An Overview of Violence Detection Techniques: Current Challenges and Future Directions
September 21, 2022 ยท The Cartographer ยท ๐ Artificial Intelligence Review
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"Title-pattern auto-detect: An Overview of Violence Detection Techniques: Current Challenges and Future Directions"
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Authors
Nadia Mumtaz, Naveed Ejaz, Shabana Habib, Syed Muhammad Mohsin, Prayag Tiwari, Shahab S. Band, Neeraj Kumar
arXiv ID
2209.11680
Category
cs.CV: Computer Vision
Cross-listed
cs.AI
Citations
39
Venue
Artificial Intelligence Review
Last Checked
2 days ago
Abstract
The Big Video Data generated in today's smart cities has raised concerns from its purposeful usage perspective, where surveillance cameras, among many others are the most prominent resources to contribute to the huge volumes of data, making its automated analysis a difficult task in terms of computation and preciseness. Violence Detection (VD), broadly plunging under Action and Activity recognition domain, is used to analyze Big Video data for anomalous actions incurred due to humans. The VD literature is traditionally based on manually engineered features, though advancements to deep learning based standalone models are developed for real-time VD analysis. This paper focuses on overview of deep sequence learning approaches along with localization strategies of the detected violence. This overview also dives into the initial image processing and machine learning-based VD literature and their possible advantages such as efficiency against the current complex models. Furthermore,the datasets are discussed, to provide an analysis of the current models, explaining their pros and cons with future directions in VD domain derived from an in-depth analysis of the previous methods.
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