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Efficient and Robust Machine Learning for Real-World Systems
[article]
2018
arXiv
pre-print
While machine learning is traditionally a resource intensive task, embedded systems, autonomous navigation and the vision of the Internet-of-Things fuel the interest in resource efficient approaches. These approaches require a carefully chosen trade-off between performance and resource consumption in terms of computation and energy. On top of this, it is crucial to treat uncertainty in a consistent manner in all but the simplest applications of machine learning systems. In particular, a
arXiv:1812.02240v1
fatcat:jahaqvscgbfrliraitk4ycmkfy