Seungbum Koo
KAIST 기계공학과 · 의학
이 교수의 연구실은 의료 영상 기반의 생체역학 모델링과 인공지능 기반 분석을 바탕으로 관절의 퇴행성 변화, 특히 토끼관절염의 진행 메커니즘을 규명하는 데 초점을 맞추고 있습니다. 특히 MRI를 활용한 3차원 연골 모델링, 유한요소 분석, 그리고 보행 동역학을 통합한 신체역학 시뮬레이션 기술을 응용하여 관절 하중과 연골 손실 간의 인과관계를 규명하고 있습니다. 또한, 증강현실 기반의 관광 어플리케이션 개발을 통해 기술과 의료의 융합 응용도 함께 진행하고 있습니다.
표시된 성과는 수집된 데이터 기준으로 산출되며, 일부 차이가 있을 수 있습니다.
We examined the relationship between specific gait changes after anterior cruciate ligament injury and the progression of osteoarthritis at the knee. The study was done using a finite-element model derived from subject specific three-dimensional cartilage volumes created from magnetic resonance images. Cartilage thinning was predicted using an iterative algorithm based on the octahedral shear stress. Simulations were done for a knee with normal alignment and for a knee with an internal tibial ro
In this article, the design, development, and evaluation of augmented reality (AR)-based mobile application for a tour guide are discussed. The objectives of this article are twofold. First, the research focuses on the development of a complete working set of a mobile tour application furnished with AR. For such an application to be successfully adopted by the general public, user requirements and application usability are investigated, and the application is designed and implemented to fulfill
Joint contact forces measured with instrumented knee implants have not only revealed general patterns of joint loading but also showed individual variations that could be due to differences in anatomy and joint kinematics. Musculoskeletal human models for dynamic simulation have been utilized to understand body kinetics including joint moments, muscle tension, and knee contact forces. The objectives of this study were to develop a knee contact model which can predict knee contact forces using an
Cartilage morphology change is an important biomarker for the progression of osteoarthritis. The purpose of this study was to assess the accuracy of in vivo cartilage thickness measurements from MR image-based 3D cartilage models using a laser scanning method and to test if the accuracy changes with cartilage thickness. Three-dimensional tibial cartilage models were created from MR images (in-plane resolution of 0.55 mm and thickness of 1.5 mm) of osteoarthritic knees of ten patients prior to to