Video action detection method based on convolutional neural network

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United States of America Patent

PATENT NO 11379711
SERIAL NO

16414783

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A video action detection method based on a convolutional neural network (CNN) is disclosed in the field of computer vision recognition technologies. A temporal-spatial pyramid pooling layer is added to a network structure, which eliminates limitations on input by a network, speeds up training and detection, and improves performance of video action classification and time location. The disclosed convolutional neural network includes a convolutional layer, a common pooling layer, a temporal-spatial pyramid pooling layer and a full connection layer. The outputs of the convolutional neural network include a category classification output layer and a time localization calculation result output layer. The disclosed method does not require down-sampling to obtain video clips of different durations, but instead utilizes direct input of the whole video at once, improving efficiency. Moreover, the network is trained by using video clips of the same frequency without increasing differences within a category, thus reducing the learning burden of the network, achieving faster model convergence and better detection.

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Patent Owner(s)

Patent OwnerAddress
PEKING UNIVERSITY SHENZHEN GRADUATE SCHOOL518055 ROOM 208 BUILDING H BEIDA PARK SHENZHEN UNIVERSITY TOWN XILI STREET NANSHAN DISTRICT SHENZHEN CITY GUANGDONG PROVINCE SHENZHEN CITY GUANGDONG PROVINCE 518055

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Inventor(s)

Inventor Name Address # of filed Patents Total Citations
Dong, Shengfu Shenzhen, CN 22 138
Gao, Wen Shenzhen, CN 329 3875
Li, Ge Shenzhen, CN 125 1180
Li, Ying Shenzhen, CN 869 31412
Li, Zhihao Shenzhen, CN 35 139
Wang, Ronggang Shenzhen, CN 78 337
Wang, Wenmin Shenzhen, CN 32 217
Wang, Zhenyu Shenzhen, CN 189 678
Zhao, Hui Shenzhen, CN 245 1011

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