Automated Driver Drowsiness Detection

Shivam Dhiman
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Abstract

This project uses image processing and Python programming language to create an automatic sleepiness detection system for drivers. The system's objective is to develop an algorithm that can reliably gauge a driver's sleepiness under various circumstances by using real-time grayscale photographs. The driver will be observed by the system as it scans their face and eyelids for hypo vigilance, which is a precursor to tiredness. To properly determine the driver's level of sleepiness, the system entails three steps: feature selection, eye-pair state detection, and decision-making. The algorithm will differentiate between the two states on a collection of captured photos of both tired and awake drivers. To identify sleepiness in drivers, facial feature recognition algorithms has been employed, with an emphasis on the eye pair. Images will be taken with a mounted camera. For the system to successfully be integrated into current driver assistance systems, it will be measured on how well it is able to identify tiredness. The project's importance stem from its ability is to increase road safety by identifying driver sleepiness, a major contributing factor to accidents on the road. In conclusion, this research will significantly impact road safety by tackling the problem of accidents caused by drowsiness.
自动驾驶员困倦检测
本课题利用图像处理和Python编程语言,为驾驶员创建一个自动睡意检测系统。该系统的目标是开发一种算法,通过使用实时灰度照片,在各种情况下可靠地测量驾驶员的睡意。系统将通过扫描司机的面部和眼睑来观察他们是否缺乏警惕性,这是疲劳的前兆。为了正确判断驾驶员的困倦程度,该系统需要三个步骤:特征选择、眼睛状态检测和决策。该算法将通过收集疲惫和清醒司机的照片来区分这两种状态。为了识别司机的睡意,采用了面部特征识别算法,重点是眼睛。图像将通过安装的相机拍摄。为了成功地将该系统集成到当前的驾驶员辅助系统中,它将根据识别疲劳的能力进行测量。该项目的重要性在于,它能够通过识别司机的困倦来提高道路安全,这是导致道路交通事故的一个主要因素。综上所述,这项研究将通过解决由嗜睡引起的事故问题,对道路安全产生重大影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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