3D convolutional neural networks for efficient and robust hand pose estimation from single depth images

We propose a simple, yet effective approach for real-time hand pose estimation from single depth images using three-dimensional Convolutional Neural Networks (3D CNNs). Image based features extracted by 2D CNNs are not directly suitable for 3D hand pose estimation due to the lack of 3D spatial infor...

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Main Authors: Ge, Liuhao, Liang, Hui, Yuan, Junsong, Thalmann, Daniel
其他作者: Interdisciplinary Graduate School (IGS)
格式: Conference or Workshop Item
語言:English
出版: 2019
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在線閱讀:https://hdl.handle.net/10356/82836
http://hdl.handle.net/10220/50409
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