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Daphne Koller Introduction Motivation and Overview Probabilistic Graphical Models.

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Presentation on theme: "Daphne Koller Introduction Motivation and Overview Probabilistic Graphical Models."— Presentation transcript:

1 Daphne Koller Introduction Motivation and Overview Probabilistic Graphical Models

2 Daphne Koller Probabilistic Graphical Models

3 Daphne Koller

4 Models

5 Daphne Koller Uncertainty Partial knowledge of state of the world Noisy observations Phenomena not covered by our model Inherent stochasticity

6 Daphne Koller Probability Theory Declarative representation with clear semantics Powerful reasoning patterns Established learning methods

7 Daphne Koller Complex Systems

8 Daphne Koller Graphical Models IntelligenceDifficulty Grade Letter SAT BD C A Bayesian networks Markov networks

9 Daphne Koller Graphical Models

10 Daphne Koller Graphical Models Graphical representation: – intuitive & compact data structure – efficient reasoning using general algorithms – can be learned from limited data

11 Daphne Koller Many Applications Medical diagnosis Fault diagnosis Natural language processing Traffic analysis Social network models Message decoding Computer vision – Image segmentation – 3D reconstruction – Holistic scene analysis Speech recognition Robot localization & mapping

12 Daphne Koller END END END

13 Template vertLeftWhite1 Suppose  is at a local minimum of a function. What will one iteration of gradient descent do? Leave  unchanged. Change  in a random direction. Move  towards the global minimum of J(  ). Decrease .

14 Template vertLeftWhite1 Consider the weight update: Which of these is a correct vectorized implementation?

15 Template vertLeftWhite2 Fig. A corresponds to  =0.01, Fig. B to  =0.1, Fig. C to  =1. Fig. A corresponds to  =0.1, Fig. B to  =0.01, Fig. C to  =1. Fig. A corresponds to  =1, Fig. B to  =0.01, Fig. C to  =0.1. Fig. A corresponds to  =1, Fig. B to  =0.1, Fig. C to  =0.01.

16 Template vertLeftWhite2

17 Template block2x2White1 Ordering of buttons is: 13 24


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