Finding PDF
Finding PDF
Finding PDF
Certain problems in Calculus I call for using the first derivative to find the equation of the
tangent line to a curve at a specific point.
There are certain things you must remember from College Algebra (or similar classes)
when solving for the equation of a tangent line.
Recall :
• A Tangent Line is a line which locally touches a curve at one and only one point.
Recall:
• The first derivative is an equation for the slope of a tangent
line to a curve at an indicated point.
• The first derivative may be found using:
A) The definition of a derivative :
f (x + h ) − f ( x )
lim
h →0 h
B) Methods already known to you for derivation, such as:
• Power Rule
• Product Rule
• Quotient Rule
• Chain Rule
(For a complete list and description of these rules see your text)
With these formulas and definitions in mind you can find the equation of a tangent line.
Having a graph is helpful when trying to visualize the tangent line. Therefore, consider
the following graph of the problem:
-3 -2 -1 1 2 3
The equation for the slope of the tangent line to f(x) = x2 is f '(x), the derivative of f(x).
Using the power rule yields the following:
f(x) = x2
f '(x) = 2x (1)
f '(2) = 2(2)
=4 (2)
Now , you know the slope of the tangent line, which is 4. All that you need now is a
point on the tangent line to be able to formulate the equation.
You know that the tangent line shares at least one point with the original equation,
f(x) = x2. Since the line you are looking for is tangent to f(x) = x2 at x = 2, you know the
x coordinate for one of the points on the tangent line. By plugging the x coordinate of the
shared point into the original equation you have:
f(x) = (2)
2
=4 or y=4 (3)
Therefore, you have found the coordinates, (2, 4), for the point shared by f(x) and the line
tangent to f(x) at x = 2. Now you have a point on the tangent line and the slope of the
tangent line from step (1).
2
The only step left is to use the point (2, 4) and slope, 4, in the point-slope formula for a
line. Therefore:
y − y1 = m( x − x1 )
y − 4 = 4( x − 2 )
y − 4 = 4x − 8 (4)
y = 4x − 4 This is the equation for the tangent line.
6
(5)
4
2
-3 -2 -1 1 2 3
The tangent line appears to have a slope of 4 and a y-intercept at –4, therefore the answer
is quite reasonable.
Here is a summary of the steps you use to find the equation of a tangent line to a curve at
an indicated point:
Bibliography
Larson, R.E. and Hostetler, R.P. (1994). Calculus: With Analytical Geometry (5th ed.).
Lexington, KY: D.C. Health and Co.