arXiv:2508.03399cs.CL2025-08中稿 · as a resource pape…被引 9

构建首个基于DSM-5的Reddit抑郁症状标注数据集,支持精准检测与可解释分析

ReDSM5: A Reddit Dataset for DSM-5 Depression Detection

  • 以心理学专家逐句标注1484篇长文,覆盖DSM-5九类抑郁症状
  • 首次实现症状级标注与临床推理说明结合,提升模型可解释性
  • 提供多标签分类与解释生成双基准,助力可解释抑郁症检测研究

抑郁症是全球影响数亿人的常见精神健康问题,但因传统诊疗障碍和污名化,大量病例未被诊断。社交媒体平台(尤其是Reddit)提供了丰富的用户自述内容,可揭示早期抑郁迹象。然而,现有计算方法通常仅将整篇帖子标记为“抑郁”或“非抑郁”,未能关联到DSM-5标准中的具体症状,限制了临床意义与可解释性。为此,我们提出ReDSM5,一个包含1484篇长文的新型Reddit语料库,每篇由持证心理医生在句子层面进行九类DSM-5抑郁症状标注,并附有基于DSM-5方法的简明临床推理。我们对数据集开展探索性分析,考察语言、句法与情绪模式如何体现症状表达。相比已有资源,ReDSM5独特融合症状特异性标注与专家解释,支持开发不仅能检测抑郁、还能生成人类可理解推理的模型。我们建立了多标签症状分类与解释生成的基线基准,为未来检测与可解释性研究提供参考。

原文摘要 · Abstract (English)

Depression is a pervasive mental health condition that affects hundreds of millions of individuals worldwide, yet many cases remain undiagnosed due to barriers in traditional clinical access and pervasive stigma. Social media platforms, and Reddit in particular, offer rich, user-generated narratives that can reveal early signs of depressive symptomatology. However, existing computational approaches often label entire posts simply as depressed or not depressed, without linking language to specific criteria from the DSM-5, the standard clinical framework for diagnosing depression. This limits both clinical relevance and interpretability. To address this gap, we introduce ReDSM5, a novel Reddit corpus comprising 1484 long-form posts, each exhaustively annotated at the sentence level by a licensed psychologist for the nine DSM-5 depression symptoms. For each label, the annotator also provides a concise clinical rationale grounded in DSM-5 methodology. We conduct an exploratory analysis of the collection, examining lexical, syntactic, and emotional patterns that characterize symptom expression in social media narratives. Compared to prior resources, ReDSM5 uniquely combines symptom-specific supervision with expert explanations, facilitating the development of models that not only detect depression but also generate human-interpretable reasoning. We establish baseline benchmarks for both multi-label symptom classification and explanation generation, providing reference results for future research on detection and interpretability.

抑郁症检测情感分析可解释AIDSM-5

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