Presentation is loading. Please wait.

Presentation is loading. Please wait.

ST3236: Stochastic Process Tutorial TA: Mar Choong Hock

Published byAntony Neal Modified over 9 years ago

Similar presentations

Presentation on theme: "ST3236: Stochastic Process Tutorial TA: Mar Choong Hock"— Presentation transcript:

1 ST3236: Stochastic Process Tutorial TA: Mar Choong Hock g0301492@nus.edu.sg

2 Set Theory Revision Interception is associative: AB = BA Interception is distributive over union: A(B U C) = AB U AC AA = A A  =A A  = 

3 Question 2 If A and B are independent, prove A and B c are also independent. Solution: P(AB c ) = P(A  B)) = P(A-AB) = P(A) - P(AB) = P(A) - P(A)P(B) = P(A)(1 - P(B)) = P(A)P(B c ) B AB A 

4 Question 3 Two fair dice are thrown. Let A denotes the event that the sum of the dice is 7. Let B denotes the event that the first die equals 4 and let C be the event that the second die equals 3. Let      denotes the sample point. A = {(1,6), (2,5), (3,4), (4,3), (5,2), (6,1) } B = {(4,1), (4,2), (4,3), (4,4), (4,5), (4,6) } C = {(1,3), (2,3), (3,3), (4,3), (5,3), (6,3) }

5 Question 3a Show that A and B are independent P(A) = P( {(1,6), (2,5), (3,4), (4,3), (5,2), (6,1) }) P(B)

6 Question 3a Note that AB = BC = AC. Thus P(AB) = P(BC) = P(B)P(C) Finally, P(AB) = P(A)P(B).

7 Question 3b Show that A and C are independent P(A) P(C) P(AC) = P(BC) = P(B)P(C) Finally, P(AC) = P(A)P(C).

8 Question 3c P(ABC)= P({4,3}) P(A)P(BC) Therefore, A not independent of BC.

9 Question 4a If E is independent of F and E is independent of G, then E is independent of (F U G) (Not True)

10 Question 4b If E is independent of F and E is independent of G and FG = , then E is independent of (F U G) Now, P(EFG) = 0 (Proved) GF

11 Exercise 2 - Question 1 Toss a fair coin independently four times. Let For i = 1, 2, 3, 4

12 Exercise 2 - Question 1a Write out the sample space and the joint distribution for (X 1, X 2, X 3, X 4 )

13 Exercise 2 - Question 1b Check that X 2 and X 3 are independent. Note: The probability is the same for all sample points

14 Exercise 2 - Question 1c Let Y i be the total number of heads for tosses 1 to i. Find the joint distribution of (Y 1, Y 2 ). Show thatY 1 and Y 2 are NOT independent.

15 Exercise 2 - Question 1c

16 Exercise 2 - Question 1d A special case for item (c) is that Y 1 and Y 3 are NOT independent. However, given Y 2, Y 1 and Y 3 are conditionally independent. If i > j or j > k or i > k, then

17 If i > j, then P(Y 1 = i |Y 2 = j) = P(Y 1 = i,Y 2 = j) / P(Y 2 = j) = 0 If j > k, then P(Y 3 = k |Y 2 = j) = P(Y 3 = k, Y 2 = j) / P(Y 2 = j) = 0 Note that i > k implies i > j or j > k. Thus, if i > j or j > k or i > k, then P(Y 1 = i, Y 3 = k |Y 2 = j) =P(Y 1 = i |Y 2 = j)P(Y 3 = k |Y 2 = j) = 0

18

19

Download ppt "ST3236: Stochastic Process Tutorial TA: Mar Choong Hock"

Similar presentations

ST3236: Stochastic Process Tutorial 3 TA: Mar Choong Hock Exercises: 4.

ST3236: Stochastic Process Tutorial 3 TA: Mar Choong Hock Exercises: 4.
Copyright © 2006 Pearson Education, Inc. Publishing as Pearson Addison-Wesley Slide 14- 1.

Copyright © 2006 Pearson Education, Inc. Publishing as Pearson Addison-Wesley Slide
3.3 Conditional Probability 410211210 侯如恩. Suppose that each of two teams is to produce an item, and that the two items produced will be rated as either.

3.3 Conditional Probability 侯如恩. Suppose that each of two teams is to produce an item, and that the two items produced will be rated as either.
0 0 Review Probability Axioms –Non-negativity P(A)≥0 –Additivity P(A U B) =P(A)+ P(B), if A and B are disjoint. –Normalization P(Ω)=1 Independence of two.

0 0 Review Probability Axioms –Non-negativity P(A)≥0 –Additivity P(A U B) =P(A)+ P(B), if A and B are disjoint. –Normalization P(Ω)=1 Independence of two.
1 Chapter 3 Probability 3.1 Terminology 3.2 Assign Probability 3.3 Compound Events 3.4 Conditional Probability 3.5 Rules of Computing Probabilities 3.6.

1 Chapter 3 Probability 3.1 Terminology 3.2 Assign Probability 3.3 Compound Events 3.4 Conditional Probability 3.5 Rules of Computing Probabilities 3.6.
ST3236: Stochastic Process Tutorial 4 TA: Mar Choong Hock Exercises: 5.

ST3236: Stochastic Process Tutorial 4 TA: Mar Choong Hock Exercises: 5.
Conditional Probability and Independence. Learning Targets 1. I can calculate conditional probability using a 2-way table. 2. I can determine whether.

Conditional Probability and Independence. Learning Targets 1. I can calculate conditional probability using a 2-way table. 2. I can determine whether.
1 probability. Specify Sample Space 1-1: Toss a coin two times and note the sequence of heads and tails. 1-2: Toss a coin three times and note the number.

1 probability. Specify Sample Space 1-1: Toss a coin two times and note the sequence of heads and tails. 1-2: Toss a coin three times and note the number.
Copyright © Cengage Learning. All rights reserved. 8.6 Probability.

Copyright © Cengage Learning. All rights reserved. 8.6 Probability.
1 1 PRESENTED BY E. G. GASCON Introduction to Probability Section 7.3, 7.4, 7.5.

1 1 PRESENTED BY E. G. GASCON Introduction to Probability Section 7.3, 7.4, 7.5.
8.7 Probability. Ex 1 Find the sample space for each of the following. One coin is tossed. Two coins are tossed. Three coins are tossed.

8.7 Probability. Ex 1 Find the sample space for each of the following. One coin is tossed. Two coins are tossed. Three coins are tossed.
Introduction to Probability

Introduction to Probability
1 Introduction to Stochastic Models GSLM 54100. 2 Outline  course outline course outline  Chapter 1 of the textbook.

1 Introduction to Stochastic Models GSLM Outline  course outline course outline  Chapter 1 of the textbook.
HW 5_solutions. Problem 1 Let’s modify Problem 7 (page 23) to a more general test. Assume a test has a probability p of indicating the disease among patients.

HW 5_solutions. Problem 1 Let’s modify Problem 7 (page 23) to a more general test. Assume a test has a probability p of indicating the disease among patients.
ST3236: Stochastic Process Tutorial 8

ST3236: Stochastic Process Tutorial 8
Www.soran.edu.iq Probability and Statistics Dr. Saeid Moloudzadeh Sample Space and Events 1 Contents Descriptive Statistics Axioms of Probability Combinatorial.

Probability and Statistics Dr. Saeid Moloudzadeh Sample Space and Events 1 Contents Descriptive Statistics Axioms of Probability Combinatorial.
 1. Some concepts of probabilities: set, experiment, sample space, event, …  2. Complement: A and A c  and: P(A) + P(A c )=1.  3. Venn Diagram.

 1. Some concepts of probabilities: set, experiment, sample space, event, …  2. Complement: A and A c  and: P(A) + P(A c )=1.  3. Venn Diagram.
CONDITIONAL PROBABILITY and INDEPENDENCE In many experiments we have partial information about the outcome, when we use this info the sample space becomes.

CONDITIONAL PROBABILITY and INDEPENDENCE In many experiments we have partial information about the outcome, when we use this info the sample space becomes.
Data Analysis (Quantitative Methods) Lecture 2 Probability.

Data Analysis (Quantitative Methods) Lecture 2 Probability.
HW 5_solutions. Problem 1 Let’s modify Problem 7 (page 23) to a more general test. Assume a test has a probability p of indicating the disease among patients.

HW 5_solutions. Problem 1 Let’s modify Problem 7 (page 23) to a more general test. Assume a test has a probability p of indicating the disease among patients.

Similar presentations

Ads by Google