Question

Integrate the following with respect to x.

`1/(9 - 16x^2)`

Answer 1

`int 1/(9 - 16x^2)  "d"x`

= `int 1/(16[9/16 - x^2])  "d"x`

= `1/16 int ("d"x)/((3/4)^2 - (x)^2`

= `1/16[1/(2^(3/4)) log |(3/4 + x)/(3/4 - x)|] + "c"`

= `1/16 [1/(3/2) log |(3 + 4x)/(3 - 4x)|] + "c"`

= `1/24 log |(3 + 4x)/(3 - 4x)| + "c"`