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摘要:
Recent hand pose estimation methods require large numbers of annotated training data to extract the dynamic information from a hand representation.Nevertheless,precise and dense annotation on the real data is difficult to come by and the amount of information passed to the training algorithm is significantly higher.This paper presents an approach to developing a hand pose estimation system which can accurately regress a 3D pose in an unsupervised manner.The whole process is performed in three stages.Firstly,the hand is modelled by a novel latent tree dependency model (LTDM) which transforms internal joints location to an explicit representation.Secondly,we perform predictive coding of image sequences of hand poses in order to capture latent features underlying a given image without supervision.A mapping is then performed between an image depth and a generated representation.Thirdly,the hand joints are regressed using convolutional neural networks to finally estimate the latent pose given some depth map.Finally,an unsupervised error term which is a part of the recurrent architecture ensures smooth estimation of the final pose.To demonstrate the performance of the proposed system,a complete experiment was conducted on three challenging public datasets,ICVL,MSRA,and NYU.The empirical results show the significant performance of our method which is comparable or better than the state-of-the-art approaches.
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文献信息
篇名 Learning Hand Latent Features for Unsupervised 3D Hand Pose Estimation
来源期刊 自主智能(英文) 学科 工学
关键词 HAND Pose Estimation Convolutional NEURAL NETWORKS Recurrent NEURAL NETWORKS HUMAN-MACHINE Interaction Predictive Coding UNSUPERVISED LEARNING
年,卷(期) 2019,(1) 所属期刊栏目
研究方向 页码范围 1-10
页数 10页 分类号 TP
字数 语种
DOI
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研究主题发展历程
节点文献
HAND
Pose
Estimation
Convolutional
NEURAL
NETWORKS
Recurrent
NEURAL
NETWORKS
HUMAN-MACHINE
Interaction
Predictive
Coding
UNSUPERVISED
LEARNING
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研究分支
研究去脉
引文网络交叉学科
相关学者/机构
期刊影响力
自主智能(英文)
季刊
2630-5046
12 Eu Tong Sen Stree
出版文献量(篇)
26
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0
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0
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