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Spring 2023 seminar on automated experiment

License: MIT License

Jupyter Notebook 100.00%

utk-spring-2023---automated-experiment's Introduction

UTK-Spring-2023---Automated-Experiment

This repository contains the notebooks for the Spring tutorial on the automated experiment in materials synthesis and microscopy. The tutorial covers the principles of Gaussian Processes and Bayesian Optimization, structured GP, invariant VAEs including conditional, joint, and semisupervised versions, deep kernel learning, and forensics/human in the loop interventions. Topics include

  1. Introduction to Gaussian Processes
  2. Bayesian Optimization based on GP
  3. Bayesian Inference
  4. Structured GP
  5. Bayesian Hypothesis Learning
  6. Gaussian Processes beyond 1D
  7. Linear dimensionality reduction methods
  8. (Invariant) Variational Autoencoders
  9. Semi-supervised, joint, and conditional VAE
  10. VAE for imaging and spectroscopy problems - I
  11. VAE for imaging and spectroscopy problems - II
  12. Introduction to Deep Kernel Learning
  13. DKL for scientific discovery: process optimization
  14. Interpretable and human in the loop DKL AE

Note that for several topics there are only presentations, and for others there are only Colabs (with the explanations and suggested excercises)

utk-spring-2023---automated-experiment's People

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