Derivative Shortcut Sheet

Derivative Shortcut Sheet - Web derivative and antiderivative shortcuts notes: • we use f(x) (capital) to represent the family of antiderivatives of a function f(x) (lower case). D dx (xn) = nxn 1 3. F g 0 = f0g 0fg g2 5. Similarly for in this table, and • a, b, c, g and h. D dx (c) = 0; C are constants, with b > 0. (fg)0 = f0g +fg0 4. Where c is a constant 2. Type f (x) f '(x) text section power xp pxp−1 3.1 exponential bx ln(b)⋅bx 3.1 exponential (special case) ekx kekx 3.1 trig sin(x) cos(x) 3.4 trig cos(x) −sin(x) 3.4 the five ways:.

D dx (xn) = nxn 1 3. D dx (c) = 0; Type f (x) f '(x) text section power xp pxp−1 3.1 exponential bx ln(b)⋅bx 3.1 exponential (special case) ekx kekx 3.1 trig sin(x) cos(x) 3.4 trig cos(x) −sin(x) 3.4 the five ways:. Web derivative shortcuts the basic three: Web derivative and antiderivative shortcuts notes: • we use f(x) (capital) to represent the family of antiderivatives of a function f(x) (lower case). Similarly for in this table, and • a, b, c, g and h. C are constants, with b > 0. Web derivatives cheat sheet derivative rules 1. F g 0 = f0g 0fg g2 5.

F g 0 = f0g 0fg g2 5. • we use f(x) (capital) to represent the family of antiderivatives of a function f(x) (lower case). Where c is a constant 2. Web derivative and antiderivative shortcuts notes: (fg)0 = f0g +fg0 4. Web derivative shortcuts the basic three: D dx (xn) = nxn 1 3. C are constants, with b > 0. Similarly for in this table, and • a, b, c, g and h. Type f (x) f '(x) text section power xp pxp−1 3.1 exponential bx ln(b)⋅bx 3.1 exponential (special case) ekx kekx 3.1 trig sin(x) cos(x) 3.4 trig cos(x) −sin(x) 3.4 the five ways:.

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Web Derivative And Antiderivative Shortcuts Notes:

C are constants, with b > 0. Web derivative shortcuts the basic three: D dx (c) = 0; Web derivatives cheat sheet derivative rules 1.

• We Use F(X) (Capital) To Represent The Family Of Antiderivatives Of A Function F(X) (Lower Case).

Where c is a constant 2. Similarly for in this table, and • a, b, c, g and h. D dx (xn) = nxn 1 3. F g 0 = f0g 0fg g2 5.

Type F (X) F '(X) Text Section Power Xp Pxp−1 3.1 Exponential Bx Ln(B)⋅Bx 3.1 Exponential (Special Case) Ekx Kekx 3.1 Trig Sin(X) Cos(X) 3.4 Trig Cos(X) −Sin(X) 3.4 The Five Ways:.

(fg)0 = f0g +fg0 4.

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