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An efficient approach to detecting mental illness on online social media platforms by using multidimensional textual
Faheem Ahmad Wagay1, Jahiruddin1
1Department of Computer Science, Jamia Millia Islamia University, Jamia Nagar, New Delhi 110025, India.
Background:
Mental illness detection on online social media platforms has become an increasingly critical research area. Existing approaches typically rely on a single type of textual feature, such as word embeddings or sentiment analysis, which limits their ability to capture the nuanced and multidimensional nature of user-generated content.
Objective:
This study aims to improve the detection of mental illness in social media posts by introducing a model that integrates multiple dimensions of textual information, thereby enhancing classification performance across varied datasets.
Methods:
We propose a novel model that combines several textual features, including word embeddings, sentiment scores, emotional tones, and topical context. The performance of our model was evaluated against multiple state-of-the-art text classification baselines using two real-world Reddit datasets that vary in size and class distribution.
Results:
Our model demonstrated superior performance across several evaluation metrics, including precision, recall, Matthews Correlation Coefficient (MCC), and F1 score. It achieved an accuracy of 75.13% on a larger dataset and 69.49% on a smaller or more diverse dataset. These results highlight the robustness and adaptability of our model across different data conditions.
Conclusion:
The integration of multidimensional textual features significantly enhances the accuracy and generalizability of mental illness detection models. Our approach provides a promising direction for future research and practical applications in mental health monitoring on social media platforms.
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