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I am trying to find the integral of this by using integration of rational functions by partial fractions.

$\int \frac{x^2 - 5x + 16}{(2x+1)(x-2)^2}dx$

I am not really sure how to start this but the books gives some weird formula to memorize with no explanation of why $\frac {A}{(ax+b)^i}$ and $ \frac {Ax + B}{(ax^2 + bx +c)^j}$

I am not sure at all what this means and there is really no explanation of any of it, I am guessing $i$ is for imaginary number, and $j$ is just a representation of another imaginary number that is no the same as $i$. $A$, $B$ and $C$, I have no idea what that means and I am not familiar with capital letters outside of triangle notation so I am guessing that they are angles of lines for something.

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    "the books gives some weird formula to memorize" You would do better if you accept that the books gives the formula **to understand**, not to memorize. You spend a lot of time complaining that you have to memorize so many things, but the point is that you should try to understand them.2012-06-10

3 Answers 3

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See first Arturo's excellent answer to Integration by partial fractions; how and why does it work?


I am guessing i is for imaginary number, and j is just a representation of another imaginary number that is no the same as i.

I don't know what an indice or natural number is and it is not mentioned naywhere in the text. (in a comment)

The numbers $i$ and $j$ are natural numbers, i.e. they are positive integers $1,2,3,\dots,n,\dots .$ Their set is denoted by $\mathbb{N}$.

$A$, $B$ and $C$, I have no idea what that means and I am not familiar with capital letters outside of triangle notation so I am guessing that they are angles of lines for something.

In this context the leters $A$, $B$ and $C$ are constants, i.e. independent of the variable $x$.

  • Let $\begin{equation*} \frac{P(x)}{Q(x)}:=\frac{x^{2}-5x+16}{\left( 2x+1\right) \left( x-2\right) ^{2}}\tag{1}. \end{equation*}$ The denominator $Q(x):=\left( 2x+1\right) \left( x-2\right) ^{2}$ has factors of the form $(ax+b)^{i}$ only. Each one originates $i\in\mathbb{N}$ partial fractions whose integrals can be computed recursively and/or found in tables of integrals. See $(6),(7),(8)$ bellow for the present case.) $\begin{equation*} \frac{A_{i}}{(ax+b)^{i}}+\frac{A_{i-1}}{(ax+b)^{i-1}}+\ldots +\frac{A_{1}}{ax+b}. \end{equation*}\tag{2}$ The exponent of the factor $\left( x-2\right) ^{2}$ is $i=2$ and of the factor $2x+1$ is $i=1$. Therefore we should find the constants $A_{1}$, $A_{2}$, $B$ such that $\begin{equation*} \frac{P(x)}{Q(x)}=\frac{x^{2}-5x+16}{\left( 2x+1\right) \left( x-2\right) ^{2}}=\frac{B}{2x+1}+\frac{A_{2}}{\left( x-2\right) ^{2}}+\frac{A_{1}}{x-2}\end{equation*}.\tag{3}$

  • One methodis to reduce the RHS to a common denominator $\begin{equation*} \frac{x^{2}-5x+16}{\left( 2x+1\right) \left( x-2\right) ^{2}}=\frac{B\left(x-2\right) ^{2}+A_{2}\left( 2x+1\right) +A_{1}\left( x-2\right) \left(2x+1\right) }{\left( 2x+1\right) \left( x-2\right) ^{2}}. \end{equation*}$ $\tag{3a}$ [See remak below.] This means that the polynomials of the numerators must be equal on both sides of this last equation. Expanding the RHS, grouping the terms of the same degree
    $\begin{eqnarray*} P(x) &:=&x^{2}-5x+16=B\left( x-2\right) ^{2}+A_{2}\left( 2x+1\right) +A_{1}\left( x-2\right) \left( 2x+1\right) \\ &=&\left( Bx^{2}-4Bx+4B\right) +\left( 2A_{2}x+A_{2}\right) +\left( 2A_{1}x^{2}-3A_{1}x-2A_{1}\right) \\ &=&\left( B+2A_{1}\right) x^{2}+\left( -4B+2A_{2}-3A_{1}\right) x+\left( 4B+A_{2}-2A_{1}\right) \end{eqnarray*}$ $\tag{3b}$ and equating the coefficients of $x^{2}$, $x^{1}$ and $x^{0}$, we conclude that they must satisfy‡ the following system of 3 linear equations [See (*) for a detailed solution of the system] $\begin{equation*} \left\{ \begin{array}{c} B+2A_{1}=1 \\ -4B+2A_{2}-3A_{1}=-5 \\ 4B+A_{2}-2A_{1}=16 \end{array} \right. \Leftrightarrow \left\{ \begin{array}{c} A_{1}=-1 \\ A_{2}=2 \\ B=3. \end{array} \right.\tag{3c} \end{equation*}$ In short, this method reduces to solving a linear system. So, we have $\begin{equation*} \frac{x^{2}-5x+16}{\left( 2x+1\right) \left( x-2\right) ^{2}}=\frac{3}{2x+1}+ \frac{2}{\left( x-2\right) ^{2}}-\frac{1}{x-2}. \end{equation*}\tag{4}$

  • We are now left with the integration of each partial fraction $\begin{equation*} \int \frac{x^{2}-5x+16}{\left( 2x+1\right) \left( x-2\right) ^{2}}dx=3\int \frac{1}{2x+1}dx+2\int \frac{1}{\left( x-2\right) ^{2}}dx\\-\int \frac{1}{x-2} dx.\tag{5} \end{equation*}$

Can you proceed from here? Remember these basic indefinite integral formulas:

$\int \frac{1}{ax+b}dx=\frac{1}{a}\ln \left\vert ax+b\right\vert +C, \tag{6}$

$\int \frac{1}{\left( x-r\right) ^{2}}dx=-\frac{1}{x-r}+C,\tag{7}$

$\int \frac{1}{x-r}dx=\ln \left\vert x-r\right\vert +C.\tag{8}$

--

† Another method is to evaluate both sides of $(3)$ at 3 different values, e.g. $x=-1,0,1$ and obtain a system of 3 equations. Another one is to compute $P(x)$

$\begin{equation*} P(x)=x^{2}-5x+16=B\left( x-2\right) ^{2}+A_{2}\left( 2x+1\right) +A_{1}\left( x-2\right) \left( 2x+1\right) \end{equation*}$

first at the zeros of each term, i.e. $x=2$ and $x=-1/2$ $\begin{eqnarray*} P(2) &=&10=5A_{2}\Rightarrow A_{2}=2 \\ P\left( -1/2\right) &=&\frac{75}{4}=\frac{25}{4}B\Rightarrow B=3; \end{eqnarray*}$

and then at e.g. $x=0$ $\begin{equation*} P(0)=16=4B+A_{2}-2A_{1}=12+2-2A_{1}\Rightarrow A_{1}=-1. \end{equation*}$

For additional methods see this Wikipedia entry

‡ If $B+2A_{1}=1,-4B+2A_{2}-3A_{1}=-5,4B+A_{2}-2A_{1}=16$, then $x^{2}-5x+16=\left( B+2A_{1}\right) x^{2}+\left( -4B+2A_{2}-3A_{1}\right) x+\left(4B+A_{2}-2A_{1}\right)$ for all $x$ and $(3a)$ is an identity.


REMARK in response a comment below by OP. For $x=2$ the RHS of $(3a)$ is not defined. But we can compute as per $(3b,c)$ or as per †, because we are not plugging $x=2$ in the fraction $(3a)$. In $(3c)$ we assure that the numerators of $(3a)$ $x^{2}-5x+16$ and $B\left( x-2\right) ^{2}+A_{2}\left( 2x+1\right) +A_{1}\left( x-2\right) \left( 2x+1\right) $ are identically equal, i.e. they must have equal coefficients of $x^2,x,x^0$.


(*) Detailed solution of $(3c)$. Please note that we cannot find $A,B$ and $C$ with one equation only, as you tried below in a comment ("$16=2b+A_1−A_2$ I have no idea how to solve this.") $\begin{eqnarray*} &&\left\{ \begin{array}{c} B+2A_{1}=1 \\ -4B+2A_{2}-3A_{1}=-5 \\ 4B+A_{2}-2A_{1}=16 \end{array} \right. \\ &\Leftrightarrow &\left\{ \begin{array}{c} B=1-2A_{1} \\ -4\left( 1-2A_{1}\right) +2A_{2}-3A_{1}=-5 \\ 4\left( 1-2A_{1}\right) +A_{2}-2A_{1}=16 \end{array} \right. \Leftrightarrow \left\{ \begin{array}{c} B=1-2A_{1} \\ -4+5A_{1}+2A_{2}=-5 \\ 4-10A_{1}+A_{2}=16 \end{array} \right. \\ &\Leftrightarrow &\left\{ \begin{array}{c} B=1-2A_{1} \\ A_{2}=-\frac{1+5A_{1}}{2} \\ 4-10A_{1}-\frac{1+5A_{1}}{2}=16 \end{array} \right. \Leftrightarrow \left\{ \begin{array}{c} B=1-2A_{1} \\ A_{2}=-\frac{1+5A_{1}}{2} \\ A_{1}=-1 \end{array} \right. \\ &\Leftrightarrow &\left\{ \begin{array}{c} B=1-2\left( -1\right) \\ A_{2}=-\frac{1+5\left( -1\right) }{2} \\ A_{1}=-1 \end{array} \right. \Leftrightarrow \left\{ \begin{array}{c} A_{1}=-1 \\ A_{2}=2 \\ B=3 \end{array} \right. \end{eqnarray*}$


Comment below by OP

I watched the MIT lecture on this and they use the "cover up" method to solve systems like this and I am attempting to use that here. I have $\frac{A}{2x+1} + \frac{B}{x-2} + \frac{C}{(x-2)^2}$ Is there anything wrong so far? It appears to me to be correct. Now I try to find B by making x = 2 and multplying by x-2 which gets rid of C and A since it makes them zero and then the RHS which cancels out and leaves me with B = 2 but that also works for C I think so I am confused, and for A I get 55/6 which I know is wrong but the method works and I am doing the math right so what is wrong?

Starting with $\frac{x^{2}-5x+16}{(2x+1)(x-2)^{2}}=\frac{A}{2x+1}+\frac{B}{x-2}+\frac{C}{(x-2)^{2}}\tag{3'}$

we can multiply it by $(x-2)^{2}$

$\frac{x^{2}-5x+16}{2x+1}=\frac{A(x-2)^{2}}{2x+1}+B(x-2)+C.$

To get rid of $A$ and $B$ we make $x=2$ and obtain $C$

$\frac{2^{2}-5\cdot 2+16}{2\cdot 2+1}=\frac{A(2-2)^{2}}{2x+1}+B(2-2)+C$

$\Rightarrow 2=0+0+C\Rightarrow C=2$

We proceed by multiplying $(3')$ by $2x+1$

$\frac{x^{2}-5x+16}{(x-2)^{2}}=A+\frac{B(2x+1)}{x-2}+\frac{C(2x+1)}{(x-2)^{2}}$

and making $x=-1/2$ to get rid of $B$ and $C$

$\frac{\left( -1/2\right) ^{2}-5\left( -1/2\right) +16}{(-1/2-2)^{2}}=A+ \frac{B(2\left( -1/2\right) +1)}{-1/2-2}+\frac{C(2\left( -1/2\right) +1)}{ (-1/2-2)^{2}}$

$\Rightarrow 3=A+0+0\Rightarrow A=3$

Substituing $A=3,C=2$ in $(3')$, we have

$\frac{x^{2}-5x+16}{(2x+1)(x-2)^{2}}=\frac{3}{2x+1}+\frac{B}{x-2}+\frac{2}{ (x-2)^{2}}$

Making e.g. $x=1$ (it could be e.g. $x=0$)

$\frac{1^{2}-5+16}{(2+1)(1-2)^{2}}=\frac{3}{2+1}+\frac{B}{1-2}+\frac{2}{ (1-2)^{2}},$

$\Rightarrow 4=1-B+2\Rightarrow B=-1.$

Thus

$\frac{x^{2}-5x+16}{(2x+1)(x-2)^{2}}=\frac{3}{2x+1}-\frac{1}{x-2}+\frac{2}{(x-2)^{2}},\tag{3''}$

which is the same decomposition as $(4)$.

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    @Jordan Glad to help.2012-06-08
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Rather than continue to give explicit hints on your homework problems for this assignment, I am going to treat this question as a for partial fractions.

My preferred site reference for partial fractions is Paul's Online Math Notes. It's a great thing to know about and consider when you're learning calculus.

It has good exposition, lots of examples, explicit if-then problem solving plans, and is overall a great reference.

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    I downvoted this comment because of how bad I found Paul's Online Math Notes to be and I really do not want anyone else to have to suffer through it. I read through it several times and learned nothing.2012-06-04
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Write $\frac{1}{(2x-1)\cdot (x-2)^{2}} = \frac{A}{2x+1} + \frac{Bx + C}{(x-2)^{2}}$

Once you have written this down it makes the job more easier. Now, the denominator terms cancel and you are left with
\begin{align*} 1 &= A \cdot \bigl(x-2)^{2} + B\cdot x \cdot (2x+1) + C \cdot (2x+1) \\\ 1 &= A \cdot \bigl(x^{2} - 4x +4) + 2Bx^{2} + Bx + 2Cx + C \\\ 1 &= x^{2} \cdot (A + 2B) + x \cdot (-4A + B + 2C) + (4A + C) \end{align*} Now comparing both the sides you find that \begin{align*} A+2B &=0 \\\ -4A+B+2C &=0 \\\ 4A+C &=1 \end{align*}

From here find the value of $A,B$ and $C$ and try to solve the problem.

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    I do not follow from \begin{align*} 1 &= A \cdot \bigl(x-2)^{2} + B\cdot x \cdot (2x+1) + C \cdot (2x+1) \\\ 1 &= A \cdot \bigl(x^{2} - 4x +4) + 2Bx^{2} + Bx + 2Cx + C \\\ 1 &= x^{2} \cdot (A + 2B) + x \cdot (-4A + B + 2C) + (4A + C) \end{align*} Now comparing both the sides you find that \begin{align*} A+2B &=0 \\\ -4A+B+2C &=0 \\\ 4A+C &=1 \end{align*}2012-06-04