作者
Ghazal Alinezhad Noghre, Armin Danesh Pazho, Vinit Katariya, Hamed Tabkhi
发表日期
2023/9/21
来源
Proceedings of the 8th international Workshop on Sensor-Based Activity Recognition and Artificial Intelligence
页码范围
1-9
简介
Pose-based anomaly detection is a video-analysis technique for detecting anomalous events or behaviors by examining human pose extracted from the video frames. Human anomaly detection plays a crucial role in various applications, such as smart cities and intelligent surveillance systems, for the safety of public environments. Utilizing pose data alleviates the privacy and ethical issues while reducing computational complexity compared to pixel-based approaches. However, it introduces more challenges, such as noisy skeleton data, losing important pixel information, and not having enriched enough features. These problems are exacerbated by the scarcity of high-quality anomaly detection datasets that are good enough representatives of real-world scenarios. In this work, we analyze and quantify the characteristics of two video anomaly datasets to better understand the difficulties of pose-based anomaly …
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