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Analyzing the Effects of Human Detection in Top-down Pose Estimation for Crowd Situation Recognitions
초록
A comprehensive analysis of the effects of human detection within the CrowdPose scheme, a representative top-down approach proposed to apply human pose estimation to crowd situations, was conducted. The results of this performance analysis can prove to be invaluable for designing multi-person pose recognition systems with the aim of identifying abnormal events in crowd situations. As the candidate object detectors, YoloV3, YoloX, and Faster R-CNN are selected and used, which are representative object detec-tors used in existing crowd-related research. Various analyses were per-formed using 8,000 crowd-situation test images provided by the CrowPose research team and the detailed analysis results have been presented.
- 제목
- Analyzing the Effects of Human Detection in Top-down Pose Estimation for Crowd Situation Recognitions
- 저자
- YOO SUNG KIM
- 학회명
- 15th The International Conference on Computer Science and its Applications (CSA)
- 개최지
- Nha Trang University
- 학회 개최일
- 2023-12-18 ~ 2023-12-20