Evaluate the following integrals:
Assume x + logxsecx =t
d(x + logxsecx) =dt
= dt
(1 + tanx)dx = dt
Put t and dt in given equation we get
⇒ 
= 
But t = x + logxsecx
= ln| x + logxsecx | + c.
37
Evaluate the following integrals:
Assume x + logxsecx =t
d(x + logxsecx) =dt
= dt
(1 + tanx)dx = dt
Put t and dt in given equation we get
⇒
=
But t = x + logxsecx
= ln| x + logxsecx | + c.