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Graduated Optimization of Black-Box Functions

  • arXiv (Cornell University)
  • Cornell University
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Abstract

Motivated by the problem of tuning hyperparameters in machine learning, we present a new approach for gradually and adaptively optimizing an unknown function using estimated gradients. We validate the empirical performance of the proposed idea on both low and high dimensional problems. The experimental results demonstrate the advantages of our approach for tuning high dimensional hyperparameters in machine learning.

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Publication details

DOI
10.48550/arxiv.1906.01279
OpenAlex
W2948654960
Document type
preprint
Language
EN
Source
arXiv (Cornell University)
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