Question

How do you use the chain rule to differentiate `y=(x^2+3x)^(-1/2)`?

Answer 1

`dy/dx=[-(2x+3)*(x^2+3x)^(-3/2)]/2`

Explanation:

show below

`y=(x^2+3x)^(-1/2)`

let suppose:

`u=x^2+3x`

`(du)/dx=2x+3`

`y=u^(-1/2)`

`dy/(du)=-1/2*u^(-3/2)`

`dy/dx=(du)/dx*dy/(du)`

`dy/dx=(2x+3)*(-1/2*u^(-3/2))`

`dy/dx=[-(2x+3)*u^(-3/2)]/2`

`dy/dx=[-(2x+3)*(x^2+3x)^(-3/2)]/2`