Multimodal Implicit Neural Field and Spatio-Temporal Graph Attention for Personalized Smart Sportswear Comfort Prediction
收藏Figshare2025-08-07 更新2026-04-28 收录
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https://figshare.com/articles/dataset/_b_Multimodal_Implicit_Neural_Field_and_Spatio-Temporal_Graph_Attention_for_Personalized_Smart_Sportswear_Comfort_Prediction_b_/29851082
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Persistent challenges in smart sportswear—spatial scale mismatches across modalities, weak semantic alignment, limited pressure-distribution accuracy and poor generalization to individual body shapes—are addressed through a unified framework combining a multimodal neural field with a spatio-temporal graph attention network (ST-GAT). This method constructs a multimodal neural field to encode images, pressure maps, and posture as spatially continuous functions, achieving high-dimensional semantic alignment in a unified latent space. Furthermore, the ST-GAT captures the temporal evolution of pressure under the topological structure of the human body.
创建时间:
2025-08-07



