DAT 565 University of Phoenix Week 4 Patterns and Modeling Discussion
Description
Discussion Topic
Post a total of 3 substantive responses over 2 separate days for full participation. This includes your initial post and 2 replies to other students or your faculty member.
Due Day 3
Respond to the following in a minimum of 175 words:
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
- Construct a scatter plot with this data using Excel (Attach the excel page).
- Do you observe a relationship between both variables? (Post your response in Blackboard).
- 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.) (Should be on the same Excel page).
- What is the slope? What does the slope tell us? Is the slope significant? (Post your response in Blackboard).
- What is the intercept? Is it meaningful? (Post your response in Blackboard).
- What is the value of the regression coefficient? What is the value of the coefficient of determination, r^2? What does r^2 tell us? (Post your response in Blackboard).
- Use the model to predict sales and the business spends $950,000 in the advertisement. Does the model underestimate or overestimate sales? Justify your answer. (Post your response in Blackboard).
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