Introduction to Deep Learning for Everyone

Introduction to Deep Learning for Everyone

Dr Juan Klopper via YouTube Direct link

Regression as a first step in deep learning

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1 of 22

Regression as a first step in deep learning

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Classroom Contents

Introduction to Deep Learning for Everyone

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  1. 1 Regression as a first step in deep learning
  2. 2 Linear regression as a simple learner
  3. 3 Basic linear algebra for deep learning
  4. 4 Basic derivatives for deep learning
  5. 5 Gradient descent
  6. 6 Linear regression as a shallow neural network
  7. 7 Logistic regression as a network
  8. 8 Simple neural network
  9. 9 Introduction to R for deep learning
  10. 10 Example of a deep neural network using Keras in R
  11. 11 Bias and variance in deep learning
  12. 12 Regularization in deep learning
  13. 13 Dropout in deep learning
  14. 14 Regularization and dropout using Keras for R
  15. 15 Improving learning in deep neural networks
  16. 16 Using tfruns to compare models
  17. 17 Exploring sequential models in Keras for R
  18. 18 The cross entropy loss function
  19. 19 Deep neural networks for regression problems
  20. 20 Introduction to convolutional neural networks
  21. 21 Example of a convolutional neural network
  22. 22 Convolutional neural network using Keras for R - SKIN LESIONS

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