AI Carbon Footprint: Measurement and Optimization for Green AI System
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Abstract
Industries have been revolutionized by artificial intelligence (AI), yet the energy and carbon emissions involved in training, fine-tuning, and serving AI models are increasing quickly. The methodical approach to measuring AI carbon footprints, designing optimization techniques, and implementing a Green AI system that reduces energy use without sacrificing performance is presented in this work. To demonstrate increased efficiency, we present an end-to-end framework, an algorithmic optimization model, and an experimental comparison with current methods.
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This work is licensed under a Creative Commons Attribution-NoDerivatives 4.0 International License.