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Motion Matters: Motion-guided Modulation Network for Skeleton-based Micro-Action Recognition

Motion Matters: Motion-guided Modulation Network for Skeleton-based Micro-Action Recognition

来源:Arxiv_logoArxiv
英文摘要

Micro-Actions (MAs) are an important form of non-verbal communication in social interactions, with potential applications in human emotional analysis. However, existing methods in Micro-Action Recognition often overlook the inherent subtle changes in MAs, which limits the accuracy of distinguishing MAs with subtle changes. To address this issue, we present a novel Motion-guided Modulation Network (MMN) that implicitly captures and modulates subtle motion cues to enhance spatial-temporal representation learning. Specifically, we introduce a Motion-guided Skeletal Modulation module (MSM) to inject motion cues at the skeletal level, acting as a control signal to guide spatial representation modeling. In parallel, we design a Motion-guided Temporal Modulation module (MTM) to incorporate motion information at the frame level, facilitating the modeling of holistic motion patterns in micro-actions. Finally, we propose a motion consistency learning strategy to aggregate the motion cues from multi-scale features for micro-action classification. Experimental results on the Micro-Action 52 and iMiGUE datasets demonstrate that MMN achieves state-of-the-art performance in skeleton-based micro-action recognition, underscoring the importance of explicitly modeling subtle motion cues. The code will be available at https://github.com/momiji-bit/MMN.

Jihao Gu、Kun Li、Fei Wang、Yanyan Wei、Zhiliang Wu、Hehe Fan、Meng Wang

计算技术、计算机技术自动化技术、自动化技术设备

Jihao Gu,Kun Li,Fei Wang,Yanyan Wei,Zhiliang Wu,Hehe Fan,Meng Wang.Motion Matters: Motion-guided Modulation Network for Skeleton-based Micro-Action Recognition[EB/OL].(2025-08-05)[2025-08-11].https://arxiv.org/abs/2507.21977.点此复制

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