JEE Advance - Mathematics (1990 - No. 9)

The equation $$\left( {\cos p - 1} \right){x^2} + \left( {\cos p} \right)x + \sin p = 0\,$$ In the variable x, has real roots. Then p can take any value in the interval

$$\left( {0,2\pi } \right)\,$$

$$\left( { - \pi ,0} \right)\,\,\,$$

$$\left[ { - {\pi \over 2},{\pi \over 2}} \right]\,$$

$$\left( {0,\pi } \right)$$

JEE Advance - Mathematics (1990 - No. 9)

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