A New Approach for Discriminating the Acoustic Signals: Largest Area Parameter (LAP)

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Date

2018

Authors

Ankishan, Haydar
Inam, S. Cagdas

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Abstract

Feature extraction of sound signals is essential for the performance of applications such as pattern and voice recognition etc. In this study, a method based on a novel feature is proposed to separate pathological human voice signals from healthy ones as well as to separate subgroups of pathological voices from each other. The voices are examined in time-frequency domain. Their differences obtained from the results of the proposed method are investigated and the mechanism of the method is demonstrated using experimental cases. It is concluded that the method succeeds to discriminate the voices marked "healthy" and "pathological".

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Keywords

Voice Disorders, Acoustic Signal Processing, Voice Disorder Detection, Feature Extraction

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