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LLMを活用した社会不安障害向けイメージ暴露療法の支援ツール
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ポイント
- 社会不安障害の治療法であるイメージ暴露療法を支援するLLM搭載ツールを開発しました。
- クライアントに合わせたシナリオを生成し、治療効果を高め、利用を促進することが期待されます。
- 臨床評価の結果、不安を誘発する状況への準備を支援し、即時的な適応を可能にすることが示されました。
Abstract
Social anxiety (SA) is a prevalent mental health challenge that significantly impacts daily social interactions. Imaginal Exposure (IE), a Cognitive Behavioral Therapy (CBT) technique involving imagined anxiety-provoking scenarios, is effective but underutilized, in part because traditional IE homework requires clients to construct and sustain clinically relevant fear narratives. In this work, we explore the feasibility of an LLM-enabled tool that supports IE by generating vivid, personalized exposure scripts. We first co-designed ImaginalExpoBot with mental health professionals, followed by a formative evaluation with five therapists and a user study involving 19 individuals experiencing SA symptoms. Our findings show that LLM-enabled support can facilitate preparation for anxiety-inducing situations while enabling immediate, user-specific adaptation, with scenarios remaining within a therapeutically beneficial "window of tolerance". Our participants and MHPs also identified limitations in continuity and customization, pointing to the need for deeper adaptivity in future designs. These findings offer preliminary design insights for integrating LLMs into structured therapeutic practices in accessible, scalable ways.
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