As you said, 2y(dy/dx)-2x+2=0
So,
dy/dx = (2x-2)/2y = (x-1)/y
Noiw, just plug in the values:
y'(1) = (1-1)/(-2) = 0
Check y''
2yy'-2x+2=0
2(y')2 + 2yy'' - 2 = 0
y'' = (2 - 2y'2)/2y = (1-y'2)/y = 1/-2
Since y'' < 0 when y' = 0, it's a maximum.
The point (1,-2) is on the graph of y^2-x^2+2x=5. Find the value of (dy/dx) and (d^2y/dx^2) at the point (1,-2). How do I find (d^2y/dx^2)? I found. I found (dy/dx) to be 2y(dy/dx)-2x+2=0, but I don't know how to take the derivative of that to get(d^2y/dx^2)? I'm not sure if that is correct, but that's just my thinking. Also, how do i find if the graph has a relative min or max?
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