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Research PaperResearchia:202605.27060

Greening AI Inference with Accuracy and Latency-aware User Incentives

Vasilios A. Siris

Abstract

The widespread use of AI services has raised concerns for its environmental sustainability, towards which recent studies have identified carbon emissions of AI inference as the major contributor. This paper introduces a framework for designing AI inference incentives based on the users' valuation for inference quality and latency, together with their environmental consciousness, while accounting for the tradeoff between carbon emissions and the two QoE parameters. Our approach can accommodate di...

Submitted: May 27, 2026Subjects: Machine Learning; Data Science

Description / Details

The widespread use of AI services has raised concerns for its environmental sustainability, towards which recent studies have identified carbon emissions of AI inference as the major contributor. This paper introduces a framework for designing AI inference incentives based on the users' valuation for inference quality and latency, together with their environmental consciousness, while accounting for the tradeoff between carbon emissions and the two QoE parameters. Our approach can accommodate different tradeoffs, that depend on the size and complexity of the AI models and the allocation of resources to serve inference requests. The incentives can be offered through a practical two-tier service subscription that offers users a discount in exchange for reduced carbon emissions. The discounted service option gives the AI provider the flexibility to serve some percentage of inference requests at a lower quality and higher latency during periods of high carbon intensity.


Source: arXiv:2605.27309v1 - http://arxiv.org/abs/2605.27309v1 PDF: https://arxiv.org/pdf/2605.27309v1 Original Link: http://arxiv.org/abs/2605.27309v1

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Submission Info
Date:
May 27, 2026
Topic:
Data Science
Area:
Machine Learning
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