2.2.2: Graphs of Polynomials Using Zeros

Example 1

Earlier, you were asked to identify some similarities in graphing using zeroes between quadratic functions and higher-degree polynomials.

Solution

Despite the more complex nature of the graphs of higher-degree polynomials, the general process of graphing using zeroes is actually very similar. In both cases, your goal is to locate the points where the graph crosses the x or y axis. In both cases, this is done by setting the y value equal to zero and solving for x to find the x axis intercepts, and setting the x value equal to zero and solving for y to find the y axis intercepts.

Example 2

Find the roots (zeroes) of the polynomial:

h(x)=x³+2x²−5x−6

Solution

Start by factoring:

h(x)=x³+2x²−5x−6=(x+1)(x−2)(x+3)

To find the zeros, set h(x)=0 and solve for x.

(x+1)(x−2)(x+3)=0

This gives

x+1=0

x−2=0

x+3=0

or

x=-1

x=2

x=-3

So we say that the solution set is {−3,−1,2}. They are the zeros of the function h(x). The zeros of h(x) are the x−intercepts of the graph y=h(x) below.

Example 3

Find the zeros of g(x)=−(x−2)(x−2)(x+1)(x+5)(x+5)(x+5).

Solution

The polynomial can be written as

g(x)=−(x−2)²(x+1)(x+5)³

To solve the equation, we simply set it equal to zero

−(x−2)²(x+1)(x+5)³=0

this gives

x−2=0

x+1=0

x+5=0

or

x=2

x=-1

x=-5

Notice the occurrence of the zeros in the function. The factor (x−2) occurred twice (because it was squared), the factor (x+1) occurred once and the factor (x+5) occurred three times. We say that the zero we obtain from the factor (x−2) has a multiplicity k=2 and the factor (x+5) has a multiplicity k=3.

Example 4

Graph the polynomial function f(x)=−3x⁴+2x³.

Solution

Since the leading term here is −3x⁴ then a_n=−3<0, and n=4 even. Thus the end behavior of the graph as x→∞ and x→−∞ is that of Box #2, item 2.

We can find the zeros of the function by simply setting f(x)=0 and then solving for x.

−3x⁴+2x³=0

−x³(3x−2)=0

This gives

x=0 or x=\(\ 2\over 3\)

So we have two x−intercepts, at x=0 and at x=\(\ 2\over 3\), with multiplicity k=3 for x=0 and multiplicity k=1 for x=\(\ 2\over 3\)

To find the y−intercept, we find f(0), which gives

f(0)=0

So the graph passes the y−axis at y=0.

Since the x−intercepts are 0 and \(\ 2\over 3\), they divide the x−axis into three intervals: (−∞, 0), (0, \(\ 2\over 3\)), and (\(\ 2\over 3\), ∞). Now we are interested in determining at which intervals the function f(x) is negative and at which intervals it is positive. To do so, we construct a table and choose a test value for x from each interval and find the corresponding f(x) at that value.

Those test points give us three additional points to plot: (−1, −5), (\(\ 1\over 2\), \(\ 1\over 16\)), and (1, -1). Now we are ready to plot our graph. We have a total of three intercept points, in addition to the three test points. We also know how the graph is behaving as x→−∞ and x→+∞. This information is usually enough to make a rough sketch of the graph. If we need additional points, we can simply select more points to complete the graph.

Example 5

Find the zeros and sketch a graph of the polynomial

f(x)=x⁴−x²−56

Solution

This is a factorable equation,

f(x)=x⁴−x²−56

=(x²−8)(x²+7)

Setting f(x)=0,

(x²−8)(x²+7)=0

the first term gives

x²−8=0

x²=0

x= ±\(\ \sqrt{8}\)

= ±\(\ 2\sqrt{2}\)

and the second term gives

x²+7=0

x²=−7

x=±\(\ \sqrt{-7}\)

=±\(\ i\sqrt{7}\)

So the solutions are ±\(\ 2\sqrt{2}\) and ±\(\ i\sqrt{7}\), a total of four zeros of f(x). Keep in mind that only the real zeros of a function correspond to the x−intercept of its graph.

Example 6

Graph g(x)=−(x−2)²(x+1)(x+5)³.

Solution

Use the zeros to create a table of intervals and see whether the function is above or below the x−axis in each interval:

Finally, use this information and the test points to sketch a graph of g(x).