Question

How to do this question?

Answer 1

Please see below.

Explanation:

`f(x) = 1/27(ax-1)^3(b-3x)+1`

`f'(x) = 1/27[3a(ax-1)^2(b-3x)-3(ax-1)^3]`

`= 1/27 * 3(ax-1)^2[a(b-3x)-(ax-1)]`

`= 1/9 (ax-1)^2(ab-4ax+1)`

`f'(x) = 0` at `x= 1/a` and at `x=(ab+1)/(4a)`

Both solutions require `a` in a denominator, so `f` has no stationary points if `a = 0`. (Observe that in that case `f(x)` is linear.)

`f(1/a) = 1`, so one stationary point is `(1/a,1)`.

If `(1,1)` is a stationary point and there is another `(p,p)` with `p != 1`, we must have `1/a = 1` so, `a =1`

The other stationary point is, therefore, `p = (b+1)/4`.

We are told `f(p) = p`, so

Set `f((b+1)/4)= (b+1)/4` and solve for `b`, then find `p`.