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Day 59 – Joint Frequencies

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1 Day 59 – Joint Frequencies

2 Problem The table below shows the number of M&Ms and Skittles in another class’ candy mixture. Use the data in the table to complete the problems that follow. RED ORANGE YELLOW GREEN BLUE PURPLE BROWN TOTAL M & M’s 12 6 8 14 10 58 Skittle’s 9 11 7 5 49 21 17 15 24 107

3 1. Marginal Probability a) Write an example event in words.
RED ORANGE YELLOW GREEN BLUE PURPLE BROWN TOTAL M & M’s 12 6 8 14 10 58 Skittle’s 9 11 7 5 49 21 17 15 24 107 a) Write an example event in words. b) Find the value of the probability.

4 2. Joint Probability a) Write an example event in words.
RED ORANGE YELLOW GREEN BLUE PURPLE BROWN TOTAL M & M’s 12 6 8 14 10 58 Skittle’s 9 11 7 5 49 21 17 15 24 107 a) Write an example event in words. b) Find the value of the probability.

5 3. Conditional Probability
RED ORANGE YELLOW GREEN BLUE PURPLE BROWN TOTAL M & M’s 12 6 8 14 10 58 Skittle’s 9 11 7 5 49 21 17 15 24 107 a) Write an example event in words. b) Find the value of the probability.

6 Problem Jessica surveys students at her school about their favorite food. She recorded the responses in the table below. PIZZA CHICKEN STEAK FRENCH FRIES TOTALS MALES 14 10 6 7 FEMALES 12 13 4 8

7 1. What is the joint frequency of female students who prefer Pizza?
CHICKEN STEAK FRENCH FRIES TOTALS MALES 14 10 6 7 FEMALES 12 13 4 8

8 2. What is the joint frequency of male students who prefer Steak?
PIZZA CHICKEN STEAK FRENCH FRIES TOTALS MALES 14 10 6 7 FEMALES 12 13 4 8

9 3. What is the marginal frequency for each type of food?
PIZZA CHICKEN STEAK FRENCH FRIES TOTALS MALES 14 10 6 7 FEMALES 12 13 4 8

10 4. What is the marginal frequency for each gender?
PIZZA CHICKEN STEAK FRENCH FRIES TOTALS MALES 14 10 6 7 FEMALES 12 13 4 8

11 5. Given that the student is female, what is the frequency that she likes french fries?
PIZZA CHICKEN STEAK FRENCH FRIES TOTALS MALES 14 10 6 7 FEMALES 12 13 4 8

12 Answer Key 1. a. An example of a student response might be to randomly select an M&M from the classroom “mix” of candy. This is marginal probability because only one characteristic needs to occur. b. Then, the probability of this would be 58/ a. An example of a student response might be to select the event of a purple Skittle selected at random. This is a joint probability because the outcome requires that two characteristics occur at the same time. b. Then, the probability would be 5/ a. An example of a student response might be to pose the question, “If a green candy is selected, what is the probability that it is a Skittle?”. This is a conditional probability because one condition is given, restricting the sample space that needs to be considered. b. Then, the probability would be 10/24, as only the “Green” candy column is considered.

13 1. 12/37 2. 6/37 3. Pizza. 23/74 = 13/37 Chicken. 23/74 = 13/37 Steak. 10/74 = 5/37 French Fries 15/74 4.Male 37/74 = ½ Female 37/74 = ½ 5. 8/37

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