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Unveiling Environmental Impacts of Large Language Model Serving: A Functional Unit View

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arxiv 2502.11256 v2 pith:54FAUDIW submitted 2025-02-16 cs.LG cs.ARcs.CL

classification cs.LGcs.ARcs.CL
keywords carbonemissionsenvironmentalmodelservingbasisfuelfunctional
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Large language models (LLMs) offer powerful capabilities but come with significant environmental impact, particularly in carbon emissions. Existing studies benchmark carbon emissions but lack a standardized basis for comparison across different model configurations. To address this, we introduce the concept of functional unit (FU) as a standardized basis and develop FUEL, the first FU-based framework for evaluating LLM serving's environmental impact. Through three case studies, we uncover key insights and trade-offs in reducing carbon emissions by optimizing model size, quantization strategy, and hardware choice, paving the way for more sustainable LLM serving. The code is available at https://github.com/jojacola/FUEL.

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Cited by 1 Pith paper

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

  1. The Generative Energy Arena (GEA): Incorporating Energy Awareness in Large Language Model (LLM) Human Evaluations

    cs.AI 2025-07 reject novelty 4.0 of 10

    In a public LLM comparison arena, showing users that the larger model consumes more energy caused about 46% of users who preferred it to say they would switch to the smaller model.

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