Bayesian optimization = theory and p...
Liu, Peng.

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  • Bayesian optimization = theory and practice using Python /
  • Record Type: Electronic resources : Monograph/item
    Title/Author: Bayesian optimization/ by Peng Liu.
    Reminder of title: theory and practice using Python /
    Author: Liu, Peng.
    Published: Berkeley, CA :Apress : : 2023.,
    Description: xv, 234 p. :ill., digital ;24 cm.
    [NT 15003449]: Chapter 1: Bayesian Optimization Overview -- Chapter 2: Gaussian Process -- Chapter 3: Bayesian Decision Theory and Expected Improvement -- Chapter 4 : Gaussian Process Regression with GPyTorch -- Chapter 5: Monte Carlo Acquisition Function with Sobol Sequences and Random Restart -- Chapter 6 : Knowledge Gradient: Nested Optimization versus One-shot Learning -- Chapter 7 : Case Study: Tuning CNN Learning Rate with BoTorch.
    Contained By: Springer Nature eBook
    Subject: Bayesian statistical decision theory - Data processing. -
    Online resource: https://doi.org/10.1007/978-1-4842-9063-7
    ISBN: 9781484290637
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