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초록
Degenerative arthritis is a common joint disease that affects many elderly people and is typically diagnosed through radiography. However, the need for remote diagnosis is increasing because knee pain and walking disorders caused by degenerative arthritis make face-to-face treatment difficult. This study collects three-dimensional joint coordinates in real time using Azure Kinect DK and calculates 6 gait features through visualization and one-way ANOVA verification. The random forest classifier, trained with these characteristics, classified degenerative arthritis with an accuracy of 97.52%, and the model's basis for classification was identified through classification algorithm by features. Overall, this study not only compensated for the shortcomings of existing diagnostic methods, but also constructed a high-accuracy prediction model using statistically verified gait features and provided detailed prediction results.
키워드
- 제목
- 3차원 보행 영상 기반 퇴행성 관절염 환자 분류 알고리즘 개발
- 제목 (타언어)
- Developing Degenerative Arthritis Patient Classification Algorithm based on 3D Walking Video
- 저자
- 강태호; 성시열; 한상혁; 박동현; 강성우
- 발행일
- 2023-09
- 유형
- Y
- 저널명
- 산업경영시스템학회지
- 권
- 46
- 호
- 3
- 페이지
- 161 ~ 169