View
220
Download
0
Category
Tags:
Preview:
Citation preview
Tangent Lines
Section 2.1
Secant Line
A secant line is a line that connects two points on a graph.
1)( 2 xxfNotice the slopes of secant lines are different depending which two points you connect.
Secant Line
1)( 2 xxf
Up to this point we have used the formula
12
12
xx
yym
to find the slope of the secant line joining points (x1, y1) and
(x2, y2).
This formula has four inputs x1 and x2,
y1, y2.. Once we input these four
values into the formula, our output represents the slope of that secant line.
Slope of Secant LineWe will now find another formula for the slope of the secant line between two points.
We will rename the points (x1, y1) and (x2, y2) using function notation in order to obtain our new slope formula.
(x1, y1)
(x2, y2)
We will let x1 = x. Then it follows that y1, the y-value for x1, can be rewritten in
function notation as f(x). Note that f(x) refers to the output when the input is x.
Similarly, we rename x2 as x + h, where h refers to the distance from x1 to x2.
Then using function notation, y2 will be rewritten as f(x + h), the output when the input is x + h.
Point (x1, y1) becomes (x, f(x))andPoint (x2, y2) becomes (x + h, f(x + h))
12
12
xx
yym
The slope formula
2y 1y
h
xfhxf
xhx
xfhxf
xhx
xfhxfm
)()(
)()(
)(
)()(
x1
Simplify the Denominator
x2
Recall that h is the distance from x1 to x2, namely x2 – x1
becomes
Note: This formula for the slope has only two inputs: x, the smallest x-value and h, where h is the distance from the first x-value to the second x-value.
Example: Find the formula for the slope of any secant line for the function22)( xxf
.
h
xfhxfm
)()(sec
Step 1: Find :)( hxf 2)(2)( hxhxf 22 242 hxhx
h
xfhxf )()(h
xhxhx )2()242( 222
Step 2: Substitute into the formula:
hx 24 This is a function whose output is slope of a secant line forinputs x (the first x coordinate) and h (the distance between the x’s).
For example:
Find the slope of the secant line to the graph of from x = -1 to x = 2.
22)( xxf
We know the slope of the secant lines of the function f(x) =-2x2 follow the formula: hx 24
In this case, x = -1 (first x value from left to right) and h = 3 (distance from x = -1 to x = 2).
Therefore, the slope of the secant line shown is = -4(-1) – 2(3) = 4 – 6 = -2
Slope = -2
Tangent LineTangent Line: The tangent line is a line drawn at a single point on a graph.
How do you draw a tangent line at an x-value?Think of having a rock at the end of a string and following some curve with this rock.
If you release the string at a point, say at x = ½, the path the rock follows is your tangent line at x = ½ .
Likewise, the path the rock follows if released at x = 3 would be the tangent line drawn at x = 3.
A tangent line can be drawn at each point.
Finding the slope of the tangent line.
Notice we cannot use the
formula
because it would require two points on the line. We only know one point, the point of tangency (-1, -4)
12
12
xx
yym
Tangent line at x = -1.How do we find the slope of the
tangent line, say at x = -1 for the graph of f(x) = x3 – 3x2?
Tangent line at x = -1.
We cannot use
because wedo not have h, the distance b/w the two x-values.
h
xfhxf )()(
Let’s draw a secant line from x = -1 to x = any other x- value.
Obviously, the slope of this secant line is different from the slope of our tangent line.
Secant line.
Let’s allow the second x-value get closer to x = -1 and draw the secant line again.
Again let’s allow the second x-value get closer to x = -1 and draw the secant line.
Notice that although the secant line is different from the tangent line, they are getting closer together as the second x-value gets closer to x = -1.
Again let’s allow the second x-value get closer to x = -1 and draw the secant line.
If we continue to allow the second x-value closer to x = -1 then the secant line will approach the tangent line.
h
xfhxf )()( Notice that the second point approaching x = -1 simply means that the distance b/w the two x-values is approaching 0. (h 0)
Therefore, to find the slope of the tangent line…
we find the slope of the
secant line,
then take the limit as h0
h
xfhxf )()(
linesec0
linetan limmmh
Find the slope of the tangent line to f(x) = x3 – 3x2 at x = -1.
Example-Polynomial
Given the equation 2y x 4x, 4, 0 a) Find the slope of a secant line through the given point
2 2
sec
x h 4 x 4xx
h
hm
2
sec
2 2x 2xh h 4x x 4xm
h
4h 2
sec
2xh h 4hm
h
sec
h 2m
h
x h 4
sec 2 hm x 4
Given the equation 2y x 4x, 4, 0 b) Find the SLOPE of a tangent line through the given point
From part a, sec 2 hm x 4
tanh 0
2x hm lim 2x 44
At (4, 0), 2x – 4 = 2(4) – 4 = 4
c) Find the EQUATION of a tangent line through the given point
From part b, we have the slope (4)….and we have the pt (4, 0)
y – 0 = 4(x – 4)
c) Find the value of x for which the slope of the tangent line is 0
2x – 4 = 0x = 2
Given the equation 3y x 2x, 1, 1 a) Find the slope of a secant line through the given point
3 3
sec
x h 2 x 2xx
h
hm
3 2 2 3 3
sec
x 3x h 3xh h 2x x 2xm
h
2h 2
sec
2 33x h 3xh h 2hm
h
2 2
sec
h 3x 3x 2m
h
h
h 2
sec23x hm 3xh 2
b) Find the SLOPE of a tangent line through the given point
From part a,
tanh
2 22
03x 3xhm l m 2i 3h x 2
At (1, -1),
c) Find the EQUATION of a tangent line through the given point
From part b, we have the slope (1)….and we have the pt (1, -1)
y + 1 = 1(x - 1)
c) Find the value of x for which the slope of the tangent line is 0
Given the equation 3y x 2x, 1, 1
2sec
23x hm 3xh 2
223x 2 3 1 2 1
2 2 2 23x 2 0 x x
3 3
Using the limit definition, find the first derivative of 3f x x
3 3
h 0
x xl
h
him
3 33
h
2
0
2x 3x h 3xh xlim
h
h
2 2 3
h 0
3x h 3xh hlim
h
0
2 2
h
h 3x 3xh hlim
h
2 2 2
h 03x 3xhi xl h 3m
Using the limit definition, find the first derivative of f x 1 x
h 0
1 1 xlim
h
x h
h 0
xlim
h
x h
x
x x
h x
h
h 0
xlim
h x h
h
x
x
h 0
hlim
h x h x
h 0
1 1lim
2 xx h x
Using the limit definition, find the first derivative of f x x 1
h 0
x h 1 x 1lim
h
h 0
x h x1 x 1 1 x 1lim
h h xx 1
h
1
h 0
1 x 1lim
h 1
h
x 1
x
x h
h 0
h
x hlim
h 1 x 1
h 0
1 1lim
2 x 11 xx h 1
Recommended