The slope at any point of a curve `y=f(x)` is given by `(dy)/(dx)=3x^(2)` and it passes through `(-1,1)`. Then the equation of the curve is

The slope at any point of the curve y = f(x) is given by (dy)/(dx)= 2x it passes through (1,-1) then the equation of the curve is :

The gradient (slope) of a curve at any point (x,y) is (x^(2) -4)/(x^(2)) . If the curve passes through the point (2,7) , then the equation of the curve is. . . .

The gradient (siope) of a curve at any point (x,y) is (x^(2)-4)/(x^(2)) . If the curve passes through the point (2 , 7) , then the equation of the curve is ,

The slope of the tangent at p(x,y) on the curve is -((y+3)/(x+2)) . If the curve passes through the origin, find the equation of the curve.

The slope of the tangent to a curve y=f(x) at (x,f(x)) is 2x+1. If the curve passes through the point (1,2) then the area of the region bounded by the curve, the x-axis and the line x=1 is (A) 5/6 (B) 6/5 (C) 1/6 (D) 1

lf length of tangent at any point on th curve y=f(x) intercepted between the point and the x-axis is of length 1. Find the equation of the curve.

A normal at any point (x , y) to the curve y=f(x) cuts a triangle of unit area with the axis, the differential equation of the curve is