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학술논문

Detecting Manic State of Bipolar Disorder Based on Support Vector Machine and Gaussian Mixture Model Using Spontaneous Speech

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영문명
발행기관
대한신경정신의학회
저자명
Zhongde Pan Chao Gui Jing Zhang Jie Zhu Donghong Cui
간행물 정보
『Psychiatry Investigation』제15권 제7호, 695~700쪽, 전체 6쪽
주제분류
의약학 > 정신과학
파일형태
PDF
발행일자
2018.07.31
4,000

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Objective This study was aimed to compare the accuracy of Support Vector Machine (SVM) and Gaussian Mixture Model (GMM) in the detection of manic state of bipolar disorders (BD) of single patients and multiple patients. Methods 21 hospitalized BD patients (14 females, average age 34.5±15.3) were recruited after admission. Spontaneous speech was collected through a preloaded smartphone. Firstly, speech features [pitch, formants, mel-frequency cepstrum coefficients (MFCC), linear prediction cepstral coefficient (LPCC), gamma-tone frequency cepstral coefficients (GFCC) etc.] were preprocessed and extracted. Then, speech features were selected using the features of between-class variance and within-class variance. The manic state of patients was then detected by SVM and GMM methods. Results LPCC demonstrated the best discrimination efficiency. The accuracy of manic state detection for single patients was much better using SVM method than GMM method. The detection accuracy for multiple patients was higher using GMM method than SVM method. Conclusion SVM provided an appropriate tool for detecting manic state for single patients, whereas GMM worked better for multiple patients’ manic state detection. Both of them could help doctors and patients for better diagnosis and mood state monitoring in different situations.

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INTRODUCTION
METHODS
RESULTS
DISCUSSION

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APA

Zhongde Pan,Chao Gui,Jing Zhang,Jie Zhu,Donghong Cui. (2018).Detecting Manic State of Bipolar Disorder Based on Support Vector Machine and Gaussian Mixture Model Using Spontaneous Speech. Psychiatry Investigation, 15 (7), 695-700

MLA

Zhongde Pan,Chao Gui,Jing Zhang,Jie Zhu,Donghong Cui. "Detecting Manic State of Bipolar Disorder Based on Support Vector Machine and Gaussian Mixture Model Using Spontaneous Speech." Psychiatry Investigation, 15.7(2018): 695-700

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