Deep Learning of Generative Models - 2014

Deep Learning of Generative Models - 2014

Center for Language & Speech Processing(CLSP), JHU via YouTube Direct link

Intro

1 of 23

1 of 23

Intro

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Deep Learning of Generative Models - 2014

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  1. 1 Intro
  2. 2 Motivations
  3. 3 Google Image Search
  4. 4 Language Processing
  5. 5 Analogy Learning
  6. 6 Computational bottleneck
  7. 7 Sampling methods
  8. 8 Object recognition
  9. 9 MIT Technology Review 2013
  10. 10 Speech Recognition
  11. 11 Computer Vision
  12. 12 Unsupervised Learning
  13. 13 Free Trading Trick
  14. 14 What is a good representation
  15. 15 Priors
  16. 16 Improvised Learning
  17. 17 Fundamental Problems
  18. 18 First Problem
  19. 19 Experiments
  20. 20 Dependency Nets
  21. 21 Default Machine
  22. 22 Default Machine Results
  23. 23 Noise

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