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基于深度学习的危险驾驶行为检测模型研究
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作者 岳宸宇 周沛松 李明亮 《新一代信息技术》 2021年第22期1-4,共4页
针对驾驶员常见危险驾驶习惯如驾驶汽车过程中看手机、打电话、进食以及同车内乘客聊天等现象,设计基于深度学习技术的危险驾驶行为检测模型。采用PaddlePaddle框架,将PaddleX深度学习网络模型转化为PaddleHub轻量型深度学习网络模型便... 针对驾驶员常见危险驾驶习惯如驾驶汽车过程中看手机、打电话、进食以及同车内乘客聊天等现象,设计基于深度学习技术的危险驾驶行为检测模型。采用PaddlePaddle框架,将PaddleX深度学习网络模型转化为PaddleHub轻量型深度学习网络模型便于部署和应用;实现对驾驶员:正常安全驾驶、右手发短信/玩手机、右手打电话、左手发短信/玩手机、左手打电话、调试车载多媒体、进食、向后排拿物、整理妆容、同乘客谈话等10种驾驶行为的检测,检测准确率达98%以上。 展开更多
关键词 边缘计算深度学习 疲劳驾驶预警 目标检测
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Deep reinforcement learning-based optimization of lightweight task offloading for multi-user mobile edge computing 被引量:1
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作者 ZHANG Wenxian DU Yongwen 《Journal of Measurement Science and Instrumentation》 CAS CSCD 2021年第4期489-500,共12页
To improve the quality of computation experience for mobile devices,mobile edge computing(MEC)is a promising paradigm by providing computing capabilities in close proximity within a sliced radio access network,which s... To improve the quality of computation experience for mobile devices,mobile edge computing(MEC)is a promising paradigm by providing computing capabilities in close proximity within a sliced radio access network,which supports both traditional communication and MEC services.However,this kind of intensive computing problem is a high dimensional NP hard problem,and some machine learning methods do not have a good effect on solving this problem.In this paper,the Markov decision process model is established to find the excellent task offloading scheme,which maximizes the long-term utility performance,so as to make the best offloading decision according to the queue state,energy queue state and channel quality between mobile users and BS.In order to explore the curse of high dimension in state space,a candidate network is proposed based on edge computing optimize offloading(ECOO)algorithm with the application of deep deterministic policy gradient algorithm.Through simulation experiments,it is proved that the ECOO algorithm is superior to some deep reinforcement learning algorithms in terms of energy consumption and time delay.So the ECOO is good at dealing with high dimensional problems. 展开更多
关键词 multi-user mobile edge computing task offloading deep reinforcement learning
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