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71) Which of the following conditions can be detected from residual analysis?A) Nonlinearity Nonconstant variance B) Multicollinearity C) A and BD) A, B, and C72) A dummy variable is also called a(n) A) indicator variable.B) dependent variable.C) continuous variable.D) response variable.E) None of the above73) If a qualitative variable has three categories, how many dummy variables are needed?A) 0B) 1C) 2D) 3E) 474) The mean square error (MSE) isA) denoted by s.B) denoted by k.C) the SSE divided by the number of observations.D) the SSE divided by the degrees of freedom.E) None of the above75) Which of the following represents the underlying linear model for hypothesis testing?A) Y = b0 + b1 X + εB) Y = b0 + b1 XC) Y = β0 + β1 X + εD) Y = β0 + β1 XE) None of the above76) Which of the following statements is false concerning the hypothesis testing procedure for a regression model?A) The F-test statistic is used.B) The null hypothesis is that the true slope coefficient is equal to zero.C) The null hypothesis is rejected if the adjusted r2 is above the critical value.D) An α level must be selected.E) The alternative hypothesis is that the true slope coefficient is not equal to zero.77) Suppose that you believe that a cubic relationship exists between the independent variable (of time) and the dependent variable Y. Which of the following would represent a valid linear regression model?A) Y = b0 + b1 X, where X = time3B) Y = b0 + b1 X3, where X = timeC) Y = b0 + 3b1 X, where X = time3D) Y = b0 + 3b1 X, where X = timeE) Y = b0 + b1 X, where X = time1/378) A prediction equation for starting salaries (in $1,000s) and SAT scores was performed using simple linear regression. In the regression printout shown below, what can be said about the level of significance for the overall model?A) SAT is not a good predictor for starting salary.B) The significance level for the intercept indicates the model is not valid.C) The significance level for SAT indicates the slope is equal to zero.D) The significance level for SAT indicates the slope is not equal to zero.E) None of the above79) A prediction equation for sales and payroll was performed using simple linear regression. In the regression printout shown below, which of the following statements is/are not true?A) Payroll is a good predictor of Sales based on α = 0.05.B) There is evidence of a positive linear relationship between Sales and Payroll based on α = 0.05.C) Payroll is not a good predictor of Sales based on α = 0.01.D) The coefficient of determination is equal to 0.833333.E) Payroll is the independent variable.80) A healthcare executive is using regression to predict total revenues. She has decided to include both patient length of stay and insurance type in her model. Insurance type can be grouped into the following categories: Medicare, Medicaid, Managed Care, Self-Pay, and Charity. Which of the following is true?A) Insurance type will be represented in the regression model by five binary variables.B) Insurance type will be represented in the regression model by six dummy variables.C) Insurance type will be represented in the regression model by five dummy variables.D) Insurance type will be represented in the regression model by four binary variables.E) Neither binary nor dummy variables are necessary for the regression model.

Chapter 4 Regression Models

Question # 00035968 Posted By: solutionshere Updated on: 12/12/2014 03:35 AM Due on: 12/12/2014
Subject General Questions Topic General General Questions Tutorials:
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91) An air conditioning and heating repair firm conducted a study to determine if the average outside temperature could be used to predict the cost of an electric bill for homes during the winter months in Houston, Texas. The resulting regression equation was:

Y = 227.19 - 1.45X, where Y = monthly cost, X = average outside air temperature

(a) If the temperature averaged 48 degrees during December, what is the forecasted cost of December's electric bill?

(b) If the temperature averaged 38 degrees during January, what is the forecasted cost of January's electric bill?

92) A large school district is reevaluating its teachers' salaries. They have decided to use regression analysis to predict mean teachers' salaries at each elementary school. The researcher uses years of experience to predict salary. The resulting equation was:

Y = 23,313.22 + 1,210.89X, where Y = salary and X = years of experience

(a) If a teacher has 10 years of experience, what is the forecasted salary?

(b) If a teacher has 5 years of experience, what is the forecasted salary?

(c) Based on this equation, for every additional year of service, a teacher could expect his or her salary to increase by how much?

93) An air conditioning and heating repair firm conducted a study to determine if the average outside temperature, thickness of the insulation, and age of the heating equipment could be used to predict the electric bill for a home during the winter months in Houston, Texas. The resulting regression equation was:

Y = 256.89 - 1.45X1 - 11.26X2 + 6.10X3, where Y = monthly cost, X1 = average temperature, X2 = insulation thickness, and X3 = age of heating equipment

(a) If December has an average temperature of 45 degrees and the heater is 2 years old with insulation that is 6 inches thick, what is the forecasted monthly electric bill?

(b) If January has an average temperature of 40 degrees and the heating equipment is 12 years old with insulation that is 2 inches thick, what is the forecasted monthly electric bill?

94) A large school district is reevaluating its teachers' salaries. They have decided to use regression analysis to predict mean teacher salaries at each elementary school. The researcher uses years of experience to predict salary. The raw data is given in the table below. The resulting equation was:

Y = 19389.21 + 1330.12X, where Y = salary and X = years of experience

Salary

Yrs Exp

$24,265.00

8

$27,140.00

5

$22,195.00

2

$37,950.00

15

$32,890.00

11

$40,250.00

14

$36,800.00

9

$30,820.00

6

$44,390.00

21

$24,955.00

2

$18,055.00

1

$23,690.00

7

$48,070.00

20

$42,205.00

16

(a) Develop a scatter diagram.

(b) What is the correlation coefficient?

(c) What is the coefficient of determination?

95) A large international sales organization has collected data on the number of employees and the annual gross sales during the last 7 years.

# of employees

sales (in $000s)

1975

100

2010

110

2005

122

2020

130

2030

139

2031

152

2050

164

2100

?

(a) Develop a scatter diagram.

(b) Determine the correlation coefficient.

(c) Determine the coefficient of determination.

(d) Determine the least squares trend line.

(e) Determine the predicted value of sales for 2100 employees.

96) A large department store has collected the following monthly data on lost sales revenue due to theft and the number of security guard hours on duty:

Lost Sales Revenue

($000s)

Total Security Guard hours

Lost Sales Revenue

($000s)

Total Security Guard hours

1.0

600

1.8

950

1.4

630

2.1

1300

1.9

1000

2.3

1350

2.0

1200

(a) Determine the least squares regression equation.

(b) Using the results of part (a), find the estimated lost sales revenues if the total number of security guard hours is 800.

(c) Calculate the coefficient of correlation.

(d) Calculate the coefficient of determination.

97) Bob White is conducting research on monthly expenses for medical care, including over-the-counter medicine. His dependent variable is monthly expenses for medical care while his independent variable is number of family members. Below is his Excel output.

(a) What is the prediction equation?

(b) Based on his model, each additional family member increases the predicted costs by how much?

(c) Based on the significance F-test, is this model a good prediction equation?

(d) What percent of the variation in medical expenses is explained by the size of the family?

(e) Can the null hypothesis that the slope is zero be rejected? Why or why not?

(f) What is the value of the correlation coefficient?

98) An electronics company is looking to develop a regression model to predict the number of units sold for a special running watch. Data is provided below:

Sales (units)

Price ($)

Advertising ($)

500

100

50

480

120

40

485

110

45

510

103

55

490

108

40

488

109

30

496

106

45

Use model building to determine the best prediction equation for Sales, based on highest adjusted r2.

99) An electronics company is looking to develop a regression model to predict the number of units sold for a special running watch. Data is provided below:

Sales (units)

Price ($)

Advertising ($)

Holiday

500

100

50

Yes

480

120

40

Yes

485

110

45

No

510

103

55

Yes

490

108

40

No

488

109

30

No

496

106

45

Yes

A) Define the dummy variable(s) for the regression model.

B) What is the correlation between the Holiday categorical variable and sales?

100) A study was done to determine the relationship between GPA and starting salaries for college graduates. The data is shown in the table below:

Starting Salary ($)

GPA

GPA2

35,000

2.5

6.25

37,000

2.7

7.29

38,000

2.8

7.84

55,000

3.5

12.25

60,000

3.6

12.96

65,000

3.7

13.69

80,000

3.9

15.21

Use model building to determine the best fit based on highest adjusted r2.

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Tutorials for this Question
  1. Tutorial # 00035261 Posted By: solutionshere Posted on: 12/12/2014 03:42 AM
    Puchased By: 3
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    hours 1.0 600 1.8 950 1.4 630 2.1 1300 1.9 1000 2.3 1350 2.0 1200 (a) Determine the least squares regression equation. (b) Using ...
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