Deck 15: Understanding Regression Analysis Basics

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سؤال
In the formula for a straight line,the slope is defined as:

A)the change in y for any 1-unit change in x.
B)where the line cuts the y axis when x = 0.
C)the variable used to predict the dependent variable.
D)the dependent variable.
E)the predicted variable.
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سؤال
In bivariate regression,if the F value is not significant (say .051),then:

A)we accept the null hypothesis that a straight-line model fits our data.
B)we reject the null hypothesis that a straight-line model does not fit our data.
C)we abandon our efforts to analyze the two variables.
D)we check for outliers.
E)we rerun the regression.
سؤال
In bivariate regression,if the F value is significant (say .05 or less),then:

A)we accept the null hypothesis that a straight-line model fits our data.
B)we reject the null hypothesis that a straight-line model does not fit our data.
C)we abandon our efforts to analyze the two variables.
D)we check for outliers.
E)we rerun the regression.
سؤال
What criterion is used to establish the best "fit" of a straight line through the points on a scatter diagram?

A)the plum line criterion
B)the least squares criterion
C)the bearing line criterion
D)the b slope criterion
E)the right angle criterion
سؤال
In bivariate regression analysis,the independent variable is one that is:

A)used to predict the dependent variable,and it is the x in the regression formula.
B)used to predict the dependent variable,and it is the y in the regression formula.
C)predicted,and it is the x in the regression formula.
D)predicted,and it is the y in the regression formula.
E)used to predict the dependent variable,and it is the b in the regression formula.
سؤال
Which of the following residuals shows an exact prediction?

A)0
B)+1.0
C)-25
D)+25
E)100.0
سؤال
Which of the following SPSS commands allows you to run bivariate regression?

A)ANALYZE;BIVARIATE;REGRESSION
B)ANALYZE;REGRESSION;BIVARIATE
C)REGRESSION;BIVARIATE
D)ANALYZE;REGRESSION;LINEAR
E)REGRESSION;BIVARIATE;LINEAR
سؤال
The main purpose of ANOVA in bivariate regression is to:

A)tell us if there are significant differences between three or more means.
B)tell us if ANOVA is an issue.
C)tell us if the straight-line model fits the data we are analyzing.
D)provide a frequency table for further analysis.
E)None of the above;ANOVA is not used in regression.
سؤال
________ helps the researcher to understand whether observed data is truly linear and whether the data is a good fit to the model being used.

A)Analysis of prediction
B)Control data
C)Analysis of residuals
D)Analysis of variance
E)Values comparison
سؤال
What is the best way to make a prediction?

A)using simple statistical analysis
B)making a best guess based on past experience
C)employing residual analysis
D)building a predictive model
E)hypothesizing
سؤال
In evaluating your bivariate regression analysis findings,you first determine whether or not a linear relationship between the independent and dependent variable exists in the population.Which of the following best describes what you are doing in this step?

A)determining if the two variables have any covariation
B)determining if the two variables vary together
C)determining if the two variables belong in the same regression matrix
D)determining if the two variables are isotonic
E)determining if there is statistical significance
سؤال
In the formula for a straight line,the intercept is known as:

A)the dependent variable.
B)the variable used to predict the dependent variable.
C)the change in y for any unit change in x.
D)the point where the line cuts the y axis when x = 0.
E)b)
سؤال
________ is a simple technique for analyzing two variables to predict behavior or activity in the marketplace.

A)Regression analysis
B)Variance analysis
C)Bivariate regression
D)Multiple regression
E)Stepwise regression
سؤال
A predictive model is an approach to prediction that:

A)relates the conditions expected to be in place influencing the factor that is being predicted.
B)observes a consistent pattern over time.
C)identifies a pattern and projects it into the future.
D)uses past experience to predict the future.
E)uses current experience to explain the past.
سؤال
Which of the following is NOT true of prediction?

A)It is a statement of what is believed will happen in the future.
B)It may be based on prior observation.
C)We are seldom confronted with the need to make predictions.
D)It may be based on past experience.
E)Marketing managers are constantly faced with the need to make predictions.
سؤال
In bivariate regression analysis,the higher the Adjusted R Square value:

A)the lower the predictive power of the analysis.
B)the better the straight line's fit to the scatter points.
C)the worse the straight line's fit to the scatter points.
D)the closer to 0 it will be.
E)None of the above;there is no Adjusted R Square value in regression analysis.
سؤال
In bivariate regression analysis,the dependent variable is one that is:

A)used to predict the independent variable,and it is the x in the regression formula.
B)used to predict the independent variable,and it is the y in the regression formula.
C)predicted,and it is usually termed x in the regression formula.
D)predicted,and it is usually termed y in the regression formula.
E)predicted,and it is termed b in the regression formula.
سؤال
One of the best tools for unraveling prediction complexity is:

A)probability sampling.
B)association analysis.
C)differences testing.
D)linear regression.
E)causal research.
سؤال
Bivariate regression analysis is defined as a predictive analysis technique in which:

A)a pattern is identified over time and projected into the future.
B)a relationship that exists across time is observed to make a prediction.
C)one variable is used to predict the level of another by use of the straight-line formula.
D)one variable is used to predict the level of another by use of a scatter diagram.
E)a relationship that exists at one point in time is observed to make a prediction.
سؤال
In evaluating your bivariate regression analysis findings,you first determine whether or not a linear relationship between the independent and dependent variable exists in the population and secondly you:

A)determine the significance of the intercept and the slope.
B)determine the significance of the covariation.
C)determine if the two variables vary together.
D)determine if the two variables belong in the same regression matrix.
E)determine if the two variables predict the intercept and the slope.
سؤال
In multiple regression,you must test for the significance of the betas for each of the independent variables.You would do this by looking for:

A)a significant t test for each independent variable.
B)a significant ANOVA for each independent variable.
C)a significant alpha level for each independent variable.
D)a significant nonlinear beta weight for each independent variable.
E)a significant R for each independent variable.
سؤال
While the scaling assumptions of multiple regression require that both the independent and dependent variables be at least interval-scaled,we may use nominal independent variables by using:

A)ratio-scaled variables.
B)standardized beta coefficients.
C)dummy variables.
D)temporary variables.
E)semi-ratio variables.
سؤال
What is the proper SPSS command sequence to run multiple regression analysis?

A)ANALYZE;REGRESSION;MULTIPLE;GO
B)ANALYZE;REGRESSION;MULTIPLE
C)ANALYZE;REGRESSION;LINEAR
D)ANALYZE;REGRESSION;MLINEAR
E)ANALYZE;REGRESSION;MR
سؤال
Sometimes a researcher will find that the ANOVA F is not significant in regression analysis or if the F is significant,the R square is lower than desired.It is appropriate in these cases to:

A)examine the data using another stat package other than SPSS.
B)change the scaling assumptions from ratio or interval to ordinal and rerun the analysis.
C)run a confidence interval around the predicted values and then make the interval narrower.
D)run a confidence interval around the predicted values and then make the interval wider.
E)run a scatter diagram,search for outliers,and remove them and rerun the regression.
سؤال
Which form of regression is useful when the researcher has many independent variables and wants to narrow the set down to a smaller number?

A)multiple component reduction
B)stepwise multiple regression
C)variance deflation regression
D)variance inflation regression
E)narrow regression
سؤال
When you find "mixed" results in multiple regression (i.e. ,some betas are significant,others are not),you:

A)eliminate,or "trim," the insignificant variables.
B)adjust the insignificant variables by applying a standardized weight.
C)accept the null hypothesis.
D)choose the result that fits your hypothesis.
E)none of the above
سؤال
A multiple regression equation is best described by which of the following forms?

A)The independent variable is predicted by the intercept plus a series of values of the slope times each dependent variable.
B)The independent variable is predicted by the slope plus a series of values of the intercept times each dependent variable.
C)The dependent variable is predicted by the intercept plus a series of values of the slope times each independent variable.
D)The dependent variable to be predicted is equal to the intercept plus a series of values of the slope times each independent variable.
E)y = a + bx
سؤال
If Maxwell House Coffee was considering a line of gourmet iced coffee,it would want to know how coffee drinkers feel about gourmet iced coffee;that is,their attitudes toward buying,preparing,and drinking it would be the dependent variables.Maxwell House might consider developing:

A)a general conceptual model.
B)a general conceptual model that identifies the independent and dependent variables.
C)a specific conceptual model that specifies the variables that will produce residuals analysis.
D)a specific conceptual model that will require additional modification to be used in residuals analysis.
E)a conceptual model that identifies the residuals that are associated with the dependent,or slope,variable.
سؤال
A standardized beta coefficient is defined as:

A)the result of adding the difference between each independent variable value and its mean and the standard deviation of that independent variable.
B)the result of multiplying the difference between each independent variable value and its mean by the standard deviation of that independent variable.
C)the result of dividing the standard deviation of an independent variable by the difference between that independent variable value and its mean.
D)the result of dividing the difference between each independent variable value and its mean by the standard deviation of that independent variable.
E)the result of subtracting the difference between each independent variable value and its mean by the standard deviation of that independent variable.
سؤال
When we make a prediction using multiple regression,we can apply a 95 percent confidence interval around the predicted dependent variable by multiplying:

A)1)96 times the standard error of the predictor.
B)1)96 times the standard error of the estimate.
C)2)58 times the standard error of the predictor.
D)2)58 times the standard error of the estimate.
E)1)96 times .95.
سؤال
Independent variables are normally measured in different units,so to determine the relative importance of the beta weights between independent variables we would use:

A)a screening variable.
B)a trimmed model.
C)standardized beta coefficients.
D)betas measured in "like-units."
E)weighted beta coefficients.
سؤال
A form of regression analysis where more than one independent variable is used in the regression equation is known as:

A)regression planes.
B)additivity.
C)multiple regression analysis.
D)independence assumption.
E)MANOVA.
سؤال
A graph of the dependent variable in multiple regression analysis is referred to as:

A)confidence intervals.
B)multiple regression.
C)multiple scatter plots.
D)regression plane.
E)a multi-scatter plot.
سؤال
Which sequence of SPSS commands would you select in order to run stepwise multiple regression?

A)ANALYZE;REGRESSION;LINEARSTEPS
B)ANALYZE;REGRESSION;LINEAR;METHOD;STEPWISE
C)STEPWISE;LINEAR REGRESSION;GO
D)STEPWISE;LINEAR REGRESSION
E)ANALYZE;REGRESSION;METHOD;STEP
سؤال
When the statistic used to determine whether or not multicollinearity is a concern in multiple regression is greater than ________,it is prudent to remove that variable and rerun the regression.

A))05
B))10
C))95
D)1)00
E)10
سؤال
Which of the following in multiple regression is a handy measure of the strength of the overall relationship?

A)Adjusted R
B)Multiple R
C)multicollinearity
D)VIF
E)Adjusted B
سؤال
Researchers applied multiple regression analysis to study mobile phone service in Thailand,using overall satisfaction as the dependent variable.Standardized betas for independent variables were calculated.Of those listed below,which is the most important factor for a Thai mobile phone company trying to increase its competitiveness?

A)quality of service,standardized beta = .139
B)promotions by the company,standardized beta = .158
C)innovativeness by the company,standardized beta = .060
D)social status of the company brand,standardized beta = -.013
E)customer service quality,standardized beta = .155
سؤال
Which statistic is used to determine whether or not multicollinearity is a concern in multiple regression?

A)coefficient of determination
B)multicol Z
C)multicol R
D)VIF (variance inflation factor)
E)Q
سؤال
Which of the following stipulates that independent multiple regression variables must be statistically independent and uncorrelated with one another?

A)independence assumption
B)multicollinearity
C)additivity requirement
D)regression plane
E)uncorrelation
سؤال
In multiple regression,the presence of correlations among the independent variables is termed:

A)independence assumption.
B)multicollinearity.
C)additivity.
D)regression plane.
E)multicorrelation.
سؤال
In regression,the variable being predicted,y,is known as the dependent variable.
سؤال
In regression,the line that runs through the points on a scatter diagram is positioned to minimize the vertical distances away from the line of the various points because of the least squares criterion.
سؤال
A regression line using the least squares criterion will result in high residuals.
سؤال
In the following straight-line formula,y = a + bx,the variable being predicted is the beta weight,b.
سؤال
In the formula for bivariate regression analysis,the change in y for each one-unit change in x is known as the slope.
سؤال
If the ANOVA F test is not significant in bivariate regression analysis,we must trim the model by eliminating the insignificant dependent variable(s).
سؤال
The R Square value is very important because it tells us how well our regression line fits the scatter of data points.It may range from 0 to +1.00 because it is the square of the correlation coefficient,which may range from -1.00 to +1.00.
سؤال
A prediction is a statement of what is believed will happen in the future made on the basis of past experience or prior observation.
سؤال
A predictive model simply examines what has happened in the past and predicts the future.
سؤال
When we want to use one variable to predict another and use the equation: y = a + bx,we use the technique known as multiple regression.
سؤال
If the tests of the significance of the slope and the intercept are significant,this means that the straight-line relationship depicted by the slope and the intercept actually exists in the population and,therefore,the regression equation may be used as a prediction device.
سؤال
In bivariate regression,we can calculate an upper and lower range within which we could expect the values of the independent values to fall if they were calculated.
سؤال
Immediately in bivariate analysis,the researcher must find out whether or not a linear relationship
exists in the population.
سؤال
In regression,the variable used to predict the dependent variable is known as x,the independent variable.
سؤال
In bivariate regression analysis,t tests are used to test the significance of the slope and the intercept of the multiple dependent variables.
سؤال
Which of the following are warnings that the textbook authors give regarding regression analysis?

A)It is complicated and requires large computer memory.
B)It does not give you cause-and-effect statements,and it is expensive to run.
C)It does not give you cause-and-effect statements,and the text's coverage of regression analysis only scratches the surface of this topic.
D)It is expensive,and you should not apply regression to predict data outside the boundaries of the data used to develop the regression model.
E)No warnings are given.
سؤال
In the formula for bivariate regression analysis,the point where the line cuts the y axis when x = 0 is known as b,the beta.
سؤال
In regression,the variable being predicted,b,is known as the dependent variable.
سؤال
The two ways of making a prediction are extension analysis and baseline predictive modeling.
سؤال
When we make predictions and compare the differences between our predictions and the actual results,we are performing what is known as analysis of residuals.
سؤال
The VIF is useful for identifying multicollinearity.
سؤال
In dummy coding,the 0-versus-1 code is traditional,but any two adjacent numbers could be used,such as 1 versus 2.
سؤال
Multiple regression requires specification of a general conceptual model that identifies independent and dependent variables and shows their expected relationships.
سؤال
In multiple regression we make a prediction,but we cannot put confidence intervals around our prediction as we can in bivariate regression.
سؤال
Stepwise multiple regression is useful if a researcher has many dependent variables but needs additional dependent variables in order to obtain a good predictive model.
سؤال
If we wanted to use a type of regression that first enters the variable that explains the most variance,then the variable that explains the second highest level of variance and so on,we would use ordinal regression.
سؤال
The multiple R,also called the coefficient of determination,in multiple regression ranges from 0 to +1.00 and represents the amount of the dependent variable "explained" by the combined independent variables.
سؤال
Multiple regression may be used as a screening device in the sense that it may be used to reduce large numbers of potential independent variables in order to spot those that are most salient for the dependent variable.
سؤال
Multicollinearity refers to correlations among the dependent variables and makes predictions much more accurate because predicting one variable also allows you to predict the correlated variable(s).
سؤال
An outlier refers to Multiple Rs that are above expected norms such as above 95 or 100.
سؤال
When you have independent variables that are not significant in multiple regression analysis,it is appropriate to take them out and rerun the regression.The new model is referred to as a "trimmed" model.
سؤال
Once we establish,through multiple regression analysis,that certain independent variables are statistically significant in predicting a dependent variable,we may assume this relationship to be one of cause and effect.
سؤال
A regression plane is the shape of the independent variable in multiple regression analysis.
سؤال
In multiple regression analysis,t tests are used to test for the statistical significance of betas.If a beta is insignificant,it means that its respective independent variable plays no meaningful role in predicting the dependent variable,and the independent variable should be "trimmed" from the model.
سؤال
The SPSS command for running multiple regression is: ANALYZE;REGRESSION;LINEAR.
سؤال
In multiple regression analysis,we are trying to predict an independent variable using more than two dependent variables.
سؤال
VIF is an acronym for "Very InFrequent."
سؤال
There is a type of multiple regression,called stepwise multiple regression,that does the trimming operation automatically.
سؤال
We can sometimes improve a regression analysis finding by removing outliers and rerunning the regression analysis.
سؤال
We must use standardized beta weights to compare the size of beta weights in multiple regression because the independent variables they represent are often measured with different units.
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Deck 15: Understanding Regression Analysis Basics
1
In the formula for a straight line,the slope is defined as:

A)the change in y for any 1-unit change in x.
B)where the line cuts the y axis when x = 0.
C)the variable used to predict the dependent variable.
D)the dependent variable.
E)the predicted variable.
A
2
In bivariate regression,if the F value is not significant (say .051),then:

A)we accept the null hypothesis that a straight-line model fits our data.
B)we reject the null hypothesis that a straight-line model does not fit our data.
C)we abandon our efforts to analyze the two variables.
D)we check for outliers.
E)we rerun the regression.
C
3
In bivariate regression,if the F value is significant (say .05 or less),then:

A)we accept the null hypothesis that a straight-line model fits our data.
B)we reject the null hypothesis that a straight-line model does not fit our data.
C)we abandon our efforts to analyze the two variables.
D)we check for outliers.
E)we rerun the regression.
B
4
What criterion is used to establish the best "fit" of a straight line through the points on a scatter diagram?

A)the plum line criterion
B)the least squares criterion
C)the bearing line criterion
D)the b slope criterion
E)the right angle criterion
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5
In bivariate regression analysis,the independent variable is one that is:

A)used to predict the dependent variable,and it is the x in the regression formula.
B)used to predict the dependent variable,and it is the y in the regression formula.
C)predicted,and it is the x in the regression formula.
D)predicted,and it is the y in the regression formula.
E)used to predict the dependent variable,and it is the b in the regression formula.
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6
Which of the following residuals shows an exact prediction?

A)0
B)+1.0
C)-25
D)+25
E)100.0
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7
Which of the following SPSS commands allows you to run bivariate regression?

A)ANALYZE;BIVARIATE;REGRESSION
B)ANALYZE;REGRESSION;BIVARIATE
C)REGRESSION;BIVARIATE
D)ANALYZE;REGRESSION;LINEAR
E)REGRESSION;BIVARIATE;LINEAR
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8
The main purpose of ANOVA in bivariate regression is to:

A)tell us if there are significant differences between three or more means.
B)tell us if ANOVA is an issue.
C)tell us if the straight-line model fits the data we are analyzing.
D)provide a frequency table for further analysis.
E)None of the above;ANOVA is not used in regression.
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9
________ helps the researcher to understand whether observed data is truly linear and whether the data is a good fit to the model being used.

A)Analysis of prediction
B)Control data
C)Analysis of residuals
D)Analysis of variance
E)Values comparison
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10
What is the best way to make a prediction?

A)using simple statistical analysis
B)making a best guess based on past experience
C)employing residual analysis
D)building a predictive model
E)hypothesizing
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11
In evaluating your bivariate regression analysis findings,you first determine whether or not a linear relationship between the independent and dependent variable exists in the population.Which of the following best describes what you are doing in this step?

A)determining if the two variables have any covariation
B)determining if the two variables vary together
C)determining if the two variables belong in the same regression matrix
D)determining if the two variables are isotonic
E)determining if there is statistical significance
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12
In the formula for a straight line,the intercept is known as:

A)the dependent variable.
B)the variable used to predict the dependent variable.
C)the change in y for any unit change in x.
D)the point where the line cuts the y axis when x = 0.
E)b)
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13
________ is a simple technique for analyzing two variables to predict behavior or activity in the marketplace.

A)Regression analysis
B)Variance analysis
C)Bivariate regression
D)Multiple regression
E)Stepwise regression
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14
A predictive model is an approach to prediction that:

A)relates the conditions expected to be in place influencing the factor that is being predicted.
B)observes a consistent pattern over time.
C)identifies a pattern and projects it into the future.
D)uses past experience to predict the future.
E)uses current experience to explain the past.
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15
Which of the following is NOT true of prediction?

A)It is a statement of what is believed will happen in the future.
B)It may be based on prior observation.
C)We are seldom confronted with the need to make predictions.
D)It may be based on past experience.
E)Marketing managers are constantly faced with the need to make predictions.
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16
In bivariate regression analysis,the higher the Adjusted R Square value:

A)the lower the predictive power of the analysis.
B)the better the straight line's fit to the scatter points.
C)the worse the straight line's fit to the scatter points.
D)the closer to 0 it will be.
E)None of the above;there is no Adjusted R Square value in regression analysis.
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17
In bivariate regression analysis,the dependent variable is one that is:

A)used to predict the independent variable,and it is the x in the regression formula.
B)used to predict the independent variable,and it is the y in the regression formula.
C)predicted,and it is usually termed x in the regression formula.
D)predicted,and it is usually termed y in the regression formula.
E)predicted,and it is termed b in the regression formula.
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18
One of the best tools for unraveling prediction complexity is:

A)probability sampling.
B)association analysis.
C)differences testing.
D)linear regression.
E)causal research.
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19
Bivariate regression analysis is defined as a predictive analysis technique in which:

A)a pattern is identified over time and projected into the future.
B)a relationship that exists across time is observed to make a prediction.
C)one variable is used to predict the level of another by use of the straight-line formula.
D)one variable is used to predict the level of another by use of a scatter diagram.
E)a relationship that exists at one point in time is observed to make a prediction.
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20
In evaluating your bivariate regression analysis findings,you first determine whether or not a linear relationship between the independent and dependent variable exists in the population and secondly you:

A)determine the significance of the intercept and the slope.
B)determine the significance of the covariation.
C)determine if the two variables vary together.
D)determine if the two variables belong in the same regression matrix.
E)determine if the two variables predict the intercept and the slope.
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21
In multiple regression,you must test for the significance of the betas for each of the independent variables.You would do this by looking for:

A)a significant t test for each independent variable.
B)a significant ANOVA for each independent variable.
C)a significant alpha level for each independent variable.
D)a significant nonlinear beta weight for each independent variable.
E)a significant R for each independent variable.
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22
While the scaling assumptions of multiple regression require that both the independent and dependent variables be at least interval-scaled,we may use nominal independent variables by using:

A)ratio-scaled variables.
B)standardized beta coefficients.
C)dummy variables.
D)temporary variables.
E)semi-ratio variables.
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23
What is the proper SPSS command sequence to run multiple regression analysis?

A)ANALYZE;REGRESSION;MULTIPLE;GO
B)ANALYZE;REGRESSION;MULTIPLE
C)ANALYZE;REGRESSION;LINEAR
D)ANALYZE;REGRESSION;MLINEAR
E)ANALYZE;REGRESSION;MR
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24
Sometimes a researcher will find that the ANOVA F is not significant in regression analysis or if the F is significant,the R square is lower than desired.It is appropriate in these cases to:

A)examine the data using another stat package other than SPSS.
B)change the scaling assumptions from ratio or interval to ordinal and rerun the analysis.
C)run a confidence interval around the predicted values and then make the interval narrower.
D)run a confidence interval around the predicted values and then make the interval wider.
E)run a scatter diagram,search for outliers,and remove them and rerun the regression.
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25
Which form of regression is useful when the researcher has many independent variables and wants to narrow the set down to a smaller number?

A)multiple component reduction
B)stepwise multiple regression
C)variance deflation regression
D)variance inflation regression
E)narrow regression
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26
When you find "mixed" results in multiple regression (i.e. ,some betas are significant,others are not),you:

A)eliminate,or "trim," the insignificant variables.
B)adjust the insignificant variables by applying a standardized weight.
C)accept the null hypothesis.
D)choose the result that fits your hypothesis.
E)none of the above
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27
A multiple regression equation is best described by which of the following forms?

A)The independent variable is predicted by the intercept plus a series of values of the slope times each dependent variable.
B)The independent variable is predicted by the slope plus a series of values of the intercept times each dependent variable.
C)The dependent variable is predicted by the intercept plus a series of values of the slope times each independent variable.
D)The dependent variable to be predicted is equal to the intercept plus a series of values of the slope times each independent variable.
E)y = a + bx
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28
If Maxwell House Coffee was considering a line of gourmet iced coffee,it would want to know how coffee drinkers feel about gourmet iced coffee;that is,their attitudes toward buying,preparing,and drinking it would be the dependent variables.Maxwell House might consider developing:

A)a general conceptual model.
B)a general conceptual model that identifies the independent and dependent variables.
C)a specific conceptual model that specifies the variables that will produce residuals analysis.
D)a specific conceptual model that will require additional modification to be used in residuals analysis.
E)a conceptual model that identifies the residuals that are associated with the dependent,or slope,variable.
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29
A standardized beta coefficient is defined as:

A)the result of adding the difference between each independent variable value and its mean and the standard deviation of that independent variable.
B)the result of multiplying the difference between each independent variable value and its mean by the standard deviation of that independent variable.
C)the result of dividing the standard deviation of an independent variable by the difference between that independent variable value and its mean.
D)the result of dividing the difference between each independent variable value and its mean by the standard deviation of that independent variable.
E)the result of subtracting the difference between each independent variable value and its mean by the standard deviation of that independent variable.
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30
When we make a prediction using multiple regression,we can apply a 95 percent confidence interval around the predicted dependent variable by multiplying:

A)1)96 times the standard error of the predictor.
B)1)96 times the standard error of the estimate.
C)2)58 times the standard error of the predictor.
D)2)58 times the standard error of the estimate.
E)1)96 times .95.
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31
Independent variables are normally measured in different units,so to determine the relative importance of the beta weights between independent variables we would use:

A)a screening variable.
B)a trimmed model.
C)standardized beta coefficients.
D)betas measured in "like-units."
E)weighted beta coefficients.
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32
A form of regression analysis where more than one independent variable is used in the regression equation is known as:

A)regression planes.
B)additivity.
C)multiple regression analysis.
D)independence assumption.
E)MANOVA.
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33
A graph of the dependent variable in multiple regression analysis is referred to as:

A)confidence intervals.
B)multiple regression.
C)multiple scatter plots.
D)regression plane.
E)a multi-scatter plot.
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34
Which sequence of SPSS commands would you select in order to run stepwise multiple regression?

A)ANALYZE;REGRESSION;LINEARSTEPS
B)ANALYZE;REGRESSION;LINEAR;METHOD;STEPWISE
C)STEPWISE;LINEAR REGRESSION;GO
D)STEPWISE;LINEAR REGRESSION
E)ANALYZE;REGRESSION;METHOD;STEP
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35
When the statistic used to determine whether or not multicollinearity is a concern in multiple regression is greater than ________,it is prudent to remove that variable and rerun the regression.

A))05
B))10
C))95
D)1)00
E)10
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36
Which of the following in multiple regression is a handy measure of the strength of the overall relationship?

A)Adjusted R
B)Multiple R
C)multicollinearity
D)VIF
E)Adjusted B
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37
Researchers applied multiple regression analysis to study mobile phone service in Thailand,using overall satisfaction as the dependent variable.Standardized betas for independent variables were calculated.Of those listed below,which is the most important factor for a Thai mobile phone company trying to increase its competitiveness?

A)quality of service,standardized beta = .139
B)promotions by the company,standardized beta = .158
C)innovativeness by the company,standardized beta = .060
D)social status of the company brand,standardized beta = -.013
E)customer service quality,standardized beta = .155
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38
Which statistic is used to determine whether or not multicollinearity is a concern in multiple regression?

A)coefficient of determination
B)multicol Z
C)multicol R
D)VIF (variance inflation factor)
E)Q
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39
Which of the following stipulates that independent multiple regression variables must be statistically independent and uncorrelated with one another?

A)independence assumption
B)multicollinearity
C)additivity requirement
D)regression plane
E)uncorrelation
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40
In multiple regression,the presence of correlations among the independent variables is termed:

A)independence assumption.
B)multicollinearity.
C)additivity.
D)regression plane.
E)multicorrelation.
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41
In regression,the variable being predicted,y,is known as the dependent variable.
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42
In regression,the line that runs through the points on a scatter diagram is positioned to minimize the vertical distances away from the line of the various points because of the least squares criterion.
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43
A regression line using the least squares criterion will result in high residuals.
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44
In the following straight-line formula,y = a + bx,the variable being predicted is the beta weight,b.
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45
In the formula for bivariate regression analysis,the change in y for each one-unit change in x is known as the slope.
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46
If the ANOVA F test is not significant in bivariate regression analysis,we must trim the model by eliminating the insignificant dependent variable(s).
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47
The R Square value is very important because it tells us how well our regression line fits the scatter of data points.It may range from 0 to +1.00 because it is the square of the correlation coefficient,which may range from -1.00 to +1.00.
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48
A prediction is a statement of what is believed will happen in the future made on the basis of past experience or prior observation.
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49
A predictive model simply examines what has happened in the past and predicts the future.
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50
When we want to use one variable to predict another and use the equation: y = a + bx,we use the technique known as multiple regression.
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51
If the tests of the significance of the slope and the intercept are significant,this means that the straight-line relationship depicted by the slope and the intercept actually exists in the population and,therefore,the regression equation may be used as a prediction device.
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52
In bivariate regression,we can calculate an upper and lower range within which we could expect the values of the independent values to fall if they were calculated.
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53
Immediately in bivariate analysis,the researcher must find out whether or not a linear relationship
exists in the population.
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54
In regression,the variable used to predict the dependent variable is known as x,the independent variable.
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55
In bivariate regression analysis,t tests are used to test the significance of the slope and the intercept of the multiple dependent variables.
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56
Which of the following are warnings that the textbook authors give regarding regression analysis?

A)It is complicated and requires large computer memory.
B)It does not give you cause-and-effect statements,and it is expensive to run.
C)It does not give you cause-and-effect statements,and the text's coverage of regression analysis only scratches the surface of this topic.
D)It is expensive,and you should not apply regression to predict data outside the boundaries of the data used to develop the regression model.
E)No warnings are given.
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57
In the formula for bivariate regression analysis,the point where the line cuts the y axis when x = 0 is known as b,the beta.
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58
In regression,the variable being predicted,b,is known as the dependent variable.
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59
The two ways of making a prediction are extension analysis and baseline predictive modeling.
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60
When we make predictions and compare the differences between our predictions and the actual results,we are performing what is known as analysis of residuals.
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61
The VIF is useful for identifying multicollinearity.
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62
In dummy coding,the 0-versus-1 code is traditional,but any two adjacent numbers could be used,such as 1 versus 2.
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63
Multiple regression requires specification of a general conceptual model that identifies independent and dependent variables and shows their expected relationships.
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64
In multiple regression we make a prediction,but we cannot put confidence intervals around our prediction as we can in bivariate regression.
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65
Stepwise multiple regression is useful if a researcher has many dependent variables but needs additional dependent variables in order to obtain a good predictive model.
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66
If we wanted to use a type of regression that first enters the variable that explains the most variance,then the variable that explains the second highest level of variance and so on,we would use ordinal regression.
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67
The multiple R,also called the coefficient of determination,in multiple regression ranges from 0 to +1.00 and represents the amount of the dependent variable "explained" by the combined independent variables.
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68
Multiple regression may be used as a screening device in the sense that it may be used to reduce large numbers of potential independent variables in order to spot those that are most salient for the dependent variable.
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69
Multicollinearity refers to correlations among the dependent variables and makes predictions much more accurate because predicting one variable also allows you to predict the correlated variable(s).
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70
An outlier refers to Multiple Rs that are above expected norms such as above 95 or 100.
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71
When you have independent variables that are not significant in multiple regression analysis,it is appropriate to take them out and rerun the regression.The new model is referred to as a "trimmed" model.
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72
Once we establish,through multiple regression analysis,that certain independent variables are statistically significant in predicting a dependent variable,we may assume this relationship to be one of cause and effect.
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73
A regression plane is the shape of the independent variable in multiple regression analysis.
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74
In multiple regression analysis,t tests are used to test for the statistical significance of betas.If a beta is insignificant,it means that its respective independent variable plays no meaningful role in predicting the dependent variable,and the independent variable should be "trimmed" from the model.
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75
The SPSS command for running multiple regression is: ANALYZE;REGRESSION;LINEAR.
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76
In multiple regression analysis,we are trying to predict an independent variable using more than two dependent variables.
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77
VIF is an acronym for "Very InFrequent."
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78
There is a type of multiple regression,called stepwise multiple regression,that does the trimming operation automatically.
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79
We can sometimes improve a regression analysis finding by removing outliers and rerunning the regression analysis.
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80
We must use standardized beta weights to compare the size of beta weights in multiple regression because the independent variables they represent are often measured with different units.
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