Evaluate the following integrals:
Put cosx =t
⇒ -sinxdx=dt
Now put t2-1=a
⇒2tdt=da
And t8=(a+1)4
Resubstituting the value of a=t2-1 and t=cosx ⇒a=cos2x-1=-sin2x we get
Ans: 
1
Evaluate the following integrals:
Put cosx =t
⇒ -sinxdx=dt
Now put t2-1=a
⇒2tdt=da
And t8=(a+1)4
Resubstituting the value of a=t2-1 and t=cosx ⇒a=cos2x-1=-sin2x we get
Ans: