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Chap 5 The Multiple Regression Model

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1 Chap 5 The Multiple Regression Model
Econometrics (NA1031) Chap 5 The Multiple Regression Model

2 Multiple regression An example of an economic model is:
The econometric model: e = SALES - E(SALES)

3 FIGURE 5.1 The multiple regression plane

4 Multiple regression In a general multiple regression model, a dependent variable y is related to a number of explanatory variables x2, x3, …, xK through a linear equation that can be written as: A single parameter, call it βk, measures the effect of a change in the variable xk upon the expected value of y, all other variables held constant

5 Assumptions MR1. MR2. MR3. MR4. MR5. The values of each xtk are not random and are not exact linear functions of the other explanatory variables MR6.

6 Estimation by OLS Say two explanatory variables in the model: Minimize

7 Least squares estimators
Are random variables and have sampling properties. According to Gauss-Markov theorem if assumptions MR1–MR5 hold, then the least squares estimators are the best linear unbiased estimators (BLUE) of the parameters. For example it can be shown that:

8 Least squares estimators
We can see that: Larger error variances 2 lead to larger variances of the least squares estimators Larger sample sizes N imply smaller variances of the least squares estimators More variation in an explanatory variable around its mean, leads to a smaller variance of the least squares estimator A larger correlation between x2 and x3 leads to a larger variance of b2 Exact collinearity when correlation between x2 and x3 is perfect (i.e. =1)

9 Least squares estimators
We can arrange the variances and covariances in a matrix format: Using estimates of these we can construct interval estimates and conduct hypothesis testing as we did for the simple regression model.

10 Stata Start Stata mkdir C:\PE cd C:\PE
copy chap05_15.do doedit chap05_15.do

11 Assignment Exercise 5.12, 5.13.a, 5.13.b.i, 5.13.b.ii, page 204 and 205 in the textbook.


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