0
$\begingroup$

I would like to show that $Var(aX + b) = a^2 Var(X)$ using a different proof from my book

Let $Y = aX + b$

$Var(Y) = E(Y^2) - E[Y]^2$

= $E[(aX + b)^2] - E(aX + b)^2$

= $E[(a^2 X^2 + b^2 + 2abX] - (a\mu+b)^2$

= $a^2E(X^2) + b^2 + 2abE[X] - (a^2\mu^2 + b^2 + 2ab\mu)$

= $a^2E(X^2) + b^2 + 2ab\mu - (a^2E[X]^2 + b^2 + 2ab\mu)$

= $a^2E[X^2] - a^2E[X]^2$

= $a^2(E[X^2]-E[X]^2)$

= $a^2 Var(X)$

My book does like three lines and they start out with $Var(aX + b) = E[(aX + b - (a\mu + b) ) ^2]$. I don't understand why they substract $(a\mu + b)$ instead of $\mu$ because $Var(X) = E[(X - \mu)^2]$

Is my proof correct?

2 Answers 2

1

As mentioned above, they subtract $a\mu + b$ because that is the mean of $Y$. Every time you find the variance of a random variable from the definition, you need to subtract its mean in the formula.

1

Note that $E[Y] = E[aX + b] = aE[X] + b = a\mu + b$.

  • 0
    Sorry for super slow response, but yeah, your alternative proof is correct too. It's just a little more tedious.2012-11-20