Question

What is the derivative of `y=sqrt(x^2+3y^2)`?

Answer 1

`dy/dx = -x/(2y)`

Explanation:

Although you could differentiate it in it's present form using `y=(x^2+3y^2)^(1/2)`, it is much easier to manipulate it as follows:

`y = sqrt(x^2+3y^2) => y^2 = x^2+3y^2`
`:. x^2+2y^2 = 0`

We can now very easily differentiate this implicitly and we have the advantage of not having messy `1/2` powers to deal with:

Differentiating wrt `x` gives us:

`d/dx(x^2) + d/dx(2y^2) = 0`

`:. 2x + 2d/dx(y^2) = 0`

`:. x + dy/dxd/dy(y^2) = 0` (this is the implicit differentiation)

`:. x+ dy/dx(2y) = 0`

`:. x+2ydy/dx = 0`
`:. dy/dx = -x/(2y)`