The standard deviation of the first n natural numbers is

$\frac{n + 1}{2}$

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$\sqrt{\frac{n (n + 1)}{2}}$

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$\sqrt{\frac{n^{2} - 1}{12}}$

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none of these

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Solution

The correct option is C
$\sqrt{\frac{n^{2} - 1}{12}}$

S.D. of the first n natural numbers
$\sqrt{\frac{1}{n} \sum x^{2} - {(\frac{\sum x}{n})}^{2}} [∵ ¯ x = \frac{\sum x}{n}] = \sqrt{\frac{n (n + 1) (2 n + 1)}{6 n} - {(\frac{n (n + 1)}{2 n})}^{2}} = \sqrt{\frac{(n + 1) (2 n + 1)}{6} - {(\frac{(n + 1)}{2})}^{2}} = \sqrt{\frac{n + 1}{2} (\frac{2 n + 1}{3} - \frac{n + 1}{2})} = \sqrt{\frac{n + 1}{2} (\frac{4 n + 2 - 3 n - 3}{6})} = \sqrt{\frac{n^{2} - 1}{12}}$

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σ = \sqrt{\frac{n^{2} - 1}{12}}

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