How do you find the slope of a tangent line to the graph of the function #4x^2 + y^2 = 4# at (0, -2)?

1 Answer
Noah G
Jul 9, 2016

Start by differentiating the relation with respect to x.

Explanation:

You must use implicit differentiation for this one:

#d/dx(4x^2 + y^2) = d/dx(4)#

#d/dx(4x^2) + d/dx(y^2) = d/dx(4)#

#8x + 2y(dy/dx) = 0#

#2y(dy/dx) = -8x#

#dy/dx = -(4x)/y#

The slope of the tangent is given by evaluating #f'(a)#, where #x = a# is the given point and #f'(x)# is the derivative of the function/relation.

Since this relation involves both x and y, we must plug in both the x and the y points to determine the slope of the tangent.

#m_"tangent" = -(4(0))/-2#

#m_"tangent" = 0#

Hence, the slope of the tangent is #0#. If you would like to go a step further, this means that the tangent is horizontal at the point #(0, -2)#, because a slope of #0# denotes a horizontal line.

Hopefully this helps!

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