Chapter 2, Problem 59CR

To determine

Thepossible numbers of positive and negative real zeros of $f\left(x\right)=6x^3+9x+4$ .

Answer to Problem 59CR

One or three positive zeros and no negative zero.

Explanation of Solution

Concept Used:

Descartes’s Rule of Signs:

Let $f\left(x\right)=a_n{x}^n+a_{n-1}{x}^{n-1}+\cdots +a_{1}x+a_0$ be a polynomial with real coefficients $a_0\ne 0$ .

1. The number of positive real zeros of f is either equal to the number of variations in sign of $f\left(x\right)$ or less than that number by an even integer.

2. The number of negative real zeros of f is either equal to the number of variations in sign of $f\left(x\right)$ or less than that number by an even integer.

Consider the polynomial

  $f\left(x\right)=6x^3+9x+4$

It has 0 variations in signs, which implies that the polynomial has no positive zero.

Now consider,

  $\begin{array}{c}f\left(-x\right)=6{\left(-x\right)}^3+9\left(-x\right)+4\\ =-6x^3-9x+4\end{array}$

It has 1 variation in signs, which implies that the polynomial has either 1 negative zero or no negative zero.