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Generalized Video Anomaly Event Detection: Systematic Taxonomy and Comparison of Deep Models (2302.05087v3)

Published 10 Feb 2023 in cs.CV and cs.MM

Abstract: Video Anomaly Detection (VAD) serves as a pivotal technology in the intelligent surveillance systems, enabling the temporal or spatial identification of anomalous events within videos. While existing reviews predominantly concentrate on conventional unsupervised methods, they often overlook the emergence of weakly-supervised and fully-unsupervised approaches. To address this gap, this survey extends the conventional scope of VAD beyond unsupervised methods, encompassing a broader spectrum termed Generalized Video Anomaly Event Detection (GVAED). By skillfully incorporating recent advancements rooted in diverse assumptions and learning frameworks, this survey introduces an intuitive taxonomy that seamlessly navigates through unsupervised, weakly-supervised, supervised and fully-unsupervised VAD methodologies, elucidating the distinctions and interconnections within these research trajectories. In addition, this survey facilitates prospective researchers by assembling a compilation of research resources, including public datasets, available codebases, programming tools, and pertinent literature. Furthermore, this survey quantitatively assesses model performance, delves into research challenges and directions, and outlines potential avenues for future exploration.

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Authors (8)
  1. Yang Liu (2253 papers)
  2. Dingkang Yang (57 papers)
  3. Yan Wang (733 papers)
  4. Jing Liu (526 papers)
  5. Jun Liu (606 papers)
  6. Azzedine Boukerche (11 papers)
  7. Peng Sun (210 papers)
  8. Liang Song (60 papers)
Citations (63)