Evaluate the following integrals:
Assume xex = t
d(xex) = dt
(ex + xex) dx = dt
ex(1 + x) dx = dt
Substituting t and dt
⇒ 
⇒ 
⇒ tan t + c
But t = xex + 1
⇒ tan (xex) + c.
37
Evaluate the following integrals:
Assume xex = t
d(xex) = dt
(ex + xex) dx = dt
ex(1 + x) dx = dt
Substituting t and dt
⇒
⇒
⇒ tan t + c
But t = xex + 1
⇒ tan (xex) + c.