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October 12, 2025Scientific Reports3 citationsOpen Access

Hierarchical intertwined graph representation learning for skeleton-based action recognition

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XZXi ZhangCTChek Tien TanYYYuan Yuan

Key Points

  • HI-GCN achieves 93.3% accuracy on NTU RGB+D 60, significantly outperforming existing methods.
  • The model effectively integrates spatial and temporal information, addressing limitations of traditional GCNs.
  • Intertwined Context Graph Convolution refines spatial relationships, capturing variations across temporal scales.
  • Shifted Window Temporal Transformer enhances temporal dependency modeling for better action recognition.

Abstract

Graph Convolutional Networks (GCNs) have emerged as a leading approach for human skeleton-based action recognition, owing to their capacity to represent skeletal joints as adaptive graphs that effectively capture complex spatial relationships for feature aggregation. However, existing methods predominantly emphasize either spatial context within individual frames or holistic temporal sequences, often overlooking the interplay of spatial topology across multiple temporal scales. This limitation hinders the model's ability to fully understand complex actions, especially those involving interactions that vary across different temporal phases. To address this challenge, we propose a Hierarchical Intertwined Graph Learning Framework (HI-GCN), which comprises two key modules: Intertwined Context Graph Convolution and Shifted Window Temporal Transformer. The former module integrates spatial–temporal information from adjacent frames at various temporal scales, thereby refining spatial relationship representations and capturing subtle topological variations that conventional GCNs tend to miss. The latter module advances temporal dependency modeling by applying shifted temporal windows with multi-scale receptive fields. Experimental results demonstrate that HI-GCN surpasses current state-of-the-art methods on multiple skeleton-based action recognition benchmarks, achieving accuracies of 93.3% on NTU RGB+D 60 (cross-subject), 90.3% on NTU RGB+D 120 (cross-subject), and 97.0% on NW-UCLA.

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Cite This Study

Zhang et al. (2025) studied this question.

synapsesocial.com/papers/68ebc91af2c3e4d8d926e1bbhttps://doi.org/10.1038/s41598-025-19399-4
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