Presentation is loading. Please wait.

Presentation is loading. Please wait.

A Mathematical View of Our World 1 st ed. Parks, Musser, Trimpe, Maurer, and Maurer.

Similar presentations


Presentation on theme: "A Mathematical View of Our World 1 st ed. Parks, Musser, Trimpe, Maurer, and Maurer."— Presentation transcript:

1 A Mathematical View of Our World 1 st ed. Parks, Musser, Trimpe, Maurer, and Maurer

2 Chapter 5 Apportionment

3 Section 5.1 Quota Methods GoalsGoals Study apportionmentStudy apportionment Standard divisorStandard divisor Standard quotaStandard quota Study apportionment methodsStudy apportionment methods Hamilton’s methodHamilton’s method Lowndes’ methodLowndes’ method

4 5.1 Initial Problem The number of campers in each group at a summer camp is shown below.The number of campers in each group at a summer camp is shown below.

5 5.1 Initial Problem, cont’d The camp organizers will assign 15 counselors to the groups of campers.The camp organizers will assign 15 counselors to the groups of campers. How many of the 15 counselors should be assigned to each group?How many of the 15 counselors should be assigned to each group? The solution will be given at the end of the section.The solution will be given at the end of the section.

6 Apportionment The verb apportion meansThe verb apportion means “Assign to as a due portion.”“Assign to as a due portion.” “To divide into shares which may not be equal.”“To divide into shares which may not be equal.” Apportionment problems arise when what is being divided cannot be divided into fractional parts.Apportionment problems arise when what is being divided cannot be divided into fractional parts. An example of apportionment is the process of assigning seats in the House of Representatives to the states.An example of apportionment is the process of assigning seats in the House of Representatives to the states.

7 Apportionment, cont’d The apportionment problem is to determine a method for rounding a collection of numbers so that:The apportionment problem is to determine a method for rounding a collection of numbers so that: The numbers are rounded to whole numbers.The numbers are rounded to whole numbers. The sum of the numbers is unchanged.The sum of the numbers is unchanged.

8 Apportionment, cont’d The Constitution does not specify a method for apportioning seats in the House of Representatives.The Constitution does not specify a method for apportioning seats in the House of Representatives. Various methods, named after their authors, have been used:Various methods, named after their authors, have been used: Alexander HamiltonAlexander Hamilton Thomas JeffersonThomas Jefferson Daniel WebsterDaniel Webster William LowndesWilliam Lowndes

9 The Standard Divisor Suppose the total population is P and the number of seats to be apportioned is M.Suppose the total population is P and the number of seats to be apportioned is M. The standard divisor is the ratio D = P/M.The standard divisor is the ratio D = P/M. The standard divisor gives the number of people per legislative seat.The standard divisor gives the number of people per legislative seat.

10 Example 1 Suppose a country has 5 states and 200 seats in the legislature.Suppose a country has 5 states and 200 seats in the legislature. The populations of the states are given below.The populations of the states are given below. Find the standard divisor.Find the standard divisor.

11 Example 1, cont’d Solution: The total population is found by adding the 5 state populations.Solution: The total population is found by adding the 5 state populations. P = 1,350,000 + 1,500,000 + 4,950,000 + 1,100,000 + 1,100,000 = 10,000,000.P = 1,350,000 + 1,500,000 + 4,950,000 + 1,100,000 + 1,100,000 = 10,000,000. The number of seats is M = 200The number of seats is M = 200

12 Example 1, cont’d Solution, cont’d: The standard divisor is D = 10,000,000/200 = 50,000.Solution, cont’d: The standard divisor is D = 10,000,000/200 = 50,000. Each seat in the legislature represents 50,000 citizens.Each seat in the legislature represents 50,000 citizens.

13 The Standard Quota Let D be the standard divisor.Let D be the standard divisor. If the population of a state is p, then Q = p/D is called the standard quota.If the population of a state is p, then Q = p/D is called the standard quota. If seats could be divided into fractions, we would give the state exactly Q seats in the legislature.If seats could be divided into fractions, we would give the state exactly Q seats in the legislature.

14 Example 2 In the previous example, the standard divisor was found to be D = 50,000.In the previous example, the standard divisor was found to be D = 50,000. Find the standard quotas for each state in the country.Find the standard quotas for each state in the country.

15 Example 2, cont’d Solution: Divide the population of each state by the standard divisor.Solution: Divide the population of each state by the standard divisor. State A: Q = 1,350,000/50,000 = 27State A: Q = 1,350,000/50,000 = 27 State B: Q = 1,500,000/50,000 = 30State B: Q = 1,500,000/50,000 = 30 State C: Q = 4,950,000/50,000 = 99State C: Q = 4,950,000/50,000 = 99 State D: Q = 1,100,000/50,000 = 22State D: Q = 1,100,000/50,000 = 22 State E: Q = 1,100,000/50,000 = 22State E: Q = 1,100,000/50,000 = 22

16 Example 2, cont’d Solution, cont’d: This solution, with all standard quotas being whole numbers, is not typical.Solution, cont’d: This solution, with all standard quotas being whole numbers, is not typical. Note that the sum of the quotas is 27 + 30 + 99 +22 + 22 = 200, the total number of seats.Note that the sum of the quotas is 27 + 30 + 99 +22 + 22 = 200, the total number of seats. The standard quotas indicate how many seats each state should be assigned.The standard quotas indicate how many seats each state should be assigned.

17 Question: A country consists of 3 states with populations shown in the table below. Find the standard quotas if 200 legislative seats are to be apportioned. Round the quotas to the nearest hundredth. a. State A: 0.01, State B: 0.02, State C: 0.02 b. State A: 89.75, State B: 44.31, State C: 65.45 c. State A: 90.91, State B: 42.12, State C: 67.29 d. State A: 90.91, State B: 43.64, State C: 65.45 State AState BState C Population250,000120,000180,000

18 Apportionment, cont’d Typically, the standard quotas will not all be whole numbers and will have to be rounded.Typically, the standard quotas will not all be whole numbers and will have to be rounded. The various apportionment methods provide procedures for determining how the rounding should be done.The various apportionment methods provide procedures for determining how the rounding should be done.

19 Hamilton’s Method 1)Find the standard divisor. 2)Determine each state’s standard quota. Round each quota down to a whole number.Round each quota down to a whole number. Each state gets that number of seats, with a minimum of 1 seat.Each state gets that number of seats, with a minimum of 1 seat. 3)Leftover seats are assigned one at a time to states according to the size of the fractional parts of the standard quotas. Begin with the state with the largest fractional part.Begin with the state with the largest fractional part.

20 Example 3 A country has 5 states and 200 seats in the legislature.A country has 5 states and 200 seats in the legislature. Apportion the seats according to Hamilton’s method.Apportion the seats according to Hamilton’s method.

21 Example 3, cont’d Solution: the standard divisor is found:Solution: the standard divisor is found: Then the standard quota for each state is found.Then the standard quota for each state is found. For example:For example:

22 Example 3, cont’d Solution, cont’d: All of the standard quotas are shown below.Solution, cont’d: All of the standard quotas are shown below.

23 Example 3, cont’d Solution, cont’d: The integer parts of the standard quotas add up to 26 + 30 + 98 + 22 + 22 = 198.Solution, cont’d: The integer parts of the standard quotas add up to 26 + 30 + 98 + 22 + 22 = 198. A total of 198 seats have been apportioned at this point.A total of 198 seats have been apportioned at this point. There are 2 seats left to assign according to the fractional parts of the standard quotas.There are 2 seats left to assign according to the fractional parts of the standard quotas.

24 Example 3, cont’d Solution, cont’d: Consider the size of the fractional parts of the standard quotas.Solution, cont’d: Consider the size of the fractional parts of the standard quotas. State C has the largest fractional part, of 0.7State C has the largest fractional part, of 0.7 State A has the second largest fractional part, of 0.4.State A has the second largest fractional part, of 0.4. The 2 leftover seats are apportioned to states C and A.The 2 leftover seats are apportioned to states C and A.

25 Example 3, cont’d Solution, cont’d: The final apportionment is shown below.Solution, cont’d: The final apportionment is shown below.

26 Question: A country consists of 3 states with populations shown in the table below. Hamilton’s method is being used to apportion the 200 legislative seats. The standard quotas are State A: 90.91, State B: 43.64, State C: 65.45. What is the final apportionment? State AState BState C Population250,000120,000180,000

27 Question cont’d a. State A: 91 seats, State B: 44 seats, State C: 65 seats b. State A: 91 seats, State B: 43 seats, State C: 66 seats c. State A: 92 seats, State B: 43 seats, State C: 65 seats d. State A: 90 seats, State B: 44 seats, State C: 66 seats

28 Quota Rule Any apportionment method which always assigns the whole number just above or just below the standard quota is said to satisfy the quota rule.Any apportionment method which always assigns the whole number just above or just below the standard quota is said to satisfy the quota rule. Any apportionment method that obeys the quota rule is called a quota method.Any apportionment method that obeys the quota rule is called a quota method. Hamilton’s method is a quota method.Hamilton’s method is a quota method.

29 Relative Fractional Part For a number greater than or equal to 1, the relative fractional part is the fractional part of the number divided by the integer part.For a number greater than or equal to 1, the relative fractional part is the fractional part of the number divided by the integer part. Example: The relative fractional part of 5.4 is 0.4/5 = 0.08.Example: The relative fractional part of 5.4 is 0.4/5 = 0.08.

30 Lowndes’ Method 1)Find the standard divisor. 2)Determine each state’s standard quota. Round each quota down to a whole number.Round each quota down to a whole number. Each state gets that number of seats, with a minimum of 1 seat.Each state gets that number of seats, with a minimum of 1 seat.

31 Lowndes’ Method, cont’d 3)Determine the relative fractional part of each state’s standard quota. 4)Any leftover seats are assigned one at a time according to the size of the relative fractional parts. Begin with the state with the largest relative fractional part.Begin with the state with the largest relative fractional part. Note that Lowndes’ method is a quota method.Note that Lowndes’ method is a quota method.

32 Example 4 Apportion the seats from the previous example using Lowndes’ method.Apportion the seats from the previous example using Lowndes’ method. Solution: The standard quotas were already found and are shown below.Solution: The standard quotas were already found and are shown below.

33 Example 4, cont’d Solution, cont’d: As with Hamilton’s method, 198 seats have been apportioned so far, based on the whole number part of the standard quotas.Solution, cont’d: As with Hamilton’s method, 198 seats have been apportioned so far, based on the whole number part of the standard quotas. To apportion the remaining 2 seats, calculate the relative fractional part of each state’s standard quota.To apportion the remaining 2 seats, calculate the relative fractional part of each state’s standard quota.

34 Example 4, cont’d Solution, cont’d: States D and A have the largest relative fractional parts for their standard quotas.Solution, cont’d: States D and A have the largest relative fractional parts for their standard quotas. States D and A each get one more seat.States D and A each get one more seat.

35 Example 4, cont’d Solution, cont’d: The final apportionment is shown below.Solution, cont’d: The final apportionment is shown below.

36 Question: A country consists of 3 states with populations shown in the table below. Lowndes’ method is being used to apportion the 200 legislative seats. The standard quotas are State A: 90.91, State B: 43.64, State C: 65.45. A total of 198 seats are apportioned by the integer parts of the standard quotas. To which state is the first leftover seat assigned? a. State Ab. State Bc. State C State AState BState C Population250,000120,000180,000

37 Method Comparison Hamilton’s method and Lowndes’ method gave different apportionments in the previous example.Hamilton’s method and Lowndes’ method gave different apportionments in the previous example. Hamilton’s method is biased toward larger states.Hamilton’s method is biased toward larger states. Lowndes’ method is biased toward smaller states.Lowndes’ method is biased toward smaller states.

38 5.1 Initial Problem Solution A camp needs to assign 15 counselors among 3 groups of campers.A camp needs to assign 15 counselors among 3 groups of campers. The groups are shown in the table below.The groups are shown in the table below.

39 Initial Problem Solution, cont’d First the counselors will be apportioned using Hamilton’s method.First the counselors will be apportioned using Hamilton’s method. The standard divisor is:The standard divisor is: This indicates that 1 counselor should be assigned to approximately every 12.67 campers.This indicates that 1 counselor should be assigned to approximately every 12.67 campers.

40 Initial Problem Solution, cont’d Next, calculate the standard quota for each group of campers.Next, calculate the standard quota for each group of campers.

41 Initial Problem Solution, cont’d A total of 3 + 5 + 6 = 14 counselors have been assigned so far.A total of 3 + 5 + 6 = 14 counselors have been assigned so far. The 1 leftover counselor is assigned to the 6 th grade group.The 1 leftover counselor is assigned to the 6 th grade group.

42 Initial Problem Solution, cont’d The final apportionment according to Hamilton’s method is:The final apportionment according to Hamilton’s method is: 3 counselors for 4 th grade3 counselors for 4 th grade 5 counselors for 5 th grade5 counselors for 5 th grade 7 counselors for 6 th grade7 counselors for 6 th grade

43 Initial Problem Solution, cont’d Next the counselors will be apportioned using Lowndes’ method.Next the counselors will be apportioned using Lowndes’ method. The standard divisor is D = 12.67.The standard divisor is D = 12.67. The standard quotas are:The standard quotas are: 4 th Grade: 3.314 th Grade: 3.31 5 th Grade: 5.295 th Grade: 5.29 6 th Grade: 6.396 th Grade: 6.39

44 Initial Problem Solution, cont’d As before, 14 counselors have been apportioned so far.As before, 14 counselors have been apportioned so far.

45 Initial Problem Solution, cont’d The standard quota for the group of 4 th grade campers has the largest relative fractional part, so they get the leftover counselor.The standard quota for the group of 4 th grade campers has the largest relative fractional part, so they get the leftover counselor. The final apportionment using Lowndes’ method is:The final apportionment using Lowndes’ method is: 4 counselors for 4 th grade4 counselors for 4 th grade 5 counselors for 5 th grade5 counselors for 5 th grade 6 counselors for 6 th grade6 counselors for 6 th grade

46 Section 5.2 Divisor Methods GoalsGoals Study apportionment methodsStudy apportionment methods Jefferson’s methodJefferson’s method Webster’s methodWebster’s method

47 5.2 Initial Problem Suppose you, your sister, and your brother have inherited 85 gold coins.Suppose you, your sister, and your brother have inherited 85 gold coins. The coins will be divided based on the number of hours each of you have volunteered at the local soup kitchen.The coins will be divided based on the number of hours each of you have volunteered at the local soup kitchen. How should the coins be apportioned?How should the coins be apportioned? The solution will be given at the end of the section.The solution will be given at the end of the section.

48 Apportionment Methods Section 5.1 covered two quota methods.Section 5.1 covered two quota methods. Hamilton’s methodHamilton’s method Lowndes’ method.Lowndes’ method. This section will consider two apportionment methods that do not follow the quota rule.This section will consider two apportionment methods that do not follow the quota rule.

49 Jefferson’s Method Suppose M seats will be apportioned.Suppose M seats will be apportioned. 1) 1) a)Choose a number, d, called the modified divisor. b)For each state, compute the modified quota, which is the ratio of the state’s population to the modified divisor:

50 Jefferson’s Method, cont’d 1)Cont’d: c)If the integer parts of the modified quotas for all the states add to M, then go on to Step 2. Otherwise go back to Step 1, part (a) and choose a different value for d. 2)Assign to each state the integer part of its modified quota.

51 Example 1 Use Jefferson’s method to apportion 200 seats to the 5 states in the example from Section 5.1.Use Jefferson’s method to apportion 200 seats to the 5 states in the example from Section 5.1.

52 Example 1, cont’d Solution: Recall the standard divisors and the apportionment found using Hamilton’s method.Solution: Recall the standard divisors and the apportionment found using Hamilton’s method.

53 Example 1, cont’d Solution, cont’d: In Jefferson’s method all the (modified) quotas will be rounded down.Solution, cont’d: In Jefferson’s method all the (modified) quotas will be rounded down. Note that if all the standard quotas were rounded down, the total would be only 198 seats.Note that if all the standard quotas were rounded down, the total would be only 198 seats. The modified quotas need to be slightly larger than the standard ones.The modified quotas need to be slightly larger than the standard ones.

54 Example 1, cont’d Solution, cont’d: For the modified quotas to be larger, the modified divisor needs to be smaller than the standard divisor of 50,000.Solution, cont’d: For the modified quotas to be larger, the modified divisor needs to be smaller than the standard divisor of 50,000. A good guess for a modified divisor can be found by dividing the largest state’s population by 1more, 2 more, 3 more,…, than the integer part of its standard quota.A good guess for a modified divisor can be found by dividing the largest state’s population by 1more, 2 more, 3 more,…, than the integer part of its standard quota. Start with 1 more, and keep going until you find one that works.Start with 1 more, and keep going until you find one that works.

55 Example 1, cont’d Solution, cont’d: The largest state has a population of 4,935,000 and its standard quota has an integer part of 98.Solution, cont’d: The largest state has a population of 4,935,000 and its standard quota has an integer part of 98. A possible modified divisor is:A possible modified divisor is:

56 Example 1, cont’d Solution, cont’d: We will try a modified divisor of d = 49,848.Solution, cont’d: We will try a modified divisor of d = 49,848. The modified quota for each state is calculated.The modified quota for each state is calculated. For example, the modified quota of state A is:For example, the modified quota of state A is:

57 Example 1, cont’d Solution, cont’d: When the modified quotas are rounded down they add to 199.Solution, cont’d: When the modified quotas are rounded down they add to 199. The modified divisor needs to be even smaller.The modified divisor needs to be even smaller.

58 Example 1, cont’d Solution, cont’d: The largest state has a population of 4,935,000 and its standard quota has an integer part of 98.Solution, cont’d: The largest state has a population of 4,935,000 and its standard quota has an integer part of 98. A second possible modified divisor is:A second possible modified divisor is:

59 Example 1, cont’d Solution, cont’d: New modified quotas are calculated.Solution, cont’d: New modified quotas are calculated.

60 Example 1, cont’d Solution, cont’d: Now when the modified quotas are rounded down they add to 26 + 30 + 100 + 22 + 22 = 200.Solution, cont’d: Now when the modified quotas are rounded down they add to 26 + 30 + 100 + 22 + 22 = 200. Since the sum of the rounded modified quotas equals the number of seats, the apportionment is complete.Since the sum of the rounded modified quotas equals the number of seats, the apportionment is complete.

61 Question: The standard quotas and the apportionment under Jefferson’s method from the previous example are recalled in the table below. Which state’s apportionment illustrates that Jefferson’s method is not a quota method? a. A b. B c. Cd. D e. None of the above

62 Divisor Methods Any apportionment method that uses a divisor other than the standard divisor is called a divisor method.Any apportionment method that uses a divisor other than the standard divisor is called a divisor method. Jefferson’s method is a divisor method.Jefferson’s method is a divisor method. Webster’s method, which will be studied next, is also a divisor method.Webster’s method, which will be studied next, is also a divisor method.

63 Webster’s Method Suppose M seats are to be apportioned.Suppose M seats are to be apportioned. 1) 1) a)Choose a number, d, called the modified divisor. b)For each state, calculate the modified quota, mQ.

64 Webster’s Method, cont’d 1) 1) c)If when the modified quotas are rounded normally, their sum is M, then go on to Step 2. Otherwise go back to Step 1, part (a) and choose a different value for d. 2)Assign to each state the integer nearest its modified quota.

65 Example 2 Use Webster’s method to apportion 200 seats to the 5 states in the previous example.Use Webster’s method to apportion 200 seats to the 5 states in the previous example.

66 Example 2, cont’d Solution: Rounding the standard quotas normally gives a sum of 199, one short of the desired total.Solution: Rounding the standard quotas normally gives a sum of 199, one short of the desired total. Unlike when using Jefferson’s method, it is not clear whether the modified divisor should be larger or smaller than the standard divisor.Unlike when using Jefferson’s method, it is not clear whether the modified divisor should be larger or smaller than the standard divisor. In general, try to create an apportionment like the one obtained from Hamilton’s method.In general, try to create an apportionment like the one obtained from Hamilton’s method.

67 Example 2, cont’d Solution, cont’d:Solution, cont’d: State A needs a modified quota of 26.5 or greater so it will round up.State A needs a modified quota of 26.5 or greater so it will round up. We do not want any other states besides A and C to have quotas that round up.We do not want any other states besides A and C to have quotas that round up.

68 Example 2, cont’d Solution, cont’d: To make the modified quota for A larger, we need a modified divisor that is slightly smaller.Solution, cont’d: To make the modified quota for A larger, we need a modified divisor that is slightly smaller. The calculations done for Jefferson’s method show us that d = 49,848 is too large and d = 49,350 is too small.The calculations done for Jefferson’s method show us that d = 49,848 is too large and d = 49,350 is too small.

69 Example 2, cont’d Solution, cont’d: Try a modified divisor in between those two values. For example, try d = 49,700.Solution, cont’d: Try a modified divisor in between those two values. For example, try d = 49,700. Check the modified quota for State A to see if it is 26.5 or greater:Check the modified quota for State A to see if it is 26.5 or greater: Next check the rest of the modified quotas.Next check the rest of the modified quotas.

70 Example 2, cont’d Solution, cont’d: All of the modified quotas are shown below.Solution, cont’d: All of the modified quotas are shown below.

71 Example 2, cont’d Solution, cont’d: The rounded modified quotas add to 27 + 30 + 99 + 22 + 22 = 200.Solution, cont’d: The rounded modified quotas add to 27 + 30 + 99 + 22 + 22 = 200. This is the correct total, so the modified divisor was appropriate.This is the correct total, so the modified divisor was appropriate. The apportionment is complete.The apportionment is complete.

72 Question: The standard quotas and the apportionment under Webster’s method from the previous example are recalled in the table below. Which state’s apportionment illustrates that Webster’s method is not a quota method? a. Ab. B c. Cd. D e. None of the above

73 Example 3 Suppose a retail store needs to apportion 54 sales associates to three stores.Suppose a retail store needs to apportion 54 sales associates to three stores.

74 Example 3, cont’d Solution: First determine the standard divisor by dividing the total customer base by the number of sales associates.Solution: First determine the standard divisor by dividing the total customer base by the number of sales associates. The standard divisor is D = 2454.The standard divisor is D = 2454. There needs to be approximately 1 sales associate for every 2454 customers.There needs to be approximately 1 sales associate for every 2454 customers.

75 Example 3, cont’d Solution, cont’d: The standard quotas are calculated, as shown in the table below.Solution, cont’d: The standard quotas are calculated, as shown in the table below. Note that the rounded quotas add to 53.Note that the rounded quotas add to 53.

76 Example 3, cont’d Solution, cont’d: The sum of the rounded standard quotas was too small, so the modified divisor needs to be a little larger than the standard divisor.Solution, cont’d: The sum of the rounded standard quotas was too small, so the modified divisor needs to be a little larger than the standard divisor. Find a new modified divisor using the guess- and-check method.Find a new modified divisor using the guess- and-check method. First, tryFirst, try

77 Example 3, cont’d Solution, cont’d: The modified divisor is appropriate because the rounded modified quotas add to 54.Solution, cont’d: The modified divisor is appropriate because the rounded modified quotas add to 54.

78 Example 3, cont’d Solution, cont’d: The final apportionment is:Solution, cont’d: The final apportionment is: Northside store: 11 sales associatesNorthside store: 11 sales associates Westside store: 16 sales associatesWestside store: 16 sales associates Eastside store: 27 sales associatesEastside store: 27 sales associates

79 5.2 Initial Problem Solution You, your sister, and your brother will divide 85 gold coins based on the number of hours you have each volunteered at the soup kitchen.You, your sister, and your brother will divide 85 gold coins based on the number of hours you have each volunteered at the soup kitchen.

80 Initial Problem Solution, cont’d The standard divisor is found by dividing the total number of hours worked by the number of gold coins.The standard divisor is found by dividing the total number of hours worked by the number of gold coins. D is approximately 1.76.D is approximately 1.76. You should each get about 1.76 coins for every hour you have worked.You should each get about 1.76 coins for every hour you have worked.

81 Initial Problem Solution, cont’d The standard quotas for each person are shown in the table.The standard quotas for each person are shown in the table.

82 Initial Problem Solution, cont’d Consider the apportionment for Jefferson’s method:Consider the apportionment for Jefferson’s method: Rounding down the standard quotas yields a sum of 40 + 24 + 19 = 83, which is too small.Rounding down the standard quotas yields a sum of 40 + 24 + 19 = 83, which is too small. The modified divisor must be smaller.The modified divisor must be smaller.

83 Initial Problem Solution, cont’d Suppose we try a modified divisor of d = 1.74.Suppose we try a modified divisor of d = 1.74.

84 Initial Problem Solution, cont’d The rounded-down modified quotas add to 85.The rounded-down modified quotas add to 85. The final apportionment, using Jefferson’s method, is:The final apportionment, using Jefferson’s method, is: You will receive 41 coins.You will receive 41 coins. Your sister will receive 25 coins.Your sister will receive 25 coins. Your brother will receive 19 coins.Your brother will receive 19 coins.

85 Initial Problem Solution, cont’d Now apportion the coins using Webster’s method:Now apportion the coins using Webster’s method: When the standard quotas are rounded normally, they add to 86.When the standard quotas are rounded normally, they add to 86. The modified divisor needs to be slightly larger than the standard divisor so that the sum of the rounded quotas will be smaller.The modified divisor needs to be slightly larger than the standard divisor so that the sum of the rounded quotas will be smaller.

86 Initial Problem Solution, cont’d Try using a modified divisor of d = 1.77.Try using a modified divisor of d = 1.77.

87 Initial Problem Solution, cont’d The normally-rounded modified quotas add to 85.The normally-rounded modified quotas add to 85. The final apportionment, using Webster’s method, is:The final apportionment, using Webster’s method, is: You will receive 41 coins.You will receive 41 coins. Your sister will receive 25 coins.Your sister will receive 25 coins. Your brother will receive 19 coins.Your brother will receive 19 coins. In this case, both apportionments are the same.In this case, both apportionments are the same.

88 Section 5.3 Flaws of the Apportionment Methods GoalsGoals Study the Alabama paradoxStudy the Alabama paradox Study the population paradoxStudy the population paradox Study the new-states paradoxStudy the new-states paradox

89 5.3 Initial Problem A total of 25 computers will be divided among the schools in a district.A total of 25 computers will be divided among the schools in a district. Initially, your school is to receive 6 computers.Initially, your school is to receive 6 computers. After the total number of computers increases to 26, it is discovered that your school will now only get 5 computers.After the total number of computers increases to 26, it is discovered that your school will now only get 5 computers. How is that possible?How is that possible? The solution will be given at the end of the section.The solution will be given at the end of the section.

90 Apportionment Problems No apportionment method is free of flaws.No apportionment method is free of flaws. Circumstances that can cause apportionment problems include:Circumstances that can cause apportionment problems include: A reapportionment based on population changes.A reapportionment based on population changes. A change in the total number of seats.A change in the total number of seats. The addition of one or more new states.The addition of one or more new states.

91 The Quota Rule Recall that the quota rule says that each state’s apportionment should be equal to the whole number just below or just above the state’s standard quota.Recall that the quota rule says that each state’s apportionment should be equal to the whole number just below or just above the state’s standard quota. Every quota method satisfies the quota rule.Every quota method satisfies the quota rule. No divisor method can always satisfy the quota rule.No divisor method can always satisfy the quota rule. Both quota and divisor methods may have flaws.Both quota and divisor methods may have flaws.

92 The Alabama Paradox In 1880 it was discovered that if the number of seats in the House of Representatives was increased from 299 to 300 then Alabama would be apportioned one fewer seat than before, using Hamilton’s method.In 1880 it was discovered that if the number of seats in the House of Representatives was increased from 299 to 300 then Alabama would be apportioned one fewer seat than before, using Hamilton’s method. The possibility that the addition of one legislative seat will cause a state to lose a seat is called the Alabama paradox.The possibility that the addition of one legislative seat will cause a state to lose a seat is called the Alabama paradox.

93 The Alabama Paradox, cont’d When the total number of seats is increased, each standard quota must also increase.When the total number of seats is increased, each standard quota must also increase. For a state to lose a seat (under a quota method), the decrease must be due to a change from rounding up the state’s quota to rounding it down.For a state to lose a seat (under a quota method), the decrease must be due to a change from rounding up the state’s quota to rounding it down. The lost seat must be apportioned to another state, so that state’s quota had to change from being rounded down to rounded up.The lost seat must be apportioned to another state, so that state’s quota had to change from being rounded down to rounded up.

94 Question: A country had 299 legislators for 4 states, with an apportionment of State A: 50 seats, State B: 85 seats, State C: 91 seats, and State D: 73 seats. After the number of seats in the legislature was increased to 300, the apportionment changed to State A: 50 seats, State B: 86 seats, State C: 91 seats, and State D: 73 seats. Did the Alabama paradox occur? a. Yesb. No

95 Example 1 A country has a population of 100,000 in 4 states.A country has a population of 100,000 in 4 states. Show that the Alabama paradox arises under Hamilton’s method if the number of seats in the legislature is increased from 99 to 100.Show that the Alabama paradox arises under Hamilton’s method if the number of seats in the legislature is increased from 99 to 100.

96 Example 1, cont’d Solution: Find the apportionment for 99 seats.Solution: Find the apportionment for 99 seats. The standard divisor is D = 100,000/99 = 1010.10.The standard divisor is D = 100,000/99 = 1010.10. Calculate the standard quota for each state.Calculate the standard quota for each state.

97 Example 1, cont’d Solution, cont’d: The integer parts of the standard quotas add up to 98, so there is 1 seat leftover.Solution, cont’d: The integer parts of the standard quotas add up to 98, so there is 1 seat leftover.

98 Example 1, cont’d Solution, cont’d:Solution, cont’d: The state with the largest fractional part of its standard quota is state C. State C gets the leftover seat.State C gets the leftover seat.

99 Example 1, cont’d Solution, cont’d: The final apportionment of 99 seats is shown below.Solution, cont’d: The final apportionment of 99 seats is shown below.

100 Example 1, cont’d Solution, cont’d: Next, find the apportionment for 100 seats.Solution, cont’d: Next, find the apportionment for 100 seats. The standard divisor is D = 100,000/100 = 1000.The standard divisor is D = 100,000/100 = 1000.

101 Example 1, cont’d Solution, cont’d: The standard quota for each state is calculated.Solution, cont’d: The standard quota for each state is calculated. The integer parts of the standard quotas add up to 98, so there are 2 seats leftover.The integer parts of the standard quotas add up to 98, so there are 2 seats leftover.

102 Example 1, cont’d Solution, cont’d: The states with the largest fractional parts of their standard quotas are states A and B.Solution, cont’d: The states with the largest fractional parts of their standard quotas are states A and B.

103 Example 1, cont’d Solution, cont’d: The final apportionment of 100 seats is shown below.Solution, cont’d: The final apportionment of 100 seats is shown below.

104 Example 1, cont’d Solution, cont’d: Note that state C had 11 seats in the first apportionment, but only 10 seats in the second apportionment.Solution, cont’d: Note that state C had 11 seats in the first apportionment, but only 10 seats in the second apportionment. The bigger states, A and B, have benefited at the expense of the smaller state C.The bigger states, A and B, have benefited at the expense of the smaller state C. This is an example of the Alabama paradox.This is an example of the Alabama paradox.

105 Population Paradox The population paradox can occur when the population in two states increases.The population paradox can occur when the population in two states increases. The legislature is reapportioned based on a new census and a seat is switched from one state to the other.The legislature is reapportioned based on a new census and a seat is switched from one state to the other. The paradox occurs when the faster- growing state is the one that loses the seat.The paradox occurs when the faster- growing state is the one that loses the seat.

106 Question: A census shows that State A is growing at a rate of 2%, State B at a rate of 0%, and State C at a rate of 3.5%. The previous apportionment was State A: 38 seats, State B: 52 seats, and State C: 60 seats. The new apportionment after the census was State A: 39 seats, State B: 52 seats, and State C: 59 seats. Did the population paradox occur? a. Yesb. No

107 Example 2 A country has 3 states and 100 seats in the legislature.A country has 3 states and 100 seats in the legislature. Show that the population paradox occurs when Hamilton’s method is used.Show that the population paradox occurs when Hamilton’s method is used.

108 Example 2, cont’d Solution: Note that states A and B grew, while the population of state C remained the same.Solution: Note that states A and B grew, while the population of state C remained the same. Find the rates of increase for states A and B.Find the rates of increase for states A and B.

109 Example 2, cont’d Solution, cont’d:Solution, cont’d: The rate of increase for state A is:The rate of increase for state A is: The rate of increase for state B is:The rate of increase for state B is: State A is the faster-growing state.State A is the faster-growing state.

110 Example 2, cont’d Solution, cont’d: Calculate the standard divisor for the old population:Solution, cont’d: Calculate the standard divisor for the old population: D = 100,000/100 = 1000D = 100,000/100 = 1000 The standard quotas are shown in the table below.The standard quotas are shown in the table below.

111 Example 2, cont’d Solution, cont’d: The integer parts of the standard quotas apportion 98 seats.Solution, cont’d: The integer parts of the standard quotas apportion 98 seats. The two remaining seats go to states C and A, which have the largest fractional parts.The two remaining seats go to states C and A, which have the largest fractional parts. The final apportionment for the old population is State A: 10 seats; State B: 19 seats; and State C: 71 seats.The final apportionment for the old population is State A: 10 seats; State B: 19 seats; and State C: 71 seats.

112 Example 2, cont’d Solution, cont’d: Next, find the apportionment for the new population totals.Solution, cont’d: Next, find the apportionment for the new population totals. The standard divisor is D = 100,291/100 = 1002.91.The standard divisor is D = 100,291/100 = 1002.91. The standard quotas are shown below.The standard quotas are shown below.

113 Example 2, cont’d Solution, cont’d: As before, the integer parts of the standard quotas apportion 98 seats.Solution, cont’d: As before, the integer parts of the standard quotas apportion 98 seats. The remaining 2 seats are assigned to states C and B, which have the largest fractional parts.The remaining 2 seats are assigned to states C and B, which have the largest fractional parts. The final apportionment for the new population totals is State A: 9 seats; State B: 20 seats; and State C: 71 seats.The final apportionment for the new population totals is State A: 9 seats; State B: 20 seats; and State C: 71 seats.

114 Example 2, cont’d Solution, cont’d: Before the census state A had 10 seats in the legislature, but after the census it had only 9 seats.Solution, cont’d: Before the census state A had 10 seats in the legislature, but after the census it had only 9 seats. After the census, the fastest-growing state A lost a seat to the slower-growing state B.After the census, the fastest-growing state A lost a seat to the slower-growing state B. This is an example of the population paradox.This is an example of the population paradox.

115 New States Paradox If a new state is added to a country, then how many seats must be added to the legislature?If a new state is added to a country, then how many seats must be added to the legislature? A reasonable number of seats would seem to be the integer part of the new state’s standard quota.A reasonable number of seats would seem to be the integer part of the new state’s standard quota. The new-states paradox occurs when a recalculation of the apportionment results in a change of the apportionment of some of the other states, not the new state.The new-states paradox occurs when a recalculation of the apportionment results in a change of the apportionment of some of the other states, not the new state.

116 Question: A fourth state was just added to a country. The previous apportionment was State A: 48 seats, State B: 52 seats, and State C: 50 seats. The new apportionment after State D was added is State A: 49 seats, State B: 51 seats, State C: 50 seats, and State D: 29 seats. Did the new-states paradox occur? a. Yesb. No

117 Example 3 A country has 2 states and 100 seats in the legislature.A country has 2 states and 100 seats in the legislature. The current apportionments under Hamilton’s method are shown in the table below.The current apportionments under Hamilton’s method are shown in the table below.

118 Example 3, cont’d Show that if a third state with a population of 10,400 is added, the new-states paradox occurs.Show that if a third state with a population of 10,400 is added, the new-states paradox occurs. Solution: Since the old standard divisor was 1000, the new state’s standard quota would have been Q = 10,400/1000 = 10.4.Solution: Since the old standard divisor was 1000, the new state’s standard quota would have been Q = 10,400/1000 = 10.4. We assume that 10 new seats should be added to the legislature.We assume that 10 new seats should be added to the legislature. A total of 110 seats will now be apportioned to the 3 states.A total of 110 seats will now be apportioned to the 3 states.

119 Example 3, cont’d Solution, cont’d: The total population is now 110,400.Solution, cont’d: The total population is now 110,400. The new standard divisor is D = 110,400/110 = 1003.6364.The new standard divisor is D = 110,400/110 = 1003.6364. The new standard quotas are shown below.The new standard quotas are shown below.

120 Example 3, cont’d Solution, cont’d: A total of 109 seats are apportioned according to the integer parts of the standard quotas.Solution, cont’d: A total of 109 seats are apportioned according to the integer parts of the standard quotas. The 1 leftover seat is assigned to state A, which has the largest fractional part.The 1 leftover seat is assigned to state A, which has the largest fractional part.

121 Example 3, cont’d Solution, cont’d: After the new state, C, was added:Solution, cont’d: After the new state, C, was added: State C received 10 seats, as expected.State C received 10 seats, as expected. State A lost a seat to State B.State A lost a seat to State B. The change in apportionment among the old states is an example of the new- states paradox.The change in apportionment among the old states is an example of the new- states paradox.

122 Paradox Summary The three types of paradoxes studied here are summarized below.The three types of paradoxes studied here are summarized below.

123 Paradox Summary, cont’d The different types of problems that can occur with the various apportionment methods are summarized below.The different types of problems that can occur with the various apportionment methods are summarized below.

124 Paradox Summary, cont’d As seen in the table, all 4 apportionment methods either violate the quota rule or allow paradoxes to occur.As seen in the table, all 4 apportionment methods either violate the quota rule or allow paradoxes to occur. Mathematicians Michel L. Balinski and H. Peyton Young proved there is no apportionment method that obeys the quota rule and always avoids the three paradoxes.Mathematicians Michel L. Balinski and H. Peyton Young proved there is no apportionment method that obeys the quota rule and always avoids the three paradoxes.

125 5.3 Initial Problem Solution When the district was getting 25 computers, your school would get 6 of them.When the district was getting 25 computers, your school would get 6 of them. Now that the district will get 26 computers, but your school will only get 5.Now that the district will get 26 computers, but your school will only get 5. How is this possible?How is this possible?

126 Initial Problem Solution, cont’d Without more information, we cannot check the mathematics behind the apportionment.Without more information, we cannot check the mathematics behind the apportionment. However, this situation is possible.However, this situation is possible. Your school losing 1 computer after the total number of computers increased is an example of the Alabama paradox.Your school losing 1 computer after the total number of computers increased is an example of the Alabama paradox. This can occur if the district uses Hamilton’s or Lowndes’ method to apportion the computers.This can occur if the district uses Hamilton’s or Lowndes’ method to apportion the computers.


Download ppt "A Mathematical View of Our World 1 st ed. Parks, Musser, Trimpe, Maurer, and Maurer."

Similar presentations


Ads by Google