CHAPTER 7. DIFFERENTIAL CALCULUS 7.5
Example 9: Finding the Equation of a Tangent to a Curve
QUESTIONFind the equation of the tangent to the curve y = x^2 at the point (1; 1) and draw both
functions.SOLUTIONStep 1 : Determine what is required
We are required to determine the equation of the tangent to the curve defined
by y = x^2 at the point (1; 1). The tangent is a straight line and we can findthe
equation by using derivatives to find the gradient of the straight line. Then we
will have the gradient and one point on the line, so we can find the equation
using:
y−y 1 = m(x−x 1 )
from Grade 11 Coordinate Geometry.Step 2 : Differentiate the function
Using our rules of differentiation we get:y�= 2xStep 3 : Find the gradient at thepoint (1; 1)
In order to determine the gradient at the point (1; 1), we substitute the x-value
into the equation for thederivative. So, y�at x = 1 is:m = 2(1) = 2Step 4 : Find the equation of the tangenty−y 1 = m(x−x 1 )
y− 1 = (2)(x− 1)
y = 2x− 2 + 1
y = 2x− 1Step 5 : Write the final answer
The equation of the tangent to the curve definedby y = x^2 at the point (1; 1) is
y = 2x− 1.Step 6 : Sketch both functions