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ERI: Back Propagation-Free Machine Learning for Split Neural Networks in Distributed Edge Systems

US NSF grant open #nsf-2552997

Summary

This NSF ERI project aims to make collaborative machine learning more practical for real-world edge systems where data are distributed across devices, and networks often differ in speed, reliability, and computing capability. Today, many distributed learning methods require each device to train a full neural network or to exchange large amount of information during training, which can be costly for edge devices such as wearables, mobile devices, and other resource-limited platforms. The project will develop a new class of split learning methods that avoid the heavy communication required by st

ERI: Back Propagation-Free Machine Learnin…
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