Temporal-Viewpoint Transportation Plan for Skeletal Few-shot Action Recognition

October 30, 2022 ยท Declared Dead ยท ๐Ÿ› Asian Conference on Computer Vision

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Authors Lei Wang, Piotr Koniusz arXiv ID 2210.16820 Category cs.CV: Computer Vision Cross-listed cs.AI, cs.LG Citations 36 Venue Asian Conference on Computer Vision Last Checked 3 months ago
Abstract
We propose a Few-shot Learning pipeline for 3D skeleton-based action recognition by Joint tEmporal and cAmera viewpoiNt alIgnmEnt (JEANIE). To factor out misalignment between query and support sequences of 3D body joints, we propose an advanced variant of Dynamic Time Warping which jointly models each smooth path between the query and support frames to achieve simultaneously the best alignment in the temporal and simulated camera viewpoint spaces for end-to-end learning under the limited few-shot training data. Sequences are encoded with a temporal block encoder based on Simple Spectral Graph Convolution, a lightweight linear Graph Neural Network backbone. We also include a setting with a transformer. Finally, we propose a similarity-based loss which encourages the alignment of sequences of the same class while preventing the alignment of unrelated sequences. We show state-of-the-art results on NTU-60, NTU-120, Kinetics-skeleton and UWA3D Multiview Activity II.
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