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Lecture 5 HSPM J716. Assignment 4 Answer checker Go over results.

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Presentation on theme: "Lecture 5 HSPM J716. Assignment 4 Answer checker Go over results."— Presentation transcript:

1 Lecture 5 HSPM J716

2 Assignment 4 Answer checker Go over results

3 Multiple regression coefficient and multicollinearity If Z=aX+b, the denominator becomes 0.

4 F-test

5

6 Heteroskedasticity Heh’-teh-ro – ske-das’ – ti’-si-tee Violates assumption 3 that errors all have the same variance. – Ordinary least squares is not your best choice. Some observations deserve more weight than others. – Or – You need a non-linear model.

7 Nonlinear models – adapt linear least squares by transforming variables Y = e x Made linear by New Y = log of Old Y.

8 e Approx. 2.718281828 Limit of the expression below as n gets larger and larger

9 Logarithms and e e 0 =1 Ln(1)=0 e a e b =e a+b Ln(ab)=ln(a)+ln(b) (e b )a=e ba Ln(b a )=aln(b)

10 Transform variables to make equation linear Y = Ae bx u Ln(Y) = ln(Ae bX u) Ln(Y) = ln(A) + ln(e bX ) + ln(u) Ln(Y) = ln(A) + bln(e X ) + ln(u) Ln(Y) = ln(A) + bX + ln(u)

11 Transform variables to make equation linear Y = AX b u Ln(Y) = ln(AX b u) Ln(Y) = ln(A) + ln(X b ) + ln(u) Ln(Y) = ln(A) + bln(X) + ln(u)

12 Logarithmic models Y = Ae bx u Constant growth rate model Continuous compounding Y is growing (or shrinking) at a constant relative rate of b. Linear Form ln(Y) = ln(A) + bX + ln(u) U is random error such that ln(u) conforms to assumptions Y = Ax b u Constant elasticity model The elasticity of Y with respect to X is a constant, b. When X changes by 1%, Y changes by b%. Linear Form ln(Y) = ln(A) + bln(X) + ln(u) U is random error such that ln(u) conforms to assumptions

13 The error term multiplies, rather than adds. Must assume that the errors’ mean is 1.

14 Demos Linear function demo Power function demo

15 Assignment 5

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