Erstellt von Reece Thompson
vor fast 7 Jahre
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Differentiation tells us about the gradient of tangents, the derivative and the rate of change. To differentiate: Multiply the number at the start by the power and reduce the power by 1. If you are asked to differentiate f(x) then your answer will be in the notation f ' (x) If you are asked to differentiate y then your answer will be in the notation dy/dx Basic examples: f(x) = x^2 f(x) = x^3 y = 5x^3 y = 9m f(x) = x^-5 f ' (x) = 2x f ' (x) = 3x^2 dy/dx = 15x^2 dy/dx = 9 f ' (x) = -5x^-6 Basic examples (With fractions as the power): f(x) = x^1/2 f(x) = 1/2 x^1/2 + 1/6 x ^-1/7 -3 f ' (x) = 1/2 x^-1/2 (1/2 x ^-1/2 not 1/2x^-1/2 ) f ' (x) = 1/4 x^-1/2 -1/42 x^ -8/7
y = (x + 3)(x + 5) y = (square root of x + 1/x)(square root of x + 1/x) y = x^3 + 5x^2 - 6 all over x y = x^2 + 8x + 15 y = x + 2rootx/x + 1/x^2 y = x^3 /x + 5x^2 /x -6/x dy/dx =2x + 8 y = x + 2x^-1/2+ x^-2 y = x^2 + 5x - 6x-1 dy/dx = 1 - x^-3/2 - 2x^-3 dy/dx = 2x + 5 + 6x^-2 = 1 - 1/rootx^3 - 2/x^3 = 2x + 5 + 6/x^2 Note: I have done a stage extra so the powers are positive. I also understand it may be hard to understand as the computer does not properly show powers etc, so I have done the working by hand and put the answers at the end of the power point/ note.
Differentiation can be used to solve real-life problems such as rate of change or gradient Example: Given f(x) = 5x^3,find the value of f ' (2) f(x) = 5x^3 f ' (x) = 15x^2 f ' (2) = 15(2)^2 = 60 Steps for rate of change ^: Differentiate as normal Then sub in x = whatever, in this case 2 Answer Rate of change is usually subbing in.
Since a tangent is a straight line, its equation may be given by y-b=m(x-a) To find the equation of a tangent at any point on a curve, we need to determine: The coordinates (a,b) of the point The gradient,m, at that point Example: Find the equation of the tangent y=rootxcubed at x = 9 y = x^3/2 (Another way of writing rootxcubed) f(x) = x^3/2 f ' (x) =3/2 x^1/2 = 3/2 root x when x = 9, y= root9^3 root9^3 = 27 point is (9, 27) Now sub x into f ' (x) to work out the gradient f ' (x) = 3/2 x root9 = 9/2 Therefore. gradient = 9/2 Now sub in your points and gradient into; y-b=m(x-a) y - b = m(x - a) y - 27 = 9/2 (x - 9) 2y - 54 = 9x - 81 2y = 9x - 27 ( You can leave the answer like this but i strongly recommend making it y=.... not 2y = .....) y = 9/2 x -27/2
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