Partial Fraction Decomposition of $frac{1}{x^2(x^2+25)}$

Since the central theme is to assist in the evaluation of an integral another method is to consider the following.

$$ frac{1}{x^2 , (x^2 + 5^2)} = frac{1}{25} , left( frac{1}{x^2} - frac{1}{x^2 + 5^2} right) $$ and begin{align} frac{1}{x^2 + 5^2} &= frac{A}{x - 5 , i} - frac{B}{x + 5 , i} \ &= frac{(A-B) , x + (A + B) , 5 , i}{x^2 + 5^2} \ &= frac{1}{10 , i} , left( frac{1}{x - 5 , i} - frac{1}{x + 5 , i} right). end{align}

Now, $$ frac{1}{x^2 , (x^2 + 5^2)} = frac{1}{25 , x^2} - frac{1}{250 , i} , left( frac{1}{x - 5 , i} - frac{1}{x + 5 , i} right) $$ and begin{align} int frac{dx}{x^2 , (x^2 + 5^2)} &= int left( frac{1}{25 , x^2} - frac{1}{250 , i} , left( frac{1}{x - 5 , i} - frac{1}{x + 5 , i} right) right) , dx \ &= - frac{1}{25 , x} + frac{i}{250} , lnleft(frac{x - 5 , i}{x + 5 , i} right) \ &= frac{1}{5^3} , left( tan^{-1}left(frac{5}{x}right) - frac{5}{x} right) + c_{0} \ &= frac{1}{5^3} , left( cot^{-1}left(frac{x}{5}right) - frac{5}{x} right) + c_{0} end{align}

You are right. Here's an other proof:

If we put $X=x^2$ then

$$f(x)=frac{1}{x^2(25+x^2)}$$ $$=frac{1}{X(25+X)}$$ $$=frac{B}{X}+frac{D}{25+X}$$

$$Xf(x)=B+frac{DX}{X+25}$$ with $ X=0$, it gives $ B=frac{1}{25}$

$$(X+25)f(x)=frac{B(X+25)}{X}+D$$ with $ X=-25$, we get $D=-frac{1}{25}$

thus

$$f(x)=frac{1}{25}Bigl(frac{1}{x^2}-frac{1}{25+x^2}Bigr)$$