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Exploring the Potential of Large Language Models in Self-adaptive Systems

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arxiv 2401.07534 v1 pith:E42UTOY6 submitted 2024-01-15 cs.SE

classification cs.SE
keywords llmspotentialaspectsfieldslanguagelargeliteraturemodels
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Large Language Models (LLMs), with their abilities in knowledge acquisition and reasoning, can potentially enhance the various aspects of Self-adaptive Systems (SAS). Yet, the potential of LLMs in SAS remains largely unexplored and ambiguous, due to the lack of literature from flagship conferences or journals in the field, such as SEAMS and TAAS. The interdisciplinary nature of SAS suggests that drawing and integrating ideas from related fields, such as software engineering and autonomous agents, could unveil innovative research directions for LLMs within SAS. To this end, this paper reports the results of a literature review of studies in relevant fields, summarizes and classifies the studies relevant to SAS, and outlines their potential to specific aspects of SAS.

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Cited by 1 Pith paper

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    cs.HC 2025-09 conditional novelty 6.0 of 10

    Using interviews and a design workbook with 32 social media users, the study finds that AI clones may create convenience and comfort but also threaten authenticity, increase skepticism, and lead users to mimic their clones.

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