An innovative approach of gaining insight into motor skills involved in human body flight is proposed. The key idea is the creation of a model autonomous system capable of virtually performing skydiving maneuvers. A dynamic skydiver model and simulator is developed, comprising biomechanical, aerodynamic, and kinematic models, dynamic equations of motion, and a virtual reality environment. Limb relative orientations, and resulting inertial body angular position and velocity are measured in skydiving experiments in a vertical wind tunnel and in free fall. These experimental data are compared with corresponding simulation data to tune and verify the model for basic skydiving maneuvers. The model is further extended to reconstruct advanced aerial maneuvers, such as transitions between stable equilibria. The experimental data are used to estimate skydiver's conscious inputs as a function of time, via an Unscented Kalman Filter modified for this purpose.
翻译:提出了一种了解人体飞行中运动技能的创新方法。 关键的想法是创建一个能够实际进行跳伞操作的模型自主系统。 开发了一个动态的天空分位模型和模拟器, 其中包括生物机能模型、空气动力模型和运动模型、运动的动态方程式和虚拟现实环境。 在垂直风道和自由坠落的跳跃实验中, 测得林比向和由此产生的惯性体角位置和速度。 这些实验数据与相应的模拟数据进行了比较, 以调和和验证基本跳伞动作模型。 该模型进一步扩展至重建先进的空中动作, 如稳定平衡之间的转换。 实验数据被用来通过为此修改的不显性卡尔曼过滤器来估计天空分解器作为时间函数的自觉投入。