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Learning Social Spatio-Temporal Relation Graph in the Wild and a Video Benchmark.

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    This study introduces a new dataset and a novel Spatio-Temporal Relation Graph Convolutional Network (STRGCN) for recognizing social relations in real-world videos. The STRGCN effectively identifies person-level and pair-level relationships in complex, open environments.

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    Area of Science:

    • Computer Science
    • Artificial Intelligence
    • Machine Learning

    Background:

    • Existing social relation recognition studies primarily use still images or movie clips, which do not reflect real-world complexities.
    • Movie-based datasets often simplify the task to video classification, recognizing only one relation per scene, unlike dynamic, multi-relational real-world scenarios.

    Purpose of the Study:

    • To address the limitations of current methods by studying social relation recognition in open, real-world environments.
    • To introduce the first video dataset, Social Relation In The Wild (SRIW), capturing diverse and numerous social interactions.
    • To develop a robust framework capable of recognizing multiple social relations between individuals in complex scenes.

    Main Methods:

    • Proposed a Spatio-Temporal Relation Graph Convolutional Network (STRGCN) architecture to intuitively recognize social relations using visual features.
    • Decoupled the recognition task into person-level and pair-level classification.
    • Introduced a person behavior and character module for encoding static and dynamic features, forming a relation graph with meaningful edges for Graph Convolutional Network (GCN) and local GCN analysis.

    Main Results:

    • Achieved 83.1% mean Average Precision (mAP) in person-level relation classification.
    • Attained 40.8% mAP in pair-level relation classification.
    • Demonstrated the effectiveness and practicality of the proposed STRGCN framework in real-world scenarios.

    Conclusions:

    • The proposed STRGCN framework significantly advances social relation recognition in open environments.
    • The SRIW dataset provides a valuable resource for future research in this domain.
    • The study highlights the potential for practical applications of advanced AI in understanding complex human interactions.