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1.3 Solving Quadratic Equations by Factoring (p. 18) How can factoring be used to solve quadratic equation when a=1?

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Presentation on theme: "1.3 Solving Quadratic Equations by Factoring (p. 18) How can factoring be used to solve quadratic equation when a=1?"— Presentation transcript:

1 1.3 Solving Quadratic Equations by Factoring (p. 18) How can factoring be used to solve quadratic equation when a=1?

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3 Vocabulary Reminder Monomial Binomial Trinomial An expression that is either a number, a variable, or the product of a number and one or more variables. (4, x, 5y) The sum of two monomials (x+4)

4 To solve a quadratic eqn. by factoring, you must remember your factoring patterns!

5 Factor the expression. a. x 2 – 9x + 20 SOLUTION a. You want x 2 – 9x + 20 = (x + m) (x + n) where mn = 20 and m + n = – 9. ANSWER Notice that m = – 4 and n = – 5. So, x 2 – 9x + 20 = (x – 4)(x – 5).

6 b. x 2 + 3x – 12 b. You want x 2 + 3x – 12 = (x + m) (x + n) where mn = – 12 and m + n = 3. ANSWER Notice that there are no factors m and n such that m + n = 3. So, x 2 + 3x – 12 cannot be factored. Factor

7 Guided Practice Factor the expression. If the expression cannot be factored, say so. 1. x 2 – 3x – 18 SOLUTION You want x 2 – 3x – 18 = (x + m) (x + n) where mn = – 18 and m + n = – 3. Factor of – 18 : m, n 1, – 18–1, 18– 3, 6– 2, 92, – 9– 6, 3 Sum of factors: m + n – 171737– 7– 3 ANSWER m = – 6 and n = 3 so x 2 – 3x – 18 = (x – 6) (x + 3)

8 Guided Practice 2. n 2 – 3n + 9 SOLUTION You want n 2 – 3n + 9 = (x + m) (x + n) where mn = 9 and m + n = – 3. Factor of 9 : m, n 1, 9– 1, – 93, 3– 3, – 3 Sum of factors: m + n 10–106– 6 ANSWER Notice that there are no factors m and n such that m + n = – 3. So, n 2 – 3x + 9 cannot be factored.

9 Factor with Special Patterns Factor the expression. a. x 2 – 49 = (x + 7) (x – 7) Difference of two squares b. d 2 + 12d + 36 = (d + 6) 2 Perfect square trinomial c. z 2 – 26z + 169 = (z – 13) 2 Perfect square trinomial = x 2 – 7 2 = d 2 + 2(d)(6) + 6 2 = z 2 – 2(z) (13) + 13 2

10 Guided Practice 4. x 2 – 9 = (x – 3) (x + 3) Difference of two squares 5. q 2 – 100 = (q – 10) (q + 10) Difference of two squares 6. y 2 + 16y + 64 = (y + 8) 2 Perfect square trinomial Factor the expression. = x 2 – 3 2 = q 2 – 10 2 = y 2 + 2(y) 8 + 8 2

11 Zero Product Property Let A and B be real numbers or algebraic expressions. If AB=0, then A=0 or B=0. This means that If the product of 2 factors is zero, then at least one of the 2 factors had to be zero itself! The answers, the solutions of a quadratic equation are called the roots or zeros of the equation.

12 Use a Quadratic Equation as a Model Nature Preserve A town has a nature preserve with a rectangular field that measures 600 meters by 400 meters. The town wants to double the area of the field by adding land as shown. Find the new dimensions of the field.

13 SOLUTION 480,000 = 240,000 + 1000x + x 2 Multiply using FOIL. 0 = x 2 + 1000x – 240,000 Write in standard form. 0 = (x – 200) (x + 1200) Factor. x – 200 = 0x + 1200 = 0 or Zero product property x = 200 or x = – 1200 Solve for x. ANSWER Reject the negative value, – 1200. The field’s length and width should each be increased by 200 meters. The new dimensions are 800 meters by 600 meters.

14 What If ? In Example 4, suppose the field initially measures 1000 meters by 300 meters. Find the new dimensions of the field. SOLUTION New AreaNew Length (meters) New width (meters) = 2(1000)(300) = (1000 + x) (300 + x) 600000 = Multiply using FOIL. 300000 + 1000x + 300x + x 2 0 = x 2 + 1300x – 300000 Write in standard form. 0 = (x – 200) (x + 1500) Factor. x – 200 = 0x + 1500 = 0 or Zero product property x = 200 or x = – 1500 Solve for x.

15 ANSWER Reject the negative value, – 1200. The field’s length and width should each be increased by 200 meters. The new dimensions are 1200 meters by 500 meters.

16 Finding the Zeros of an Equation The Zeros of an equation are the x-intercepts ! First, change y to a zero. Rewrite the function in intercept form. Now, solve for x. The solutions will be the zeros of the equation.

17 Example: Find the Zeros of y=x 2 -x-6 y=x 2 -x-6Change y to 0 0=x 2 -x-6Factor the right side 0=(x-3)(x+2)Set factors =0 x-3=0 OR x+2=0Solve each equation +3 +3 -2 -2 x=3 OR x=-2Check your solutions! If you were to graph the eqn., the graph would cross the x-axis at (-2,0) and (3,0).

18 Guided Practice Find the zeros of the function by rewriting the function in intercept form. y = x 2 + 5x – 14 SOLUTION y = x 2 + 5x – 14Write original function. = (x + 7) (x – 2) Factor. The zeros of the function is – 7 and 2 Check Graph y = x 2 + 5x – 14. The graph passes through ( – 7, 0) and (2, 0).

19 Assignment p. 21, 3-54 every 3 rd problem (3,6,9,12,…)

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