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MRI India Journals Vol. 13 No. 2S (2026): Special Issue: ICSAIEM

Sustainable Artificial Intelligence: Balancing Performance, Energy Consumption, and Applications

Authors

  • Atharva Sawant Department of Artificial Intelligence and Data Science, Dr. D. Y. Patil College of Engineering and Innovation, Pune, India.
  • Shweta Salgaonkar Department of Artificial Intelligence and Data Science, Dr. D. Y. Patil College of Engineering and Innovation, Pune, India.
  • Ruhi Angre Department of Artificial Intelligence and Data Science, Dr. D. Y. Patil College of Engineering and Innovation, Pune, India.
  • Dipannita Mondal Department of Artificial Intelligence and Data Science, Dr. D. Y. Patil College of Engineering and Innovation, Pune, India.

Keywords:

Green AI Sustainable Artificial Intelligence Energy Consumption Machine Learning Carbon Footprint Energy-Efficient Computing

Abstract

The last few years have seen AI advance at a frankly dizzying pace. We've gotten better medical diagnostics, smarter climate models, real-time language translation — the works. But here's the uncomfortable part nobody likes to talk about: the systems behind these breakthroughs are enormous, and enormous systems eat enormous amounts of electricity. That electricity, more often than not, still comes from fossil fuels. This paper looks at what people in the field are calling "green AI" — the idea that we can keep pushing the technology forward without quietly burning the planet in the process. We'll go over where all that energy actually goes during machine learning, and what developers can realistically do about it.

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Published

2026-07-05

How to Cite

Sawant, A., Salgaonkar, S., Angre, R., & Mondal, D. (2026). Sustainable Artificial Intelligence: Balancing Performance, Energy Consumption, and Applications. Multidisciplinary Journal of Research in Engineering and Technology, 13(2S), 330–335. Retrieved from https://journals.mriindia.com/index.php/mjret/article/view/4038

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