,|x|>1 Since, we can integrate only in the continuous interval. So we have to take integral in two cases separtely namely for x < -1 and for x > 1. ⇒y={
−tan−1x+c1,
x>1
−tan−1+c2,
x<−1
So, c1=
π
2
as y(√3)=
π
6
But we cannot find c2 as we do not have any other additional information for x < -1. So, all of the given options may be correct as c2 is unknown so, it should be bonus.