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Q)

If the mean and the variance of a binomial variate X are 2 and 1 respectively, then the probability that X takes a values greater than or equal to one is :

$\begin{array}{1 1} \frac{1}{16} \\ \frac{9}{16} \\ \frac{3}{4} \\ \frac{15}{16} \end{array} $

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