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ExploreSelf: Fostering User-driven Exploration and Reflection on Personal Challenges with Adaptive Guidance by Large Language Models

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arxiv 2409.09662 v3 pith:CZN5DROP submitted 2024-09-15 cs.HC cs.AIcs.CL

classification cs.HCcs.AIcs.CL
keywords adaptivechallengesexploreselfguidanceparticipantspersonalreflectivecontrol
verification ladder T0 review T1 audit T2 compute T3 formal
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Expressing stressful experiences in words is proven to improve mental and physical health, but individuals often disengage with writing interventions as they struggle to organize their thoughts and emotions. Reflective prompts have been used to provide direction, and large language models (LLMs) have demonstrated the potential to provide tailored guidance. However, current systems often limit users' flexibility to direct their reflections. We thus present ExploreSelf, an LLM-driven application designed to empower users to control their reflective journey, providing adaptive support through dynamically generated questions. Through an exploratory study with 19 participants, we examine how participants explore and reflect on personal challenges using ExploreSelf. Our findings demonstrate that participants valued the flexible navigation of adaptive guidance to control their reflective journey, leading to deeper engagement and insight. Building on our findings, we discuss the implications of designing LLM-driven tools that facilitate user-driven and effective reflection of personal challenges.

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Cited by 1 Pith paper

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score.

  1. "I made this (sort of)": Negotiating authorship, confronting fraudulence, and exploring new musical spaces with prompt-based AI music generation

    cs.SD 2025-07 unverdicted novelty 5.0 of 10

    Prompt-based AI music platforms produce polished, professional-sounding output, but the author argues they cannot reproduce unpolished novice performance, a gap he explores with two albums and an LLM-mediated self-interview.

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