用分阶段深度思考提升心理援助对话质量
DeepPsy-Agent: A Stage-Aware and Deep-Thinking Emotional Support Agent System
- 分阶段识别+深度分析,让对话更贴合心理干预节奏
- 比通用大模型高42.3%阶段识别贡献度,根因定位提升58.3%
- 适合心理服务系统开发者与智能咨询研究者
本文提出DeepPsy-Agent,一种融合心理学三阶段助人理论与深度学习的心理支持系统。系统包含两个核心组件:(1) 多阶段响应对话模型(deeppsy-chat),通过阶段感知与深度思考机制生成高质量回复;(2) 实时阶段转换检测模型,识别上下文变化以引导对话进入有效干预阶段。基于30,000条真实心理热线对话,采用AI模拟对话与专家重标注构建高质量多轮对话数据集。实验表明,DeepPsy-Agent在问题暴露完整性、认知重构成功率、行动采纳率等关键指标上优于通用大语言模型。消融实验证实,阶段信息贡献42.3%性能提升,深度思考模块使根因识别率提升58.3%,无效建议减少72.1%。该系统通过动态对话管理与深度推理,解决人工智能心理支持中的核心挑战,推动智能心理健康服务发展。
原文摘要 · Abstract (English)
This paper introduces DeepPsy-Agent, an innovative psychological support system that combines the three-stage helping theory in psychology with deep learning techniques. The system consists of two core components: (1) a multi-stage response-capable dialogue model (\textit{deeppsy-chat}), which enhances reasoning capabilities through stage-awareness and deep-thinking analysis to generate high-quality responses; and (2) a real-time stage transition detection model that identifies contextual shifts to guide the dialogue towards more effective intervention stages. Based on 30,000 real psychological hotline conversations, we employ AI-simulated dialogues and expert re-annotation strategies to construct a high-quality multi-turn dialogue dataset. Experimental results demonstrate that DeepPsy-Agent outperforms general-purpose large language models (LLMs) in key metrics such as problem exposure completeness, cognitive restructuring success rate, and action adoption rate. Ablation studies further validate the effectiveness of stage-awareness and deep-thinking modules, showing that stage information contributes 42.3\% to performance, while the deep-thinking module increases root-cause identification by 58.3\% and reduces ineffective suggestions by 72.1\%. This system addresses critical challenges in AI-based psychological support through dynamic dialogue management and deep reasoning, advancing intelligent mental health services.
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