If `cot^(-1)((n^2-10 n+21. 6)/pi)>pi/6,` where `x y<0` then the possible values of `z` is (are) 3 (b) 2 (c) 4 (d) 8

If cot^(-1)(n/(pi))>(pi)/6, n in N , then the maximum value of n is :

If tan^-1 x + tan^-1 y = (4pi)/5 , then cot^-1 x + cot^-1 y equals

If sum_(n=0)^(oo)2cot^(-1)((n^(2)+n+4)/(2))=k pi , then find the value of k.

The solution set of inequality ( cot^(-1) x) (tan^(-1) x) + (2 - pi/2) cot^(-1) x - 3 tan^(-1) x - 3 ( 2 - pi/2) gt 0 , is

Let x_(1) " and " x_(2) ( x_(1) gt x_(2)) be roots of the equation sin^(-1) ( cos ( tan^(-1)( cosec ( cot^(-1)x)))) = pi/6 , then

If tan ^(-1) x + tan ^(-1) .sqrt( 1 - y^(2))/y = pi/3 " and sin^(-1) y - cos^(-1) ( x/(sqrt( 1 + x^(2)))) = (pi)/6 , then ( 5 sin^(-1) x)/( sin^(-1) y) is

Suppose 3 sin^(-1) ( log _(2) x) + cos^(-1) ( log _(2) y) =pi //2 and sin^(-1) ( log _(2) x ) + 2 cos^(-1) ( log_(2) y) = 11 pi //6 . then the value x^(-2) + y^(-2) equals .

The range of sin^(-1)[x^2+1/2]+cos^(-1)[x^2-1/2] , where [.] denotes the greatest integer function, is (a) {pi/2,pi} (b) {pi} (c) {pi/2} (d) none of these

cot^-1(-x) = pi - cot^-1x , x in R

Solve : cot^-1(2x)+cot^-1(3x)=pi/4