Ask a New Question

what is the slope of the line tangent to the curve (/x)^2 at point (4,16)

* (/x)= the squareroot of x

1 answer

(√x)² is just x.

The point (4,16) lies on the curve for x²

Wanna take another stab at it?

Ask a New Question or answer this question.

Similar Questions

original curve: 2y^3+6(x^2)y-12x^2+6y=1dy/dx=(4x-2xy)/(x^2+y^2+1) a) write an equation of each horizontal tangent line to the
1. 1 answer
Consider the curve defined by 2y^3+6X^2(y)- 12x^2 +6y=1 .a. Show that dy/dx= (4x-2xy)/(x^2+y^2+1) b. Write an equation of each
1. 3 answers
original curve: 2y^3+6(x^2)y-12x^2+6y=1dy/dx=(4x-2xy)/(x^2+y^2+1) a) write an equation of each horizontal tangent line to the
1. 0 answers
original curve: 2y^3+6(x^2)y-12x^2+6y=1dy/dx=(4x-2xy)/(x^2+y^2+1) a) write an equation of each horizontal tangent line to the
1. 3 answers

more similar questions