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A systematic review of gait analysis methods based on inertial sensors and adaptive algorithms

机译:基于惯性传感器和自适应算法的步态分析方法系统综述

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摘要

The conventional methods to assess human gait are either expensive or complex to be applied regularly in clinical practice. To reduce the cost and simplify the evaluation, inertial sensors and adaptive algorithms have been utilized, respectively. This paper aims to summarize studies that applied adaptive also called artificial intelligence (AI) algorithms to gait analysis based on inertial sensor data, verifying if they can support the clinical evaluation. Articles were identified through searches of the main databases, which were encompassed from 1968 to October 2016. We have identified 22 studies that met the inclusion criteria. The included papers were analyzed due to their data acquisition and processing methods with specific questionnaires. Concerning the data acquisition, the mean score is 6.1 +/- 1.62, what implies that 13 of 22 papers failed to report relevant outcomes. The quality assessment of AI algorithms presents an above-average rating (8.2 +/- 1.84). Therefore, AI algorithms seem to be able to support gait analysis based on inertial sensor data. Further research, however, is necessary to enhance and standardize the application in patients, since most of the studies used distinct methods to evaluate healthy subjects.
机译:评估人体步态的常规方法是在临床实践中定期应用的昂贵或复杂的。为了降低成本并简化评估,分别使用了惯性传感器和自适应算法。本文旨在总结应用自适应的研究,也称为人工智能(AI)算法基于惯性传感器数据,验证是否可以支持临床评估。通过搜索主要数据库的文章,这些产品包括从1968年到2016年10月到10月。我们已经确定了22项符合纳入标准的研究。由于其数据采集和处理方法具有特定问卷的数据采集和处理方法,分析了包含的论文。关于数据采集,平均得分为6.1 +/- 1.62,其中意味着22个文件中的13个未能报告相关结果。 AI算法的质量评估呈上述额外评级(8.2 +/- 1.84)。因此,AI算法似乎能够支持基于惯性传感器数据的步态分析。然而,进一步的研究是增强和标准化患者的应用,因为大多数研究使用了不同的方法来评估健康受试者。

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