Find the interval of x such that ∣∣x2−3x−1x2+x+1∣∣<3 is satisfied is
(−∞,−2)∪(−1,∞)
[85,2]∪[52,∞]
(−5,−2)∪(2,5)
None of these
As x2+x+1>0∀x, we get |x2−3x−1|<3(x2+x+1) ⇔−3(x2+x+1)<x2−3x−1<3(x2+x+1) ⇔−2<4x2 and 2x2+6x+4>0 ⇔x2+3x+2>0 ⇔ x < -2 or x > -1
If x=1√3+1 then the value of x+1x is
The co-ordinates of the extremities of the latus rectum of the parabola 5y2=4x are