How do you find the equation of the tangent line to the curve #y=3x^2-x^3# at point (1,2)?

1 Answer
Vinotharan P.
Apr 3, 2018

#y=3x-1#

Explanation:

Find #dy/dx# of #y# equation

#y=3x^2-x^3#
#dy/dx=6x-3x^2#
Then from the point (1,2) we can obtain the x value which is 1
Insert #x=1# into #dy/dx#
#dy/dx=6(1)-3(1)^2#
#dy/dx=3#

To form the equation we have to base it from the original equation
#y=mx+c#
we know that m=3 from #dy/dx=3#
#y=3x+c#
use the coordinates given fro x and y values to find c
(1,2) x=1 , y=2
#(2)=3(1)+c#
#c=-1#
Then we put c back into the general form to get the final tangent equation
#y=3x-1#

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