2
$\begingroup$

I am stuck on graphing

$y= (x-3) \sqrt{x}$

I am pretty sure that the domain is all positive numbers including zero. The y intercept is 0, x is 0 and 3.

There are no asymptotes or symmetry.

Finding the interval of increase or decrease I take the derivative which will give me

$\sqrt{x} + \frac{x-3}{2\sqrt{x}}$

Finding zeroes for this I subtract $\sqrt{x}$ and then multiply by the denominator

$2x = x - 3$

This gives me 3 as a zero, but this isn't correct according to the book so I am stuck. I am not sure what is wrong.

1 Answers 1

3

Your solution of y'=0 is incorrect. $\begin{align*} \sqrt{x}+\frac{x-3}{2\,\sqrt{x}}&=0\\ \frac{x-3}{2\,\sqrt{x}}&=-\sqrt{x}\\ x-3&=-2\,x\\ x&=? \end{align*}$

  • 0
    I am incredibly bad at this.2012-04-01