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Title: Integration by Substitution
Description: Basics of integration and integration by substitution
Description: Basics of integration and integration by substitution
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TABLE OF ANTIDIFFERENTIATION FORMULAS
General antiderivatives
1
...
β« ππ (π₯ ) ππ₯ = π β« π (π₯ ) ππ₯
π₯ π+1
3
...
β« π₯ π ππ₯ = ln|π₯ | + πΆ, π = β1
ππ
5
...
β« π π ππ₯ = π π + πΆ
Antidifferentiation formulas of trigonometric functions
7
...
β« cos π₯ ππ₯ = sin π₯ + πΆ
9
...
β« csc2 π₯ ππ₯ = βcot π₯ + πΆ
11
...
β« csc π₯ cot π₯ ππ₯ = βcsc π₯ + πΆ
13
...
β« tan π₯ ππ₯ = ln|sec π₯ | + πΆ
15
...
β« csc π₯ ππ₯ = ln|csc π₯ β cot π₯ | + πΆ
Antidifferentiation formulas yielding inverse trigonometric functions
1
17
...
β« π2 +π₯2 ππ₯ = π tanβ1 (π) + πΆ, π β 0
19
...
β« sinh π₯ ππ₯ = cosh π₯ + πΆ
21
...
β« sech2 π₯ ππ₯ = tanh π₯ + πΆ
23
...
β« sech π₯ tanh π₯ ππ₯ = βsech π₯ + πΆ
25
...
β« coth π₯ ππ₯ = ln|sinh π₯ | + πΆ
27
...
β« sech π₯ ππ₯ = 2 tanβ1 π π₯ + πΆ = tanβ1 (sinh π₯ ) + πΆ
29
...
Antiderivatives are not unique
...
πΉ (π₯ ) + πΆ is the general antiderivative of π, while each antiderivative is a particular
antiderivative of π
...
Example: Given that πΉ β² (π₯ ) = 2π₯ 3 and that πΉ (4) = 16, what is πΉ(π₯)?
First, identify the general antiderivative of πΉ(π₯)
...
πΉ (4) = 16
(4)4
+ πΆ = 16
4
πΆ = 16 β 64 = β48
Thus, the particular antiderivative is π(π) =
INTEGRATION BY SUBSTITUTION
ππ
π
β ππ
...
The challenging
part with substitution is with finding the appropriate value of π’
...
Suppose πΉ(π₯) is an antiderivative of π(π₯), then
πΉ(π(π₯ )) is an antiderivative of π(π(π₯ )) β πβ²(π₯)
...
Thus,
β« π (π’)ππ’ = πΉ (π’) + πΆ
Candidates for π’ include the following:
a
...
c
...
The denominator of the function or a part thereof
Non-integrable functions
The exponent or a part thereof
The insides of radicals
π₯3
Example: β« (π₯4 +4)5 ππ₯
The function is non-integrable as of the moment
...
The
function satisfies candidate (a)
...
Thus, ππ’ = 4π₯ 3 ππ₯
...
e
...
Thus,
β«
π₯3
1 1
1 1
ππ₯ = β« 5 β ππ’ = β« 5 ππ’
4
5
(π₯ + 4)
π’ 4
4 π’
The substituted function can now be integrated
...
1 1
1 π’β4
1
β« 5 ππ’ = (
)+πΆ =β
+πΆ
4 π’
4 β4
16π’4
We then revert π’ back to π₯
...
Thus, ππ’ = cos π₯ ππ₯
...
We then perform a second substitution
...
Thus, ππ£ = 3π’2 ππ’
...
This can be resolved by splitting π’8 such that it can be utilized by
ππ£ and so that it can be expressed as π£
...
Solving for π’3 yields π’3 = π£ β 3
Title: Integration by Substitution
Description: Basics of integration and integration by substitution
Description: Basics of integration and integration by substitution