2011-02-22, 08:18 PM
Integrals in the form of INT(f(ax+b)) are always easy to solve if you know the primitive of f(x). It's just F(ax+b)/a + C (where F(x) is the primitive).
So the substitution is pretty pointless aside from making it look prettier.
So the substitution is pretty pointless aside from making it look prettier.

