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Pedro Mendes

1 accepted papers

2023

HyperJump: Accelerating HyperBand via Risk Modelling

AAAI 2023technical

In the literature on hyper-parameter tuning, a number of recent solutions rely on low-fidelity observations (e.g., training with sub-sampled datasets) to identify promising configurations to be tested via high-fidelity observations (e.g., using the full dataset). Among these, HyperBand is arguably o…