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A wearable inertial-sensing-based body sensor network for shoulder range of motion assessment

机译:可穿戴式基于惯性传感的人体传感器网络,用于评估肩膀的运动范围

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This paper presents a wearable inertial-sensing-based body sensor network (BSN) composed of two inertial modules that are placed on human upper limb for real-time human motion capture applications. Each inertial module consists of an ARM-based 32-bit microcontroller (MCU), a triaxial accelerometer, a triaxial gyroscope, and a triaxial magnetometer. To estimate shoulder range of motion (ROM), the accelerations, angular velocities, and magnetic signals are collected and processed by a quaternion-based complementary nonlinear filter for minimizing the cumulative errors caused by the intrinsic noise/drift of the inertial sensors. The proposed BSN is a cost-effective tool and can be used anywhere without any external reference device for shoulder ROM. The sensor fusion algorithm can reduce orientation error effectively and thus can assess shoulder joint motions accurately.
机译:本文提出了一种基于可穿戴式基于惯性传感的人体传感器网络(BSN),该网络由两个惯性模块组成,这些模块放置在人体上肢上,用于实时人体运动捕捉应用。每个惯性模块均由基于ARM的32位微控制器(MCU),三轴加速度计,三轴陀螺仪和三轴磁力计组成。为了估计运动的肩部范围(ROM),通过基于四元数的互补非线性滤波器收集并处理加速度,角速度和磁信号,以最小化由惯性传感器的固有噪声/漂移引起的累积误差。拟议的BSN是一种具有成本效益的工具,可以在没有任何外部ROM的外部参考设备的任何地方使用。传感器融合算法可以有效地减少定向误差,从而可以准确地评估肩关节的运动。

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