Given that the roots of a quadratic equation are: \( \frac{4 \pm \sqrt{16-4 p^{2}}}{2 p} \) For which value(s) of \( p \) will the roots be non-real?

To determine the values of \( p \) for which the roots of the quadratic equation are non-real, we need to analyze the expression for the roots: \[ r = \frac{4 \pm \sqrt{16 - 4p^2}}{2p} \] The roots will be non-real if the expression under the square root (the discriminant) is negative. Therefore, we need to find when: \[ 16 - 4p^2 < 0 \] Let's solve this inequality step by step. 1. Rearranging the inequality gives us: \[ 16 < 4p^2 \] 2. Dividing both sides by 4: \[ 4 < p^2 \] 3. Taking the square root of both sides, we find: \[ 2 < |p| \] This means that \( p \) must be either greater than 2 or less than -2. Therefore, we can express this as: \[ p > 2 \quad \text{or} \quad p < -2 \] Thus, the values of \( p \) for which the roots of the quadratic equation are non-real are: \[ p \in (-\infty, -2) \cup (2, \infty) \]