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arXiv (Cornell University)
Towards Sustainable SecureML: Quantifying Carbon Footprint of Adversarial Machine Learning
March 2024 • Syed Mhamudul Hasan, Abdur R. Shahid, Ahmed Imteaj
The widespread adoption of machine learning (ML) across various industries has raised sustainability concerns due to its substantial energy usage and carbon emissions. This issue becomes more pressing in adversarial ML, which focuses on enhancing model security against different network-based attacks. Implementing defenses in ML systems often necessitates additional computational resources and network security measures, exacerbating their environmental impacts. In this paper, we pioneer the first investigation int…
Carbon Footprint
Ecological Footprint
Computer Science
Artificial Intelligence
Machine Learning
Geography
Greenhouse Gas
Archaeology
Oceanography