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Classification of closed and open shell pistachio nuts using principal component analysis of impact acoustics

机译:使用撞击声的主成分分析对开开心果开心果进行分类

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摘要

An algorithm was developed to separate pistachio nuts with closed-shells from those with open-shells. It was observed that upon impact on a steel plate, nuts with closed-shells emit different sounds than nuts with open-shells. Two feature vectors extracted from the sound signals were melcepstrum coefficients and eigenvalues obtained from the principle component analysis of the autocorrelation matrix of the signals. Classification of a sound signal was done by linearly combining feature vectors from both mel-cepstrum and PCA feature vectors. An important property of the algorithm is that it is easily trainable. During the training phase, sounds of the nuts with closed-shells and open-shells were used to obtain a representative vector of each class. The accuracy of closed-shell nuts was more than 99% on the test set.
机译:开发了一种算法,可将带开壳的开心果与带开壳的开心果分开。据观察,在撞击钢板时,具有封闭壳的螺母发出的声音与具有开放壳的螺母不同。从声音信号中提取的两个特征向量是半后频谱系数和从信号的自相关矩阵的主成分分析获得的特征值。声音信号的分类是通过将mel-cepstrum和PCA特征向量的特征向量线性组合来完成的。该算法的一个重要特性是它易于训练。在训练阶段,使用带有开壳和开壳螺母的声音来获得每个类的代表向量。在测试装置上,闭壳螺母的精度超过99%。

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