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논문 기본 정보

자료유형
학술저널
저자정보
이인애 (충남대학교) 성철재 (충남대학교)
저널정보
사단법인 한국언어학회 언어학 언어학 제88호
발행연도
2020.12
수록면
115 - 134 (20page)

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초록· 키워드

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Incomplete phonation of vocal cords seems to cause breathy voice. Vocal nodules and vocal polyps are typical functional voice disorders. This study aimed to find the acoustic parameters useful for discriminating these two groups. In this study, 56 subjects diagnosed with speech disorders (27 vocal nodules, 29 vocal polyps) were recruited, and the MDVP (Multidimensional Voice Program) played within CSL (Computerized Speech Lab. Kay Elemetrics Co., Model No. 4300) was used for recording sustained vowel /a/.
Praat (ver. 6.0.48) was used for acoustic analysis. Mann-Whitney U test showed that the MDVP parameters (excluding frequency-relevant variables) had no effect on discriminating two groups (vocal nodules vs. vocal polyps). However, when it comes to the cepstral parameters measured by Praat, there was statistically significant differences between groups: RNR (p<.o5), cepsPeak (p<.o5), quefrency (p<.o5), and CPP(p) <.o5) and cepslntercept (p<.o5). With respect to the relative rank of variable importance, quefrency has the highest rank, and rnr and CPP followed in order.
As a result of classification by the logistic regression model using these three variables, the overall classification accuracy for the training data was 81.4%, 94.4% for the vocal nodule group, and 68.4% for the vocal polyp group. In test data, nodules were 100% and vocal fold polyps were 30%. Although the overall classification accuracy was 65%, the classification accuracy of the polyps was too low, making it difficult to trust the model.
In the case of the svm (support vector machine) model, the overall classification ratio of the training data was 94.6% (nodules (17/18)=94.4%, polyps (18/19)=94.7%). The overall classification accuracy of the test data was found to be 68.4% (nodule (6/9) = 66.7%. Polyp (7/10) = 70%). It was found that, therefore, the performance of the svm was higher and more stable.

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