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Extraction of Human Gait Signatures: An Inverse Kinematic Approach Using Groebner Basis Theory Applied to Gait Cycle Analysis

机译:人体步态特征的提取:使用Groebnner基础理论的反向运动方法应用于步态循环分析

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This research highlights the results obtained from applying the method of inverse kinematics, using Groebner basis theory, to the human gait cycle to extract and identify lower extremity gait signatures. The increased threat from suicide bombers and the force protection issues of today have motivated a team at Air Force Institute of Technology (AFIT) to research pattern recognition in the human gait cycle. The purpose of this research is to identify gait signatures of human subjects and distinguish between subjects carrying a load to those subjects without a load. These signatures were investigated via a model of the lower extremities based on motion capture observations, in particular, foot placement and the joint angles for subjects affected by carrying extra load on the body. The human gait cycle was captured and analyzed using a developed toolkit consisting of an inverse kinematic motion model of the lower extremity and a graphical user interface. Hip, knee, and ankle angles were analyzed to identify gait angle variance and range of motion. Female subjects exhibited the most knee angle variance and produced a proportional correlation between knee flexion and load carriage.
机译:该研究突出了利用GROEBNER基础理论将逆运动学方法应用于人体步态循环来提取和识别下肢步态特征的结果。自杀炸弹袭击者的威胁增加以及今天的力量保护问题的威胁已经激励了一个团队在空军理工学院(AFIT),以研究人类步态周期的模式识别。该研究的目的是识别人类受试者的步态特征,并区分载有负荷的受试者而没有负荷。通过基于运动捕获观察的下肢模型来研究这些签名,特别是足部放置和受到身体上额外负载影响的受试者的关节角度。使用由下肢的反向运动模型和图形用户界面组成的开发工具包来捕获和分析人体步态周期。分析臀部,膝关节和脚踝角度以识别步态角度方差和运动范围。女性受试者表现出最膝盖的角度方差,并产生膝关节屈曲和载荷之间的比例相关性。

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