Let $A$ = ${x$ $\in Z : 0 \leq x \leq 12$ }. Show that
$R = {(a, b) : a, b \in A, | a - b | is divisible by 4}$ is an equivalence relation. Find the set of all elements related to $1$ . Also write the equivalence class $[2]$ .

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Solution

We have $R = {(a, b) : a, b \in A, | a - b | is divisible by 4}$ , where $a, b \in {0, 1, 2, 3, . . . ., 12}$ . For any $a \in$ A, we have

$| a - a | = 0$ , which is divisible by $4$

$\Rightarrow (a, a) \in R$ .

So, $R$ is reflexive.

For any $(a, b) \in R$

$| a - b |$ is divisible by $4$

$\Rightarrow | a - b | = 4 λ$ for some $λ \in N$
$\Rightarrow | b - a | = 4 λ$ for some $λ \in N [∵ | a - b | = | b - a |]$
$\Rightarrow (b, a) \in R$

So, $R$ is symmetric.

Let $(a, b) \in R a n d (b, c) \in R$ , then

$| a - b |$ is divisible by $4$ and $| b - c |$ is divisible by $4$

$\Rightarrow | a - b | = 4 λ$ and $| b - c | = 4 μ$

$∵ a - b$ and $b - c$ are both multiples of $4$
$∴ a - b + b - c = a - c is a multiple of 4$
$\Rightarrow | a - c |$ is divisible by $4$

$\Rightarrow (a, c) \in$ R

So, $R$ is transitive.

Hence, $R$ is an equivalence relation.

Let $x$ be an element of A such that $(x, 1) \in R,$ then $| x - 1 |$ is divisible by $4$

$\Rightarrow | x - 1 | = 0, 4, 8, 12$

$\Rightarrow x - 1 = 0, 4, 8, 12$

$\Rightarrow x = 1, 5, 9$

Thus, elements related to 1 are ${1, 5, 9}$ .

Also, $| \begin{matrix} x - 2 \end{matrix} |$ is divisible by $4$

$\Rightarrow | \begin{matrix} x - 2 \end{matrix} | = 0, 4, 8, 12$

$\Rightarrow x - 2 = 0, 4, 8, 12$

$\Rightarrow x = 2, 6, 10$

Hence, the equivalence class $[2] = {2, 6, 10}$

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Let A = {x ∈ Z:0≤x≤12}. Show that R={(a,b):a,b∈A,|a−b| is divisible by 4} is an equivalence relation. Find the set of all elements related to 1. Also write the equivalence class [2].

Let $A$ = ${x$ $\in Z : 0 \leq x \leq 12$ }. Show that
$R = {(a, b) : a, b \in A, | a - b | is divisible by 4}$ is an equivalence relation. Find the set of all elements related to $1$ . Also write the equivalence class $[2]$ .