(N/A) The electronic configuration of an element with atomic number $16$ is $2, 8, 6$.
$1$. Period Number: The number of shells occupied by electrons determines the period number. Since this element has $3$ shells $(K, L, M)$, it belongs to the $3^{rd}$ period.
$2$. Group Number: For elements with more than $2$ valence electrons, the group number is calculated as $10 + \text{valence electrons}$. Here, the number of valence electrons is $6$, so the group number is $10 + 6 = 16$.
$3$. Valency: Valency is determined by the number of electrons required to complete the outermost shell (octet rule). For elements with $5, 6,$ or $7$ valence electrons, the valency is $8 - \text{valence electrons}$. Thus, the valency is $8 - 6 = 2$.