Eye Health Monitoring System

Krishi Godhani, Adit Patel, Harsh Shah, Achal Mehta, Devlina Adhikari
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Abstract

The current research focuses on examining the negative impacts of blue light on human eyes. With the increasing usage of digital devices such as laptops, smartphones, and televisions, individuals are spending most of their time in front of screens. This prolonged screen time puts immense strain on the eyes, and blue light with wavelengths between 415 nm and 455 nm is a significant contributor to eye strain and damage. To understand the extent of damage, we considered various parameters such as the size of the screen, light intensity, and luminous intensity. We used a TCS34725 RGB sensor to measure the blue light emissions reaching the human eye and established a relationship between sensor outputs and light intensity. To classify the data, we utilized both KNN and Naïve Bayes algorithms for efficient analysis and quicker results.
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眼健康监测系统
目前的研究重点是检查蓝光对人眼的负面影响。随着笔记本电脑、智能手机和电视等数字设备的使用越来越多,人们将大部分时间花在屏幕前。长时间看屏幕给眼睛带来了巨大的压力,波长在415纳米到4555纳米之间的蓝光是造成眼睛疲劳和损伤的重要因素。为了了解损坏的程度,我们考虑了各种参数,如屏幕的大小,光强度和发光强度。我们使用TCS34725 RGB传感器测量到达人眼的蓝光发射,并建立传感器输出和光强之间的关系。为了对数据进行分类,我们使用了KNN和Naïve贝叶斯算法来进行有效的分析和更快的结果。
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