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Real-time Detection of Specific Events: A Case Study of Detecting Falls
- Moon, Seunghun;
- Yang, Changhee;
- Kang, Beoungwoo;
- Kang, Suk-Ju
SCOPUS
1초록
Detecting people who have fallen is a crucial problem since they may have severe injuries. In this study, we combined existing datasets to create a new dataset for generalized fall detection performance in a wild environment with diverse domains. Furthermore, we propose simple yet powerful rule-based methods for fall detection and real-time operation: the bounding box ratio and bounding box overlap. Our method was evaluated with YOLOv5 as a backbone network and achieved performance improvements by 0.126 in precision, 0.08 in recall, 0.156 in mAP<inf>50</inf> , and 0.11 in mAP<inf>95</inf> compared to our baseline, the VFP290K dataset [7]. In addition, compared to the baseline, the performance of our method improved by 0.349 in precision and 0.104 in the F1 score. ©s © 2023 The Institute of Electronics and Information Engineers.
키워드
- 제목
- Real-time Detection of Specific Events: A Case Study of Detecting Falls
- 저자
- Moon, Seunghun; Yang, Changhee; Kang, Beoungwoo; Kang, Suk-Ju
- 발행일
- 2023
- 유형
- Article
- 권
- 12
- 호
- 2
- 페이지
- 171 ~ 177