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Acoustic Analysis and Assessment of the Knee in Osteoarthritis During Walking

机译:行走过程中骨关节炎的膝关节声学分析和评估

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We examine the relation between the sounds emitted by the knee joint during walking and its condition, with particular focus on osteoarthritis, and investigate their potential for noninvasive detection of knee pathology. We present a comparative analysis of several features and evaluate their discriminant power for the task of normal-abnormal signal classification. We statistically evaluate the feature distributions using the two-sample Kolmogorov-Smirnov test and the Bhattacharyya distance. We propose the use of 11 statistics to describe the distributions and test with several classifiers. In our experiments with 249 normal and 297 abnormal acoustic signals from 40 knees, a Support Vector Machine with linear kernel gave the best results with an error rate of 13.9%.
机译:我们检查了步行过程中膝关节发出的声音与其状况之间的关系,特别是骨关节炎,并研究了它们在无创检测膝盖病理学方面的潜力。我们提出了几种功能的比较分析,并评估了它们对正常-异常信号分类任务的判别力。我们使用两个样本的Kolmogorov-Smirnov检验和Bhattacharyya距离对特征分布进行统计评估。我们建议使用11个统计量来描述分布并使用多个分类器进行测试。在我们的实验中,使用来自40个膝盖的249个正常和297个异常声音信号,带有线性核的Support Vector Machine提供了最佳结果,错误率为13.9 \%。

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