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INFORMATION THEORY BAYESIAN STATISTICS I Thomas Tiahrt, MA, PhD CSC492 – Advanced Text Analytics.

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Presentation on theme: "INFORMATION THEORY BAYESIAN STATISTICS I Thomas Tiahrt, MA, PhD CSC492 – Advanced Text Analytics."— Presentation transcript:

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2 INFORMATION THEORY BAYESIAN STATISTICS I Thomas Tiahrt, MA, PhD CSC492 – Advanced Text Analytics

3 Bayesians vs. Frequentists 2  Frequentist statistics

4 Bayesians vs. Frequentists 3  Frequentist statistics  Probability is the proportion of outcomes

5 Bayesians vs. Frequentists 4  Frequentist statistics  Probability is the proportion of outcomes  Bayesian statistics

6 Bayesians vs. Frequentists 5

7 Conditional Probability Derivations 6

8 More Conditional Probability Derivation 7

9 Bayes Theorem 8

10 Marbles from Jars Example 9  Jar A  8 green marbles  2 red marbles  Jar B  3 green marbles  7 red marbles

11 Marbles from Jars Example 10

12 Marbles from Jars Example 11

13 Marbles from Jars Example 12

14 Marbles from Jars Example 13

15 References 14 Sources: Foundations of Statistical Natural Language Processing, by Christopher Manning and Hinrich Schütze The MIT Press Fundamentals of Information Theory and Coding Design, by Roberto Togneri and Christopher J.S. deSilva Chapman & Hall / CRC

16 The end of part one of Bayesian statistics has come. End of PowerPoint 15


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