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Acoustic analysis assessment in speech pathology detection

Daria PanekAndrzej SkalskiJanusz GajdaRyszard Tadeusiewicz — 2015

International Journal of Applied Mathematics and Computer Science

Automatic detection of voice pathologies enables non-invasive, low cost and objective assessments of the presence of disorders, as well as accelerating and improving the process of diagnosis and clinical treatment given to patients. In this work, a vector made up of 28 acoustic parameters is evaluated using principal component analysis (PCA), kernel principal component analysis (kPCA) and an auto-associative neural network (NLPCA) in four kinds of pathology detection (hyperfunctional dysphonia,...

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