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Graphing Quadratic Functions Digital Lesson. Copyright © by Houghton Mifflin Company, Inc. All rights reserved. 2 Quadratic function Let a, b, and c be.

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Presentation on theme: "Graphing Quadratic Functions Digital Lesson. Copyright © by Houghton Mifflin Company, Inc. All rights reserved. 2 Quadratic function Let a, b, and c be."— Presentation transcript:

1 Graphing Quadratic Functions Digital Lesson

2 Copyright © by Houghton Mifflin Company, Inc. All rights reserved. 2 Quadratic function Let a, b, and c be real numbers a  0. The function f (x) = ax 2 + bx + c is called a quadratic function. The graph of a quadratic function is a parabola. Every parabola is symmetrical about a line called the axis (of symmetry). The intersection point of the parabola and the axis is called the vertex of the parabola. x y axis f (x) = ax 2 + bx + c vertex

3 Copyright © by Houghton Mifflin Company, Inc. All rights reserved. 3 Leading Coefficient The leading coefficient of ax 2 + bx + c is a. When the leading coefficient is positive, the parabola opens upward and the vertex is a minimum. When the leading coefficient is negative, the parabola opens downward and the vertex is a maximum. x y f(x) = ax 2 + bx + c a > 0 opens upward vertex minimum x y f(x) = ax 2 + bx + c a < 0 opens downward vertex maximum

4 Copyright © by Houghton Mifflin Company, Inc. All rights reserved. 4 5 y x 5-5-5 Simple Quadratic Functions The simplest quadratic functions are of the form f (x) = ax 2 (a  0) These are most easily graphed by comparing them with the graph of y = x 2. Example: Compare the graphs of, and

5 Copyright © by Houghton Mifflin Company, Inc. All rights reserved. 5 Example: f(x) = (x –3) 2 + 2 Example: Graph f (x) = (x – 3) 2 + 2 and find the vertex and axis. f (x) = (x – 3) 2 + 2 is the same shape as the graph of g (x) = (x – 3) 2 shifted upwards two units. g (x) = (x – 3) 2 is the same shape as y = x 2 shifted to the right three units. f (x) = (x – 3) 2 + 2 g (x) = (x – 3) 2 y = x 2 - 4- 4 x y 4 4 vertex (3, 2)

6 Copyright © by Houghton Mifflin Company, Inc. All rights reserved. 6 x y Quadratic Function in Standard Form Example: Graph the parabola f (x) = 2x 2 + 4x – 1 and find the axis and vertex. f (x) = 2x 2 + 4x – 1 original equation f (x) = 2( x 2 + 2x) – 1 factor out 2 f (x) = 2( x 2 + 2x + 1) – 1 – 2 complete the square f (x) = 2( x + 1) 2 – 3 standard form a > 0  parabola opens upward like y = 2x 2. h = –1, k = –3  axis x = –1, vertex (–1, –3). x = –1 f (x) = 2x 2 + 4x – 1 The standard form for the equation of a quadratic function is: f (x) = a(x – h) 2 + k (a  0) The graph is a parabola opening upward if a  0 and opening downward if a  0. The axis is x = h, and the vertex is (h, k). (–1, –3)

7 Copyright © by Houghton Mifflin Company, Inc. All rights reserved. 7 x y 4 4 Vertex and x-Intercepts Example: Graph and find the vertex and x-intercepts of f (x) = –x 2 + 6x + 7. f (x) = – x 2 + 6x + 7 original equation f (x) = – ( x 2 – 6x) + 7 factor out –1 f (x) = – ( x 2 – 6x + 9) + 7 + 9 complete the square f (x) = – ( x – 3) 2 + 16 standard form a < 0  parabola opens downward. h = 3, k = 16  axis x = 3, vertex (3, 16). Find the x-intercepts by solving –x 2 + 6x + 7 = 0. (–x + 7 )( x + 1) = 0 factor x = 7, x = –1 x-intercepts (7, 0), (–1, 0) x = 3 f(x) = –x 2 + 6x + 7 (7, 0)(–1, 0) (3, 16)

8 Copyright © by Houghton Mifflin Company, Inc. All rights reserved. 8 y x Example: Parabola Example: Find an equation for the parabola with vertex (2, –1) passing through the point (0, 1). f (x) = a(x – h) 2 + k standard form f (x) = a(x – 2) 2 + (–1)vertex (2, –1) = (h, k) y = f(x) (0, 1) (2, –1) Since (0, 1) is a point on the parabola: f (0) = a(0 – 2) 2 – 1 1 = 4a –1 and

9 Copyright © by Houghton Mifflin Company, Inc. All rights reserved. 9 Vertex of a Parabola Example: Find the vertex of the graph of f (x) = x 2 – 10x + 22. f (x) = x 2 – 10x + 22 original equation a = 1, b = –10, c = 22 The vertex of the graph of f (x) = ax 2 + bx + c (a  0) At the vertex, So, the vertex is (5, -3).

10 Copyright © by Houghton Mifflin Company, Inc. All rights reserved. 10 You Try! Find the coordinates of the vertex of the parabola defined by the quadratic equation: A: (7,2) B: (4, 1) C: (2,7) D: (1,4)

11 Copyright © by Houghton Mifflin Company, Inc. All rights reserved. 11 Example: Basketball Example: A basketball is thrown from the free throw line from a height of six feet. What is the maximum height of the ball if the path of the ball is: The path is a parabola opening downward. The maximum height occurs at the vertex. At the vertex, So, the vertex is (9, 15). The maximum height of the ball is 15 feet.

12 Copyright © by Houghton Mifflin Company, Inc. All rights reserved. 12 Example: Maximum Area Example: A fence is to be built to form a rectangular corral along the side of a barn 65 feet long. If 120 feet of fencing are available, what are the dimensions of the corral of maximum area? barn corral x x 120 – 2x Let x represent the width of the corral and 120 – 2x the length. Area = A(x) = (120 – 2x) x = –2x 2 + 120 x The graph is a parabola and opens downward. The maximum occurs at the vertex where a = –2 and b = 120 120 – 2x = 120 – 2(30) = 60 The maximum area occurs when the width is 30 feet and the length is 60 feet.

13 Copyright © by Houghton Mifflin Company, Inc. All rights reserved. 13 Try this one! You have 80 yards of fencing to enclose a rectangular region. Find the dimensions of the rectangle. Fill in the blank with your Senteo Clicker : The maximum area of the rectangle is ____ sq. yards.

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