4)> x + 2y = 0 has slope -1/2
I thought slope in standard form was -b/a, which would just be -2.
If you move it into y = mx + b form, you get
2y = -x
y = -x/2 = -(1/2)x
Plug in y' = -1/2 to find point where slope of tangent is -1/2
how do I do that?
1+2yy' = 0
1+2y(-1/2)=0
1 - y = 0
y = -1
It's all correct until the very last step. If 1 - y = 0, then y = 1, which is what the answer has.
5b) 5x^2 - 6x(5x/3) + 5(5x/3)^2 = 16
(80/9)x^2 = 16
how did you get to (80/9)x^2 = 16? that's more algebra than calc but I don't see it.
I did some simplifications in my head, may have made some mistakes but here goes :p
5x^2 - 6x(5x/3) + 5(5x/3)^2 = 16
5x^2 - 30x^2/3 + 5(25x^2/9) = 16
5x^2 - 10x^2 + (125/9)x^2 = 16
-5x^2 + (125/9)x^2 = 16
-(45/9)x^2 + (125/9)x^2 = 16
(80/9)x^2 = 16
x = +- 3/sqrt(5). so that's x, and the y co-ordinate is 5, but from where...
The point is on the ellipse, so you just substitute the value for x back into the ellipse equation to solve for y. Or, to make things easier, substitute back into y = 5x/3 since that will be tangent to the ellipse at x = +- 3/sqrt(5).
So using x = +3/sqrt(5) you get y = 5(3/sqrt(5))/3 = 5/sqrt(5) = sqrt(5)
and using x = -3/sqrt(5) you get y = 5(-3/sqrt(5))/3 = -5/sqrt(5) = -sqrt(5)
So the points are (3/sqrt(5), sqrt(5) and (-3/sqrt(5), -sqrt(5)).
