For the equation $3 x^{2} + p x + 3 = 0$ , the roots are real and $1$ root is the square of the other, Find $p$ ?

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Solution

Step 1: Form the equation
The given equation is $3 x^{2} + p x + 3 = 0$
where $a = 3, b = p$ and $c = 3$
Let us assume the roots of the given equation are $y$ and $y^{2}$ .
As per the given equation
Sum of the roots $- \frac{b}{a}$ is
$(y + y^{2}) = - \frac{p}{3} \dots \dots \dots \dots \dots \dots \dots \dots . (1)$
Product of the roots $\frac{c}{a}$ is
$y^{3} = 1$
$\Rightarrow y = 1$
Step 2: Calculate $p$
Substituting the value of $y$ on equation $(1)$ ,
$1 + 1 = - \frac{p}{3}$
$\Rightarrow$ $p = - 6$
Hence the value of $p$ is $- 6$ .

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