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一种基于分数阶傅里叶变换的人工膝关节动作检测时频特征提取新方法。

A New Time-Frequency Feature Extraction Method for Action Detection on Artificial Knee by Fractional Fourier Transform.

作者信息

Wang Tianrun, Liu Ning, Su Zhong, Li Chao

机构信息

Beijing Key Laboratory of High Dynamic Navigation Technology, Beijing Information Science and Technology University, Beijing 100101, China.

Beijing Institute of Technology, School of Automation, Beijing 100084, China.

出版信息

Micromachines (Basel). 2019 May 20;10(5):333. doi: 10.3390/mi10050333.

Abstract

With the aim of designing an action detection method on artificial knee, a new time-frequency feature extraction method was proposed. The inertial data were extracted periodically using the microelectromechanical systems (MEMS) inertial measurement unit (IMU) on the prosthesis, and the features were extracted from the inertial data after fractional Fourier transform (FRFT). Then, a feature vector composed of eight features was constructed. The transformation results of these features after FRFT with different orders were analyzed, and the dimensions of the feature vector were reduced. The classification effects of different features and different orders are analyzed, according to which order and feature of each sub-classifier were designed. Finally, according to the experiment with the prototype, the method proposed above can reduce the requirements of hardware calculation and has a better classification effect. The accuracies of each sub-classifier are 95.05%, 95.38%, 91.43%, and 89.39%, respectively; the precisions are 78.43%, 98.36%, 98.36%, and 93.41%, respectively; and the recalls are 100%, 93.26%, 86.96%, and 86.68%, respectively.

摘要

为了设计一种针对人工膝关节的动作检测方法,提出了一种新的时频特征提取方法。利用假体上的微机电系统(MEMS)惯性测量单元(IMU)定期提取惯性数据,并在分数阶傅里叶变换(FRFT)后从惯性数据中提取特征。然后,构建了一个由八个特征组成的特征向量。分析了这些特征在不同阶数的FRFT后的变换结果,并对特征向量的维度进行了降维。分析了不同特征和不同阶数的分类效果,据此设计了每个子分类器的阶数和特征。最后,通过原型实验表明,上述方法可以降低硬件计算要求,具有较好的分类效果。每个子分类器的准确率分别为95.05%、95.38%、91.43%和89.39%;精确率分别为78.43%、98.36%、98.36%和93.41%;召回率分别为100%、93.26%、86.96%和86.68%。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/19ee/6562564/927d739b6e12/micromachines-10-00333-g001.jpg

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