Primitive of Reciprocal of x squared by x cubed plus a cubed/Lemma

Theorem

 * $\ds \int \frac {\d x} {x^2 \paren {x^3 + a^3} } = \frac {-1} {a^3 x} - \frac 1 {a^3} \int \frac {x \rd x} {\paren {x^3 + a^3} }$