The point on the curve `y=x^2-3x+2` where tangent is perpendicular to `y=x` is `(0,2)` (b) `(1,\ 0)` (c) `(-1,\ 6)` (d) `(2,\ -2)`

Similar Questions

Explore conceptually related problems

The point on the curve y=x^2-3x+2 where tangent is perpendicular to y=x is (a) (0,2) (b) (1,\ 0) (c) (-1,\ 6) (d) (2,\ -2)

Find the point on the curve y = x^(2)-3x+2 where tangent is perpendicular to y =x .

The point on the curve y= sqrt(x-1) where the tangent is perpendicular to the line 2x+y-5=0 is

The point on the curve y=sqrt(x-1) , where the tangent is perpendicular to the line 2x+y-5=0 is

The point on the curve y=3x^(2)+2x+5 at which the tangent is perpendicular to the line x+2y+3=0

The points on the curve y=sqrt(x-3) , where the tangent is perpendicular to the line 6x+3y-5=0 are

Find the points on the curve x^2+y^2-2x-4y+1=0, where the tangent is parallel to y-axis

Find the points on the curve y= x^3 -2x^2 -x where the tangents are parallel to 3x-y+1=0

Find the points on the curve 4x^2+9y^2=1 ,where the tangents are perpendicular to the line 2y+x=0