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首页> 外文期刊>Ophthalmic & physiological optics: the journal of the British College of Ophthalmic Opticians (Optometrists) >Foveal vision power errors induced by spectacle lenses designed to correct peripheral refractive errors
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Foveal vision power errors induced by spectacle lenses designed to correct peripheral refractive errors

机译:眼镜视觉电源误差镜像镜头旨在纠正外围屈光误差

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摘要

Abstract Purpose Radial Refractive Gradient ( RRG ) spectacles are lenses specifically designed to minimize peripheral hyperopic defocus typically found in conventional spectacles. Our goals were: (1) to demonstrate a method to design such lenses; and (2) to quantify the exact foveal vision power errors induced by them. Methods The design procedure was based on a point‐by‐point sequential surface construction algorithm that designs a front aspheric surface (back surface is spherical) to achieve a given overall tangential focal length of the lens. A peripheral refraction model was built based on average peripheral refractive errors from a set of eyes. We designed four negative lenses with optical powers: ?2.5, ?5.0, ?7.5 and ?10.0?D, so that the tangential focal length of the lens matches the retinal conjugate surface. Results The lenses induce very small sagittal power errors in a wide range of off‐axis field angles (30°), solving the problem of peripheral hyperopic defocus. However, such designs introduce non‐negligible mean power errors (above 0.25?D from 7°, 6.8°, 7.1° and 7.8° for the ?2.5, ?5.0, ?7.5 and ?10.0?D lenses, respectively) for foveal vision in a rotating eye. Conclusion Our results show the unavoidable errors introduced by RRG spectacles when used for dynamic foveal vision. The described method offers valuable information towards determining the best trade‐off between controlling power errors for peripheral and foveal vision.
机译:摘要目的径向折射梯度(RRG)眼镜是专门设计用于最小化通常在常规眼镜中发现的外围超常见灰度的镜片。我们的目标是:(1)展示设计此类镜片的方法; (2)量化它们引起的精确变性视觉功率误差。方法设计程序基于点对点顺序表面结构算法,该逐行顺序表面构造算法设计前非球面(后表面是球形)以实现透镜的给定总切向焦距。基于来自一组眼睛的平均外围屈光误差构建了外围折射模型。我们设计了具有光学功率的四个负镜头:?2.5,?5.0,?7.5和?10.0?D,使镜头的切向焦距与视网膜缀合物表面相匹配。结果镜片在宽范围的轴外场角(30°)中诱导非常小的矢状功率误差,解决外围超高速散焦的问题。然而,这种设计引入了不可忽略的平均功率误差(7°,6.8°,7.8°,7.1°和7.8°以上0.25°,分别为0.5°,2.0,?7.5和?10.0?D透镜,分别为硬膜视觉在旋转的眼睛。结论我们的结果表明,用于动态污水愿景时RRG眼镜引入的不可避免的错误。所描述的方法提供了有价值的信息,旨在确定控制电源误差的最佳权衡,用于外围和难度视觉。

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