Correct Answer - B
`18x^(2)-9pix+pi^(2)=0`
`rArr" "(6x-pi)(3x-pi)=0`
`therefore" "alpha=(pi)/(6),beta=(pi)/(3)`
`y=g(f(x))=g(sqrt(x))=cos x`
Area bounded by curves `y=cos x, x=(pi)/(6),x=(pi)/(3) and y=0` is
`overset(pi//3)underset(pi//6)intcos x dx =[sin x]_(pi//6)^(pi//3)=sin""(pi)/(3)-sin""(pi)/(3)=(1)/(2)(sqrt(3)-1)`