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AutoML

License

Summary: Documentation and files about the AutoML component, as part of the GUT-AI Initiative.

Table of Contents

About

The purpose of this component is to perform Automated Machine Learning (AutoML).

Main papers

Selected publications

  • Kourouklides, I. (2022). Bayesian Deep Multi-Agent Multimodal Reinforcement Learning for Embedded Systems in Games, Natural Language Processing and Robotics. OSF Preprints. https://doi.org/10.31219/osf.io/sjrkh

References

See References.

Component files

Component page

Thanks to OSF (by the Center for Open Science), the project is temporarily hosted at:

Component DOI

Project identifier: https://doi.org/10.17605/OSF.IO/FVNDU

Component dependencies

This component depends on the following components of GUT-AI:

Environment simulators

See Simulators.

Datasets

See Datasets.

Model Zoo

See Model Zoo.

Software tools

See Software tools.

Getting involved

How to cite this

If you want to do so, feel free to cite this component in your publications:

@article{kourouklides2022auto_ml,
  author = {Ioannis Kourouklides},
  journal = {OSF Preprints},
  title = {AutoML},
  year = {2022},
  doi = {10.17605/osf.io/fvndu},
  license = {Creative Commons Zero CC0 1.0}
}

License

License

Creative Commons Zero CC0 1.0 (Public Domain)