Energy-Aware Data-Driven Model Selection in LLM-Orchestrated AI Systems

By: Daria Smirnova, Hamid Nasiri, Marta Adamska, Zhengxin Yu, Peter Garraghan

Published: 2025-12-28

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Abstract

This paper addresses energy consumption in AI systems orchestrated by Large Language Models (LLMs) by proposing an energy-aware, data-driven model selection strategy. This research is critical for developing more sustainable and efficient AI solutions, especially as LLM usage grows, with direct real-world impact on green computing and operational costs.

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