fovea in all three groups. The finding of general peripheral myopia was unexpected. Its possible roles in foveal refractive development are discussed.
38
The Vertebrate Eye and Its Adaptive Radiation
Daniel Merriman, Gordon L. Walls · Copeia · 1943 · 1K citations
Local Retinal Regions Control Local Eye Growth and Myopia
Josh Wallman, Michael D. Gottlieb, V Rajaram et al. · Science · 1987 · 517 citations
Average optical performance of the human eye as a function of age in a normal population.
Antonio Guirao, Claudio González, M. Redondo et al. · PubMed · 1999 · 274 citations
Peripheral refraction and ocular shape in children.
Donald O. Mutti, Robert I. Sholtz, Nina E. Friedman et al. · PubMed · 2000 · 270 citations