A new approach for camera supported machine learning algorithms based dynamic headlight model's design

Şafak Yaşar, Mustafa Şahin, Onur Akar
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Abstract

Traffic accidents continue to be a significant issue in modern society. Accidents usually happen on dark, mountainous, narrow, steep and curved roadways. One of the primary causes of such accidents is the drivers’ weak sight brought on by the headlights of moving vehicles. In this study, a dynamic headlight model was designed using camera supported machine learning algorithms to improve the drivers’ vision during night drive. In this design, the issues of enabling a lighting field supported by image processing programmed with machine learning, dynamic adjustment of the high beam headlights’ LED cells in response to the vehicle approaching from the opposite direction, traffic-sign recognition system, lane-keeping system, and automatic adjustment of headlight angles were addressed. In this direction, a novel dynamic headlight model that will reduce the risk of accidents caused by lighting was presented, and its analyses were performed.
基于相机支持的机器学习算法的动态前照灯模型设计新方法
交通事故仍然是现代社会的一个重大问题。交通事故通常发生在阴暗、多山、狭窄、陡峭和弯曲的道路上。造成这类事故的主要原因之一是行驶车辆的前灯给司机带来的视力不佳。在本研究中,采用摄像头支持的机器学习算法设计了一个动态前照灯模型,以提高驾驶员夜间驾驶时的视觉。在本设计中,解决了由机器学习编程的图像处理支持的照明场、根据相反方向驶来的车辆动态调整远光灯LED单元、交通标志识别系统、车道保持系统以及自动调整前照灯角度等问题。在此基础上,提出了一种降低交通事故风险的动态前照灯模型,并进行了分析。
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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