Difference between revisions of "009B Sample Final 1, Problem 4"

Revision as of 12:02, 27 February 2017

Compute the following integrals.

(a) $\int {\frac {t^{2}}{\sqrt {1-t^{6}}}}~dt$

(b) $\int {\frac {2x^{2}+1}{2x^{2}+x}}~dx$

(c) $\int \sin ^{3}x~dx$

Foundations:
1. Through partial fraction decomposition, we can write the fraction
${\frac {1}{(x+1)(x+2)}}={\frac {A}{x+1}}+{\frac {B}{x+2}}$
for some constants $A,B.$
2. We have the Pythagorean identity
$\sin ^{2}(x)=1-\cos ^{2}(x).$

Solution:

(a)

Step 1:
We first note that
$\int {\frac {t^{2}}{\sqrt {1-t^{6}}}}~dt=\int {\frac {t^{2}}{\sqrt {1-(t^{3})^{2}}}}~dt.$
Now, we proceed by $u$ -substitution.
Let $u=t^{3}.$ Then, $du=3t^{2}dt$ and ${\frac {du}{3}}=t^{2}dt.$
So, we have
$\int {\frac {t^{2}}{\sqrt {1-t^{6}}}}~dt=\int {\frac {1}{3{\sqrt {1-u^{2}}}}}~du.$

Step 2:
Now, we need to use trig substitution.
Let $u=\sin \theta .$ Then, $du=\cos \theta d\theta .$
So, we have
${\begin{array}{rcl}\displaystyle {\int {\frac {t^{2}}{\sqrt {1-t^{6}}}}~dt}&=&\displaystyle {\int {\frac {\cos \theta }{3{\sqrt {1-\sin ^{2}\theta }}}}~d\theta }\\&&\\&=&\displaystyle {\int {\frac {\cos \theta }{3{\sqrt {\cos ^{2}\theta }}}}~d\theta }\\&&\\&=&\displaystyle {\int {\frac {\cos \theta }{3\cos \theta }}d\theta }\\&&\\&=&\displaystyle {\int {\frac {1}{3}}~d\theta }\\&&\\&=&\displaystyle {{\frac {1}{3}}\theta +C}\\&&\\&=&\displaystyle {{\frac {1}{3}}\arcsin(u)+C}\\&&\\&=&\displaystyle {{\frac {1}{3}}\arcsin(t^{3})+C.}\end{array}}$

(b)

Step 1:
First, we add and subtract $x$ from the numerator.
So, we have
${\begin{array}{rcl}\displaystyle {\int {\frac {2x^{2}+1}{2x^{2}+x}}~dx}&=&\displaystyle {\int {\frac {2x^{2}+x-x+1}{2x^{2}+x}}~dx}\\&&\\&=&\displaystyle {\int {\frac {2x^{2}+x}{2x^{2}+x}}~dx+\int {\frac {1-x}{2x^{2}+x}}~dx}\\&&\\&=&\displaystyle {\int ~dx+\int {\frac {1-x}{2x^{2}+x}}~dx}.\\\end{array}}$

Step 2:
Now, we need to use partial fraction decomposition for the second integral.
Since $2x^{2}+x=x(2x+1),$ we let
${\frac {1-x}{2x^{2}+x}}={\frac {A}{x}}+{\frac {B}{2x+1}}.$
Multiplying both sides of the last equation by $x(2x+1),$
we get
$1-x=A(2x+1)+Bx.$
If we let $x=0,$ the last equation becomes $1=A.$
If we let $x=-{\frac {1}{2}},$ then we get ${\frac {3}{2}}=-{\frac {1}{2}}\,B.$ Thus, $B=-3.$
So, in summation, we have
${\frac {1-x}{2x^{2}+x}}={\frac {1}{x}}+{\frac {-3}{2x+1}}.$

Step 3:
If we plug in the last equation from Step 2 into our final integral in Step 1, we have
${\begin{array}{rcl}\displaystyle {\int {\frac {2x^{2}+1}{2x^{2}+x}}~dx}&=&\displaystyle {\int ~dx+\int {\frac {1}{x}}~dx+\int {\frac {-3}{2x+1}}~dx}\\&&\\&=&\displaystyle {x+\ln x+\int {\frac {-3}{2x+1}}~dx.}\\\end{array}}$

Step 4:
For the final remaining integral, we use $u$ -substitution.
Let $u=2x+1.$ Then, $du=2\,dx$ and ${\frac {du}{2}}=dx.$
Thus, our final integral becomes
${\begin{array}{rcl}\displaystyle {\int {\frac {2x^{2}+1}{2x^{2}+x}}~dx}&=&\displaystyle {x+\ln x+\int {\frac {-3}{2x+1}}~dx}\\&&\\&=&\displaystyle {x+\ln x+\int {\frac {-3}{2u}}~du}\\&&\\&=&\displaystyle {x+\ln x-{\frac {3}{2}}\ln u+C.}\\\end{array}}$
Therefore, the final answer is
$\int {\frac {2x^{2}+1}{2x^{2}+x}}~dx\,=\,x+\ln x-{\frac {3}{2}}\ln(2x+1)+C.$

(c)

Step 1:
First, we write
$\int \sin ^{3}x~dx=\int \sin ^{2}x\sin x~dx.$
Using the identity $\sin ^{2}x+\cos ^{2}x=1,$ we get
$\sin ^{2}x=1-\cos ^{2}x.$
If we use this identity, we have
$\int \sin ^{3}x~dx=\int (1-\cos ^{2}x)\sin x~dx.$

Step 2:
Now, we proceed by $u$ -substitution.
Let $u=\cos x.$ Then, $du=-\sin xdx.$
So we have
${\begin{array}{rcl}\displaystyle {\int \sin ^{3}x~dx}&=&\displaystyle {\int -(1-u^{2})~du}\\&&\\&=&\displaystyle {-u+{\frac {u^{3}}{3}}+C}\\&&\\&=&\displaystyle {-\cos x+{\frac {\cos ^{3}x}{3}}+C}.\\\end{array}}$

Final Answer:
(a) ${\frac {1}{3}}\arcsin(t^{3})+C$
(b) $x+\ln x-{\frac {3}{2}}\ln(2x+1)+C$
(c) $-\cos x+{\frac {\cos ^{3}x}{3}}+C$

Return to Sample Exam

@@ Line 47: / Line 47: @@
 !Step 2: &nbsp;
 |-
-|Now, for the one remaining integral, we use <math style="vertical-align: 0px">u</math>-substitution.
+|Now, we need to use trig substitution.
 |-
-|Let <math style="vertical-align: 0px">u=e^x</math>. Then, <math style="vertical-align: 0px">du=e^xdx</math>.
+|Let &nbsp;<math style="vertical-align: -1px">u=\sin \theta.</math>&nbsp; Then, &nbsp;<math style="vertical-align: 0px">du=\cos \theta d\theta.</math>
 |-
 |So, we have
 |-
 |
-::<math>\begin{array}{rcl}
+&nbsp; &nbsp; &nbsp; &nbsp; <math>\begin{array}{rcl}
-\displaystyle{\int e^x(x+\sin(e^x))~dx} & = & \displaystyle{xe^x-e^x+\int \sin(u)~du}\\
+\displaystyle{\int \frac{t^2}{\sqrt{1-t^6}}~dt} & = & \displaystyle{\int \frac{\cos \theta}{3\sqrt{1-\sin^2\theta}}~d\theta}\\
+&&\\
+& = & \displaystyle{\int \frac{\cos \theta}{3\sqrt{\cos^2\theta}}~d\theta}\\
+&&\\
+& = & \displaystyle{\int \frac{\cos \theta}{3\cos \theta} d\theta}\\
+&&\\
+& = & \displaystyle{\int \frac{1}{3}~d\theta}\\
+&&\\
+& = & \displaystyle{\frac{1}{3}\theta +C}\\
 &&\\
-& = & \displaystyle{xe^x-e^x-\cos(u)+C}\\
+& = & \displaystyle{\frac{1}{3}\arcsin(u)+C}\\
 &&\\
-& = & \displaystyle{xe^x-e^x-\cos(e^x)+C}.\\
+& = & \displaystyle{\frac{1}{3}\arcsin(t^3)+C.}
 \end{array}</math>
 |}
@@ Line 188: / Line 196: @@
 !Final Answer: &nbsp;
 |-
-|&nbsp; &nbsp; '''(a)''' &nbsp; &nbsp;<math>xe^x-e^x-\cos(e^x)+C</math>
+|&nbsp; &nbsp; '''(a)''' &nbsp; &nbsp;<math>\frac{1}{3}\arcsin(t^3)+C</math>
 |-
 |&nbsp; &nbsp; '''(b)''' &nbsp; &nbsp;<math style="vertical-align: -14px">x+\ln x-\frac{3}{2}\ln (2x+1) +C</math>

Difference between revisions of "009B Sample Final 1, Problem 4"

Revision as of 12:02, 27 February 2017

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