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At The ML.ENERGY Initiative, we are working on building efficient ways of measuring, understanding, optimizing, and exposing the energy consumption of modern Machine Learning applications.
We make serious efforts to make all of our research outcomes to be usable in the real world.
2 sponsors have funded ml-energy’s work.
Featured work
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ml-energy/zeus
Measure and optimize the energy consumption of your AI applications!
Python 332 -
ml-energy/leaderboard-v2
A canonical source of GenAI energy benchmark and meausrements
Python 50 -
ml-energy/lowtime
A time-cost tradeoff problem solver
Python 11 -
ml-energy/amdsmi
Python bindings for ROCm/AMDSMI
Python 3