Evaluate the following integrals:
Assume ex + x =t
d(ex + x)=dt
ex + 1 = dt
Put t and dt in given equation we get
⇒ 
= ln|t| + c.
But t = ex + x
= ln| ex + 1| + c
17
Evaluate the following integrals:
Assume ex + x =t
d(ex + x)=dt
ex + 1 = dt
Put t and dt in given equation we get
⇒
= ln|t| + c.
But t = ex + x
= ln| ex + 1| + c