Question

How do you evaluate the definite integral `int (4x)/sqrt(x^2+1) dx` from `[-sqrt3, sqrt3]`?

Answer 1

`int_(-sqrt(3))^sqrt(3) (4x)/sqrt(x^2+1) dx = 0`

Explanation:

`int_(-sqrt(3))^sqrt(3) (4x)/sqrt(x^2+1) dx = 2int_(-sqrt(3))^sqrt(3) (d(x^2+1))/sqrt(x^2+1) dx = 4 [sqrt(x^2+1)]_(-sqrt(3))^sqrt(3)=4(2-2) = 0`

We might have spared ourselves the trouble of doing the calculations, noting that:

`f(x) = (4x)/sqrt(x^2+1)`

is an odd function, that is:

`f(-x) = -f(x)`

If such a function can be integrated over the interval `(-a,a)` the integral is always null as:

`int_(-a)^a f(x)dx = int_(-a)^0 f(x)dx + int_0^a f(x)dx`

Substitute `t=-x` in the first integral:

`int_(-a)^0 f(x)dx = int_a^0 f(-t)d(-t) = -int_0^a f(-t)d(-t) = int_0^a f(-t)dt = - int_0^a f(t)dt`

So we get:

`int_(-a)^a f(x)dx = int_0^a f(x)dx - int_0^a f(x)dx = 0`