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Sensory-motor control with large language models via iterative policy refinement

Jonata Tyska Carvalho et al · Nature Portfolio · 2026

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Abstract We propose a method that enables large language models (LLMs) to control embodied agents through the generation of control policies that directly map continuous observation vectors to continuous action vectors. At the outset, the LLMs generate a control strategy based on a textual description of the agent, its environment, and the intended goal. This strategy is then iteratively refined through a learning process in which the LLMs are repeatedly prompted to improve the current strategy, using performance feedback and sensory-motor data collected during its evaluation. The method is validated on classic control tasks from the Gymnasium library and the inverted pendulum task from the MuJoCo library. The approach proves effective with relatively compact models such as GPT-oss:120b and Qwen2.5:72b. In most cases, it successfully identifies optimal or near-optimal solutions by integrating symbolic knowledge derived through reasoning with sub-symbolic sensory-motor data gathered as the agent interacts with its environment.

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APA 7

al, J. T. C. E. (2026). Sensory-motor control with large language models via iterative policy refinement. https://doi.org/10.1038/s41598-026-42091-0

MLA

al, Jonata Tyska Carvalho et. "Sensory-motor control with large language models via iterative policy refinement." 2026. https://doi.org/10.1038/s41598-026-42091-0.

Chicago

al, Jonata Tyska Carvalho et. 2026. "Sensory-motor control with large language models via iterative policy refinement.". https://doi.org/10.1038/s41598-026-42091-0.

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al, J. T. C. E. 2026, Sensory-motor control with large language models via iterative policy refinement, Nature Portfolio, available at: https://doi.org/10.1038/s41598-026-42091-0 [Accessed 7 Aug. 2026].

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Title
Sensory-motor control with large language models via iterative policy refinement
Author / contributors
Jonata Tyska Carvalho et al
Publisher
Nature Portfolio
Publication year
2026
ISSN
2045-2322
ISSN
2045-2322
Language
English
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