Difference between revisions of "009B Sample Final 2, Problem 7"

Revision as of 14:28, 3 March 2017

Evaluate the following integrals or show that they are divergent:

(a) $\int _{1}^{\infty }{\frac {\ln x}{x^{4}}}~dx$

(b) $\int _{0}^{1}{\frac {3\ln x}{\sqrt {x}}}~dx$

Foundations:
1. How could you write $\int _{0}^{\infty }f(x)~dx$ so that you can integrate?
You can write $\int _{0}^{\infty }f(x)~dx=\lim _{a\rightarrow \infty }\int _{0}^{a}f(x)~dx.$
2. How could you write $\int _{0}^{1}{\frac {1}{x}}~dx?$
The problem is that ${\frac {1}{x}}$ is not continuous at $x=0.$
So, you can write $\int _{0}^{1}{\frac {1}{x}}~dx=\lim _{a\rightarrow 0}\int _{a}^{1}{\frac {1}{x}}~dx.$

Solution:

(a)

Step 1:
First, we write
$\int _{1}^{\infty }{\frac {\ln x}{x^{4}}}~dx=\lim _{a\rightarrow \infty }\int _{1}^{a}{\frac {\ln x}{x^{4}}}~dx.$
Now, we use integration by parts.
Let $u=\ln x$ and $dv={\frac {1}{x^{4}}}dx.$
Then, $du={\frac {1}{x}}dx$ and $v={\frac {1}{-3x^{3}}}.$
Using integration by parts, we get
${\begin{array}{rcl}\displaystyle {\int _{1}^{\infty }{\frac {\ln x}{x^{4}}}~dx}&=&\displaystyle {\lim _{a\rightarrow \infty }{\frac {\ln x}{-3x^{3}}}{\bigg \|}_{1}^{a}+\int _{1}^{a}{\frac {1}{3x^{4}}}~dx}\\&&\\&=&\displaystyle {\lim _{a\rightarrow \infty }{\frac {\ln x}{-3x^{3}}}-{\frac {1}{9x^{3}}}{\bigg \|}_{1}^{a}.}\end{array}}$

Step 2:

Now, using L'Hopital's Rule, we get

{\begin{array}{rcl}\displaystyle {\int _{1}^{\infty }{\frac {\ln x}{x^{4}}}~dx}&=&\displaystyle {\lim _{a\rightarrow \infty }{\frac {\ln a}{-3a^{3}}}-{\frac {1}{9a^{3}}}-{\bigg (}{\frac {\ln 1}{-3}}-{\frac {1}{9}}{\bigg )}}\\&&\\&=&\displaystyle {\lim _{a\rightarrow \infty }{\frac {\ln(a)}{-3a^{3}}}+0+0+{\frac {1}{9}}}\\&&\\&=&\displaystyle {\lim _{x\rightarrow \infty }{\frac {\ln(x)}{-3x^{3}}}+{\frac {1}{9}}}\\&&\\&{\overset {L'H}{=}}&\displaystyle {\lim _{x\rightarrow \infty }{\frac {\frac {1}{x}}{-9x^{2}}}+{\frac {1}{9}}}\\&&\\&=&\displaystyle {{\frac {1}{9}}.}\end{array}}

(b)

Step 1:
First, we write
$\int _{0}^{1}{\frac {3\ln x}{\sqrt {x}}}~dx=\lim _{a\rightarrow 0}\int _{a}^{1}{\frac {3\ln x}{\sqrt {x}}}~dx.$
Now, we use integration by parts.
Let $u=3\ln x$ and $dv={\frac {1}{\sqrt {x}}}dx.$
Then, $du={\frac {3}{x}}dx$ and $v=2{\sqrt {x}}.$
Using integration by parts, we get
${\begin{array}{rcl}\displaystyle {\int _{0}^{1}{\frac {3\ln x}{\sqrt {x}}}~dx}&=&\displaystyle {\lim _{a\rightarrow 0}(3\ln x)(2{\sqrt {x}}){\bigg \|}_{a}^{1}-\int _{a}^{1}{\frac {6}{\sqrt {x}}}~dx}\\&&\\&=&\displaystyle {\lim _{a\rightarrow 0}6{\sqrt {x}}\ln(x)-12{\sqrt {x}}{\bigg \|}_{a}^{1}.}\end{array}}$

Step 2:
Now, using L'Hopital's Rule, we get
${\begin{array}{rcl}\displaystyle {\int _{0}^{1}{\frac {3\ln x}{\sqrt {x}}}~dx}&=&\displaystyle {\lim _{a\rightarrow 0}(6{\sqrt {1}}\ln(1)-12{\sqrt {1}})-(6{\sqrt {a}}\ln(a)-12{\sqrt {a}})}\\&&\\&=&\displaystyle {\lim _{a\rightarrow 0}-12-6{\sqrt {a}}\ln(a)+12{\sqrt {a}}}\\&&\\&=&\displaystyle {\lim _{a\rightarrow 0}-12-6{\sqrt {a}}\ln(a)+0}\\&&\\&=&\displaystyle {\lim _{x\rightarrow 0}-12-6{\sqrt {x}}\ln(x)}\\&&\\&=&\displaystyle {-12-\lim _{x\rightarrow 0}{\frac {6\ln(x)}{\frac {1}{\sqrt {x}}}}}\\&&\\&{\overset {L'H}{=}}&\displaystyle {-12-\lim _{x\rightarrow 0}{\frac {\frac {6}{x}}{-{\frac {1}{2x^{3/2}}}}}}\\&&\\&=&\displaystyle {-12+\lim _{x\rightarrow 0}12{\sqrt {x}}}\\&&\\&=&\displaystyle {-12.}\end{array}}$

Final Answer:
(a) ${\frac {1}{9}}$
(b) $-12$

Return to Sample Exam

@@ Line 72: / Line 72: @@
 !Step 1: &nbsp;
 |-
-|
+|First, we write
+|-
+|&nbsp; &nbsp; &nbsp; &nbsp;<math>\int_0^1 \frac{3\ln x}{\sqrt{x}}~dx=\lim_{a\rightarrow 0} \int_a^1 \frac{3\ln x}{\sqrt{x}}~dx.</math>
+|-
+|Now, we use integration by parts.
+|-
+|Let &nbsp;<math style="vertical-align: -2px">u=3\ln x</math>&nbsp; and &nbsp;<math style="vertical-align: -13px">dv=\frac{1}{\sqrt{x}}dx.</math>
+|-
+|Then, &nbsp;<math style="vertical-align: -13px">du=\frac{3}{x}dx</math>&nbsp; and &nbsp;<math style="vertical-align: -13px">v=2\sqrt{x}.</math>
+|-
+|Using integration by parts, we get
 |-
-|
+|&nbsp; &nbsp; &nbsp; &nbsp; <math>\begin{array}{rcl}
+\displaystyle{\int_0^1 \frac{3\ln x}{\sqrt{x}}~dx} & = & \displaystyle{\lim_{a\rightarrow 0} (3\ln x)(2\sqrt{x})\bigg|_a^1-\int_a^1 \frac{6}{\sqrt{x}}~dx}\\
+&&\\
+& = & \displaystyle{\lim_{a\rightarrow 0} 6\sqrt{x}\ln(x)-12\sqrt{x}\bigg|_a^1.}
+\end{array}</math>
 |}
@@ Line 80: / Line 94: @@
 !Step 2: &nbsp;
 |-
-|
+|Now, using L'Hopital's Rule, we get
+|-
+|&nbsp; &nbsp; &nbsp; &nbsp; <math>\begin{array}{rcl}
+\displaystyle{\int_0^1 \frac{3\ln x}{\sqrt{x}}~dx} & = & \displaystyle{\lim_{a\rightarrow 0} (6\sqrt{1}\ln(1)-12\sqrt{1})-(6\sqrt{a}\ln(a)-12\sqrt{a})}\\
+&&\\
+& = & \displaystyle{\lim_{a\rightarrow 0} -12 -6\sqrt{a}\ln(a) +12\sqrt{a}}\\
+&&\\
+& = & \displaystyle{\lim_{a\rightarrow 0} -12 -6\sqrt{a}\ln(a)+0}\\
+&&\\
+& = & \displaystyle{\lim_{x\rightarrow 0} -12-6\sqrt{x}\ln(x)}\\
+&&\\
+& = & \displaystyle{-12-\lim_{x\rightarrow 0} \frac{6\ln(x)}{\frac{1}{\sqrt{x}}}}\\
+&&\\
+& \overset{L'H}{=} & \displaystyle{-12-\lim_{x\rightarrow 0} \frac{\frac{6}{x}}{-\frac{1}{2x^{3/2}}}}\\
+&&\\
+& = & \displaystyle{-12+\lim_{x\rightarrow 0} 12\sqrt{x}}\\
+&&\\
+& = & \displaystyle{-12.}
+\end{array}</math>
 |-
 |
@@ Line 91: / Line 123: @@
 |&nbsp; &nbsp;'''(a)'''&nbsp; &nbsp; <math>\frac{1}{9}</math>
 |-
-|'''(b)'''
+|&nbsp; &nbsp;'''(b)'''&nbsp; &nbsp; <math>-12</math>
 |}
 [[009B_Sample_Final_2|'''<u>Return to Sample Exam</u>''']]

Difference between revisions of "009B Sample Final 2, Problem 7"

Revision as of 14:28, 3 March 2017

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