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Deep learning-based activity recognition and fine motor identification using 2D skeletons of cynomolgus monkeys

摘要Video-based action recognition is becoming a vital tool in clinical research and neuroscientific study for disorder detection and prediction.However,action recognition currently used in non-human primate(NHP)research relies heavily on intense manual labor and lacks standardized assessment.In this work,we established two standard benchmark datasets of NHPs in the laboratory:MonkeyinLab(MiL),which includes 13 categories of actions and postures,and MiL2D,which includes sequences of two-dimensional(2D)skeleton features.Furthermore,based on recent methodological advances in deep learning and skeleton visualization,we introduced the MonkeyMonitorKit(MonKit)toolbox for automatic action recognition,posture estimation,and identification of fine motor activity in monkeys.Using the datasets and MonKit,we evaluated the daily behaviors of wild-type cynomolgus monkeys within their home cages and experimental environments and compared these observations with the behaviors exhibited by cynomolgus monkeys possessing mutations in the MECP2 gene as a disease model of Rett syndrome(RTT).MonKit was used to assess motor function,stereotyped behaviors,and depressive phenotypes,with the outcomes compared with human manual detection.MonKit established consistent criteria for identifying behavior in NHPs with high accuracy and efficiency,thus providing a novel and comprehensive tool for assessing phenotypic behavior in monkeys.

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作者 Chuxi Li [1] Zifan Xiao [2] Yerong Li [1] Zhinan Chen [1] Xun Ji [3] Yiqun Liu [4] Shufei Feng [5] Zhen Zhang [5] Kaiming Zhang [6] Jianfeng Feng [2] Trevor W.Robbins [7] Shisheng Xiong [1] Yongchang Chen [5] Xiao Xiao [2] 学术成果认领
作者单位 School of Information Science and Technology Micro Nano System Center,Fudan University,Shanghai 200433,China [1] Department of Anesthesiology,Huashan Hospital;Key Laboratory of Computational Neuroscience and Brain-Inspired Intelligence,Ministry of Education;Behavioral and Cognitive Neuroscience Center,Institute of Science and Technology for Brain-Inspired Intelligence,MOE Frontiers Center for Brain Science,Fudan University,Shanghai 200433,China [2] Kuang Yarning Honors School,Nanjing University,Nanjing,Jiangsu 210023,China [3] Shanghai Key Laboratory of Intelligent Information Processing,School of Computer Science,Fudan University,Shanghai 200433,China [4] State Key Laboratory of Primate Biomedical Research;Institute of Primate Translational Medicine,Kunming University of Science and Technology,Kunming,Yunnan 650500,China [5] New Vision World LLC.,Aliso Viejo,California 92656,USA [6] Department of Anesthesiology,Huashan Hospital;Key Laboratory of Computational Neuroscience and Brain-Inspired Intelligence,Ministry of Education;Behavioral and Cognitive Neuroscience Center,Institute of Science and Technology for Brain-Inspired Intelligence,MOE Frontiers Center for Brain Science,Fudan University,Shanghai 200433,China;Behavioural and Clinical Neuroscience Institute,University of Cambridge,Cambridge,CB2 1TN,UK [7]
DOI 10.24272/j.issn.2095-8137.2022.449
发布时间 2024-02-29
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动物学研究

动物学研究

2023年44卷5期

967-980页

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