利用车载摄像头检测人行横道附近的危险情况

M. Kubanek, Lukasz Karbowiak, J. Bobulski
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摘要

本文提出了一种利用车载摄像系统检测人行横道附近危险情况的方法。该方法利用基于深度学习的对象检测来识别行人和车辆,分析他们的行为以识别潜在的危险。该系统集成了车辆传感器数据,以提高准确性。评价结果表明,对危险情况的检测具有较高的准确率。该系统可以潜在地提高城市交通中行人和驾驶员的安全。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Detection of Dangerous Situations Near Pedestrian Crossings using In-Car Camera
The paper presents a method for detecting dangerous situations near pedestrian crossings using an in-car camera system. The approach utilizes deep learning-based object detection to identify pedestrians and vehicles, analyzing their behavior to identify potential hazards. The system incorporates vehicle sensor data for enhanced accuracy. Evaluation results show high accuracy in detecting dangerous situations. The proposed system can potentially enhance pedestrian and driver safety in urban transportation.
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