What is the fitted regression model


Problem: Patterns and Modeling

Models help us describe and summarize relationships between variables. Understanding how process variables relate to each other helps businesses predict and improve performance. For example, a marketing manager might be interested in modeling the relationship between advertisement expenditures and sales revenues.

Consider the dataset below and respond to the questions that follow:

Advertisement (000)   Sales (000)
1068                              4489
1026                              5611
767                                3290
885                                4113
1156                              4883
1146                              5425
892                                4414
938                                5506
769                                3346
677                                3673
1184                              6542
1009                              5088

1. Construct a scatter plot with this data.

2. Do you observe a relationship between both variables?

3. Use Excel to fit a linear regression line to the data. What is the fitted regression model? (Hint: You can follow the steps outlined on page 497 of the textbook.)

4. What is the slope? What does the slope tell us? Is the slope significant?

5. What is the intercept? Is it meaningful?

6. What is the value of the regression coefficient,r? What is the value of the coefficient of determination, r^2? What does r^2 tell us?

7. Use the model to predict sales and the business spends $950,000 in advertisement. Does the model underestimate or overestimates ales?

The response must include a reference list. Using Times New Roman 12 pnt font, double-space, one-inch margins, and APA style of writing and citations.

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