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arxiv:2601.22345

Failing to Explore: Language Models on Interactive Tasks

Published on Jan 29
ยท Submitted by
Mahdi JafariRaviz
on Feb 6
Authors:
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Abstract

Language models exhibit limited exploration capabilities in interactive environments, with performance improvements achieved through budget allocation strategies and historical summarization techniques.

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We evaluate language models on their ability to explore interactive environments under a limited interaction budget. We introduce three parametric tasks with controllable exploration difficulty, spanning continuous and discrete environments. Across state-of-the-art models, we find systematic under-exploration and suboptimal solutions, with performance often significantly worse than simple explore--exploit heuristic baselines and scaling weakly as the budget increases. Finally, we study two lightweight interventions: splitting a fixed budget into parallel executions, which surprisingly improves performance despite a no-gain theoretical result for our tasks, and periodically summarizing the interaction history, which preserves key discoveries and further improves exploration.

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LLMs fail to explore.

arXivLens breakdown of this paper ๐Ÿ‘‰ https://arxivlens.com/PaperView/Details/failing-to-explore-language-models-on-interactive-tasks-6658-5ba055fc

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