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Sound Classification by the TIAGo Service Robot for Healthcare Applications

机译:Tiago Service Robot为医疗保健应用的声音分类

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The goal of this research is to compare several classification algorithms to determine the effect of the features number for Linear Predictive Coding and Linear Predictive Cepstral Coefficients upon the averaged correct classification rate, in the context of audio signals, part of them used in healthcare applications, recorded by a service robot. The standard deviation and the required computation time, in the case of every classifier, are also illustrated. The best correct classification rate was obtained in the case of Linear Predictive Cepstral Coefficients using Support Vector Machines, for 10-fold cross-validation.
机译:该研究的目标是比较若干分类算法,以确定线性预测编码和线性预测谱系齐地区的特征数量在平均正确的分类率下,在音频信号的上下文中,其中部分用于医疗保健应用程序的一部分, 由服务机器人录制。 还示出了标准偏差和所需的计算时间,在每个分类器的情况下也是如此。 在使用支撑载体机器的线性预测性倒核系数的情况下获得了最佳的正确分类速率,用于10倍交叉验证。

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