How do you find #(dy)/(dx)# given #4x^2+3xy^2-6x^2y=y^3#?

1 Answer
Nallasivam V
Sep 1, 2016

#dy/dx=(-8x-3y^2+12xy)/(6xy-6x^2-3y^2)#

Explanation:

Given -

#4x^2+3xy^2-6x^2y=y^3#

#8x+[(3xdy/dx2y)+(y^2. 3)]-[(6x^2 .dy/dx)+(y. 12x)]=dy/dx3y^2#

#8x+[6xydy/dx+3y^2]-[6x^2dy/dx+12xy]=dy/dx3y^2#

#8x+6xydy/dx+3y^2-6x^2dy/dx-12xy=dy/dx3y^2#

#8x+6xydy/dx+3y^2-6x^2dy/dx-12xy-dy/dx3y^2=0#

#6xydy/dx-6x^2dy/dx-dy/dx3y^2=-8x-3y^2+12xy#

#dy/dx(6xy-6x^2-3y^2)=-8x-3y^2+12xy#

#dy/dx=(-8x-3y^2+12xy)/(6xy-6x^2-3y^2)#

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