Evaluate the following integrals:
Assume log(sinx)= t
d(log(sinx)) =dt
⇒ 
dx =dt
⇒ cotx dx = dt
Put t and dt in given equation we get
⇒ 
= ln|t| + c.
But t = log(sinx)
= ln| log(sinx) | + c
24
Evaluate the following integrals:
Assume log(sinx)= t
d(log(sinx)) =dt
⇒ dx =dt
⇒ cotx dx = dt
Put t and dt in given equation we get
⇒
= ln|t| + c.
But t = log(sinx)
= ln| log(sinx) | + c