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进入中间视觉区域:中间视觉的复杂性与发光效率

Into the twilight zone: the complexities of mesopic vision and luminous efficiency.

作者信息

Stockman Andrew, Sharpe Lindsay T

机构信息

Institute of Ophthalmology, University College London, London EC1V 9EL, UK.

出版信息

Ophthalmic Physiol Opt. 2006 May;26(3):225-39. doi: 10.1111/j.1475-1313.2006.00325.x.

Abstract

Of all the functions that define visual performance, the mesopic luminous efficiency function is probably the most complex and hardest to standardise or model. Complexities arise because of the substantial and often rapid visual changes that accompany the transition from scotopic to photopic vision. These are caused not only by the switch from rod to cone photoreceptors, but also by switches between different post-receptoral pathways through which the rod and cone signals are transmitted. In this review, we list several of the complexities of mesopic vision, such as rod-cone interactions, rod saturation, mixed photoreceptor spectral sensitivities, different rod and cone retinal distributions, and the changes in the spatial properties of the visual system as it changes from rod- to cone-mediated. Our main focus, however, is the enormous and often neglected temporal changes that occur in the mesopic range and their effect on luminous efficiency. Even before the transition from rod to cone vision is complete, a transition occurs within the rod system itself from a sluggish, sensitive post-receptoral pathway to a faster, less sensitive pathway. As a consequence of these complexities, any measure of mesopic performance will depend not only on the illumination level, but also on the spectral content of the stimuli used to probe performance, their retinal location, their spatial frequency content, and their temporal frequency content. All these should be considered when attempting to derive (or to apply) a luminous efficiency function for mesopic vision.

摘要

在所有定义视觉性能的函数中,中间视觉发光效率函数可能是最复杂且最难标准化或建模的。其复杂性源于从暗视觉到明视觉转变过程中伴随的显著且常常迅速的视觉变化。这些变化不仅是由于从视杆细胞到视锥细胞光感受器的转换,还源于视杆细胞和视锥细胞信号通过不同的感受器后通路进行传递时的转换。在本综述中,我们列举了中间视觉的几个复杂性,例如视杆 - 视锥细胞相互作用、视杆细胞饱和、混合光感受器光谱敏感性、视杆细胞和视锥细胞在视网膜上的不同分布,以及视觉系统从视杆细胞介导转变为视锥细胞介导时其空间特性的变化。然而,我们主要关注的是在中间视觉范围内发生的巨大且常常被忽视的时间变化及其对发光效率的影响。甚至在从视杆细胞视觉到视锥细胞视觉的转变完成之前,视杆细胞系统自身就会发生从迟缓、敏感的感受器后通路到更快、不太敏感的通路的转变。由于这些复杂性,任何中间视觉性能的度量不仅将取决于光照水平,还将取决于用于探测性能的刺激的光谱内容、它们在视网膜上的位置、它们的空间频率内容以及它们的时间频率内容。在尝试推导(或应用)中间视觉的发光效率函数时,所有这些都应予以考虑。

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