Evaluate the following integrals:
∫ x3 sin (x4 + 1) dx
Assume x4 + 1 = t
d(x4 + 1) = dt
4x3dx = dt
x3dx = 
Substituting t and dt
⇒ 
⇒ 
But t = x4 + 1
⇒ 
.
36
Evaluate the following integrals:
∫ x3 sin (x4 + 1) dx
Assume x4 + 1 = t
d(x4 + 1) = dt
4x3dx = dt
x3dx =
Substituting t and dt
⇒
⇒
But t = x4 + 1
⇒ .