Post on 23-Jun-2015
Antiderivative/ Indefinite Integral
Find all possible functions F(x) whose derivative is
f(x) = 2x+1
F(x) = x2
+ x
F(x) = x2 + x + 5F(x) = x2 + x - 1000F(x) = x2 + x + 1/8
F(x) = x2 + x - π
Definition
A function F is called an antiderivative (also an indefinite integral) of a function f in the interval I if
for every value x in the interval I.
The process of finding the antiderivative of a given function is called antidifferentiation or integration.
'( ) ( )F x f x
Find all antiderivatives F(x) of f(x) = 2x+1
F(x) = x2
+ x
F(x) = x2 + x + 5F(x) = x2 + x - 1000F(x) = x2 + x + 1/8
F(x) = x2 + x - π
In fact, any function of the form F(x) = x2 + x + c where c is a constant is an
antiderivative of 2x + 1
Theorem
If F is a particular antiderivative of f on an interval I, then every antiderivative of f on I is given by
where c is an arbitrary constant, and all the antiderivatives of f on I can be obtained by assigning particular values for c. .
( )F x c
Notation
The symbol denotes the operation of
antidifferentiation, and we write
where F’(x)=f(x), and c is an arbitrary constant.
This is read “The indefinite integral of f(x)
with respect to x is F(x) + c".
( ) ( )f x dx F x c
In this notation,
is the integral sign;
f(x) is the integrand;
dx is the differential of x which denotes the variable of integration; and
c is called the constant of integration.
If the antiderivative of the function on interval I exists, we say that the function is integrable over the interval I.
( ) ( )f x dx F x c
Integration Rules
1. Constant Rule. If k is any real number, then the indefinite integral of k with respect to x is
2. Coefficient Rule. Given any real number coefficient a and integrable function f,
kdx kx C
( ) ( )af x dx a f x dx
Integration Rules
3. Sum and Difference Rule. For integrable functions f and g,
4. Power Rule. For any real number n,
where n ≠ -1, the indefinite integral xn of is,
1 2 1 2[ ( ) ( )] ( ) ( )f x f x dx f x dx f x dx
1
1
nn x
x dx Cn
Example 1.
211 22
252
(5 7) 5 7
5 7
5( ) 7
7
x dx xdx dx
xdx dx
x C x C
x x C
Example 2.
1
2
12
32
4 2
4 2
4 2
5 36 9 25 3 3
6 9
6 9
6 9
x x x dx
x dx x dx x dx
x dx x dx x dx
x x x C
Example 3.
543 3
53
543 3
7 23 3
3
15 37 2
5 25 2
5 2
xdx x x dx
x
x dx x dx
x x C
Integration Formulas for Trigonometric Functions
Cxdxxx
Cxdxxx
Cxdxx
Cxdxx
Cxdxx
Cxdxx
csccotcsc
sectansec
cotcsc
tansec
sincos
cossin
2
2
Example 4.
Cxx
CxCx
dxxxdxx
dxxxx
tan7csc3
tan7csc3
sec7cotcsc3
)sec7cotcsc3(
21
2
2
Example 5.
C
dd
dd
d
sin4sec3
cos4tansec3
cos4tancos
13
cos
cos4tan3 2
Exercises:
d
dxx
x
dyy
yy
dxxx
dyyy
)tan3cot2(.5
cos
sin.4
12.3
)1(.2
)32(.1
22
2
24
23
Integration by Chain Rule/Substitution
For integrable functions f and g
where is an F antiderivative of f and C is an arbitrary constant.
( ( ))[ '( ) ] ( ( ))f g x g x dx F g x C
Example 6.
14
54
54
2 34
3 24
3 2
3
54
385
36 6 5
2 6 5 (18 )
2 (6 5) (18 )
(6 5)2
(6 5)
x x dx
x x dx
x x dx
xC
x C
Let g(x) = 6x3+5
g’(x)=18x2
Example 6. Take 2!
14
54
54
54
2 3 3 24 4
4
54
85
385
36 6 5 2 6 5 (18 )
2
2 ( )
2
(6 5)
x x dx x x dx
u du
u du
uC
u C
x C
Let u = 6x3 + 5
du = 18x2 dx
Example 7.
3 3
7 74 4
74 3
64
64
2 1 1 2(2 1)
22 2
12 2(2 1)
2
21
2 61
12 2
t t dxdx
t t t t
t t t dx
t tC
Ct t
Let g(t) = t4 + 2t
g’(t) = 4t3 + 2
= 2(2t3 + 1)
Example 8.
5 2 12
22 2 12
2 12
14 13 12
15 14 131 2 115 14 13
2 15 2 14 2 131 1 115 7 13
( 1) 2
( 1) 2
( 1)
( 2 )
( 1) ( 1) ( 1)
x x dx
x x xdx
u u du
u u u du
u u u C
x x x C
Let u = x2 -1
du = 2x dx
x2 = u+1
Example 9.
Let u = 2 – cos2x
du = 0 – (-sin2x)(2dx)
=2sin2xdx
Cx
Cu
duu
duu
xdxx
dxxx
2/331
2/332
21
2/121
21
21
)2cos2(
)(
)(
)2sin2(2cos2
2cos22sin
Example 10.
xdxx
dxxx
dxxx
xx
dxx
x
x
x
dxxx
2csc2sec
2sin2cos
1
2sin2cos
2cos2sin
2sin
2cos
2cos
2sin
)2cot2(tan
22
22
222
2
2
Example 10.
Cxx
Cxx
xdxdxxx
xdxdxxx
xdxxdxx
dxxx
xdxx
2tan2cot
2tan)2(tan
2sec22sec2)2(tan
2sec2sec)2(tan
2sec2cot2sec
)12(cot2sec
2csc2sec
21
21
21
21
22122
21
222
222
22
22
1
Exercises:
drr
r
xx
dxxx
7
3 22
62
)1(
2.3
)49(5.2
)12(7.1
424
2
22
)123(
)13(.6
3sin21
3cos.5
3cot3csc.4
xx
dxxx
dxx
x
dyyyy
Applications of Indefinite Integrals
1. Graphing
Given the sketch of the graph of the function, together with some function values, we can sketch the graph of its antiderivative as long as the antiderivative is continuous.
Example 11. Given the sketch of the function f =F’(x) below, sketch the possible graph of F if it is continuous, F(-1) = 0 and F(-3) = 4.
-1
4
5
-3 -2 -1 0 1 2 3 4 5
1
-4-5
3
2
-2
-3
-4
-5
F(x) F’(x) F’’(x) Conclusion
X<-3 + - Increasing, Concave down
X=-3 4 0 - Relative maximum
-3<x<-2 - - Decreasing, Concave down
X=-2 - 0 Decreasing, Point of inflection
-2<x<-1 - + DecreasingConcave up
X=-1 0 0 + Relative minimum
X>-1 + + Increasing,Concave up
The graph of F(x)
-1
4
5
-3 -2 -1 0 1 2 3 4 5
1
-4-5
3
2
-2
-3
-4
-5
1. Boundary/Initial Valued Problems
There are many applications of indefinite integrals in different fields such as physics, business, economics, biology, etc.
These applications usually desire to find particular antiderivatives that satisfies certain conditions called initial or boundary conditions, depending on whether they occur on one or more than one point.
Applications of Indefinite Integrals
Example 11.
6 1dy
xdx
Suppose we wish to find a particular antiderivative satisfying the equation
and the initial condition y=7 when x =2.
Sol’n of Example 11
2
2
(6 1)
(6 1)
3
2 7,
7 3(2) 3 7
dy x dx
dy x dx
y x x C
but x when y then
C C
23 7y x x Thus the particular antiderivative desired,
Example 12.
The volume of water in a tank is V cubic meters when the depth of water is h meters. The rate of change of V with respect to h is π(4h2 +12h + 9), find the volume of water in the tank when the depth is 3m.
Sol’n of Example 12
2
2
32
32
32
32 3
4h 12h 9
4h 12h 9
46h 9h
3
4(0 )0 6(0 ) 9(0)
3
0
46h 9h
3
4(3 )6(3 ) 9(3) 207
3
dV
dh
dV dh
hV C
C
C
hThus V
V m
Volume V=0 if depth h =0
The Differential Equations
Equation containing a function and its derivative or just its derivative is called differential equations.
Applications occur in many diverse fields such as physics, chemistry, biology, psychology, sociology, business, economics etc.
The order of a differential equation is the order of the derivative of highest order that appears in the equation.
The function f defined by y= f(x) is a solution of a differential equation if y and its derivatives satisfy the equation.
2
2
6 1
(6 1)
(6 1)
3
2 7,
7 3(2) 3 7
dyx
dxdy x dx
dy x dx
y x x C
but x when y then
C C
23 7y x x
Thus find the particular solution
If each side of the differential equations involves only one variable or can be reduced in this form, then, we say that these are separable differential equations.
Complete solution (or general solution)
y = F(x) + C
Particular solution – an initial condition is given
Example 13. Find the complete solution of the differential equation
2
2
21
4 3
(4 3)
(4 3)
2 3
d y dyx
dx dxdy x dx
dy x dx
y x x C
21
21
3 2321 23 2
2 3
(2 3 )
dyx x C
dx
dy x x C dx
y x x C x C
2
2
d y dyddx dxdx
dydxlet y
342
2
xdx
yd
Example 14. Find the particular solution of the differential equation in Ex. 13 for which y=2 and y’=-3 when x=1.
21
21
1
2 3
3 2(1) 3
8
y x x C
x C
C
3 2321 23 2
3 23223 2
472 6
2 (1) (1) 8(1)
y x x C x C
C
C
3 23 4723 2 68y x x x
Example 16.
A stone is thrown vertically upward from the ground with an initial velocity of 20ft/sec.
(a) How long will the ball be going up?Ans. 0.625 sec
(b) How high will the ball go?Ans. 6.25 ft
(c) With what velocity will the ball strike the ground?
Ans. 20 ft/sec
That’s all Folks!
Thank you!!!