Question 1: Determine whether each of the following
relations are reflexive, symmetric and transitive:
(i)Relation R in the set A = {1, 2, 3…13, 14} defined as
R = {(x, y):
3x − y = 0}
(ii) Relation R in the set N of natural numbers defined as
R = {(x, y): y = x + 5 and x < 4}
(iii) Relation R in the set A = {1, 2, 3, 4, 5, 6} as
R = {(x, y): y is divisible by x}
(iv) Relation R in the set Z of all integers defined as
R = {(x, y): x − y is as integer}
(v) Relation R in the set A of human beings in a town at a
particular time given by
(a) R = {(x, y): x and y work at the same place}
(b) R = {(x, y): x and y live in the same locality}
(c) R = {(x, y): x is
exactly 7 cm taller than y}
(d) R = {(x, y): x is wife of y}
(e) R = {(x, y): x is father of y}
Answer:
(i) A =
{1, 2, 3 … 13, 14}
R = {(x, y):
3x − y =
0}
Writing relation R in roster form we get
∴R
= {(1, 3), (2, 6), (3, 9), (4, 12)}
R is not reflexive since (1, 1), (2, 2) … (14, 14) ∉
R.
Also, R is not symmetric as (1, 3) ∈R, but (3, 1) ∉
R. [3(3) − 1 ≠ 0]
Also, R is not transitive as (1, 3), (3, 9) ∈R, but (1, 9) ∉
R.
[3(1) − 9 ≠ 0]
Therefore, R is neither reflexive, nor symmetric, nor
transitive.
(ii) R = {(x, y): y = x +
5 and x < 4}
Writing relation R in roster form we get
R= {(1, 6), (2, 7), (3, 8)}
Here (1, 1) ∉ R.
∴R
is not reflexive.
(1, 6) ∈ R
But (6, 1) ∉ R.
∴R
is not symmetric.
Now, since there is no pair in R such that (x, y)
and (y, z)
∈R,
then (x, z)
cannot belong to R.
∴
R is not transitive.
Therefore, R is neither reflexive, nor symmetric, nor transitive.
(iii) A =
{1, 2, 3, 4, 5, 6}
R = {(x, y): y is divisible by x}
We know that any number (a) is divisible by itself. So (a, a)
∈R
∴R
is reflexive.
Now, (3, 6) ∈R
[as 6 is divisible by 3]
But, (6, 3) ∉ R. [as 3 is not divisible by 6]
∴R
is not symmetric.
Let (x, y),
(y, z)
∈
R. Then, y is
divisible by x and z is divisible by y.
∴z is divisible by x
⇒
(x, z)
∈R
∴R
is transitive.
Therefore, R is reflexive and transitive but not symmetric.
(iv) R = {(x, y): x − y is
an integer}
Now, for every x ∈ Z,
(x, x)
∈R
as x − x = 0 is an integer.
∴R
is reflexive.
Now, for every x, y ∈ Z if (x, y) ∈ R, then x − y is an integer.
⇒
−(x − y) is also an integer⇒ (y − x) is an integer.
∴
(y, x)
∈
R
∴R
is symmetric.
Now, Let (x, y)
and (y, z)
∈R,
where x, y, z ∈ Z.
⇒
(x − y) and (y − z)
are integers.
⇒ x − z = (x − y) + (y − z)
is an integer.
∴
(x, z)
∈R
∴R
is transitive.
Therefore, R is reflexive, symmetric, and transitive.
(v) (a) R = {(x, y): x and y work
at the same place}
(x, x)
∈
R
∴
R is reflexive.
If (x, y)
∈
R, then x and y work at the same place.
⇒ y and x work at the same place.
⇒
(y, x)
∈
R.
∴R
is symmetric.
Now, let (x, y),
(y, z)
∈
R
⇒ x and y work at the same place and y and z work
at the same place.
⇒ x and z work at the same place.
⇒
(x, z)
∈R
∴
R is transitive.
Therefore, R is reflexive, symmetric, and transitive.
(b) R = {(x, y): x and y live
in the same locality}
Clearly (x, x)
∈
R as x and x is the same human being.
∴
R is reflexive.
If (x, y)
∈R,
then x and y live in the same locality.
⇒ y and x live in the same locality.
⇒
(y, x)
∈
R
∴R
is symmetric.
Now, let (x, y)
∈
R and (y, z)
∈
R.
⇒ x and y live in the same locality and y and z live
in the same locality.
⇒ x and z live in the same locality.
⇒
(x, z)
∈
R
∴
R is transitive.
Therefore, R is reflexive, symmetric, and transitive.
(c) R = {(x, y): x is exactly 7 cm taller than y}
Now, (x, x)
∉ R
Since human being x cannot
be taller than himself.
∴R
is not reflexive.
Now, let (x, y)
∈ R.
⇒ x is exactly 7 cm taller than y.
Then, y is
not taller than x.
∴
(y, x)
∉R
Indeed if x is
exactly 7 cm taller than y, then y is exactly 7 cm shorter than x.
∴R
is not symmetric.
Now, Let ( x, y),
(y, z)
∈
R.
⇒ x is exactly 7 cm taller than y and y is exactly 7 cm taller than z.
⇒ x is exactly 14 cm taller than z .
∴(x, z)
∉R
∴
R is not transitive.
Therefore, R is neither reflexive, nor symmetric, nor
transitive.
(d) R = {(x, y): x is the wife of y}
Now, ( x, x)
∉ R
Since x cannot
be the wife of herself.
∴R
is not reflexive.
Now, let (x, y)
∈
R
⇒ x is the wife of y.
Clearly y is
not the wife of x.
∴(y, x)
∉ R
Indeed if x is
the wife of y, then y is the husband of x.
∴
R is not transitive.
Let (x, y),
(y, z)
∈
R
⇒ x is the wife of y and y is
the wife of z.
This case is not possible. Also, this does not imply that x is the wife of z.
∴(x, z)
∉ R
∴R
is not transitive.
Therefore, R is neither reflexive, nor symmetric, nor
transitive.
(e) R = {(x, y): x is the father of y}
(a, a)
∉ R
Because a cannot
be the father of himself.
∴R
is not reflexive.
Now, let (x, y)
∈R.
⇒ x is the father of y.
⇒ y cannot be the father of y.
Indeed, y is
the son or the daughter of y.
∴(y, x)
∉ R
∴
R is not symmetric.
Now, let (x, y)
∈
R and (y, z)
∈
R.
⇒ x is the father of y and y is
the father of z.
⇒ x is not the father of z.
Indeed x is
the grandfather of z.
∴
(x, z)
∉ R
∴R
is not transitive.
Therefore, R is neither reflexive, nor symmetric, nor
transitive.
