Beginning Statistics, 2nd Edition
2nd Edition
ISBN: 9781932628678
Author: Carolyn Warren; Kimberly Denley; Emily Atchley
Publisher: Hawkes Learning Systems
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Question
Chapter 11.6, Problem 12E
To determine
(a)
To Find:
All the values for the ANOVA table.
Expert Solution
Answer to Problem 12E
Solution:
Completed ANOVA table is-
| SS | df | MS | F | P-value | F crit | |
| Treatments (T) | 1.24218 | 2 | 0.62109 | 2.2949 | 0.12949 | 3.55456 |
| Error (E) | 4.87151 | 18 | 0.27064 | |||
| Total | 6.1137 | 20 | ||||
Explanation of Solution
Given:
A regional manager wants to know if there is a difference between the
| Drive-Through Wait Times (in Minutes) | ||
| Store 1 | Store 2 | Store 3 |
| 2.34 | 2.87 | 1.32 |
| 1.23 | 1.94 | 1.45 |
| 1.89 | 2.36 | 1.78 |
| 2.31 | 1.85 | 2.01 |
| 3.02 | 1.75 | 2.45 |
| 1.95 | 2.82 | 1.92 |
| 2.45 | 3.32 | 1.83 |
Enter the data into Microsoft Excel, including the column headings into columns A, B, and C. Under the Data tab, choose Data Analysis. In the Data Analysis menu, choose ANOVA : Single Factor. Fill out the ANOVA table and then click ok, the ANOVA table will be displayed along with a summary table, which contains the
| Anova: Single Factor | ||||||
| SUMMARY | ||||||
| Groups | Count | Sum | Average | Variance | ||
| Store 1 | 7 | 15.19 | 2.17 | 0.30997 | ||
| Store 2 | 7 | 16.91 | 2.41571 | 0.36336 | ||
| Store 3 | 7 | 12.76 | 1.82286 | 0.13859 | ||
| ANOVA | ||||||
| Source of Variation | SS | df | MS | F | P-value | F crit |
| Between Groups | 1.24218 | 2 | 0.62109 | 2.2949 | 0.12949 | 3.55456 |
| Within Groups | 4.87151 | 18 | 0.27064 | |||
| Total | 6.1137 | 20 |
In the ANOVA table, Between Groups corresponds to Treatments (T) and Within Groups corresponds to Error (E).
Therefore, the completed ANOVA table is-
| SS | df | MS | F | P-value | F crit | |
| Treatments (T) | 1.24218 | 2 | 0.62109 | 2.2949 | 0.12949 | 3.55456 |
| Error (E) | 4.87151 | 18 | 0.27064 | |||
| Total | 6.1137 | 20 | ||||
To determine
(b)
The conclusion and interpret the decision.
Expert Solution
Answer to Problem 12E
Solution:
The null hypothesis is accepted and it is concluded that there is no sufficient evidence, at the 0.05 level of significance, to support the claim that there is a difference between the mean wait times for the three stores.
Explanation of Solution
Given:
A regional manager wants to know if there is a difference between the mean amounts of time that customers wait in line at the drive-through window for the three stores in her region. She samples the wait limes at each store. Her data are given in the following table. Use an ANOVA test to determine if there is a difference between the mean wait times for the three stores, at the 0.05 level of significance.
| Drive-Through Wait Times (in Minutes) | ||
| Store 1 | Store 2 | Store 3 |
| 2.34 | 2.87 | 1.32 |
| 1.23 | 1.94 | 1.45 |
| 1.89 | 2.36 | 1.78 |
| 2.31 | 1.85 | 2.01 |
| 3.02 | 1.75 | 2.45 |
| 1.95 | 2.82 | 1.92 |
| 2.45 | 3.32 | 1.83 |
Calculation:
Rejection Region for ANOVA tests
Reject the null Hypothesis,
Or
Let store 1, store 2, and store 3 be the population 1, 2 and 3 respectively and let
Let the null and alternative hypothesis for this test is
H1 : At least two means are different from each other
Level of significance is 0.05, thus
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Calculate the 90% confidence interval for the population mean difference using the data in the attached image. I need to see where I went wrong.
Microsoft Excel snapshot for random sampling: Also note the formula used for the last
column
02
x✓ fx =INDEX(5852:58551, RANK(C2, $C$2:$C$51))
A
B
1
No.
States
2
1
ALABAMA
Rand No.
0.925957526
3
2
ALASKA
0.372999976
4
3
ARIZONA
0.941323044
5
4 ARKANSAS
0.071266381
Random Sample
CALIFORNIA
NORTH CAROLINA
ARKANSAS
WASHINGTON
G7
Microsoft Excel snapshot for systematic sampling:
xfx INDEX(SD52:50551, F7)
A
B
E
F
G
1
No.
States
Rand No. Random Sample
population
50
2
1 ALABAMA
0.5296685 NEW HAMPSHIRE
sample
10
3
2 ALASKA
0.4493186 OKLAHOMA
k
5
4
3 ARIZONA
0.707914 KANSAS
5
4 ARKANSAS 0.4831379 NORTH DAKOTA
6
5 CALIFORNIA 0.7277162 INDIANA
Random Sample
Sample Name
7
6 COLORADO 0.5865002 MISSISSIPPI
8
7:ONNECTICU 0.7640596 ILLINOIS
9
8 DELAWARE 0.5783029 MISSOURI
525
10
15
INDIANA
MARYLAND
COLORADO
Suppose the Internal Revenue Service reported that the mean tax refund for the year 2022 was $3401. Assume the standard deviation is $82.5 and that the amounts refunded follow a normal probability distribution. Solve the following three parts? (For the answer to question 14, 15, and 16, start with making a bell curve. Identify on the bell curve where is mean, X, and area(s) to be determined.
1.What percent of the refunds are more than $3,500?
2. What percent of the refunds are more than $3500 but less than $3579?
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Chapter 11 Solutions
Beginning Statistics, 2nd Edition
Ch. 11.1 - Prob. 1ECh. 11.1 - Prob. 2ECh. 11.1 - Prob. 3ECh. 11.1 - Prob. 4ECh. 11.1 - Prob. 5ECh. 11.1 - Prob. 6ECh. 11.1 - Prob. 7ECh. 11.1 - Prob. 8ECh. 11.1 - Prob. 9ECh. 11.1 - Prob. 10E
Ch. 11.1 - Prob. 11ECh. 11.1 - Prob. 12ECh. 11.1 - Prob. 13ECh. 11.1 - Prob. 14ECh. 11.1 - Prob. 15ECh. 11.1 - Prob. 16ECh. 11.1 - Prob. 17ECh. 11.1 - Prob. 18ECh. 11.1 - Prob. 19ECh. 11.1 - Prob. 20ECh. 11.1 - Prob. 21ECh. 11.2 - Prob. 1ECh. 11.2 - Prob. 2ECh. 11.2 - Prob. 3ECh. 11.2 - Prob. 4ECh. 11.2 - Prob. 5ECh. 11.2 - Prob. 6ECh. 11.2 - Prob. 7ECh. 11.2 - Prob. 8ECh. 11.2 - Prob. 9ECh. 11.2 - Prob. 10ECh. 11.2 - Prob. 11ECh. 11.2 - Prob. 12ECh. 11.2 - Prob. 13ECh. 11.2 - Prob. 14ECh. 11.2 - Prob. 15ECh. 11.2 - Prob. 16ECh. 11.2 - Prob. 17ECh. 11.3 - Prob. 1ECh. 11.3 - Prob. 2ECh. 11.3 - Prob. 3ECh. 11.3 - Prob. 4ECh. 11.3 - Prob. 5ECh. 11.3 - Prob. 6ECh. 11.3 - Prob. 7ECh. 11.3 - Prob. 8ECh. 11.3 - Prob. 9ECh. 11.3 - Prob. 10ECh. 11.4 - Prob. 1ECh. 11.4 - Prob. 2ECh. 11.4 - Prob. 3ECh. 11.4 - Prob. 4ECh. 11.4 - Prob. 5ECh. 11.4 - Prob. 6ECh. 11.4 - Prob. 7ECh. 11.4 - Prob. 8ECh. 11.4 - Prob. 9ECh. 11.4 - Prob. 10ECh. 11.4 - Prob. 11ECh. 11.5 - Prob. 1ECh. 11.5 - Prob. 2ECh. 11.5 - Prob. 3ECh. 11.5 - Prob. 4ECh. 11.5 - Prob. 5ECh. 11.5 - Prob. 6ECh. 11.5 - Prob. 7ECh. 11.5 - Prob. 8ECh. 11.5 - Prob. 9ECh. 11.5 - Prob. 10ECh. 11.5 - Prob. 11ECh. 11.5 - Prob. 12ECh. 11.5 - Prob. 13ECh. 11.5 - Prob. 14ECh. 11.5 - Prob. 15ECh. 11.5 - Prob. 16ECh. 11.5 - Prob. 17ECh. 11.5 - Prob. 18ECh. 11.5 - Prob. 19ECh. 11.5 - Prob. 20ECh. 11.5 - Prob. 21ECh. 11.5 - Prob. 22ECh. 11.5 - Prob. 23ECh. 11.5 - Prob. 24ECh. 11.5 - Prob. 25ECh. 11.5 - Prob. 26ECh. 11.6 - Prob. 1ECh. 11.6 - Prob. 2ECh. 11.6 - Prob. 3ECh. 11.6 - Prob. 4ECh. 11.6 - Prob. 5ECh. 11.6 - Prob. 6ECh. 11.6 - Prob. 7ECh. 11.6 - Prob. 8ECh. 11.6 - Prob. 9ECh. 11.6 - Prob. 10ECh. 11.6 - Prob. 11ECh. 11.6 - Prob. 12ECh. 11.6 - Prob. 13ECh. 11.6 - Prob. 14ECh. 11.6 - Prob. 15ECh. 11.6 - Prob. 16ECh. 11.CR - Prob. 1CRCh. 11.CR - Prob. 2CRCh. 11.CR - Prob. 3CRCh. 11.CR - Prob. 4CRCh. 11.CR - Prob. 5CRCh. 11.CR - Prob. 6CRCh. 11.CR - Prob. 7CRCh. 11.CR - Prob. 8CRCh. 11.CR - Prob. 9CRCh. 11.CR - Prob. 10CR
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