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作 者:李聪林 王琪冰 陆佳炜 赵国军[2] 胡豪 肖刚 LI Conglin;WANG Qibing;LU Jiawei;ZHAO Guojun;HU Hao;XIAO Gang(School of Mechanical and Electrical Engineering,China Jiliang University,Hangzhou 310018,China;School of Mechanical Engineering,Zhejiang University of Technology,Hangzhou 310014,China)
机构地区:[1]中国计量大学机电工程学院,杭州310018 [2]浙江工业大学机械工程学院,杭州310014
出 处:《计算机工程与应用》2023年第19期274-284,共11页Computer Engineering and Applications
基 金:国家自然科学基金(61976193)。
摘 要:为了解决异常行为识别研究中存在的异常案例缺乏、训练样本稀缺问题,以垂直电梯的乘客异常行为监测为任务需求,提出了基于数字孪生的电梯乘客异常行为建模与识别方法。通过搭建电梯乘客行为监测数字孪生系统架构,完成了电梯运行状态与乘客行为的虚实映射。基于数字孪生场景与人体行为建模理论构建了电梯乘客异常行为案例,扩充了异常行为的孪生数据。利用改进的OpenPose获取骨骼特征,并使用PCA-DNN训练分类模型,实现了融合孪生数据的乘客异常行为快速识别。实验结果表明,该方法不仅展现了应用数字孪生技术创建异常数据的便捷性、高效性以及安全性,还验证了使用孪生数据进行模型训练的可行性、可靠性以及准确性。In order to solve the problems of abnormal cases lack and training samples scarcity in abnormal behavior recognition research,taking the abnormal behavior monitoring of vertical elevator passengers as the mission requirement,this paper puts forward the digital twin-based elevator passenger abnormal behavior modeling and recognition method.Through building the digital twin system architecture for elevator passenger behavior monitoring,the virtual and real map-ping of elevator operation state and passenger behavior is completed.The abnormal behavior case of elevator passengers is built and the twin data of abnormal behavior is expanded based on the digital twin scene and the human body behavior modeling theory.Finally,the improved OpenPose is used to obtain skeletal features and the PCA-DNN is used to train the classification model to realize the abnormal passenger behavior fast recognition with fused twin data.Experimental results show that the proposed method not only reveals the convenience,efficiency and safety to create anomalous data with digital twin technology,but also verifies the feasibility,reliability and accuracy to train models with twin data.
关 键 词:电梯乘客异常行为 数字孪生 行为建模 数据增强 骨骼检测 姿态识别
分 类 号:TP391.9[自动化与计算机技术—计算机应用技术]
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