Mgt 6203 t - Study guides, Class notes & Summaries
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MGT 6203 TOP Study Guide Questions and CORRECT Answers
- Exam (elaborations) • 15 pages • 2024
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Most common problems in fitting linear regression - 1. Non-linearity of the responsepredictor relationships 
2. Correlation of error terms 
3. Non-Constant variance of error terms 
4. Outliers 
5. High-leverage points 
6. Collinearity 
How to check for linearity - 1. Check the scatterplot of Y vs. X variable. Is it linear? 
2. OR residual plot vs. fitted plot (especially useful in multiple regression). We want to see no 
patterns in this plot
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Summer MGT 6203 MID EXAM PART2 – CODING (QUESTIONS AND ANSWERS)
- Exam (elaborations) • 16 pages • 2023
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Summer MGT 6203 MID EXAM 
PART2 – CODING 
Week 1 
Use the inbuilt dataset ‘longley’ for questions 1 and 2. 
Q1) Fit a linear regression model with ‘Employed’ as the response 
variable and all other variables (except ‘Year’) as predictors. What are the 
significant predictors at 10% significance level? 
A. GNP 
B. GNP, Armed.Forces 
C. GNP, Unemployed, Population 
D. None of the predictors are significant at 10% significance level 
Solution: 
model1 = lm(Employed~.-Year, data = long...
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MGT 6203 MIDTERM PART 2– SOLUTION KEY CODING QUESTIONS with ANSWERS
- Exam (elaborations) • 15 pages • 2022
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MGT 6203 MIDTERM PART 2– SOLUTION KEY CODING QUESTIONS with ANSWERS 
Week 1 
Use the inbuilt dataset ‘longley’ for questions 1 and 2. 
Q1) Fit a linear regression model with ‘Employed’ as the response variable 
and all other variables (except ‘Year’) as predictors. What are the 
significant predictors at 10% significance level? 
A. GNP 
B. GNP,	Armed.Forces 
C. GNP,	Unemployed,	Population 
D. None	of	the	predictors	are	significant	at	10%	significance	level 
Solution: 
model1	= lm(E...
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MGT 6203 TOP Study Guide Questions and CORRECT Answers
- Exam (elaborations) • 15 pages • 2024
-
- $10.49
- + learn more
Most common problems in fitting linear regression - 1. Non-linearity of the responsepredictor relationships 
2. Correlation of error terms 
3. Non-Constant variance of error terms 
4. Outliers 
5. High-leverage points 
6. Collinearity 
How to check for linearity - 1. Check the scatterplot of Y vs. X variable. Is it linear? 
2. OR residual plot vs. fitted plot (especially useful in multiple regression). We want to see no 
patterns in this plot
-
Exam (elaborations) MGT 6203/MGT 6203 MIDTERM – SOLUTION KEY PART 2 CODING QUESTIONS WITH ANSWERS.
- Exam (elaborations) • 15 pages • 2021
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- $15.69
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MGT 6203 MIDTERM – SOLUTION KEY PART 2 CODING QUESTIONS WITH ANSWERS.) Please estimate a linear regression model (using the lm function) with Personal as the dependent variable and Room.Board as the independent variable. What are the model’s Rsquared and adjusted R-squared values? a) 0.00549, 0.048 b) 0.0143, 0.022 c) 0.0398, 0.0385 d) 0.0325, 0.0336 Answer: C (Week 1 Lesson 4) library("ISLR") data("College") summary(lm(College$Personal~College$Room.Board)) ## ## Call: ## lm(formula = Co...
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