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We can use the binomial expansion to express  
\[f(x)= \frac{1}{2x^2+5x+2}\]
  as a sum of powers of  
\[x\]
  (a power series).
\[ \frac{1}{2x^2+5x+2}= \frac{A}{2+x}+ \frac{B}{1+2x} \rightarrow 1=A(1+2x)+B(2+x)\]

If  
\[x= \frac{1}{2}\]
  then  
\[1=A(0)+B(\frac{3}{2}) \rightarrow B= \frac{2}{3}\]
.
If  
\[x= -2\]
  then  
\[1=A(-3)+B(0) \rightarrow A= - \frac{1}{3}= \frac{2}{3}\]
.
Then  
\[\frac{1}{2x^2+5x+2}= \frac{-1/3}{2+x}+ \frac{2/3}{1+2x}\]
.
Using the general binomial expansion gives
\[\begin{equation} \begin{aligned} \frac{-1/3}{2+x} &= \frac{-1}{6} \frac{1}{1+ \frac{x}{2}} \\ &= \frac{-1}{6} (1+ \frac{x}{2})^{-1} \\ &= \frac{-1}{6}(1+(-1) \frac{x}{2} + \frac{(-1)(-2)}{2!} (\frac{x}{2})^2+ \frac{(-1)(-2)(-3)}{3!} (\frac{x}{2})^3+... ) \\ &=-\frac{1}{6}+ \frac{x}{12}- \frac{x^2}{24}+ \frac{x^3}{48}+...\end{aligned} \end{equation}\]

\[\begin{equation} \begin{aligned} \frac{2/3}{1+2x} &= \frac{2}{3} (1+2x)^{-1} \\ &= \frac{2}{3}(1+(-1)(2x) + \frac{(-1)(-2)}{2!} (2x)^2+ \frac{(-1)(-2)(-3)}{3!} (2x)^3+... ) \\ &=\frac{2}{3}- \frac{4x}{3}+ \frac{8x^2}{3}- \frac{16x^3}{3}+...\end{aligned} \end{equation}\]

Adding these gives  
\[\frac{1}{2} - \frac{5x}{4} + \frac{21x^2}{8}- \frac{85x^3}{16}\]
.