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Multiple Choice and True/False Quiz
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1.
The point estimate of the variance of the error term in a regression model is
A)SSE
B)b0
C)MSE
D)b1
2.
All of the following are assumptions of the error terms in the simple linear regression model except
A)normality.
B)error terms with a mean of zero.
C)constant variance.
D)variance of one.
3.
___________ measures the strength of the linear relationship between the dependent and the independent variable.
A)Simple correlation coefficient
B)Distance value
C)Y intercept
D)Normal plot
4.
For the same set of observations on a specified dependent variable, two different independent variables were used to develop two simple linear regression models. The results are summarized as follows:
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Based on the above results, we can conclude that:
A)A prediction based on Model I is likely better than a prediction based on Model II.
B)A prediction based on Model II is likely better than a prediction based on Model I.
C)The SSE for Model II is smaller than the SSE for Model I.
D)The total variation is different for Model I and Model II
5.
When the constant variance assumption holds, a plot of the residuals versus x
A)fans out.
B)funnels in.
C)fans out, but then funnels in.
D)forms a horizontal band pattern..
E)forms a normal distribution.
6.
The following results were obtained from a simple regression analysis:

Y = 37.2895 - (1.2024)X
r2 = .6744
s2 = .2934

For each unit change in X (independent variable), the estimated change in the average value of Y (dependent variable) is equal to:
A)-1.2024
B).6774
C)37.2895
D).2934
7.
Which of the following is not a violation of the independence assumption?
A)Negative autocorrelation
B)A pattern of cyclical error terms over time
C)Positive autocorrelation
D)A pattern of alternating error terms overtime
E)A random pattern of error terms over time
8.
The residual is the difference between the observed value of the dependent variable and the predicted value of the dependent variable.
A)True
B)False
9.
The experimental region is the range of the previously observed values of the dependent variable.
A)True
B)False
10.
The simple coefficient of determination is the proportion of total variation explained by the regression line.
A)True
B)False
11.
When there is positive autocorrelation, over time, negative error terms are followed by positive error terms and positive error terms are followed by negative error terms.
A)True
B)False
12.
The coefficient of determination not only indicates the strength of the relationship between independent and dependent variable in a simple linear regression model, but also shows whether the relationship is positive or negative.
A)True
B)False







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