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Lightweight MobileNetV4-ConvLSTM Architecture for Spatiotemporal Video Violence Detection

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Figshare2025-10-08 更新2026-04-08 收录
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https://figshare.com/articles/dataset/Lightweight_MobileNetV4-ConvLSTM_Architecture_for_Spatiotemporal_Video_Violence_Detection/30311779/1
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<b>Research Context:</b> Violence remains a global challenge, impacting millions annually and requiring scalable technological solutions for prevention and detection. <b>Practical Problem:</b> Manual analysis of surveillance video is labor-intensive and prone to error, hindering timely identification of violent incidents. Developing models that combine high accuracy with computational efficiency is essential for practical deployment. <b>Proposed Solution:</b> This work proposes a hybrid MobileNetV4–ConvLSTM model that extracts spatial and temporal features from video frames, providing a lightweight yet robust architecture for automatic violence detection. <b>Related IS Theory:</b> This study is grounded in Task–Technology Fit and Socio-Technical theories, highlighting the alignment between the task of video-based violence detection and the technological sup- port needed, integrating people, processes, and technology to enhance public-safety decision-making. <b>Research Method:</b> This applied experimental study trained and evaluated the proposed model on the RWF-2000 dataset. Performance was assessed primarily through classification accuracy, while computational efficiency was measured using experiments conducted on AWS EC2 in- stances. <b>Summary of Results:</b> The proposed model achieved 96.94% accuracy with approximately 5.6 million parameters, demonstrating strong performance with reduced computational cost. <b>Contributions and Impact in the IS Area:</b> The study advances research in video-based violence detection by presenting a compact, high-performing architecture suitable for real-time surveillance and public safety applications.
提供机构:
Mar, Wilson
创建时间:
2025-10-08
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