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Modified local discriminant bases algorithm and its application in analysis of human knee joint vibration signals

机译:改进的局部判别基算法及其在人膝关节振动信号分析中的应用

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摘要

Knee joint disorders are common in the elderly population, athletes, and outdoor sports enthusiasts. These disorders are often painful and incapacitating. Vibration signals [vibroarthrographic (VAG)] are emitted at the knee joint during the swinging movement of the knee. These VAG signals contain information that can be used to characterize certain pathological aspects of the knee joint. In this paper, we present a noninvasive method for screening knee joint disorders using the VAG signals. The proposed approach uses wavelet packet decompositions and a modified local discriminant bases algorithm to analyze the VAG signals and to identify the highly discriminatory basis functions. We demonstrate the effectiveness of using a combination of multiple dissimilarity measures to arrive at the optimal set of discriminatory basis functions, thereby maximizing the classification accuracy. A database of 89 VAG signals containing 51 normal and 38 abnormal samples were used in this study. The features extracted from the coefficients of the selected basis functions were analyzed and classified using a linear-discriminant-analysis-based classifier. A classification accuracy as high as 80% was achieved using this true nonstationary signal analysis approach.
机译:膝关节疾病在老年人群,运动员和户外运动爱好者中很常见。这些疾病通常是痛苦且无能为力的。在膝盖的摆动过程中,在膝盖关节处发出振动信号[viararthrography(VAG)]。这些VAG信号包含可用于表征膝关节某些病理特征的信息。在本文中,我们提出了一种使用VAG信号筛查膝关节疾病的非侵入性方法。所提出的方法使用小波包分解和改进的局部判别基算法来分析VAG信号并识别高度区分基函数。我们证明了使用多种相异措施的组合来获得最佳的区分基函数集的有效性,从而最大程度地提高了分类准确性。这项研究使用了包含51个正常样本和38个异常样本的89个VAG信号数据库。使用基于线性判别分析的分类器对从所选基函数的系数中提取的特征进行分析和分类。使用这种真正的非平稳信号分析方法,可以实现高达80%的分类精度。

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