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首页> 外文期刊>Indian journal of chemical technology >Improving estimation of body lengths using extended Kalman Filter for squat movement
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Improving estimation of body lengths using extended Kalman Filter for squat movement

机译:使用扩展的卡尔曼滤波器进行下蹲运动,改善体长的估计

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Modeling and analyzing of human movements has become easier with the development of sensor technologies. Human movements can be modeled using image processing software with depth and motion sensors in 3D. Measurement errors are also observed in motion detection sensors as in most systems. Special filters have to be developed for each system in order to minimize this error rate and obtain more realistic measurements. Kalman Filter is a well-known method that is commonly used to minimize this type of measurement errors. In this study, the actual body lengths (upper arm, forearm, lower leg, upper leg) are measured and obtained from the human motion sensor. Kalman Filter and Extended Kalman Filter are applied to the obtained data from human motion sensor. All measurements are compared with the actual body lengths and error rate is calculated as using Mean Absolute Percentage Error (MAPE). Kinect data are compared with actual lengths and error rates were calculated at 20%, when the Kalman Filter is applied, the error rate decreased to 14%, while when the Extended Kalman filter is applied, it dropped to 8%. Human motion sensor data have been improved with using Extended Kalman Filter. Thus, actual measurements of candidatescan be easily obtained with only one useful sensor without taking any actual measurements by saving time and budget.
机译:随着传感器技术的发展,人体运动的建模和分析变得更加容易。可以使用带有3D深度和运动传感器的图像处理软件对人体运动进行建模。与大多数系统一样,在运动检测传感器中也观察到测量误差。必须为每个系统开发专用的滤波器,以最小化此错误率并获得更实际的测量结果。卡尔曼滤波器是一种众所周知的方法,通常用于最小化此类测量误差。在这项研究中,实际的身体长度(上臂,前臂,小腿,大腿)被测量并从人体运动传感器获得。卡尔曼滤波器和扩展卡尔曼滤波器应用于从人体运动传感器获得的数据。将所有测量值与实际车身长度进行比较,并使用平均绝对百分比误差(MAPE)计算误差率。将Kinect数据与实际长度进行比较,错误率计算为20%,当应用卡尔曼滤波器时,错误率降至14%,而当应用扩展卡尔曼滤波器时,错误率降至8%。人体运动传感器数据已通过使用扩展卡尔曼滤波器得到了改善。因此,仅通过一个有用的传感器就可以容易地获得候选的实际测量值,而无需通过节省时间和预算进行任何实际测量。

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