EXAMPLE 5 Standardized Test Practice SOLUTION Because f (3) = 0, x – 3 is a factor of f (x). Use synthetic division. 3 1 – 2 – 23 60 3 3 – 60 1 1 – 20.

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EXAMPLE 5 Standardized Test Practice SOLUTION Because f (3) = 0, x – 3 is a factor of f (x). Use synthetic division. 3 1 – 2 – – – 20 0

EXAMPLE 5 Use the result to write f (x) as a product of two factors. Then factor completely. f (x) = x 3 – 2x 2 – 23x + 60 The zeros are 3, – 5, and 4. Standardized Test Practice The correct answer is A. ANSWER = (x – 3)(x + 5)(x – 4) = (x – 3)(x 2 + x – 20)

EXAMPLE 6 Use a polynomial model BUSINESS The profit P (in millions of dollars ) for a shoe manufacturer can be modeled by P = – 21x x where x is the number of shoes produced (in millions). The company now produces 1 million shoes and makes a profit of $25,000,000, but would like to cut back production. What lesser number of shoes could the company produce and still make the same profit?

EXAMPLE 6 Use a polynomial model SOLUTION 25 = – 21x x Substitute 25 for P in P = – 21x x. 0 = 21x 3 – 46x + 25 Write in standard form. You know that x = 1 is one solution of the equation. This implies that x – 1 is a factor of 21x 3 – 46x Use synthetic division to find the other factors – – – 25 0

EXAMPLE 6 Use a polynomial model So, (x – 1)(21x x – 25) = 0. Use the quadratic formula to find that x  0.7 is the other positive solution. The company could still make the same profit producing about 700,000 shoes. ANSWER

GUIDED PRACTICE for Examples 5 and 6 Find the other zeros of f given that f (– 2) = f (x) = x 3 + 2x 2 – 9x – 18 SOLUTION Because f (– 2 ) = 0, x + 2 is a factor of f (x). Use synthetic division. – – 9 – 18 – – 9 0

GUIDED PRACTICE for Examples 5 and 6 Use the result to write f (x) as a product of two factors. Then factor completely. f (x) = x 3 + 2x 2 – 9x – 18 The zeros are 3, – 3, and – 2. = (x + 2)(x + 3)(x – 3) = (x + 2)(x 2 – 9 2 )

GUIDED PRACTICE for Examples 5 and 6 8. f (x) = x 3 + 8x 2 + 5x – 14 SOLUTION Because f (– 2 ) = 0, x + 2 is a factor of f (x). Use synthetic division. – – 14 – 2 – – 7 0

GUIDED PRACTICE for Examples 5 and 6 Use the result to write f (x) as a product of two factors. Then factor completely. f (x) = x 3 + 8x 2 + 5x – 14 The zeros are 1, – 7, and – 2. = (x + 2)(x + 7)(x – 1) = (x + 2)(x 2 + 6x – 7 )

GUIDED PRACTICE for Examples 5 and 6 9. What if? In Example 6, how does the answer change if the profit for the shoe manufacturer is modeled by P = – 15x x ? SOLUTION 25 = – 15x x Substitute 25 for P in P = – 15x x. 0 = 15x 3 – 40x + 25 Write in standard form. You know that x = 1 is one solution of the equation. This implies that x – 1 is a factor of 15x 3 – 40x Use synthetic division to find the other factors – – – 25 0

GUIDED PRACTICE for Examples 5 and 6 So, (x – 1)(15x x – 25) = 0. Use the quadratic formula to find that x  0.9 is the other positive solution. The company could still make the same profit producing about 900,000 shoes. ANSWER