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Motorcycle Rider Helmet Detection for Riding Safety and Compliance Using Convolutional Neural Networks

机译:摩托车骑手盔甲检测骑行安全和符合卷积神经网络

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摘要

Traffic violation apprehension is one of the traffic problems here in the Philippines. One example is the No Helmet No Ride Law that is implemented but many motorists still choose to ignore. To alleviate the problem the government has offered many solutions, one of which is the No Contact Traffic Apprehension Policy that uses CCTV Monitoring. To further enhance this solution the government has partnered with the De La Salle University to use artificial intelligence in the system. Computer Vision tasks like image classification and object detection can help automate the traffic apprehension system. Image classification and object detection are technologies which are used in computer vision in defining an image or coordinates of an object in an image. In this work, a novel approach to classifying motorcycle riders between wearing a helmet or not will be developed. It will be demonstrated using deep machine learning, specifically convolutional neural network and by utilizing different pre-trained models to a gathered dataset.
机译:交通违规逮捕是菲律宾的交通问题之一。一个例子是没有骑行的盔甲,没有实施但许多驾驶者仍然选择忽略。为了减轻问题,政府提供了许多解决方案,其中一个是不使用中央电视台监测的无联络交通逮捕政策。为了进一步加强这一解决方案,政府与De La Salle大学合作,在系统中使用人工智能。计算机视觉任务等图像分类和对象检测可以帮助自动化交通逮捕系统。图像分类和对象检测是在计算机视觉中用于定义图像中对象的图像或坐标的计算机视觉的技术。在这项工作中,将开发出佩戴头盔之间的摩托车车手的新方法。它将使用深机器学习,特别是卷积神经网络以及利用不同的预先训练的模型来证明它到收集的数据集。

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