7.8 Solving Quadriatic Equations by Factoring

Terrance Berg

Chapter 7: Factoring

7.8 Solving Quadriatic Equations by Factoring

Solving quadratics is an important algebraic tool that finds value in many disciplines. Typically, the quadratic is in the form of $y = ax^2 + bx + c$ , which when graphed is a parabola. Of special importance are the $x$ -values that are found when $y = 0$ , which show up when graphed as the parabola crossing the $x$ -axis. For a trinomial, there can be as many as three $x$ -axis crossings. The following show the possible number of $x$ -axis intercepts for 2nd degree (quadratic) to 7th degree (septic) functions. Please note that if the fifth degree polynomial were shifted down a few values, it would also show 5 $x$ -axis intercepts. It is these $x$ -axis intercepts that are of interest.

y = ax^2 + bx + c, shown 6 different ways

The approach to finding these $x$ -intercepts is elementary: set $y = 0$ in the original equation and factor it. Once the equation is factored, then find the $x$ -values that solve for 0. This is shown in the next few examples.

Example 7.8.1

Solve the following quadratic equation: $(2x - 3)(5x + 1) = 0$ .

In this problem there are two separate binomials: $(2x - 3)$ and $(5x + 1)$ . Since their product is equal to 0, there will be two solutions: the value for $x$ that makes $2x - 3 = 0$ and the value for $x$ that makes $5x + 1 = 0$ .

These are:

$\begin{array}{rrrrrcrrrrr} 2x&-&3&=&0&\hspace{0.15in}\text{and} \hspace{0.15in}&5x&+&1&=&0 \\ &+&3&&+3&&&-&1&&-1 \\ \midrule &&2x&=&3&&&&5x&=&-1 \\ \\ &&x&=&\dfrac{3}{2}&&&&x&=&-\dfrac{1}{5} \end{array}$

Example 7.8.2

Solve the following polynomial equation: $(x - 3)(x + 3)(x - 1)(x + 1) = 0$ .

For this polynomial, there are four different solutions:

$(x - 3) = 0, (x + 3) = 0, (x - 1) = 0, (x + 1) = 0$

Solving for these four x-values gives us:

$\begin{array}{rrrr} \begin{array}{rrrrr} x&-&3&=&0 \\ &+&3&&+3 \\ \midrule &&x&=&3 \end{array} & \begin{array}{rrrrr} x&+&3&=&0 \\ &-&3&&-3 \\ \midrule &&x&=&-3 \end{array} & \begin{array}{rrrrr} x&-&1&=&0 \\ &+&1&&+1 \\ \midrule &&x&=&1 \end{array} & \begin{array}{rrrrr} x&+&1&=&0 \\ &-&1&&-1 \\ \midrule &&x&=&-1 \end{array} \end{array}$

The solutions are: $x=\pm 3, \pm 1$ .

It would be nice if there were only given factored equations to solve, but that is not how it goes. You are generally required to factor the equation first before it can be solved.

Example 7.8.3

Solve the following quadratic equation: $4x^2 + x - 3 = 0$ .

First, factor $4x^2 + x - 3$ and get $(4x - 3)(x+1) = 0$ .

Now, solve for $4x - 3 =0$ and $x + 1 = 0$ .

Solving these two binomials yields:

$\begin{array}{rr} \begin{array}{rrrrr} \\ 4x&-&3&=&0 \\ &+&3&&+3 \\ \midrule &&4x&=&3 \\ \\ &&x&=&\dfrac{3}{4} \end{array} &\hspace{0.25in} \begin{array}{rrrrr} x&+&1&=&0 \\ &-&1&&-1 \\ \midrule &&x&=&-1 \\ \\ &&x&=&-1 \end{array} \end{array}$