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An orthogonal least square approach to select features of infant cry with asphyxia

机译:正交最小二乘法选择婴儿窒息性哭泣特征

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摘要

An investigation into the feature extraction and selection of infant cry with asphyxia is presented in this paper. The feature of the cry signal was extracted using mel frequency cepstrum coefficient (MFCC) analysis and the significant coefficients were selected using orthogonal least square (OLS) algorithm. The effect of varying the number of MFCC filter banks on the feature selection was examined. It was found that the best set of coefficients could be achieved when 40 filter banks were used.
机译:本文对窒息性婴儿啼哭的特征提取和选择进行了研究。使用梅尔频率倒谱系数(MFCC)分析提取哭声信号的特征,并使用正交最小二乘(OLS)算法选择有效系数。研究了改变MFCC滤波器组数量对功能选择的影响。已经发现,当使用40个滤波器组时,可以获得最佳的系数集。

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