cs.AI updates on arXiv.org 10月10日 12:05
AI赋能动态心理健康评估
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本文提出将静态心理评估转变为AI驱动的连续评估,以应对ADHD等精神疾病的诊断限制,提出心理健康数字孪生作为个性化心理健康护理的革新框架。

arXiv:2510.07409v1 Announce Type: new Abstract: Static solutions don't serve a dynamic mind. Thus, we advocate a shift from static mental health diagnostic assessments to continuous, artificial intelligence (AI)-driven assessment. Focusing on Attention-Deficit/Hyperactivity Disorder (ADHD) as a case study, we explore how generative AI has the potential to address current capacity constraints in neuropsychology, potentially enabling more personalized and longitudinal care pathways. In particular, AI can efficiently conduct frequent, low-level experience sampling from patients and facilitate diagnostic reconciliation across care pathways. We envision a future where mental health care benefits from continuous, rich, and patient-centered data sampling to dynamically adapt to individual patient needs and evolving conditions, thereby improving both accessibility and efficacy of treatment. We further propose the use of mental health digital twins (MHDTs) - continuously updated computational models that capture individual symptom dynamics and trajectories - as a transformative framework for personalized mental health care. We ground this framework in empirical evidence and map out the research agenda required to refine and operationalize it.

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AI 心理健康评估 ADHD 数字孪生 个性化护理
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