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HW: Pg. 287 #47-67eoo, 73, 75, 79, 81. ___________________, 5.6 The Quadratic Formula and the Discriminant _________. ______________, ____________________.

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Presentation on theme: "HW: Pg. 287 #47-67eoo, 73, 75, 79, 81. ___________________, 5.6 The Quadratic Formula and the Discriminant _________. ______________, ____________________."— Presentation transcript:

1 HW: Pg. 287 #47-67eoo, 73, 75, 79, 81

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4 ___________________, 5.6 The Quadratic Formula and the Discriminant _________. ______________, ____________________. ____________, _____________, ________________, of the quadratic equation ___________________, is called the where The expression are replacing the 0 with a "y" and then calculating "zeroes" on the graphing calculator Check by:

5 EXAMPLE 1 Solve an equation with two real solutions Solve x 2 + 3x = 2. x 2 + 3x = 2 Write original equation. x 2 + 3x – 2 = 0 Write in standard form. x = – b + b 2 – 4ac 2a2a Quadratic formula x = – 3 + 3 2 – 4(1)( –2) 2(1) a = 1, b = 3, c = –2 Simplify. x = – 3 +– 3 + 17 2 The solutions are x = –3 + 17 2 0.56 and x = –3 – 17 2 –3.56. ANSWER

6 EXAMPLE 1 Solve an equation with two real solutions CHECK Graph y = x 2 + 3x – 2 and note that the x -intercepts are about 0.56 and about –3.56. 

7 EXAMPLE 2 Solve an equation with one real solutions Solve 25x 2 – 18x = 12x – 9. 25x 2 – 18x = 12x – 9. Write original equation. Write in standard form. x = 30 + (–30) 2 – 4(25)(9) 2(25) a = 25, b = –30, c = 9 Simplify. 25x 2 – 30x + 9 = 0. x = 30 + 0 50 x = 3 5 Simplify. 3 5 The solution is ANSWER

8 EXAMPLE 2 Solve an equation with one real solutions CHECK Graph y =25x 2 – 30x + 9 and note that the only x -intercept is 0.6 = 3 5 

9 EXAMPLE 3 Solve an equation with imaginary solutions Solve –x 2 + 4x = 5. –x 2 + 4x = 5 Write original equation. Write in standard form. x = –4 +  4 2 – 4(–1)(–5) 2(–1) a = –1, b = 4, c = –5 Simplify. –x 2 + 4x – 5 = 0. x = –4 + –4 –2 –4 + 2i x = –2 Simplify. Rewrite using the imaginary unit i. x = 2 + i The solution is 2 + i and 2 – i. ANSWER

10 EXAMPLE 3 Solve an equation with imaginary solutions CHECK Graph y = 2x 2 + 4x – 5. There are no x - intercepts. So, the original equation has no real solutions. The algebraic check for the imaginary solution 2 + i is shown. –(2 + i) 2 + 4(2 + i) = 5 ? –3 – 4i + 8 + 4i = 5 ? 5 = 5 

11 GUIDED PRACTICE for Examples 1, 2, and 3 Use the quadratic formula to solve the equation. x 2 = 6x – 41. 3 + 5 4x 2 – 10x = 2x – 92. 1 2 1 7x – 5x 2 – 4 = 2x + 33. 115 5 + i 10 ANSWER

12 Find the discriminant of the quadratic equation and give the number and type of solutions of the equation. SOLUTION x 2 – 8 x + 17 = 0 Two imaginary: 4 ± i a x + b x + c = 0 EQUATIONDISCRIMINANTSOLUTION(S) b 2 – 4a c (–8) 2 – 4(1)(17) = – 4 x = –b ± b 2 – 4a c 2a Using the Discriminant EXAMPLE 4

13 Find the discriminant of the quadratic equation and give the number and type of solutions of the equation. x 2 – 8 x + 17 = 0 Two imaginary: 3 ± i a x + b x + c = 0 EQUATIONDISCRIMINANTSOLUTION(S) b 2 – 4a c (–8) 2 – 4(1)(17) = – 4 x 2 – 8 x + 16 = 0(–8) 2 – 4(1)(16) = 0 One real: 4 x 2 – 8 x + 16 = 0 SOLUTION x = –b ± b 2 – 4a c 2a Using the Discriminant EXAMPLE 4

14 Find the discriminant of the quadratic equation and give the number and type of solutions of the equation. x 2 – 8 x + 17 = 0 Two imaginary: 3 ± i a x + b x + c = 0 EQUATIONDISCRIMINANTSOLUTION(S) b 2 – 4a c (–8) 2 – 4(1)(17) = – 4 x 2 – 8 x + 16 = 0(–8) 2 – 4(1)(16) = 0 One real: 3 x 2 – 8 x + 16 = 0x 2 – 8 x + 15 = 0 (–8) 2 – 4(1)(15) = 4 Two real: 3, 1 SOLUTION x = –b ± b 2 – 4a c 2a Using the Discriminant EXAMPLE 4

15 In the previous example you may have noticed that the number of real solutions of x 2 – 6 x + c = 0 can be changed just by changing the value of c. y = x 2 – 6x + 10 y = x 2 – 6 x + 9 y = x 2 – 6 x + 8 Graph is above x -axis (no x -intercept) Graph touches x -axis (one x -intercept) Graph crosses x -axis (two x -intercepts) A graph can help you see why this occurs. By changing c, you can move the graph of y = x 2 – 6x + c up or down in the coordinate plane. If the graph is moved too high, it won’t have an x -intercept and the equation x 2 – 6x + c = 0 won’t have a real-number solution. Using the Discriminant EXAMPLE 4

16 GUIDED PRACTICE for Example 4 Find the discriminant of the quadratic equation and give the number and type of solutions of the equation. 4. 2x 2 + 4x – 4 = 0 48 ; Two real solutions 5. 0 ; One real solution 3x 2 + 12x + 12 = 0 6. 8x 2 = 9x – 11 –271 ; Two imaginary solutionsANSWER

17 Previously you studied the model h = –16t 2 + h 0 for the height of an object that is dropped. For an object that is launched or thrown, an extra term v 0 t must be added to the model to account for the object’s initial vertical velocity v 0. Models h = –16 t 2 + h 0 h = –16 t 2 + v 0 t + h 0 Object is dropped. Object is launched or thrown. Labels h = height t = time in motion h 0 = initial height v 0 = initial vertical velocity (feet) (seconds) (feet) (feet per second) VOCABULARY Using the Quadratic Formula in Real Life

18 The initial velocity of a launched object can be positive, negative, or zero. v 0 > 0 v 0 < 0 v 0 = 0 If the object is launched upward, its initial vertical velocity is positive (v 0 > 0). If the object is launched downward, its initial vertical velocity is negative (v 0 < 0). If the object is launched parallel to the ground, its initial vertical velocity is zero (v 0 = 0). Using the Quadratic Formula in Real Life VOCABULARY

19 A baton twirler tosses a baton into the air. The baton leaves the twirler’s hand 6 feet above the ground and has an initial vertical velocity of 45 feet per second. The twirler catches the baton when it falls back to a height of 5 feet. For how long is the baton in the air? SOLUTION h = –16 t 2 + v 0 t + h 0 h = 5, v 0 = 45, h 0 =6 Since the baton is thrown (not dropped), use the model h = –16t 2 + v 0 t + h 0 with v 0 = 45 and h 0 = 6. To determine how long the baton is in the air, find the value of t for which h = 5. 5 = –16 t 2 + 45t + 6 0 = –16 t 2 + 45t + 1 a = –16, b = 45, c = 1 Solving a Vertical Motion Problem Write height model. EXAMPLE 5 Use quadratic formula t is about -0.22 and 2.83, so the baton is in the air for about 2.83 sec. t = – 45 ± 2089 –32

20 7. GUIDED PRACTICE for Example 5 ANSWER In July of 1997, the first Cliff Diving World Championship were held in Brontallo, Switzerland. Participants performed acrobatic dives from heights of up to 92 feet. Suppose a cliff diver jumps from this height with an initial upward velocity of 5 feet per second. How much time does the diver have to perform acrobatic maneuvers before hitting the water? The diver had about 2.56 seconds to perform acrobatic maneuvers before hitting the water.

21 HOMEWORK: Pg. 295-297 #25-61eoo, 76, 78

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