Intro to Deep Learning - ML Tech Talks

Intro to Deep Learning - ML Tech Talks

TensorFlow via YouTube Direct link

- Importance of activation functions

20 of 24

20 of 24

- Importance of activation functions

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Classroom Contents

Intro to Deep Learning - ML Tech Talks

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  1. 1 - Intro and outline
  2. 2 - TensorFlow.js demos + discussion
  3. 3 - AI vs ML vs DL
  4. 4 - What’s representation learning?
  5. 5 - A cartoon neural network more on this later
  6. 6 - What features does a network see?
  7. 7 - The “deep” in “deep learning”
  8. 8 - Why tree-based models are still important
  9. 9 - How your workflow changes with DL
  10. 10 - A couple illustrative code examples
  11. 11 - What’s a hyperparameter?
  12. 12 - The skills that are important in ML
  13. 13 - An example of applied work in healthcare
  14. 14 - Families of neural networks + applications
  15. 15 - Encoder-decoders + more on representation learning
  16. 16 - Families of neural networks continued
  17. 17 - Are neural networks opaque?
  18. 18 - Building up from a neuron to a neural network
  19. 19 - A demo of representation learning in TF Playground
  20. 20 - Importance of activation functions
  21. 21 - What’s a neural network library?
  22. 22 - Overfitting and underfitting
  23. 23 - Autoencoders and anomaly detection screencast and demo
  24. 24 - Book recommendations

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