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- W4381304071 abstract "With the availability of voice-enabled devices such as smartphones, mental health disorders such as depression could be detected and treated earlier, particularly post-pandemic. The current methods involve extracting features directly from audio signals. In this paper, two methods are used to enrich voice analysis for depression detection: the transformation of voice signals into a visibility graph and the natural language processing of the transcript text based on representational learning. The results of processing text and voice with different features are fused to produce final class labels. Experimental evaluation with the DAIC-WOZ dataset suggests that integrating text-based voice classification and learning from low-level and graph-based voice signal features can improve the detection of mental disorders like depression. Our text-based method has achieved %72.7 F1-score, which is higher than other single-modal scores. The fusion of all prediction models based on voice and text has resulted in %82.4 F1-score that outperforms other models." @default.
- W4381304071 created "2023-06-21" @default.
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- W4381304071 date "2023-01-01" @default.
- W4381304071 modified "2023-09-23" @default.
- W4381304071 title "Integration of Text and Graph-Based Features for Depression Detection Using Visibility Graph" @default.
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- W4381304071 doi "https://doi.org/10.1007/978-3-031-27440-4_32" @default.
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