a hybrid of genetic algorithm and gaussian mixture model for features reduction and detection of vocal fold pathology

نویسندگان

vahid majidnezhad

igor kheidorov

چکیده

acoustic analysis is a proper method in vocal fold pathology diagnosis so that itcan complement and in some cases replace the other invasive, based on direct vocalfold observation, methods. there are different approaches and algorithms for vocalfold pathology diagnosis. these algorithms usually have three stages which arefeature extraction, feature reduction and classification. in this paper initial studyof feature extraction and feature reduction in the task of vocal fold pathologydiagnosis has been presented. a new type of feature vector, based on wavelet packetdecomposition and mel-frequency-cepstral-coefficients (mfccs), is proposed.also a new ga-based method for feature reduction stage is proposed and comparedwith conventional methods such as principal component analysis (pca). gaussianmixture model (gmm) is used as a classifier for evaluating the performance of theproposed method. the results show the priority of the proposed method incomparison with current methods.

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عنوان ژورنال:
journal of advances in computer research

ناشر: sari branch, islamic azad university

ISSN 2345-606X

دوره 4

شماره 2 2013

میزبانی شده توسط پلتفرم ابری doprax.com

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