Question

What are the local extrema, if any, of `f (x) =(xlnx)^2/x`?

Answer 1

`f_min =f(1) =0`
`f_max =f(e^(-2)) approx 0.541`

Explanation:

`f(x) = (xlnx)^2/x`

`= (x^2*(lnx)^2)/x`

`= x(lnx)^2`

Applying the product rule

`f'(x) = x*2lnx*1/x + (lnx)^2*1`

`= (lnx)^2 + 2lnx`

For local maxima or minima: `f'(x) = 0`

Let `z= lnx`

`:. z^2 +2z = 0`

`z(z+2) =0 -> z=0 or z=-2`

Hence for local maximum or minimum:

`lnx = 0 or lnx = -2`

`:.x= 1 or x=e^-2 approx 0.135`

Now examine the graph of `x(lnx)^2` below.

graph{x(lnx)^2 [-2.566, 5.23, -1.028, 2.87]}

We can observe that simplified `f(x)` has a local minimum at `x=1` and a local maximum at `x in (0, 0.25)`

Hence: `f_min =f(1) =0` and `f_max =f(e^(-2)) approx 0.541`