Delp Scott L, Anderson Frank C, Arnold Allison S, Loan Peter, Habib Ayman, John Chand T, Guendelman Eran, Thelen Darryl G
Department of Bioengineering, Stanford University, Clark Center, Room S-170, 318 Campus Drive, Stanford, CA 94305-5450, USA.
IEEE Trans Biomed Eng. 2007 Nov;54(11):1940-50. doi: 10.1109/TBME.2007.901024.
Dynamic simulations of movement allow one to study neuromuscular coordination, analyze athletic performance, and estimate internal loading of the musculoskeletal system. Simulations can also be used to identify the sources of pathological movement and establish a scientific basis for treatment planning. We have developed a freely available, open-source software system (OpenSim) that lets users develop models of musculoskeletal structures and create dynamic simulations of a wide variety of movements. We are using this system to simulate the dynamics of individuals with pathological gait and to explore the biomechanical effects of treatments. OpenSim provides a platform on which the biomechanics community can build a library of simulations that can be exchanged, tested, analyzed, and improved through a multi-institutional collaboration. Developing software that enables a concerted effort from many investigators poses technical and sociological challenges. Meeting those challenges will accelerate the discovery of principles that govern movement control and improve treatments for individuals with movement pathologies.
运动的动态模拟使人们能够研究神经肌肉协调、分析运动表现,并估计肌肉骨骼系统的内部负荷。模拟还可用于识别病理性运动的根源,并为治疗规划建立科学依据。我们开发了一个免费的开源软件系统(OpenSim),用户可以使用该系统开发肌肉骨骼结构模型,并对各种运动进行动态模拟。我们正在使用这个系统来模拟病理性步态个体的动力学,并探索治疗的生物力学效果。OpenSim提供了一个平台,生物力学界可以在这个平台上构建一个模拟库,通过多机构合作对其进行交换、测试、分析和改进。开发能够让众多研究人员协同努力的软件会带来技术和社会学方面的挑战。应对这些挑战将加速发现运动控制的原理,并改善对患有运动障碍的个体的治疗。