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Factoring Polynomial Expressions Previously, you learned how to factor the following types of quadratic expressions. TypeExample General trinomial Perfect.

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Presentation on theme: "Factoring Polynomial Expressions Previously, you learned how to factor the following types of quadratic expressions. TypeExample General trinomial Perfect."— Presentation transcript:

1 Factoring Polynomial Expressions Previously, you learned how to factor the following types of quadratic expressions. TypeExample General trinomial Perfect square trinomial Difference of two squares Common monomial factor 2 x 2 – 5x – 12 = (2 x +3)(x – 4) x 2 + 10x + 25 = ( x + 5) 2 4x 2 – 9 = (2 x + 3) (2 x – 3) 6 x 2 + 15x = 3x(2 x + 5) In this lesson you will learn how to factor other types of polynomials.

2 Factoring Polynomial Expressions THE DIFFERENCE OF TWO CUBES ACTIVITY Developing Concepts Use the diagram to answer the questions. 1 Explain why a 3 – b 3 = + +. Volume of solid I Volume of solid II Volume of solid III 2 For each of solid I, solid II, and solid III, write an algebraic expression for the solid’s volume. Leave your expressions in factored form. 3Substitute your expressions from Step 2 into the equation from Step 1. Use the resulting equation to factor a 3 – b 3 completely. a 2 (a – b)a b(a – b)b 2 (a – b) a 3 – b 3 = + + Volume of solid I Volume of solid II Volume of solid III a 2 (a – b) a b(a – b) b 2 (a – b) = (a – b)(a 2 + a b + b 2 )

3 In the previous slide you discovered how to factor the difference of two cubes. This factorization and the factorization of the sum of two cubes are given below. SPECIAL FACTORING PATTERNS Sum of Two Cubes Difference of Two Cubes a 3 – b 3 = (a – b)(a 2 + a b + b 2 ) a 3 + b 3 = (a + b)(a 2 – a b + b 2 ) Example x 3 + 8 = (x + 2)(x 2 – 2 x + 4) 8x 3 – 1 = (2 x – 1)(4 x 2 + 2 x + 1) Factoring Polynomial Expressions

4 Factoring the Sum or Difference of Cubes Factor each polynomial. x 3 + 27 SOLUTION x 3 + 27 = x 3 + 3 3 Sum of two cubes. = (x + 3)(x 2 – 3x + 9) 16 u 5 – 250 u 2 16 u 5 – 250 u 2 = 2 u 2 (8 u 3 – 125) = 2 u 2 [(2 u) 3 – 5 3 ] = 2 u 2 (2 u – 5)(4 u 2 + 10 u + 25) Factor common monomial. Difference of two cubes

5 Factoring by Grouping For some polynomials, you can factor by grouping pairs of terms that have a common monomial factor. Factor the polynomial x 3 – 2 x 2 – 9x + 18. r a + r b + s a + s b = r (a + b) + s (a + b) = (r + s)(a + b) The pattern for this is as follows. SOLUTION x 3 – 2 x 2 – 9x + 18 = x 2 (x – 2) – 9(x – 2) Factor by grouping. = (x 2 – 9)(x – 2) Difference of squares. = (x + 3)(x – 3)(x – 2)

6 Factoring Polynomials in Quadratic Form An expression of the form a u 2 + b u + c where u is any expression in x is said to be in quadratic form. These can sometimes be factored using techniques you already know. Factor each polynomial SOLUTION 81x 4 – 16 81x 4 – 16 = (9x 2 ) 2 – 4 2 = (9x 2 + 4)(9x 2 – 4) = (9x 2 + 4)(3x +2)(3x – 2) 4x 6 – 20x 4 + 24x 2 SOLUTION 4x 6 – 20x 4 + 24x 2 = 4x 2 (x 4 – 5x 2 + 6) = 4x 2 (x 2 – 2)(x 2 – 3)

7 Solving Polynomial Equations by Factoring Solve 2 x 5 + 24x = 14x 3 by using the zero product property. SOLUTION 2 x 5 + 24x = 14x 3 Write original equation. 2 x 5 – 14x 3 + 24x = 0 Rewrite in standard form. 2 x (x 2 – 3)(x 2 – 4) = 0 Factor common monomial. 2 x (x 4 – 7x 2 + 12) = 0 Factor trinomial. 2 x (x 2 – 3)(x + 2)(x – 2) = 0 x = 0, x = √ 3, x = –√ 3, x = –2, or x = 2 Factor difference of squares. Zero product property The solutions are 0, √ 3, –√ 3, –2, and 2. Check these in the original equation

8 Solving a Polynomial Equation in Real Life ARCHEOLOGY In 1980 archeologists at the ruins of Caesara discovered a huge hydraulic concrete block with a volume of 330 cubic yards. The block’s dimensions are x yards high by 13x – 11 yards long by 13x – 15 yards wide. What is the height? Verbal Model Labels SOLUTION Volume = Height Length Width Volume = 330 Height = x Length = 13x – 11 Width = 13x – 15 (cubic yards) (yards) 330 = x (13x – 11)(13x – 5) Algebraic Model

9 Solving a Polynomial Equation in Real Life Archeology In 1980 archeologists at the ruins of Caesara discovered a huge hydraulic concrete block with a volume of 330 cubic yards. The block’s dimensions are x yards high by 13x – 11 yards long by 13x – 15 yards wide. What is the height? SOLUTION 330 = x (13x – 11)(13x – 5) 0 = 169x 3 – 338 x 2 + 165 x – 330 0 = 169x 2 (x – 2) + 165(x – 2) 0 = (169x 2 + 165)(x – 2) The only real solution is x = 2, so 13x – 11 = 15 and 13x – 15 = 11. The block is 2 yards high. The dimensions are 2 yards by 15 yards by 11 yards. Write in standard form. Factor by grouping.

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