7. Write the regression equation (use a and b provided in the Coefficients Table)   8. Interpret each of the terms of the regression equation you constructed in question 7: That is, interpret: X, Ŷ, a and b   9. Use the regression equation you constructed in question 7 to predict:  If a person has 112 months of  previous experience,  what is the person’s predicted current salary? 10. Use the regression equation you constructed in 7 to predict:  If a person has 400 months of  previous experience what is the person’s predicted current salary?

Trigonometry (MindTap Course List)
8th Edition
ISBN:9781305652224
Author:Charles P. McKeague, Mark D. Turner
Publisher:Charles P. McKeague, Mark D. Turner
Chapter4: Graphing And Inverse Functions
Section: Chapter Questions
Problem 6GP: If your graphing calculator is capable of computing a least-squares sinusoidal regression model, use...
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7. Write the regression equation (use a and b provided in the Coefficients Table)

 

8. Interpret each of the terms of the regression equation you constructed in question 7That is, interpret: X, Ŷ, a and b

 

9. Use the regression equation you constructed in question 7 to predict: 

If a person has 112 months of  previous experience,  what is the person’s predicted current salary?

10. Use the regression equation you constructed in 7 to predict: 

If a person has 400 months of  previous experience what is the person’s predicted current salary?

 

Output1.spv [Document1] - IBM SPSS Statistics Viewer
File
Edit
View
Data
Transform
Įnsert
Format
Analyze
Graphs
Utilities
Extensions
Window
Help
itput
b. All requested variables entered.
Log
Regression
Title
Model Summary
G Notes
L Active Dataset
A Variables Entered/Removed
A Model Summary
A ANOVA
Adjusted R
Square
Std. Error of
Model
R
R Square
the Estimate
1
.097a
.009
.007
104.198
a. Predictors: (Constant), Current Salary
Coefficients
ANOVA
Sum of
Model
Squares
df
Mean Square
F
Sig.
1
Regression
49150.138
1
49150.138
4.527
.034b
Residual
5124656.672
472
10857.323
Double-click to
Total
5173806.810
473
activate
a. Dependent Variable: Previous Experience (months)
b. Predictors: (Constant), Current Salary
Coefficients
Standardized
Unstandardized Coefficients
Coefficients
Model
Std. Error
Beta
Sig.
(Constant)
116.408
10.778
10.800
.000
Current Salary
-.001
.000
-.097
-2.128
.034
a. Dependent Variable: Previous Experience (months)
IBM SPSS Statistics Processor is ready
Unicode:ON
Transcribed Image Text:Output1.spv [Document1] - IBM SPSS Statistics Viewer File Edit View Data Transform Įnsert Format Analyze Graphs Utilities Extensions Window Help itput b. All requested variables entered. Log Regression Title Model Summary G Notes L Active Dataset A Variables Entered/Removed A Model Summary A ANOVA Adjusted R Square Std. Error of Model R R Square the Estimate 1 .097a .009 .007 104.198 a. Predictors: (Constant), Current Salary Coefficients ANOVA Sum of Model Squares df Mean Square F Sig. 1 Regression 49150.138 1 49150.138 4.527 .034b Residual 5124656.672 472 10857.323 Double-click to Total 5173806.810 473 activate a. Dependent Variable: Previous Experience (months) b. Predictors: (Constant), Current Salary Coefficients Standardized Unstandardized Coefficients Coefficients Model Std. Error Beta Sig. (Constant) 116.408 10.778 10.800 .000 Current Salary -.001 .000 -.097 -2.128 .034 a. Dependent Variable: Previous Experience (months) IBM SPSS Statistics Processor is ready Unicode:ON
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