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By: Jane Kim, Period 4, 2007 Source: Mr. Wiencek’s Noted from Class.

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Presentation on theme: "By: Jane Kim, Period 4, 2007 Source: Mr. Wiencek’s Noted from Class."— Presentation transcript:

1 By: Jane Kim, Period 4, 2007 Source: Mr. Wiencek’s Noted from Class

2 The Definition of Derivative f(x) (x,0) (x,f(x)) ((x+h),f(x+h)) h ((x+h),0)

3 Limit Definition of a Derivative h  0 lim f ‘(x) = f(x+h) – f(x) h f ‘(x) = lim h  0 f(x+h) – f(x) h

4 Remember! Don’t forget to write out the Limit Definition of Derivative Remember to write everytime lim h  0

5 Example f(x) = 5x + 3 F(x+h) = 5(x+h) + 3 = 5x + 5h + 3 5x + 5h + 3 – (5x + 3) h

6 Example continued 5x + 5h + 3 – 5x – 3 h 5h h = 5 Answer: 5

7 Power Rule, Slopes of Tangent Lines f ‘(x)F Prime of x y’ y prime dy dx d dx dy dx Derivatives with respect to x

8 Common Powers x = x 5 1 x = x 1 x 3 LN Y x = x x = x 4 3 x x x x x x 1/2 1/5 - 3 4 4/3

9 Power Rule y = x y’ = x * – 1

10 Example y = 3x - x + 2 y’ = 2(3)x – 1(-1) + 0(2) = 6x + (-1)x + 0x = 6x – 1 2 2 - 1 1 - 10 - 1 0 Answer: = 6x – 1 dy dx dy dx

11 Remember! Derivatives = Slope

12 Example y = 2x x = 0,1,3,-4 f(0) = 4(0) = 0 f(1) = 4(1) = 4 f(3) = 4(3) = 12 f(-4) = 4(-4) = -16 dy dx = 4x 2

13 Graphs & Using the Derivative to find Slope Tangent Line Slope = m Normal Line Slope = 1 m

14 Example y = 2x + 3 Find the equation of a)The tangent at 1 b)The normal at 1 y = 2x + 3 y’= 6x + 3 y(1) = 6(1) + 3 = 6 + 3 = 9 3 3 2 (1, ?) **Derivatives = Slope Slope = 9

15 Example continued To find y: plug x = 1 back into the original equation, y = 2x + 3 y = 2(1) + 3(1) = 2 + 3 = 5 so (1,5) 3 3 (1, ?)

16 Example continued Tangent equation: y – y = m(x – x ) y – 5 = 9(x – 1) y – 5 = 9x – 9 y = 9x – 4 Normal equation: y – y = - 1/9(x – x ) y – 5 = - 1/9(x – 1) y – 5 = -1/9x + 1/9 y = -1/9x + 46/9 1 1 11

17 THE END

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