The mean of the scores of 10 students.

Question

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Answer 1

Question

Definition Definition Measure of central tendency that is the average of a given data set. The mean value is evaluated as the quotient of the sum of all observations by the sample size. The mean, in contrast to a median, is affected by extreme values. Very large or very small values can distract the mean from the center of the data. Arithmetic mean: The most common type of mean is the arithmetic mean. It is evaluated using the formula: μ = 1 N ∑ i = 1 N x i Other types of means are the geometric mean, logarithmic mean, and harmonic mean. Geometric mean: The nth root of the product of n observations from a data set is defined as the geometric mean of the set: G = x 1 x 2 ... x n n Logarithmic mean: The difference of the natural logarithms of the two numbers, divided by the difference between the numbers is the logarithmic mean of the two numbers. The logarithmic mean is used particularly in heat transfer and mass transfer. ln x 2 − ln x 1 x 2 − x 1 Harmonic mean: The inverse of the arithmetic mean of the inverses of all the numbers in a data set is the harmonic mean of the data. 1 1 x 1 + 1 x 2 + ...

Chapter 18, Problem 26E

(a)

To determine

To find: The mean of the scores of 10 students.

(a)

Expert Solution

Answer to Problem 26E

Solution: The required mean is 69.4.

Explanation of Solution

Calculation:

The mean of the exam scores of the 10 students is obtained as:

Mean=Sum of exam scoresTotal number of students=82+62+80+⋯+6210=69410=69.4

(b)

To determine

Section 1:

To find: A simple random sample of four students.

(b)

Expert Solution

Answer to Problem 26E

Solution: The selected students are those who are labeled as 1, 9, 2, and 3.

Explanation of Solution

Calculation:

The samples of four students are chosen using Table A of random digits provided in the book. The one digit random numbers are chosen from the table starting from the 101^st row and the 1^st column of the table. The random number is selected between 0 to 9. If the same random number is repeated after appearing for the first time, the number will be rejected. The selected random numbers are 1, 9, 2, and 3.

The students who are labeled with the same number of chosen random number are selected as sample.

Section 2:

To calculate: The sample mean of the scores of 4 randomly selected students.

Solution: The required mean is 65.5.

Explanation:

Calculation:

The scores of the selected students are 62, 62, 80, and 58. The sample mean (x¯) of the exam scores of the four randomly selected students is obtained as:

x¯=Sum of exam scores of selected studentsTotal number of students=62+62+80+584=2624=65.5

Interpretation: The mean value of the exam scores of 4 students is the estimate of population mean that is equal to 65.5.

(c)

To determine

Section 1:

To find: Ten simple random samples of four students.

(c)

Expert Solution

Answer to Problem 26E

Solution: The selected students are those who are labeled with the same number of selected random number. The below table shows the selected students:

Sample	Selected Students
Sample 1	7, 3, 6, 4
Sample 2	4, 5, 6, 7
Sample 3	5, 2, 7, 1
Sample 4	9, 5, 2, 4
Sample 5	8, 2, 7, 3
Sample 6	6, 0, 9, 4
Sample 7	3, 6, 0, 9
Sample 8	3, 8, 4, 7
Sample 9	5, 9, 6, 3
Sample 10	6, 2, 5, 6

Explanation:

Calculation:

A sample of four students is chosen using Table A of random digits provided in the book. One-digit random numbers are chosen from the table starting from the 102^th row and the 1^st column of the table. A random number is selected between 0 and 9. If the same random number is repeated after appearing for the first time, it will be rejected. The selected random numbers are 7, 3, 6, and 4. So, the selected students for the first sample are the students who are labeled with the same number of chosen random numbers.

The above mentioned process is repeated for nine more times to obtained nine sample of size four using different row and column of Table A. The obtained result is shown in the below table:

Sample	Random Number
Sample 1	7, 3, 6, 4
Sample 2	4, 5, 6, 7
Sample 3	5, 2, 7, 1
Sample 4	9, 5, 2, 4
Sample 5	8, 2, 7, 3
Sample 6	6, 0, 9, 4
Sample 7	3, 6, 0, 9
Sample 8	3, 8, 4, 7
Sample 9	5, 9, 6, 3
Sample 10	6, 2, 5, 6

The students who are labeled with the same number of chosen random numbers are selected as sample.

Section 2:

To find: The sample mean of the scores of 10 samples of size 4.

Solution: The required mean are shown in below table:

Sample	Sample mean
Sample 1	65
Sample 2	69
Sample 3	70.25
Sample 4	71.75
Sample 5	69.5
Sample 6	70.25
Sample 7	66.75
Sample 8	67.5
Sample 9	64.5
Sample 10	70.75

Explanation of Solution

Calculation:

The scores of the students of first sample are 66, 58, 65, and 72. The sample mean (x¯1) of the exam scores of the first sample is obtained as:

x¯1=Sum of exam scores of selected studentsTotal number of students=66+58+65+724=2614=65.25

The calculation for the sample mean of the rest of the samples is shown in the below table:

Sample	Selected Students	Scores	Sample Mean
Sample 2	4, 5, 6, 7	72, 73, 65, 66	x¯2=72+73+65+664=69
Sample 3	5, 2, 7, 1	73, 80, 66, 62	x¯3=73+80+66+624=70.25
Sample 4	9, 5, 2, 4	62, 73, 80, 72	x¯4=62+73+80+724=71.75
Sample 5	8, 2, 7, 3	74, 80, 66, 58	x¯5=74+80+66+584=69.5
Sample 6	6, 0, 9, 4	65, 82, 62, 72	x¯6=65+82+62+724=70.25
Sample 7	3, 6, 0, 9	58, 65, 82, 62	x¯7=58+65+82+624=66.75
Sample 8	3, 8, 4, 7	58, 74, 72, 66	x¯8=58+74+72+664=67.5
Sample 9	5, 9, 6, 3	73, 62, 65, 58	x¯9=73+62+65+584=64.5
Sample 10	6, 2, 5, 6	65, 80, 73, 65	x¯10=65+80+73+654=70.75

Section 3:

To graph: The histogram that shows the mean of the 10 samples.

Graph: To obtain the histogram, below steps are followed in the Minitab software.

Step 1: Enter the sample means in the Minitab worksheet.

Step 2: Go to “Graph” and select “Histogram.” Choose “Simple” and click OK.

Step 3: Enter the graph variables column and click OK.

Launchpad For Moore's Statistics: Concepts And Controversies (twelve Month Access), Chapter 18, Problem 26E

Interpretation: The obtained graph shows that maximum number of sample has mean value near 70.

To determine: Whether the population mean lies at the center of the histogram.

Solution: The population means lies at the center of the histogram.

Explanation:

The population mean is obtained as 69.4 in part (a). From the obtained histogram, it can be said that the population mean lies almost at the center of the histogram that is the center of the histogram close to the population mean.

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Answer 2

Question

Definition Definition Measure of central tendency that is the average of a given data set. The mean value is evaluated as the quotient of the sum of all observations by the sample size. The mean, in contrast to a median, is affected by extreme values. Very large or very small values can distract the mean from the center of the data. Arithmetic mean: The most common type of mean is the arithmetic mean. It is evaluated using the formula: μ = 1 N ∑ i = 1 N x i Other types of means are the geometric mean, logarithmic mean, and harmonic mean. Geometric mean: The nth root of the product of n observations from a data set is defined as the geometric mean of the set: G = x 1 x 2 ... x n n Logarithmic mean: The difference of the natural logarithms of the two numbers, divided by the difference between the numbers is the logarithmic mean of the two numbers. The logarithmic mean is used particularly in heat transfer and mass transfer. ln x 2 − ln x 1 x 2 − x 1 Harmonic mean: The inverse of the arithmetic mean of the inverses of all the numbers in a data set is the harmonic mean of the data. 1 1 x 1 + 1 x 2 + ...

Chapter 18, Problem 26E

(a)

To determine

To find: The mean of the scores of 10 students.

(a)

Expert Solution

Answer to Problem 26E

Solution: The required mean is 69.4.

Explanation of Solution

Calculation:

The mean of the exam scores of the 10 students is obtained as:

Mean=Sum of exam scoresTotal number of students=82+62+80+⋯+6210=69410=69.4

(b)

To determine

Section 1:

To find: A simple random sample of four students.

(b)

Expert Solution

Answer to Problem 26E

Solution: The selected students are those who are labeled as 1, 9, 2, and 3.

Explanation of Solution

Calculation:

The samples of four students are chosen using Table A of random digits provided in the book. The one digit random numbers are chosen from the table starting from the 101^st row and the 1^st column of the table. The random number is selected between 0 to 9. If the same random number is repeated after appearing for the first time, the number will be rejected. The selected random numbers are 1, 9, 2, and 3.

The students who are labeled with the same number of chosen random number are selected as sample.

Section 2:

To calculate: The sample mean of the scores of 4 randomly selected students.

Solution: The required mean is 65.5.

Explanation:

Calculation:

The scores of the selected students are 62, 62, 80, and 58. The sample mean (x¯) of the exam scores of the four randomly selected students is obtained as:

x¯=Sum of exam scores of selected studentsTotal number of students=62+62+80+584=2624=65.5

Interpretation: The mean value of the exam scores of 4 students is the estimate of population mean that is equal to 65.5.

(c)

To determine

Section 1:

To find: Ten simple random samples of four students.

(c)

Expert Solution

Answer to Problem 26E

Solution: The selected students are those who are labeled with the same number of selected random number. The below table shows the selected students:

Sample	Selected Students
Sample 1	7, 3, 6, 4
Sample 2	4, 5, 6, 7
Sample 3	5, 2, 7, 1
Sample 4	9, 5, 2, 4
Sample 5	8, 2, 7, 3
Sample 6	6, 0, 9, 4
Sample 7	3, 6, 0, 9
Sample 8	3, 8, 4, 7
Sample 9	5, 9, 6, 3
Sample 10	6, 2, 5, 6

Explanation:

Calculation:

A sample of four students is chosen using Table A of random digits provided in the book. One-digit random numbers are chosen from the table starting from the 102^th row and the 1^st column of the table. A random number is selected between 0 and 9. If the same random number is repeated after appearing for the first time, it will be rejected. The selected random numbers are 7, 3, 6, and 4. So, the selected students for the first sample are the students who are labeled with the same number of chosen random numbers.

The above mentioned process is repeated for nine more times to obtained nine sample of size four using different row and column of Table A. The obtained result is shown in the below table:

Sample	Random Number
Sample 1	7, 3, 6, 4
Sample 2	4, 5, 6, 7
Sample 3	5, 2, 7, 1
Sample 4	9, 5, 2, 4
Sample 5	8, 2, 7, 3
Sample 6	6, 0, 9, 4
Sample 7	3, 6, 0, 9
Sample 8	3, 8, 4, 7
Sample 9	5, 9, 6, 3
Sample 10	6, 2, 5, 6

The students who are labeled with the same number of chosen random numbers are selected as sample.

Section 2:

To find: The sample mean of the scores of 10 samples of size 4.

Solution: The required mean are shown in below table:

Sample	Sample mean
Sample 1	65
Sample 2	69
Sample 3	70.25
Sample 4	71.75
Sample 5	69.5
Sample 6	70.25
Sample 7	66.75
Sample 8	67.5
Sample 9	64.5
Sample 10	70.75

Explanation of Solution

Calculation:

The scores of the students of first sample are 66, 58, 65, and 72. The sample mean (x¯1) of the exam scores of the first sample is obtained as:

x¯1=Sum of exam scores of selected studentsTotal number of students=66+58+65+724=2614=65.25

The calculation for the sample mean of the rest of the samples is shown in the below table:

Sample	Selected Students	Scores	Sample Mean
Sample 2	4, 5, 6, 7	72, 73, 65, 66	x¯2=72+73+65+664=69
Sample 3	5, 2, 7, 1	73, 80, 66, 62	x¯3=73+80+66+624=70.25
Sample 4	9, 5, 2, 4	62, 73, 80, 72	x¯4=62+73+80+724=71.75
Sample 5	8, 2, 7, 3	74, 80, 66, 58	x¯5=74+80+66+584=69.5
Sample 6	6, 0, 9, 4	65, 82, 62, 72	x¯6=65+82+62+724=70.25
Sample 7	3, 6, 0, 9	58, 65, 82, 62	x¯7=58+65+82+624=66.75
Sample 8	3, 8, 4, 7	58, 74, 72, 66	x¯8=58+74+72+664=67.5
Sample 9	5, 9, 6, 3	73, 62, 65, 58	x¯9=73+62+65+584=64.5
Sample 10	6, 2, 5, 6	65, 80, 73, 65	x¯10=65+80+73+654=70.75

Section 3:

To graph: The histogram that shows the mean of the 10 samples.

Graph: To obtain the histogram, below steps are followed in the Minitab software.

Step 1: Enter the sample means in the Minitab worksheet.

Step 2: Go to “Graph” and select “Histogram.” Choose “Simple” and click OK.

Step 3: Enter the graph variables column and click OK.

Launchpad For Moore's Statistics: Concepts And Controversies (twelve Month Access), Chapter 18, Problem 26E

Interpretation: The obtained graph shows that maximum number of sample has mean value near 70.

To determine: Whether the population mean lies at the center of the histogram.

Solution: The population means lies at the center of the histogram.

Explanation:

The population mean is obtained as 69.4 in part (a). From the obtained histogram, it can be said that the population mean lies almost at the center of the histogram that is the center of the histogram close to the population mean.

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Subscribe now to access step-by-step solutions to millions of textbook problems written by subject matter experts!

Answer 3

Question

Definition Definition Measure of central tendency that is the average of a given data set. The mean value is evaluated as the quotient of the sum of all observations by the sample size. The mean, in contrast to a median, is affected by extreme values. Very large or very small values can distract the mean from the center of the data. Arithmetic mean: The most common type of mean is the arithmetic mean. It is evaluated using the formula: μ = 1 N ∑ i = 1 N x i Other types of means are the geometric mean, logarithmic mean, and harmonic mean. Geometric mean: The nth root of the product of n observations from a data set is defined as the geometric mean of the set: G = x 1 x 2 ... x n n Logarithmic mean: The difference of the natural logarithms of the two numbers, divided by the difference between the numbers is the logarithmic mean of the two numbers. The logarithmic mean is used particularly in heat transfer and mass transfer. ln x 2 − ln x 1 x 2 − x 1 Harmonic mean: The inverse of the arithmetic mean of the inverses of all the numbers in a data set is the harmonic mean of the data. 1 1 x 1 + 1 x 2 + ...

Chapter 18, Problem 26E

(a)

To determine

To find: The mean of the scores of 10 students.

(a)

Expert Solution

Answer to Problem 26E

Solution: The required mean is 69.4.

Explanation of Solution

Calculation:

The mean of the exam scores of the 10 students is obtained as:

Mean=Sum of exam scoresTotal number of students=82+62+80+⋯+6210=69410=69.4

(b)

To determine

Section 1:

To find: A simple random sample of four students.

(b)

Expert Solution

Answer to Problem 26E

Solution: The selected students are those who are labeled as 1, 9, 2, and 3.

Explanation of Solution

Calculation:

The samples of four students are chosen using Table A of random digits provided in the book. The one digit random numbers are chosen from the table starting from the 101^st row and the 1^st column of the table. The random number is selected between 0 to 9. If the same random number is repeated after appearing for the first time, the number will be rejected. The selected random numbers are 1, 9, 2, and 3.

The students who are labeled with the same number of chosen random number are selected as sample.

Section 2:

To calculate: The sample mean of the scores of 4 randomly selected students.

Solution: The required mean is 65.5.

Explanation:

Calculation:

The scores of the selected students are 62, 62, 80, and 58. The sample mean (x¯) of the exam scores of the four randomly selected students is obtained as:

x¯=Sum of exam scores of selected studentsTotal number of students=62+62+80+584=2624=65.5

Interpretation: The mean value of the exam scores of 4 students is the estimate of population mean that is equal to 65.5.

(c)

To determine

Section 1:

To find: Ten simple random samples of four students.

(c)

Expert Solution

Answer to Problem 26E

Solution: The selected students are those who are labeled with the same number of selected random number. The below table shows the selected students:

Sample	Selected Students
Sample 1	7, 3, 6, 4
Sample 2	4, 5, 6, 7
Sample 3	5, 2, 7, 1
Sample 4	9, 5, 2, 4
Sample 5	8, 2, 7, 3
Sample 6	6, 0, 9, 4
Sample 7	3, 6, 0, 9
Sample 8	3, 8, 4, 7
Sample 9	5, 9, 6, 3
Sample 10	6, 2, 5, 6

Explanation:

Calculation:

A sample of four students is chosen using Table A of random digits provided in the book. One-digit random numbers are chosen from the table starting from the 102^th row and the 1^st column of the table. A random number is selected between 0 and 9. If the same random number is repeated after appearing for the first time, it will be rejected. The selected random numbers are 7, 3, 6, and 4. So, the selected students for the first sample are the students who are labeled with the same number of chosen random numbers.

The above mentioned process is repeated for nine more times to obtained nine sample of size four using different row and column of Table A. The obtained result is shown in the below table:

Sample	Random Number
Sample 1	7, 3, 6, 4
Sample 2	4, 5, 6, 7
Sample 3	5, 2, 7, 1
Sample 4	9, 5, 2, 4
Sample 5	8, 2, 7, 3
Sample 6	6, 0, 9, 4
Sample 7	3, 6, 0, 9
Sample 8	3, 8, 4, 7
Sample 9	5, 9, 6, 3
Sample 10	6, 2, 5, 6

The students who are labeled with the same number of chosen random numbers are selected as sample.

Section 2:

To find: The sample mean of the scores of 10 samples of size 4.

Solution: The required mean are shown in below table:

Sample	Sample mean
Sample 1	65
Sample 2	69
Sample 3	70.25
Sample 4	71.75
Sample 5	69.5
Sample 6	70.25
Sample 7	66.75
Sample 8	67.5
Sample 9	64.5
Sample 10	70.75

Explanation of Solution

Calculation:

The scores of the students of first sample are 66, 58, 65, and 72. The sample mean (x¯1) of the exam scores of the first sample is obtained as:

x¯1=Sum of exam scores of selected studentsTotal number of students=66+58+65+724=2614=65.25

The calculation for the sample mean of the rest of the samples is shown in the below table:

Sample	Selected Students	Scores	Sample Mean
Sample 2	4, 5, 6, 7	72, 73, 65, 66	x¯2=72+73+65+664=69
Sample 3	5, 2, 7, 1	73, 80, 66, 62	x¯3=73+80+66+624=70.25
Sample 4	9, 5, 2, 4	62, 73, 80, 72	x¯4=62+73+80+724=71.75
Sample 5	8, 2, 7, 3	74, 80, 66, 58	x¯5=74+80+66+584=69.5
Sample 6	6, 0, 9, 4	65, 82, 62, 72	x¯6=65+82+62+724=70.25
Sample 7	3, 6, 0, 9	58, 65, 82, 62	x¯7=58+65+82+624=66.75
Sample 8	3, 8, 4, 7	58, 74, 72, 66	x¯8=58+74+72+664=67.5
Sample 9	5, 9, 6, 3	73, 62, 65, 58	x¯9=73+62+65+584=64.5
Sample 10	6, 2, 5, 6	65, 80, 73, 65	x¯10=65+80+73+654=70.75

Section 3:

To graph: The histogram that shows the mean of the 10 samples.

Graph: To obtain the histogram, below steps are followed in the Minitab software.

Step 1: Enter the sample means in the Minitab worksheet.

Step 2: Go to “Graph” and select “Histogram.” Choose “Simple” and click OK.

Step 3: Enter the graph variables column and click OK.

Launchpad For Moore's Statistics: Concepts And Controversies (twelve Month Access), Chapter 18, Problem 26E

Interpretation: The obtained graph shows that maximum number of sample has mean value near 70.

To determine: Whether the population mean lies at the center of the histogram.

Solution: The population means lies at the center of the histogram.

Explanation:

The population mean is obtained as 69.4 in part (a). From the obtained histogram, it can be said that the population mean lies almost at the center of the histogram that is the center of the histogram close to the population mean.

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Subscribe now to access step-by-step solutions to millions of textbook problems written by subject matter experts!

Answer 4

Question

Definition Definition Measure of central tendency that is the average of a given data set. The mean value is evaluated as the quotient of the sum of all observations by the sample size. The mean, in contrast to a median, is affected by extreme values. Very large or very small values can distract the mean from the center of the data. Arithmetic mean: The most common type of mean is the arithmetic mean. It is evaluated using the formula: μ = 1 N ∑ i = 1 N x i Other types of means are the geometric mean, logarithmic mean, and harmonic mean. Geometric mean: The nth root of the product of n observations from a data set is defined as the geometric mean of the set: G = x 1 x 2 ... x n n Logarithmic mean: The difference of the natural logarithms of the two numbers, divided by the difference between the numbers is the logarithmic mean of the two numbers. The logarithmic mean is used particularly in heat transfer and mass transfer. ln x 2 − ln x 1 x 2 − x 1 Harmonic mean: The inverse of the arithmetic mean of the inverses of all the numbers in a data set is the harmonic mean of the data. 1 1 x 1 + 1 x 2 + ...

Chapter 18, Problem 26E

(a)

To determine

To find: The mean of the scores of 10 students.

(a)

Expert Solution

Answer to Problem 26E

Solution: The required mean is 69.4.

Explanation of Solution

Calculation:

The mean of the exam scores of the 10 students is obtained as:

Mean=Sum of exam scoresTotal number of students=82+62+80+⋯+6210=69410=69.4

(b)

To determine

Section 1:

To find: A simple random sample of four students.

(b)

Expert Solution

Answer to Problem 26E

Solution: The selected students are those who are labeled as 1, 9, 2, and 3.

Explanation of Solution

Calculation:

The samples of four students are chosen using Table A of random digits provided in the book. The one digit random numbers are chosen from the table starting from the 101^st row and the 1^st column of the table. The random number is selected between 0 to 9. If the same random number is repeated after appearing for the first time, the number will be rejected. The selected random numbers are 1, 9, 2, and 3.

The students who are labeled with the same number of chosen random number are selected as sample.

Section 2:

To calculate: The sample mean of the scores of 4 randomly selected students.

Solution: The required mean is 65.5.

Explanation:

Calculation:

The scores of the selected students are 62, 62, 80, and 58. The sample mean (x¯) of the exam scores of the four randomly selected students is obtained as:

x¯=Sum of exam scores of selected studentsTotal number of students=62+62+80+584=2624=65.5

Interpretation: The mean value of the exam scores of 4 students is the estimate of population mean that is equal to 65.5.

(c)

To determine

Section 1:

To find: Ten simple random samples of four students.

(c)

Expert Solution

Answer to Problem 26E

Solution: The selected students are those who are labeled with the same number of selected random number. The below table shows the selected students:

Sample	Selected Students
Sample 1	7, 3, 6, 4
Sample 2	4, 5, 6, 7
Sample 3	5, 2, 7, 1
Sample 4	9, 5, 2, 4
Sample 5	8, 2, 7, 3
Sample 6	6, 0, 9, 4
Sample 7	3, 6, 0, 9
Sample 8	3, 8, 4, 7
Sample 9	5, 9, 6, 3
Sample 10	6, 2, 5, 6

Explanation:

Calculation:

A sample of four students is chosen using Table A of random digits provided in the book. One-digit random numbers are chosen from the table starting from the 102^th row and the 1^st column of the table. A random number is selected between 0 and 9. If the same random number is repeated after appearing for the first time, it will be rejected. The selected random numbers are 7, 3, 6, and 4. So, the selected students for the first sample are the students who are labeled with the same number of chosen random numbers.

The above mentioned process is repeated for nine more times to obtained nine sample of size four using different row and column of Table A. The obtained result is shown in the below table:

Sample	Random Number
Sample 1	7, 3, 6, 4
Sample 2	4, 5, 6, 7
Sample 3	5, 2, 7, 1
Sample 4	9, 5, 2, 4
Sample 5	8, 2, 7, 3
Sample 6	6, 0, 9, 4
Sample 7	3, 6, 0, 9
Sample 8	3, 8, 4, 7
Sample 9	5, 9, 6, 3
Sample 10	6, 2, 5, 6

The students who are labeled with the same number of chosen random numbers are selected as sample.

Section 2:

To find: The sample mean of the scores of 10 samples of size 4.

Solution: The required mean are shown in below table:

Sample	Sample mean
Sample 1	65
Sample 2	69
Sample 3	70.25
Sample 4	71.75
Sample 5	69.5
Sample 6	70.25
Sample 7	66.75
Sample 8	67.5
Sample 9	64.5
Sample 10	70.75

Explanation of Solution

Calculation:

The scores of the students of first sample are 66, 58, 65, and 72. The sample mean (x¯1) of the exam scores of the first sample is obtained as:

x¯1=Sum of exam scores of selected studentsTotal number of students=66+58+65+724=2614=65.25

The calculation for the sample mean of the rest of the samples is shown in the below table:

Sample	Selected Students	Scores	Sample Mean
Sample 2	4, 5, 6, 7	72, 73, 65, 66	x¯2=72+73+65+664=69
Sample 3	5, 2, 7, 1	73, 80, 66, 62	x¯3=73+80+66+624=70.25
Sample 4	9, 5, 2, 4	62, 73, 80, 72	x¯4=62+73+80+724=71.75
Sample 5	8, 2, 7, 3	74, 80, 66, 58	x¯5=74+80+66+584=69.5
Sample 6	6, 0, 9, 4	65, 82, 62, 72	x¯6=65+82+62+724=70.25
Sample 7	3, 6, 0, 9	58, 65, 82, 62	x¯7=58+65+82+624=66.75
Sample 8	3, 8, 4, 7	58, 74, 72, 66	x¯8=58+74+72+664=67.5
Sample 9	5, 9, 6, 3	73, 62, 65, 58	x¯9=73+62+65+584=64.5
Sample 10	6, 2, 5, 6	65, 80, 73, 65	x¯10=65+80+73+654=70.75

Section 3:

To graph: The histogram that shows the mean of the 10 samples.

Graph: To obtain the histogram, below steps are followed in the Minitab software.

Step 1: Enter the sample means in the Minitab worksheet.

Step 2: Go to “Graph” and select “Histogram.” Choose “Simple” and click OK.

Step 3: Enter the graph variables column and click OK.

Launchpad For Moore's Statistics: Concepts And Controversies (twelve Month Access), Chapter 18, Problem 26E

Interpretation: The obtained graph shows that maximum number of sample has mean value near 70.

To determine: Whether the population mean lies at the center of the histogram.

Solution: The population means lies at the center of the histogram.

Explanation:

The population mean is obtained as 69.4 in part (a). From the obtained histogram, it can be said that the population mean lies almost at the center of the histogram that is the center of the histogram close to the population mean.

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Answer 5

Chapter 18, Problem 26E

(a)

To determine

To find: The mean of the scores of 10 students.

(a)

Expert Solution

Answer to Problem 26E

Solution: The required mean is 69.4.

Explanation of Solution

Calculation:

The mean of the exam scores of the 10 students is obtained as:

Mean=Sum of exam scoresTotal number of students=82+62+80+⋯+6210=69410=69.4

(b)

To determine

Section 1:

To find: A simple random sample of four students.

(b)

Expert Solution

Answer to Problem 26E

Solution: The selected students are those who are labeled as 1, 9, 2, and 3.

Explanation of Solution

Calculation:

The samples of four students are chosen using Table A of random digits provided in the book. The one digit random numbers are chosen from the table starting from the 101^st row and the 1^st column of the table. The random number is selected between 0 to 9. If the same random number is repeated after appearing for the first time, the number will be rejected. The selected random numbers are 1, 9, 2, and 3.

The students who are labeled with the same number of chosen random number are selected as sample.

Section 2:

To calculate: The sample mean of the scores of 4 randomly selected students.

Solution: The required mean is 65.5.

Explanation:

Calculation:

The scores of the selected students are 62, 62, 80, and 58. The sample mean (x¯) of the exam scores of the four randomly selected students is obtained as:

x¯=Sum of exam scores of selected studentsTotal number of students=62+62+80+584=2624=65.5

Interpretation: The mean value of the exam scores of 4 students is the estimate of population mean that is equal to 65.5.

(c)

To determine

Section 1:

To find: Ten simple random samples of four students.

(c)

Expert Solution

Answer to Problem 26E

Solution: The selected students are those who are labeled with the same number of selected random number. The below table shows the selected students:

Sample	Selected Students
Sample 1	7, 3, 6, 4
Sample 2	4, 5, 6, 7
Sample 3	5, 2, 7, 1
Sample 4	9, 5, 2, 4
Sample 5	8, 2, 7, 3
Sample 6	6, 0, 9, 4
Sample 7	3, 6, 0, 9
Sample 8	3, 8, 4, 7
Sample 9	5, 9, 6, 3
Sample 10	6, 2, 5, 6

Explanation:

Calculation:

A sample of four students is chosen using Table A of random digits provided in the book. One-digit random numbers are chosen from the table starting from the 102^th row and the 1^st column of the table. A random number is selected between 0 and 9. If the same random number is repeated after appearing for the first time, it will be rejected. The selected random numbers are 7, 3, 6, and 4. So, the selected students for the first sample are the students who are labeled with the same number of chosen random numbers.

The above mentioned process is repeated for nine more times to obtained nine sample of size four using different row and column of Table A. The obtained result is shown in the below table:

Sample	Random Number
Sample 1	7, 3, 6, 4
Sample 2	4, 5, 6, 7
Sample 3	5, 2, 7, 1
Sample 4	9, 5, 2, 4
Sample 5	8, 2, 7, 3
Sample 6	6, 0, 9, 4
Sample 7	3, 6, 0, 9
Sample 8	3, 8, 4, 7
Sample 9	5, 9, 6, 3
Sample 10	6, 2, 5, 6

The students who are labeled with the same number of chosen random numbers are selected as sample.

Section 2:

To find: The sample mean of the scores of 10 samples of size 4.

Solution: The required mean are shown in below table:

Sample	Sample mean
Sample 1	65
Sample 2	69
Sample 3	70.25
Sample 4	71.75
Sample 5	69.5
Sample 6	70.25
Sample 7	66.75
Sample 8	67.5
Sample 9	64.5
Sample 10	70.75

Explanation of Solution

Calculation:

The scores of the students of first sample are 66, 58, 65, and 72. The sample mean (x¯1) of the exam scores of the first sample is obtained as:

x¯1=Sum of exam scores of selected studentsTotal number of students=66+58+65+724=2614=65.25

The calculation for the sample mean of the rest of the samples is shown in the below table:

Sample	Selected Students	Scores	Sample Mean
Sample 2	4, 5, 6, 7	72, 73, 65, 66	x¯2=72+73+65+664=69
Sample 3	5, 2, 7, 1	73, 80, 66, 62	x¯3=73+80+66+624=70.25
Sample 4	9, 5, 2, 4	62, 73, 80, 72	x¯4=62+73+80+724=71.75
Sample 5	8, 2, 7, 3	74, 80, 66, 58	x¯5=74+80+66+584=69.5
Sample 6	6, 0, 9, 4	65, 82, 62, 72	x¯6=65+82+62+724=70.25
Sample 7	3, 6, 0, 9	58, 65, 82, 62	x¯7=58+65+82+624=66.75
Sample 8	3, 8, 4, 7	58, 74, 72, 66	x¯8=58+74+72+664=67.5
Sample 9	5, 9, 6, 3	73, 62, 65, 58	x¯9=73+62+65+584=64.5
Sample 10	6, 2, 5, 6	65, 80, 73, 65	x¯10=65+80+73+654=70.75

Section 3:

To graph: The histogram that shows the mean of the 10 samples.

Graph: To obtain the histogram, below steps are followed in the Minitab software.

Step 1: Enter the sample means in the Minitab worksheet.

Step 2: Go to “Graph” and select “Histogram.” Choose “Simple” and click OK.

Step 3: Enter the graph variables column and click OK.

Launchpad For Moore's Statistics: Concepts And Controversies (twelve Month Access), Chapter 18, Problem 26E

Interpretation: The obtained graph shows that maximum number of sample has mean value near 70.

To determine: Whether the population mean lies at the center of the histogram.

Solution: The population means lies at the center of the histogram.

Explanation:

The population mean is obtained as 69.4 in part (a). From the obtained histogram, it can be said that the population mean lies almost at the center of the histogram that is the center of the histogram close to the population mean.

Answer 6

Chapter 18, Problem 26E

(a)

To determine

To find: The mean of the scores of 10 students.

(a)

Expert Solution

Answer to Problem 26E

Solution: The required mean is 69.4.

Explanation of Solution

Calculation:

The mean of the exam scores of the 10 students is obtained as:

Mean=Sum of exam scoresTotal number of students=82+62+80+⋯+6210=69410=69.4

Answer 7

Chapter 18, Problem 26E

(a)

To determine

To find: The mean of the scores of 10 students.

Answer 8

(a)

Expert Solution

Answer to Problem 26E

Solution: The required mean is 69.4.

Answer 9

(a)

Expert Solution

Answer 10

(a)

Expert Solution

Answer 11

Expert Solution

Answer 12

Explanation of Solution

Calculation:

The mean of the exam scores of the 10 students is obtained as:

Mean=Sum of exam scoresTotal number of students=82+62+80+⋯+6210=69410=69.4

Answer 13

(b)

To determine

Section 1:

To find: A simple random sample of four students.

(b)

Expert Solution

Answer to Problem 26E

Solution: The selected students are those who are labeled as 1, 9, 2, and 3.

Explanation of Solution

Calculation:

The samples of four students are chosen using Table A of random digits provided in the book. The one digit random numbers are chosen from the table starting from the 101^st row and the 1^st column of the table. The random number is selected between 0 to 9. If the same random number is repeated after appearing for the first time, the number will be rejected. The selected random numbers are 1, 9, 2, and 3.

The students who are labeled with the same number of chosen random number are selected as sample.

Section 2:

To calculate: The sample mean of the scores of 4 randomly selected students.

Solution: The required mean is 65.5.

Explanation:

Calculation:

The scores of the selected students are 62, 62, 80, and 58. The sample mean (x¯) of the exam scores of the four randomly selected students is obtained as:

x¯=Sum of exam scores of selected studentsTotal number of students=62+62+80+584=2624=65.5

Interpretation: The mean value of the exam scores of 4 students is the estimate of population mean that is equal to 65.5.

Answer 14

(b)

To determine

Section 1:

To find: A simple random sample of four students.

Answer 15

(b)

Expert Solution

Answer to Problem 26E

Solution: The selected students are those who are labeled as 1, 9, 2, and 3.

Answer 16

(b)

Expert Solution

Answer 17

(b)

Expert Solution

Answer 18

Expert Solution

Answer 19

Explanation of Solution

Calculation:

The samples of four students are chosen using Table A of random digits provided in the book. The one digit random numbers are chosen from the table starting from the 101^st row and the 1^st column of the table. The random number is selected between 0 to 9. If the same random number is repeated after appearing for the first time, the number will be rejected. The selected random numbers are 1, 9, 2, and 3.

The students who are labeled with the same number of chosen random number are selected as sample.

Section 2:

To calculate: The sample mean of the scores of 4 randomly selected students.

Solution: The required mean is 65.5.

Explanation:

Calculation:

The scores of the selected students are 62, 62, 80, and 58. The sample mean (x¯) of the exam scores of the four randomly selected students is obtained as:

x¯=Sum of exam scores of selected studentsTotal number of students=62+62+80+584=2624=65.5

Interpretation: The mean value of the exam scores of 4 students is the estimate of population mean that is equal to 65.5.

Answer 20

(c)

To determine

Section 1:

To find: Ten simple random samples of four students.

(c)

Expert Solution

Answer to Problem 26E

Solution: The selected students are those who are labeled with the same number of selected random number. The below table shows the selected students:

Sample	Selected Students
Sample 1	7, 3, 6, 4
Sample 2	4, 5, 6, 7
Sample 3	5, 2, 7, 1
Sample 4	9, 5, 2, 4
Sample 5	8, 2, 7, 3
Sample 6	6, 0, 9, 4
Sample 7	3, 6, 0, 9
Sample 8	3, 8, 4, 7
Sample 9	5, 9, 6, 3
Sample 10	6, 2, 5, 6

Explanation:

Calculation:

A sample of four students is chosen using Table A of random digits provided in the book. One-digit random numbers are chosen from the table starting from the 102^th row and the 1^st column of the table. A random number is selected between 0 and 9. If the same random number is repeated after appearing for the first time, it will be rejected. The selected random numbers are 7, 3, 6, and 4. So, the selected students for the first sample are the students who are labeled with the same number of chosen random numbers.

The above mentioned process is repeated for nine more times to obtained nine sample of size four using different row and column of Table A. The obtained result is shown in the below table:

Sample	Random Number
Sample 1	7, 3, 6, 4
Sample 2	4, 5, 6, 7
Sample 3	5, 2, 7, 1
Sample 4	9, 5, 2, 4
Sample 5	8, 2, 7, 3
Sample 6	6, 0, 9, 4
Sample 7	3, 6, 0, 9
Sample 8	3, 8, 4, 7
Sample 9	5, 9, 6, 3
Sample 10	6, 2, 5, 6

The students who are labeled with the same number of chosen random numbers are selected as sample.

Section 2:

To find: The sample mean of the scores of 10 samples of size 4.

Solution: The required mean are shown in below table:

Sample	Sample mean
Sample 1	65
Sample 2	69
Sample 3	70.25
Sample 4	71.75
Sample 5	69.5
Sample 6	70.25
Sample 7	66.75
Sample 8	67.5
Sample 9	64.5
Sample 10	70.75

Explanation of Solution

Calculation:

The scores of the students of first sample are 66, 58, 65, and 72. The sample mean (x¯1) of the exam scores of the first sample is obtained as:

x¯1=Sum of exam scores of selected studentsTotal number of students=66+58+65+724=2614=65.25

The calculation for the sample mean of the rest of the samples is shown in the below table:

Sample	Selected Students	Scores	Sample Mean
Sample 2	4, 5, 6, 7	72, 73, 65, 66	x¯2=72+73+65+664=69
Sample 3	5, 2, 7, 1	73, 80, 66, 62	x¯3=73+80+66+624=70.25
Sample 4	9, 5, 2, 4	62, 73, 80, 72	x¯4=62+73+80+724=71.75
Sample 5	8, 2, 7, 3	74, 80, 66, 58	x¯5=74+80+66+584=69.5
Sample 6	6, 0, 9, 4	65, 82, 62, 72	x¯6=65+82+62+724=70.25
Sample 7	3, 6, 0, 9	58, 65, 82, 62	x¯7=58+65+82+624=66.75
Sample 8	3, 8, 4, 7	58, 74, 72, 66	x¯8=58+74+72+664=67.5
Sample 9	5, 9, 6, 3	73, 62, 65, 58	x¯9=73+62+65+584=64.5
Sample 10	6, 2, 5, 6	65, 80, 73, 65	x¯10=65+80+73+654=70.75

Section 3:

To graph: The histogram that shows the mean of the 10 samples.

Graph: To obtain the histogram, below steps are followed in the Minitab software.

Step 1: Enter the sample means in the Minitab worksheet.

Step 2: Go to “Graph” and select “Histogram.” Choose “Simple” and click OK.

Step 3: Enter the graph variables column and click OK.

Launchpad For Moore's Statistics: Concepts And Controversies (twelve Month Access), Chapter 18, Problem 26E

Interpretation: The obtained graph shows that maximum number of sample has mean value near 70.

To determine: Whether the population mean lies at the center of the histogram.

Solution: The population means lies at the center of the histogram.

Explanation:

The population mean is obtained as 69.4 in part (a). From the obtained histogram, it can be said that the population mean lies almost at the center of the histogram that is the center of the histogram close to the population mean.

Answer 21

(c)

To determine

Section 1:

To find: Ten simple random samples of four students.

Answer 22

(c)

Expert Solution

Answer to Problem 26E

Solution: The selected students are those who are labeled with the same number of selected random number. The below table shows the selected students:

Sample	Selected Students
Sample 1	7, 3, 6, 4
Sample 2	4, 5, 6, 7
Sample 3	5, 2, 7, 1
Sample 4	9, 5, 2, 4
Sample 5	8, 2, 7, 3
Sample 6	6, 0, 9, 4
Sample 7	3, 6, 0, 9
Sample 8	3, 8, 4, 7
Sample 9	5, 9, 6, 3
Sample 10	6, 2, 5, 6

Explanation:

Calculation:

A sample of four students is chosen using Table A of random digits provided in the book. One-digit random numbers are chosen from the table starting from the 102^th row and the 1^st column of the table. A random number is selected between 0 and 9. If the same random number is repeated after appearing for the first time, it will be rejected. The selected random numbers are 7, 3, 6, and 4. So, the selected students for the first sample are the students who are labeled with the same number of chosen random numbers.

The above mentioned process is repeated for nine more times to obtained nine sample of size four using different row and column of Table A. The obtained result is shown in the below table:

Sample	Random Number
Sample 1	7, 3, 6, 4
Sample 2	4, 5, 6, 7
Sample 3	5, 2, 7, 1
Sample 4	9, 5, 2, 4
Sample 5	8, 2, 7, 3
Sample 6	6, 0, 9, 4
Sample 7	3, 6, 0, 9
Sample 8	3, 8, 4, 7
Sample 9	5, 9, 6, 3
Sample 10	6, 2, 5, 6

The students who are labeled with the same number of chosen random numbers are selected as sample.

Section 2:

To find: The sample mean of the scores of 10 samples of size 4.

Solution: The required mean are shown in below table:

Sample	Sample mean
Sample 1	65
Sample 2	69
Sample 3	70.25
Sample 4	71.75
Sample 5	69.5
Sample 6	70.25
Sample 7	66.75
Sample 8	67.5
Sample 9	64.5
Sample 10	70.75

Answer 23

(c)

Expert Solution

Answer 24

(c)

Expert Solution

Answer 25

Expert Solution

Answer 26

Explanation of Solution

Calculation:

The scores of the students of first sample are 66, 58, 65, and 72. The sample mean (x¯1) of the exam scores of the first sample is obtained as:

x¯1=Sum of exam scores of selected studentsTotal number of students=66+58+65+724=2614=65.25

The calculation for the sample mean of the rest of the samples is shown in the below table:

Sample	Selected Students	Scores	Sample Mean
Sample 2	4, 5, 6, 7	72, 73, 65, 66	x¯2=72+73+65+664=69
Sample 3	5, 2, 7, 1	73, 80, 66, 62	x¯3=73+80+66+624=70.25
Sample 4	9, 5, 2, 4	62, 73, 80, 72	x¯4=62+73+80+724=71.75
Sample 5	8, 2, 7, 3	74, 80, 66, 58	x¯5=74+80+66+584=69.5
Sample 6	6, 0, 9, 4	65, 82, 62, 72	x¯6=65+82+62+724=70.25
Sample 7	3, 6, 0, 9	58, 65, 82, 62	x¯7=58+65+82+624=66.75
Sample 8	3, 8, 4, 7	58, 74, 72, 66	x¯8=58+74+72+664=67.5
Sample 9	5, 9, 6, 3	73, 62, 65, 58	x¯9=73+62+65+584=64.5
Sample 10	6, 2, 5, 6	65, 80, 73, 65	x¯10=65+80+73+654=70.75

Section 3:

To graph: The histogram that shows the mean of the 10 samples.

Graph: To obtain the histogram, below steps are followed in the Minitab software.

Step 1: Enter the sample means in the Minitab worksheet.

Step 2: Go to “Graph” and select “Histogram.” Choose “Simple” and click OK.

Step 3: Enter the graph variables column and click OK.

Launchpad For Moore's Statistics: Concepts And Controversies (twelve Month Access), Chapter 18, Problem 26E

Interpretation: The obtained graph shows that maximum number of sample has mean value near 70.

To determine: Whether the population mean lies at the center of the histogram.

Solution: The population means lies at the center of the histogram.

Explanation:

The population mean is obtained as 69.4 in part (a). From the obtained histogram, it can be said that the population mean lies almost at the center of the histogram that is the center of the histogram close to the population mean.