
International Journal For Multidisciplinary Research
E-ISSN: 2582-2160
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Impact Factor: 9.24
A Widely Indexed Open Access Peer Reviewed Multidisciplinary Bi-monthly Scholarly International Journal
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Volume 7 Issue 3
May-June 2025
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AI-Powered Depression Detection Using Text and Speech
Author(s) | Mr. Ranjith Durgunala, Mr. Tharun Nalamasu, Ms. Shruthika Baswa, Ms. Vaishnavi Sama |
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Country | India |
Abstract | Depression is a growing global concern, affecting millions of individuals and often going undiagnosed due to stigma and lack of access to mental health professionals. This project aims to develop an AI powered system for early detection of depression using text and speech analysis. The model leverages Natural Language Processing (NLP) to analyze textual input for depressive language patterns and Machine Learning (ML) techniques to detect vocal features associated with depression from speech samples. By integrating sentiment analysis, emotion detection, and acoustic feature extraction, the system can assess linguistic and vocal cues indicative of depressive tendencies. The model will be trained on datasets containing both text-based conversations and speech recordings labeled for depression severity. The goal is to create an assistive tool that can help mental health professionals with early screening and intervention, ultimately improving mental health outcomes. |
Field | Engineering |
Published In | Volume 7, Issue 3, May-June 2025 |
Published On | 2025-05-20 |
DOI | https://doi.org/10.36948/ijfmr.2025.v07i03.45385 |
Short DOI | https://doi.org/g9kvdb |
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E-ISSN 2582-2160

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IJFMR DOI prefix is
10.36948/ijfmr
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