Question

What are the intervals which f increases and decreases, where f is concave up and down, and coordinates of inflection points? `x^4-5x^3+9x^2`

Answer 1

Decreasing: `(-oo, 0)` Increasing: `(0, oo)` Minimum: `(0,0)` Concave up: `(-oo, 1), (3/2, oo)` Concave down: `(1, 3/2)` Inflection point: `(3/2,189/16)`

Explanation:

Take the first derivative, set equal to zero, and solve for `x` to obtain critical values. We would also have to see where the first derivative doesn't exist; however, this is a polynomial and will therefore have a continuous derivative.

`f'(x)=4x^3-15x^2+18x`

`4x^3-15x^2+18x=0`

`x(4x^2-15x+18)=0`

That quadratic cannot be factored further; thus, `x=0` is the only critical value.

We must then determine whether `f'(x)` is positive or negative in the intervals `(-oo,0), (0, oo)`.

`(-oo,0): f'(-1)=4(-1)^3+15(-1)^2-18=4+15-18<0`

A negative first derivative means a decreasing function, so, `f(x)` decreases on `(-oo, 0)`

`(0, oo): f'(1)=4-15+18>0`

A positive first derivative means an increasing function, so, `f(x)` increases on `(0, oo)`.

We then have a local minimum at `(0, f(0))` as we change from decreasing to increasing at that point.

`f(0)=0^4-5(0^3)+9(0^2)=0`

`(0,0)` is the minimum.

Take the second derivative, set equal to zero, and solve. Again, it will be continuous, so no need to check for points where it does not exist.

`f''(x)=12x^2-30x+18`

`12x^2-30x+18=0`

`6(x-1)(2x-3)=0`

`x=1, x=3/2`

We must determine whether the second derivative is positive or negative on the intervals `(-oo, 1), (1, 3/2), (3/2, oo)`

`(-oo,1):f''(0)=12(0^2)-30(0)+18=18>0`

A positive second derivative entails upward concavity.

`f(x)` is concave up on `(-oo, 1).`

`(1, 3/2): f''(5/4)=12(5/4)^2-30(5/4)+18=300/16-150/4+18=300/16-600/16+288/16<0`

A negative second derivative entails downward concavity.

`f(x)` is concave down on `(1, 3/2).`

`(3/2, oo): f''(2)=12(2^2)-30(2)+18=48-60+18>0`

Concave up on `(3/2, oo)`

There will be an inflection point at `(3/2, f(3/2))` due to changing concavity at that point.

`f(3/2)=(3/2)^4-5(3/2)^3+9(3/2)^2=81/16-135/4+81/2=81/16-540/16+648/16=189/16`

The inflection point is at `(3/2, 189/16)`