Evaluate the following integrals:
Let 
We have 
We know cos2θ = 1 – 2sin2θ = 2cos2θ – 1
Hence, in the numerator, we can write 
In the denominator, we can write 
Therefore, we can write the integral as
[∵ sec2θ – tan2θ = 1]
Recall 
and 
Thus, 
43
Evaluate the following integrals:
Let
We have
We know cos2θ = 1 – 2sin2θ = 2cos2θ – 1
Hence, in the numerator, we can write
In the denominator, we can write
Therefore, we can write the integral as
[∵ sec2θ – tan2θ = 1]
Recall and
Thus,