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SkeleMotion: A New Representation of Skeleton Joint Sequences Based on Motion Information for 3D Action Recognition

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Due to the availability of large-scale skeleton datasets, 3D human action recognition has recently called the attention of computer vision community. Many works have focused on encoding skeleton data as skeleton image representations based on spatial structure of the skeleton joints, in which the temporal dynamics of the sequence is encoded as variations in columns and the spatial structure of each frame is represented as rows of a matrix. To further improve such representations, we introduce a novel skeleton image representation to be used as input of Convolutional Neural Networks (CNNs), named SkeleMotion. The proposed approach encodes the temporal dynamics by explicitly computing the magnitude and orientation values of the skeleton joints. Different temporal scales are employed to compute motion values to aggregate more temporal dynamics to the representation making it able to capture longrange joint interactions involved in actions as well as filtering noisy motion values. Experimental results demonstrate the effectiveness of the proposed representation on 3D action recognition outperforming the state-of-the-art on NTU RGB+D 120 dataset.

Carlos Caetano, Jessica Sena, Fran\c{c}ois Br\'emond, Jefersson A. dos Santos, William Robson Schwartz• 2019

Related benchmarks

TaskDatasetResultRank
Action RecognitionNTU RGB+D 120 (X-set)
Accuracy67.7
717
Action RecognitionNTU RGB+D 60 (Cross-View)
Accuracy84.7
588
Action RecognitionNTU RGB+D 60 (X-sub)
Accuracy76.5
467
Action RecognitionNTU RGB+D X-sub 120
Accuracy67.7
430
Action RecognitionNTU RGB-D Cross-Subject 60
Accuracy69.6
336
Action RecognitionNTU RGB+D 120 Cross-Subject
Accuracy67.7
222
Skeleton-based Action RecognitionNTU RGB+D (Cross-View)
Accuracy84.7
213
Action RecognitionNTU 120 (Cross-Setup)
Accuracy66.9
203
Skeleton-based Action RecognitionNTU RGB+D 120 (X-set)
Top-1 Accuracy66.9
184
Skeleton-based Action RecognitionNTU RGB+D 120 Cross-Subject
Top-1 Accuracy67.7
143
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