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Conditional Probability

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Presentation on theme: "Conditional Probability"— Presentation transcript:

1 Conditional Probability

2 Conditional Probability
Conditional Probability contains a condition that may limit the sample space for an event. You can write a conditional probability using the notation - This reads “the probability of event B, given event A”

3 Conditional Probability
The table shows the results of a class survey. Find P(own a pet | female) yes no female 8 6 male 5 7 Do you own a pet? 14 females; 13 males The condition female limits the sample space to 14 possible outcomes. Of the 14 females, 8 own a pet. Therefore, P(own a pet | female) equals . 8 14

4 Conditional Probability
The table shows the results of a class survey. Find P(wash the dishes | male) yes no female 7 6 male 7 8 Did you wash the dishes last night? 13 females; 15 males The condition male limits the sample space to 15 possible outcomes. Of the 15 males, 7 did the dishes. Therefore, P(wash the dishes | male) 7 15

5 Let’s Try One Using the data in the table, find the probability that a sample of not recycled waste was plastic. P(plastic | non-recycled) Material Recycled Not Recycled Paper Metal Glass Plastic Other The given condition limits the sample space to non-recycled waste. A favorable outcome is non-recycled plastic. P(plastic | non-recycled) = 20.4 = 20.4 156.3 0.13 The probability that the non-recycled waste was plastic is about 13%.

6 Conditional Probability Formula
For any two events A and B from a sample space with P(A) does not equal zero

7 Conditional Probability
Researchers asked people who exercise regularly whether they jog or walk. Fifty-eight percent of the respondents were male. Twenty percent of all respondents were males who said they jog. Find the probability that a male respondent jogs. Relate: P( male ) = 58% P( male and jogs ) = 20% Define: Let A = male. Let B = jogs. Write: P( A | B ) = P( A and B ) P( A ) = Substitute 0.2 for P(A and B) and 0.58 for P(A). Simplify. 0.2 0.58 The probability that a male respondent jogs is about 34%.

8 Probability Tree Diagrams
The probability of a complex event can be found using a probability tree diagram. 1. Draw the appropriate tree diagram. 2. Assign probabilities to each branch. (Each section sums to 1.) 3. Multiply the probabilities along individual branches to find the probability of the outcome at the end of each branch. 4. Add the probabilities of the relevant outcomes, depending on the event.

9 Using Tree Diagrams Jim created the tree diagram
after examining years of weather observations in his hometown. The diagram shows the probability of whether a day will begin clear or cloudy, and then the probability of rain on days that begin clear and cloudy. a. Find the probability that a day will start out clear, and then will rain. The path containing clear and rain represents days that start out clear and then will rain. P(clear and rain) = P(rain | clear) • P(clear) = 0.04 • 0.28 = 0.011 The probability that a day will start out clear and then rain is about 1%.

10 Conditional Probability
(continued) b. Find the probability that it will not rain on any given day. The paths containing clear and no rain and cloudy and no rain both represent a day when it will not rain. Find the probability for both paths and add them. P(clear and no rain) + P(cloudy and no rain) = P(clear) • P(no rain | clear) + P(cloudy) • P(no rain | cloudy) = 0.28(.96) + .72(.69) = The probability that it will not rain on any given day is about 77%.

11 Let’s Try One A survey of Pleasanton Teenagers was given.
Pg 688 A survey of Pleasanton Teenagers was given. 60% of the responders have 1 sibling; 20% have 2 or more siblings Of the responders with 0 siblings, 90% have their own room Of the respondents with 1 sibling, 20% do not have their own room Of the respondents with 2 siblings, 50% have their own room Create a tree diagram and determine P(own room | 0 siblings) P(share room | 1 sibling)

12 60% of the responders have 1 sibling; 20% have 2 or more siblings
Of the responders with no siblings, 90% have their own room Of the respondents with 1 sibling, 20% do not have their own room Of the respondents with 2 siblings, 50% have their own room Create a tree diagram and determine P(own room | 0 siblings) P(share room | 1 sibling)

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