用可解释AI分析学生职业焦虑抑郁,保护隐私还精准识别行为信号
Towards Transparent Mental Health Insights: An Explainable AI Model for Career-Related Depression and Anxiety Among University Students Using Structured Data
- 融合结构化数据与视频表情特征,通过注意力网络实现多模态融合
- 在巴基斯坦高校数据集上达F1 89.12%,准确率92.08%且支持跨机构协作训练
- 用SHAP等方法揭示回避眼神、表情减少等心理信号,适合教育心理支持场景
大学生职业焦虑与抑郁问题日益严重,影响心理健康与学业表现。本研究提出一种基于多模态数据与联邦学习(FL)的可解释人工智能(XAI)框架,以隐私保护且文化敏感的方式识别职业相关心理问题的早期指标。该框架通过中间融合神经网络结合结构化行为数据与面试视频中的面部情绪特征,并引入标签平滑提升模型泛化能力。采用联邦学习实现跨机构协作训练,无需共享原始数据。基于巴基斯坦高校学生的《学生心理健康调查》数据集进行评估,模型取得F1分数89.12%、召回率86.54%、准确率92.08%、精确率91.88%。利用集成梯度与SHAP方法,识别出回避直视、面部表情减少、社交退缩等抑郁关键行为标志,与心理学理论一致。该研究构建了一个可解释、可扩展且情境敏感的心理健康预诊断AI系统,具备全球范围内融入学生支持服务的潜力。
原文摘要 · Abstract (English)
Career anxiety and depression among university students present a growing challenge to mental health and academic achievement. This study proposes an Explainable AI (XAI) framework using multimodal data and Federated Learning (FL) to identify early indicators of career-related mental health problems in a privacy-preserving and culturally responsive manner. The framework combines structured behavioral data and facial emotion features from interview videos via an intermediate fusion neural network with attention mechanisms. Label smoothing was applied to improve model generalizability. FL was used across institutions to enable collaborative training without raw data sharing. Evaluation was conducted using the Student Mental Health Survey dataset from university students across Pakistan. Our model attained an F1-score of 89.12%, recall of 86.54%, accuracy of 92.08%, and precision of 91.88%. Using Integrated Gradients and SHAP, the model identified key behavioral markers of depression including avoidance of direct gaze, lower facial expressiveness, and social withdrawal, consistent with psychological theory. This research presents an interpretable, scalable, and context-sensitive AI system for mental health pre-diagnosis with potential integration into student support services globally.
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