Analysis of real-world eye level light exposure through spectacle lens

This study presents a simulation-based methodology for evaluating lens-modulated light exposure across diverse real-world environmental conditions. A total of 987 outdoor light conditions were captured using calibrated spectroradiometers in 12 countries, recording spectral irradiance (280-780 nm, 1-nm resolution) and illuminance without lenses. Conditions varied by geographic region, weather, head inclination, and solar orientation. A lens transmittance model assigned transmittance values based on ambient illuminance and temperature to simulate the illuminance reaching the eye through clear, sun, and light-adaptive lenses. Melanopic equivalent daylight illuminance (EDI) was also computed to assess biologically relevant light exposure. Mean ambient illuminance was 42,561 ± 45,480 lux (range: 266-288,178) and 5934 ± 6738 lux (243-6738 lux) after light-adaptive lens simulation, with significant variations across environmental conditions. High-illuminance exposure (>10,000 lux) decreased from 68% (clear) to 6% (light-adaptive lens), while exposure between 1000 and 10,000 lux increased from 30% to 90%, and low-illuminance (<1000 lux) remained low (1.7% vs 3.1%). Melanopic analysis showed largely preserved melanopic EDI, with only 6% of conditions falling below 250 melanopic EDI. Light-adaptive lens reduced high-intensity light while maintaining moderate daylight levels and melanopic EDI. This methodology provides a more ecologically valid evaluation of lens performance than conventional lab-based testing.

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Publication Details

Journal
npj Biological Timing and Sleep
Published
2026-09-01
DOI
https://doi.org/10.1038/s44323-026-00095-z
Primary Topic
Ocular and Laser Science Research
Type
article
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article

Analysis of real-world eye level light exposure through spectacle lens

Coralie Barrau, Emmanuel Kobia‐Acquah, Camille Prince, Joshua Hazle et al.
npj Biological Timing and Sleep
Ocular and Laser Science Research
article

Analysis of real-world eye level light exposure through spectacle lens

Coralie Barrau, Emmanuel Kobia‐Acquah, Camille Prince, Joshua Hazle, Des Coughlan, Eléonore Pic
article en

Abstract

This study presents a simulation-based methodology for evaluating lens-modulated light exposure across diverse real-world environmental conditions. A total of 987 outdoor light conditions were captured using calibrated spectroradiometers in 12 countries, recording spectral irradiance (280-780 nm, 1-nm resolution) and illuminance without lenses. Conditions varied by geographic region, weather, head inclination, and solar orientation. A lens transmittance model assigned transmittance values based on ambient illuminance and temperature to simulate the illuminance reaching the eye through clear, sun, and light-adaptive lenses. Melanopic equivalent daylight illuminance (EDI) was also computed to assess biologically relevant light exposure. Mean ambient illuminance was 42,561 ± 45,480 lux (range: 266-288,178) and 5934 ± 6738 lux (243-6738 lux) after light-adaptive lens simulation, with significant variations across environmental conditions. High-illuminance exposure (>10,000 lux) decreased from 68% (clear) to 6% (light-adaptive lens), while exposure between 1000 and 10,000 lux increased from 30% to 90%, and low-illuminance (<1000 lux) remained low (1.7% vs 3.1%). Melanopic analysis showed largely preserved melanopic EDI, with only 6% of conditions falling below 250 melanopic EDI. Light-adaptive lens reduced high-intensity light while maintaining moderate daylight levels and melanopic EDI. This methodology provides a more ecologically valid evaluation of lens performance than conventional lab-based testing.

npj Biological Timing and SleepVol. 3(1)
Transitions Optical (United States) (US), EssilorLuxottica (France) (FR)
Openalex Percentile: Top 8%
Ocular and Laser Science Research
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