Videos
(a)
To find: The
(a)
Answer to Problem 52E
Solution: The mean value of the ACT score is 21.133 and the mean value of the predicted value of ACT score is 21.162. Both the mean values are identical.
Explanation of Solution
Calculation: The predicted values can be obtained by using the referred Exercise 10.61.
The regression equation is
The predicted values for ACT corresponding to the SAT score of 1000 is calculated as shown below:
Similarly, obtain the predicted values for ACT corresponding to the remaining SAT scores as shown below:
Obs |
SAT |
Predicted values for ACT |
1 |
1000 |
23.03 |
2 |
1010 |
23.24 |
3 |
920 |
21.32 |
4 |
840 |
19.61 |
5 |
830 |
19.39 |
6 |
1440 |
32.45 |
7 |
490 |
12.12 |
8 |
1050 |
24.1 |
9 |
870 |
20.25 |
10 |
970 |
22.39 |
11 |
920 |
21.32 |
12 |
810 |
18.96 |
13 |
1080 |
24.74 |
14 |
1000 |
23.03 |
15 |
1030 |
23.67 |
16 |
870 |
20.25 |
17 |
880 |
20.46 |
18 |
850 |
19.82 |
19 |
780 |
18.32 |
20 |
830 |
19.39 |
21 |
1190 |
27.1 |
22 |
800 |
18.75 |
23 |
830 |
19.39 |
24 |
890 |
20.68 |
25 |
880 |
20.46 |
26 |
980 |
22.6 |
27 |
1030 |
23.67 |
28 |
1220 |
27.74 |
29 |
1080 |
24.74 |
30 |
970 |
22.39 |
31 |
1090 |
24.96 |
32 |
860 |
20.03 |
33 |
740 |
17.47 |
34 |
500 |
12.33 |
35 |
780 |
18.32 |
36 |
1120 |
25.6 |
37 |
590 |
14.26 |
38 |
990 |
22.82 |
39 |
700 |
16.61 |
40 |
930 |
21.53 |
41 |
860 |
20.03 |
42 |
420 |
10.62 |
43 |
800 |
18.75 |
44 |
1140 |
26.03 |
45 |
920 |
21.32 |
46 |
800 |
18.75 |
47 |
1040 |
23.89 |
48 |
840 |
19.61 |
49 |
1060 |
24.31 |
50 |
870 |
20.25 |
51 |
1120 |
25.6 |
52 |
800 |
18.75 |
53 |
960 |
22.17 |
54 |
880 |
20.46 |
55 |
1020 |
23.46 |
56 |
790 |
18.54 |
57 |
620 |
14.9 |
58 |
1150 |
26.24 |
59 |
970 |
22.39 |
60 |
1060 |
24.31 |
The mean value for the predicted values of ACT can be calculated as shown below:
With the help of Minitab, the mean of the ACT scores can be calculated as shown below:
Step 1: Enter the data into the worksheet of Minitab.
Step 2: Go to
Step 3: Go to statistics and select mean. Click on “OK” twice.
Hence, the required mean obtained is 21.133.
Interpretation: Therefore, it can be concluded that the mean value of the ACT score and the mean value of the predicted value of ACT score are identical.
(b)
To find: The standard deviation of the predicted values and its comparison with the standard deviation of the actual ACT scores.
(b)
Answer to Problem 52E
Solution: The standard deviation of the ACT score is 4.714 and the standard deviation of the predicted ACT scores is 3.854.
Explanation of Solution
Calculation: With the help of Minitab, the standard deviation of the ACT scores can be calculated as shown below:
Step 1: Enter the data into the worksheet of Minitab.
Step 2: Go to
Step 3: Go to statistics and select standard deviation. Click on “OK” twice.
Hence, the required standard deviation obtained is 4.714.
Use the predicted values of the ACT scores, which is obtained in the part (a). With the help of Minitab, the standard deviation of the predicted ACT scores or fitted values can be calculated as shown below:
Step 1: Enter the data of the predicted values of the ACT scores into the worksheet of Minitab.
Step 2: Go to
Step 3: Go to statistics and select standard deviation. Click on “OK” twice.
Hence, the required standard deviation obtained is 3.854.
Interpretation: Therefore, it can be concluded that the variability in the predicted ACT scores is less in comparison to the variability in the ACT scores.
(c)
To find: The SAT score for a student who is one standard deviation above the mean.
(c)
Answer to Problem 52E
Solution: The SAT score for a student who is one standard deviation above the mean is 1092.8.
Explanation of Solution
Calculation: With the help of Minitab, the mean of the SAT scores can be calculated as shown below:
Step 1: Enter the data into the worksheet of Minitab.
Step 2: Go to
Step 3: Go to statistics and select mean. Click on “OK” twice.
Hence, the required mean obtained is 912.7.
With the help of Minitab, the standard deviation of the SAT scores can be calculated as shown below:
Step 1: Enter the data into the worksheet of Minitab.
Step 2: Go to
Step 3: Go to statistics and select standard deviation. Click on “OK” twice.
Hence, the required standard deviation obtained is 180.1.
For
Interpretation: Therefore, it can be concluded that the predicted SAT score is 1092.8, which provides a standard score of about one by using the standard deviation of the predicted SAT scores.
To find: The predicted ACT score for a student who is one standard deviation above the mean and standardize this predicted ACT score.
Answer to Problem 52E
Solution: The required predicted ACT score is 25.02.
Explanation of Solution
Calculation: The predicted ACT score can be calculated as
Interpretation: Therefore, it can be concluded that the predicted ACT score is 25.02, which provides a standard score of about one by using the standard deviation of the predicted ACT scores.
(d)
To find: The SAT score for a student who is one standard deviation below the mean.
(d)
Answer to Problem 52E
Solution: The SAT score for a student who is one standard deviation below the mean is 732.6.
Explanation of Solution
Calculation: For
To find: The predicted ACT score for a student who is one standard deviation below the mean and standardize this predicted ACT score.
Answer to Problem 52E
Solution: The required predicted ACT score is 17.3.
Explanation of Solution
Calculation: For
The predicted ACT score is
(e)
To explain: The conclusions on the basis of part (c) and part (d).
(e)
Answer to Problem 52E
Solution: The standard score of the predicted value is same as the explanatory variable’s standard score for the parts (c) and (d).
Explanation of Solution
Therefore, it can be said that the standard score of the predicted value is the same as the explanatory variable’s standard score.
Want to see more full solutions like this?
Chapter 10 Solutions
EBK INTRODUCTION TO THE PRACTICE OF STA
- You sample 100 fish in Pond A at the fish hatchery and find that they average 5.5 inches with a standard deviation of 1 inch. Your sample of 100 fish from Pond B has the same mean, but the standard deviation is 2 inches. How do the margins of error compare? (Assume the confidence levels are the same.)arrow_forwardA survey of 1,000 dental patients produces 450 people who floss their teeth adequately. What’s the margin of error for this result? Assume 90 percent confidence.arrow_forwardThe annual aggregate claim amount of an insurer follows a compound Poisson distribution with parameter 1,000. Individual claim amounts follow a Gamma distribution with shape parameter a = 750 and rate parameter λ = 0.25. 1. Generate 20,000 simulated aggregate claim values for the insurer, using a random number generator seed of 955.Display the first five simulated claim values in your answer script using the R function head(). 2. Plot the empirical density function of the simulated aggregate claim values from Question 1, setting the x-axis range from 2,600,000 to 3,300,000 and the y-axis range from 0 to 0.0000045. 3. Suggest a suitable distribution, including its parameters, that approximates the simulated aggregate claim values from Question 1. 4. Generate 20,000 values from your suggested distribution in Question 3 using a random number generator seed of 955. Use the R function head() to display the first five generated values in your answer script. 5. Plot the empirical density…arrow_forward
- Find binomial probability if: x = 8, n = 10, p = 0.7 x= 3, n=5, p = 0.3 x = 4, n=7, p = 0.6 Quality Control: A factory produces light bulbs with a 2% defect rate. If a random sample of 20 bulbs is tested, what is the probability that exactly 2 bulbs are defective? (hint: p=2% or 0.02; x =2, n=20; use the same logic for the following problems) Marketing Campaign: A marketing company sends out 1,000 promotional emails. The probability of any email being opened is 0.15. What is the probability that exactly 150 emails will be opened? (hint: total emails or n=1000, x =150) Customer Satisfaction: A survey shows that 70% of customers are satisfied with a new product. Out of 10 randomly selected customers, what is the probability that at least 8 are satisfied? (hint: One of the keyword in this question is “at least 8”, it is not “exactly 8”, the correct formula for this should be = 1- (binom.dist(7, 10, 0.7, TRUE)). The part in the princess will give you the probability of seven and less than…arrow_forwardplease answer these questionsarrow_forwardSelon une économiste d’une société financière, les dépenses moyennes pour « meubles et appareils de maison » ont été moins importantes pour les ménages de la région de Montréal, que celles de la région de Québec. Un échantillon aléatoire de 14 ménages pour la région de Montréal et de 16 ménages pour la région Québec est tiré et donne les données suivantes, en ce qui a trait aux dépenses pour ce secteur d’activité économique. On suppose que les données de chaque population sont distribuées selon une loi normale. Nous sommes intéressé à connaitre si les variances des populations sont égales.a) Faites le test d’hypothèse sur deux variances approprié au seuil de signification de 1 %. Inclure les informations suivantes : i. Hypothèse / Identification des populationsii. Valeur(s) critique(s) de Fiii. Règle de décisioniv. Valeur du rapport Fv. Décision et conclusion b) A partir des résultats obtenus en a), est-ce que l’hypothèse d’égalité des variances pour cette…arrow_forward
- According to an economist from a financial company, the average expenditures on "furniture and household appliances" have been lower for households in the Montreal area than those in the Quebec region. A random sample of 14 households from the Montreal region and 16 households from the Quebec region was taken, providing the following data regarding expenditures in this economic sector. It is assumed that the data from each population are distributed normally. We are interested in knowing if the variances of the populations are equal. a) Perform the appropriate hypothesis test on two variances at a significance level of 1%. Include the following information: i. Hypothesis / Identification of populations ii. Critical F-value(s) iii. Decision rule iv. F-ratio value v. Decision and conclusion b) Based on the results obtained in a), is the hypothesis of equal variances for this socio-economic characteristic measured in these two populations upheld? c) Based on the results obtained in a),…arrow_forwardA major company in the Montreal area, offering a range of engineering services from project preparation to construction execution, and industrial project management, wants to ensure that the individuals who are responsible for project cost estimation and bid preparation demonstrate a certain uniformity in their estimates. The head of civil engineering and municipal services decided to structure an experimental plan to detect if there could be significant differences in project evaluation. Seven projects were selected, each of which had to be evaluated by each of the two estimators, with the order of the projects submitted being random. The obtained estimates are presented in the table below. a) Complete the table above by calculating: i. The differences (A-B) ii. The sum of the differences iii. The mean of the differences iv. The standard deviation of the differences b) What is the value of the t-statistic? c) What is the critical t-value for this test at a significance level of 1%?…arrow_forwardCompute the relative risk of falling for the two groups (did not stop walking vs. did stop). State/interpret your result verbally.arrow_forward
- Microsoft Excel include formulasarrow_forwardQuestion 1 The data shown in Table 1 are and R values for 24 samples of size n = 5 taken from a process producing bearings. The measurements are made on the inside diameter of the bearing, with only the last three decimals recorded (i.e., 34.5 should be 0.50345). Table 1: Bearing Diameter Data Sample Number I R Sample Number I R 1 34.5 3 13 35.4 8 2 34.2 4 14 34.0 6 3 31.6 4 15 37.1 5 4 31.5 4 16 34.9 7 5 35.0 5 17 33.5 4 6 34.1 6 18 31.7 3 7 32.6 4 19 34.0 8 8 33.8 3 20 35.1 9 34.8 7 21 33.7 2 10 33.6 8 22 32.8 1 11 31.9 3 23 33.5 3 12 38.6 9 24 34.2 2 (a) Set up and R charts on this process. Does the process seem to be in statistical control? If necessary, revise the trial control limits. [15 pts] (b) If specifications on this diameter are 0.5030±0.0010, find the percentage of nonconforming bearings pro- duced by this process. Assume that diameter is normally distributed. [10 pts] 1arrow_forward4. (5 pts) Conduct a chi-square contingency test (test of independence) to assess whether there is an association between the behavior of the elderly person (did not stop to talk, did stop to talk) and their likelihood of falling. Below, please state your null and alternative hypotheses, calculate your expected values and write them in the table, compute the test statistic, test the null by comparing your test statistic to the critical value in Table A (p. 713-714) of your textbook and/or estimating the P-value, and provide your conclusions in written form. Make sure to show your work. Did not stop walking to talk Stopped walking to talk Suffered a fall 12 11 Totals 23 Did not suffer a fall | 2 Totals 35 37 14 46 60 Tarrow_forward
MATLAB: An Introduction with ApplicationsStatisticsISBN:9781119256830Author:Amos GilatPublisher:John Wiley & Sons Inc
Probability and Statistics for Engineering and th...StatisticsISBN:9781305251809Author:Jay L. DevorePublisher:Cengage Learning
Statistics for The Behavioral Sciences (MindTap C...StatisticsISBN:9781305504912Author:Frederick J Gravetter, Larry B. WallnauPublisher:Cengage Learning
Elementary Statistics: Picturing the World (7th E...StatisticsISBN:9780134683416Author:Ron Larson, Betsy FarberPublisher:PEARSON
The Basic Practice of StatisticsStatisticsISBN:9781319042578Author:David S. Moore, William I. Notz, Michael A. FlignerPublisher:W. H. Freeman
Introduction to the Practice of StatisticsStatisticsISBN:9781319013387Author:David S. Moore, George P. McCabe, Bruce A. CraigPublisher:W. H. Freeman