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6 - Neural Networks

Published online by Cambridge University Press:  23 March 2023

William W. Hsieh
Affiliation:
University of British Columbia, Vancouver
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Summary

Inspired by the human brain, neural network (NN) models have emerged as the dominant branch of machine learning, with the multi-layer perceptron (MLP) model being the most popular. Non-linear optimization and the presence of local minima during optimization led to interests in other NN architectures that only require linear least squares optimization, e.g. extreme learning machines (ELM) and radial basis functions (RBF). Such models readily adapt to online learning, where a model can be updated inexpensively as new data arrive continually. Applications of NN to predict conditional distributions (by the conditional density network and the mixture density network) and to perform quantile regression are also covered.

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Publisher: Cambridge University Press
Print publication year: 2023

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  • Neural Networks
  • William W. Hsieh, University of British Columbia, Vancouver
  • Book: Introduction to Environmental Data Science
  • Online publication: 23 March 2023
  • Chapter DOI: https://doi.org/10.1017/9781107588493.007
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  • Neural Networks
  • William W. Hsieh, University of British Columbia, Vancouver
  • Book: Introduction to Environmental Data Science
  • Online publication: 23 March 2023
  • Chapter DOI: https://doi.org/10.1017/9781107588493.007
Available formats
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Save book to Google Drive

To save content items to your account, please confirm that you agree to abide by our usage policies. If this is the first time you use this feature, you will be asked to authorise Cambridge Core to connect with your account. Find out more about saving content to Google Drive.

  • Neural Networks
  • William W. Hsieh, University of British Columbia, Vancouver
  • Book: Introduction to Environmental Data Science
  • Online publication: 23 March 2023
  • Chapter DOI: https://doi.org/10.1017/9781107588493.007
Available formats
×