If $α a n d β$ are the zeroes of the quadratic polynomial $2 S^{2} - 8 S + 4$ , then the value of $\frac{α}{β} + \frac{β}{α} + 2 (\frac{1}{α} + \frac{1}{β}) + 3 α β$ is ___.

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Solution

The correct option is C 16
Given, $f (S) = 2 S^{2} - 8 S + 4$ .
Let $α a n d β$ be its zeroes.
$∴ α + β = \frac{8}{2} = 4 a n d α β = \frac{4}{2} = 2$
Now,
$\frac{α}{β} + \frac{β}{α} + 2 (\frac{1}{α} + \frac{1}{β}) + 3 α β$

$= \frac{α^{2} + β^{2}}{α β} + 2 (\frac{α + β}{α β}) + 3 α β$

$= \frac{(α + β)^{2} - 2 α β}{α β} + 2 (\frac{α + β}{α β}) + 3 α β$

$[(α + β)^{2} = α^{2} + β^{2} + 2 α β]$

$= \frac{(4)^{2} - 2 \times 2}{2} + 2 (\frac{4}{2}) + 3 \times 2$

= 6 + 4 + 6 = 16

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