NCERT Solutions For Class 12 Maths Chapter 1 – Class 12 Maths Relations and Functions

Students can prepare Class 12 Maths NCERT Solutions Chapter 1. Preparation plays a crucial role in every student’s life. If the student prepares well for the exam then the student gets a high score in the exam. Students can download Class 12 Maths NCERT Solutions Chapter 1 through this article. Here you can clarify all doubts regarding the questions and improve your knowledge of the concept. Here we provide the Class 12 Maths NCERT Solutions Chapter 1 Relations and Functions. You can complete your home assignments and also prepare for CBSE board exams. This chapter was totally designed by the best teachers who are experts in Maths. They give a complete explanation of each question. In this way, the students can understand the subject easily. NCERT Solutions For Class 12 Maths helps to prepare for CBSE board exams as well as JEE Mains, Advance. Here we have given chapter wise complete explanation.

Class 12 Maths NCERT Solutions Chapter 1 Relations and Functions:

  • 1. Relations and Functions
  • 1.1 Introduction
  • 1.2 Types of Relations
  • 1.3 Types of Functions
  • 1.4 Composition of Functions and Invertible Function
  • 1.5 Binary Operations

NCERT Solution For Class 12 Maths Chapter 1 Relations and Functions Ex:1.1

Class 12 Maths NCERT Solutions Chapter 1 Relations and Functions questions are solved by India’s best teachers. We have given step by step procedure to solve the question.

Question-1:

Determine whether each of the following relations is reflexive, symmetric, and transitive:

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A) Relation R in the set A= {1,2,3….13,14} defined as R={(X,Y): 3X-Y=0}

B) Relation R in the set N of natural numbers defined as R={(X, Y): Y=X+5 and X<4}

C) Relation R in the set of A= {1,2,3,4,5,6} as  R={(X,Y): is divisible by X}

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D) Relation R in the set of Z of all integers defined as R={(X, Y): X-Y  is as integer}

E) Relation R in the set A of human beings in a town of a particular time given by

  1. R={(X, Y):X and Y wok at the same place}
  2. R={(X, Y):X, Y live in the same locality}
  3. R={(X, Y):X is exactly 7cm taller than Y}
  4. R={(X, Y):X is the wife of Y}
  5. R={(X,Y):X is father of Y}

Answers:

Answer A)={1,2,3,4….13,14}

R={(X,Y):3X-Y=0}

R={(1,3),(2,6),(3,9),(4,12)}

R is not reflexive since (1,1),(1,2)….(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]

Hence R is neither reflexive nor symmetric nor transitive.

B) R={(X,Y): Y=X+5 and X<4 }={(1,6),(2,7),(3,8)}

it is seem that {1,1}∉R.

∴R is not reflexive

(1,6)∈R

But,

(1,6)∉R.

∴R is not symmetric.

Now, since there is no pair in R such that (X, Y) and (Y, Z)∈R, Then(X, Z) ca not belong to R.

∴R is not transitive.

Hence, R is neither reflexive, nor symmetric, nor transitive.

C) A={1,2,3,4,5,6}

R={(X,Y):Y is divisible by X}

We know that any number (X) is divisible by itself.

⇒ (X, X) ∈R

∴ R is reflexive

Now,

(2,4) ∈R [as 2 is not divisible bby4]

But,

(2,4)∉R. [ as  2 is not divisible by 4]

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.

Hence, R is reflexive, transitive, but not symmetric.

D) 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 ∈ 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),(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.

Hence, R is reflexive, symmetric, and transitive.

E)  (i) R={(X, Y): 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

Hence, R is reflexive, symmetric, and transitive.

(ii) 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.

Hence, R is reflexive, symmetric, and transitive.

(iii) R={(X.Y) : X is exactly 7 cm taller than Y}

Now,

(X.X) ∉R

Since human being X can not 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 7cm taller than Y, then Y is exactly 7cm 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.

Hence, R is neither reflexive, nor symmetric, nor transitive.

(iv) R={(X,Y) : X is wife of the Y}

Now,

(X, X)∉R

Since X can not 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.

Hence, R is neither reflexive, nor symmetric, nor transitive.

(v) R={(X,Y): X is the father of Y}

(X,X)∉R.

As X is cannot be the father himself.

∴R is not reflexive.

Now, let (X, Y)∈R.

⇒ X is the father of Y.

⇒ Y can not 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.

Hence, R is neither reflexive nor symmetric nor transitive.


Question 2:

Show that the Relation R in the set R of real numbers defined as

R={(a, b): a≤ b²} is neither reflexive nor symmetric nor transitive.

Answer:

R= {(a, b):a≤b²}

 

It can be observed thatClass 12 Maths NCERT Solutions Chapter 1 Ex.1.1 (a)

∴R is not reflexive.

Now, (1,4)∈R as 1 <4²

But 4 is not less than 1².

∴(4,1)∉R.

∴R is not symmetric.

Now,

(3,2), (2, 1.5)∈R.

(as 3 <2²=4 and 2<(1.5)²=2.25).

But, 3>(1.5)²=2.25

∴(3,1.5)∉R

∴R is not transitive.

Hence, R is neither reflexive, nor symmetric, nor transitive.


Question 3:

Check whether the relation R defined in the set {1,2,3,4,5,6,} as

R={(a, b):b = a+1} is reflexive, symmetric, or transitive.

Answer:

Let A= {1,2,3,4,5,6,}

A relation R is defined on the set A as

R={(a, b):b= a+1}

∴R ={(1,2), (2,3), (3,4), (4,5), (5,6)}

We can fins (a, a)∉R, Where a ∈ A.

For instance,

(1,1), (2,2), (3,3), (4,4), (5,5), (6,6) ∉ R

∴ R is not reflexive.

It can be observed that (1,2) ∈ R but, (2,1) ∉ R.

∴ R is not symmetric.

Now, (1,2) (2,3) ∈ R

But, (1,3) ∉R.

∴ R is not transitive.

Hence, R is neither reflexive, nor symmetric, nor transitive.


Question 4:

Show that the relation R in R defined as R= {(a, b):a≤b³} is reflexive, symmetric or transitive.

Answer:

R={(a, b):a≤b³

Clearly (a, a) ∈R as a=a

∴ R is reflexive.

Now, (2,4) ∈ R (as 2 <4).

But, (4,2) ∉R as 4 is grater than 2.

∴ R is not symmetric.

Now, let (a, b), (b, c)∈R

Then,

a≤ b  and b≤ c

⇒ a≤ c

⇒(a, c)∈ R

∴ R is transitive.

Hence, R is reflexive, and transitive but not symmetric.


Question 5:

Check whether the relation R in R defined as R={(a, b): a≤ b³} is reflexive, symmetric or transitive.

Answer:

R={(a, b):a≤b³}

It is observed that

∴R is not reflexive.

Now,

(1,2)∈R (as 1<2³=8)

But, (2,1) ∉R (as 2³> 1)

∴R is not symmetric.

We have

But,

∴ R is not transitive.

Hence, R is neither reflexive, nor symmetric nor transitive.


Question 6:

Show that the relation R in the set {1,2,3} given by R = {(1,2), (2,1)} is symmetric

but neither reflexive nor transitive.

Answer:

Let A = {1,2,3}

A relation R on A is defined as R ={(1,2), (2,1)}

It is seen that (1,1), (2,2), (3,3) ∉ R.

∴ R is not reflexive.

Now, as (1,2) ∈R and (2,1) ∈ R, then R is symmetric.

Now, (1,2) and (2,1) ∈ R.

However,

(1,1) ∉ R.

∴R is not transitive.

Hence, R is symmetric but neither reflexive nor transitive.


Question 7:

Show that the relation R in the set A of all the books in a library of a college, given by R ={(X,Y): X and Y have same number of pages} is an equivalence relation.

Answer:

Set A is the set of all books in the library of a college.

R={(X,Y): X and Y have the same number of pages}

Now, R is reflexive since, (X,X) ∈R as X and X has the same number of pages.

Let (X,Y)∈R⇒ X and Y have the same number of pages.

⇒ Y and X have the same number of pages.

⇒(Y,X)∈R

∴R is symmetric.

Now, let (X,Y) ∈R and (Y,Z)∈R

⇒ X and Y have the same number of pages and Y and Z have the same number of pages.

⇒X and Z have the same number of pages.

⇒(X,Z)∈R

∴R is transitive.

Hence, R is an equivalence relation.


Question 8:

Show that the relation R in the set A ={1,2,3,4,5} given by

, is an equivalence relation. Show that all the elements of {1,3,5} are related to each other and all the elements of {2,4} are related to each other.

But no element of {1,3,5} is related to any element {2,4}.

Answer:

A={1,2,3,4,5}

It is clear that any element a∈ A, we have (Which is even).

∴R is reflexive.

Let (a, b)∈R

∴R is symmetric.

Now, let (a, b)∈R and (b, c)  ∈R

⇒(a, c) ∈R

∴R is transitive.

Hence, R is an equivalence relation.

Now, all the elements of the sets {1,2,3} are related to each other as all the elements of this subset are odd. Thus, the modulus of the difference between any two elements will be even.

Similarly, all elements of the set {2,4} are related to each other as all the elements of this subset are even.

Also, no element of the subset [1,3,5} can be related to any element of {2,4} as all elements of {1,3,5} are odd and all elements of {2,4} are even. Thus, the modulus of the difference between the two elements (from each of these two subsets) will not be even.


Question 9:

Show that each of the relation R in the set

is an equivalence relation. Find the set of all elements related to 1 in each case.

Answer:

For any element a∈ A, we have (a, a)∈R as is a multiple of 4.

∴R is reflexive.

Now, let (a, b) ∈ R ⇒ is a multiple of 4.

⇒ (b, a) ∈R

∴R is symmetric.

Now, let (a, b), (b, c) ∈R.

⇒ (a, c) ∈ R

∴R is transitive.

Hence, R is an equivalence relation.

The set of elements related to 1 is {1,5,9} since

  1.  R={(a, b): a=b}

For any element a∈ A, we have (a, a) ∈ R, since a=a.

∴R is reflexive.

Now, let (a, b) ∈ R.

⇒ a=b

⇒b=a

⇒ (b, a) ∈ R

∴ R is symmetric.

Now, let (a, b) ∈ R and (b, c) ∈ R.

⇒ a=b and b=c.

⇒ a=c.

⇒ (a, c) ∈ R.

∴ R is transitive.

Hence, R is an equivalence relation.

The elements in R that are related to 1 will be those elements from set A which are equal to 1.

Hence, the set of elements related to 1 is {1}.


Question 10:

Give an example of a relation. Which is

    1.  Symmetric but neither reflexive nor transitive.
    2. Transitive but neither reflexive nor symmetric.
    3. Reflexive and symmetric bit not transitive.
    4. Reflexive and transitive but not symmetric
    5. Symmetric and transitive but not transitive.

Answer:

(i) Let A = {5, 6, 7}.

Define a relation R on A as R = {(5, 6), (6, 5)}.

Relation R is not reflexive as (5, 5), (6, 6), (7, 7) ∉ R.

Now, as (5, 6) ∈ R and also (6, 5) ∈ R, R is symmetric.

(5, 6), (6, 5) ∈ R, but (5, 5) ∉ R

∴R is not transitive.

Hence, relation R is symmetric but not reflexive or transitive.

(ii)Consider a relation R in defined as:

R = {(a, b): a < b}

For any a ∈ R, we have (a, a) ∉ R since a cannot be strictly less than a itself. In fact, a = a.

∴ R is not reflexive.

Now,

(1, 2) ∈ R (as 1 < 2)

But, 2 is not less than 1.

∴ (2, 1) ∉ R

∴ R is not symmetric.

Now, let (a, b), (b, c) ∈ R.

⇒ a < b and b < c

⇒ a < c

⇒ (a, c) ∈ R

∴R is transitive.

Hence, relation R is transitive but not reflexive and symmetric.

(iii)Let A = {4, 6, 8}.

Define a relation R on A as:

A = {(4, 4), (6, 6), (8, 8), (4, 6), (6, 4), (6, 8), (8, 6)}

Relation R is reflexive since for every a ∈ A, (aa) ∈R i.e., (4, 4), (6, 6), (8, 8)} ∈ R.

Relation R is symmetric since (ab) ∈ R ⇒ (ba) ∈ R for all ab ∈ R.

Relation R is not transitive since (4, 6), (6, 8) ∈ R, but (4, 8) ∉ R.

Hence, relation R is reflexive and symmetric but not transitive.

(iv) Define a relation R in R as:

R = {a, b): a3 ≥ b3}

Clearly (a, a) ∈ R as a3 = a3.

∴R is reflexive.

Now,

(2, 1) ∈ R (as 23 ≥ 13)

But,

(1, 2) ∉ R (as 13 < 23)

∴ R is not symmetric.

Now,

Let (a, b), (b, c) ∈ R.

⇒ a3 ≥ b3 and b3 ≥ c3

⇒ a3 ≥ c3

⇒ (a, c) ∈ R

∴R is transitive.

Hence, relation R is reflexive and transitive but not symmetric.

(v) Let A = {−5, −6}.

Define a relation R on A as:

R = {(−5, −6), (−6, −5), (−5, −5)}

Relation R is not reflexive as (−6, −6) ∉ R.

Relation R is symmetric as (−5, −6) ∈ R and (−6, −5}∈R.

It is seen that (−5, −6), (−6, −5) ∈ R. Also, (−5, −5) ∈ R.

∴The relation R is transitive.

Hence, relation R is symmetric and transitive but not reflexive.


Question 11:

Show that the relation R in the set A of points in a plane given by R = {(P, Q): distance of the point P from the origin is same as the distance of the point Q from the origin}, is an equivalence relation. Further, show that the set of all point related to a point P ≠ (0, 0) is the circle passing through P with origin as centre.

Answer:

R = {(P, Q): distance of point P from the origin is the same as the distance of point Q from the origin}

Clearly, (P, P) ∈ R since the distance of point P from the origin is always the same as the distance of the same point P from the origin.

∴R is reflexive.

Now,

Let (P, Q) ∈ R.

⇒ The distance of point P from the origin is the same as the distance of point Q from the origin.

⇒ The distance of point Q from the origin is the same as the distance of point P from the origin.

⇒ (Q, P) ∈ R

∴R is symmetric.

Now,

Let (P, Q), (Q, S) ∈ R.

⇒ The distance of points P and Q from the origin is the same and also, the distance of points Q and S from the origin is the same.

⇒ The distance of points P and S from the origin is the same.

⇒ (P, S) ∈ R

∴R is transitive.

Therefore, R is an equivalence relation.

The set of all points related to P ≠ (0, 0) will be those points whose distance from the origin is the same as the distance of point P from the origin.

In other words, if O (0, 0) is the origin and OP = k, then the set of all points related to P is at a distance of k from the origin.

Hence, this set of points forms a circle with the centre as the origin and this circle passes through point P.


Question 12:

Show that the relation R defined in the set A of all triangles as R = {(T1, T2): T1 is similar to T2}, is equivalence relation. Consider three right angle triangles T1 with sides 3, 4, 5, T2 with sides 5, 12, 13 and T3 with sides 6, 8, 10. Which triangles among T1, T2 and T3 are related?

Answer:

R = {(T1, T2): T1 is similar to T2}

R is reflexive since every triangle is similar to itself.

Further, if (T1, T2) ∈ R, then T1 is similar to T2.

⇒ T2 is similar to T1.

⇒ (T2, T1) ∈R

∴R is symmetric.

Now,

Let (T1, T2), (T2, T3) ∈ R.

⇒ T1 is similar to T2 and T2 is similar to T3.

⇒ T1 is similar to T3.

⇒ (T1, T3) ∈ R

∴ R is transitive.

Thus, R is an equivalence relation.

Now, we can observe that:

NCERT Solutions Class 12 Maths Chapter 1 Q.12

∴The corresponding sides of triangles T1 and T3 are in the same ratio.

Then, triangle T1 is similar to triangle T3.

Hence, T1­ is related to T3.


Question 13:

Show that the relation R defined in the set A of all polygons as R = {(P1, P2): P1 and P2 have same number of sides}, is an equivalence relation. What is the set of all elements in A related to the right angle triangle T with sides 3, 4 and 5?

Answer:

R = {(P1, P2): P1 and P2 have same the number of sides}

R is reflexive since (P1, P1) ∈ R as the same polygon has the same number of sides with itself.

Let (P1, P2) ∈ R.

⇒ P1 and P have the same number of sides.

⇒ P2 and P1 have the same number of sides.

⇒ (P2, P1) ∈ R

∴R is symmetric.

Now,

Let (P1, P2), (P2, P3) ∈ R.

⇒ P1 and P2 have the same number of sides. Also, P2 and P3 have the same number of sides.

⇒ P1 and P3 have the same number of sides.

⇒ (P1, P3) ∈ R

∴R is transitive.

Hence, R is an equivalence relation.

The elements in A related to the right-angled triangle (T) with sides 3, 4, and 5 are those polygons which have 3 sides (since T is a polygon with 3 sides).

Hence, the set of all elements in A related to triangle T is the set of all triangles.


Question 14:

Let L be the set of all lines in XY plane and R be the relation in L defined as R = {(L1, L2): L1 is parallel to L2}. Show that R is an equivalence relation. Find the set of all lines related to the line y = 2x + 4.

Answer:

R = {(L1, L2): L1 is parallel to L2}

R is reflexive as any line L1 is parallel to itself i.e., (L1, L1) ∈ R.

Now,

Let (L1, L2) ∈ R.

⇒ L1 is parallel to L2.

⇒ L2 is parallel to L1.

⇒ (L2, L1) ∈ R

∴ R is symmetric.

Now,

Let (L1, L2), (L2, L3) ∈R.

⇒ L1 is parallel to L2. Also, L2 is parallel to L3.

⇒ L1 is parallel to L3.

∴R is transitive.

Hence, R is an equivalence relation.

The set of all lines related to the line y = 2x + 4 is the set of all lines that are parallel to the line y = 2x + 4.

Slope of line y = 2x + 4 is m = 2

It is known that parallel lines have the same slopes.

The line parallel to the given line is of the form y = 2x + c, where c ∈R.

Hence, the set of all lines related to the given line is given by y = 2x + c, where c ∈ R.


Question 15:

Let R be the relation in the set {1, 2, 3, 4} given by R = {(1, 2), (2, 2), (1, 1), (4, 4), (1, 3), (3, 3), (3, 2)}. Choose the correct answer.

(A) R is reflexive and symmetric but not transitive.

(B) R is reflexive and transitive but not symmetric.

(C) R is symmetric and transitive but not reflexive.

(D) R is an equivalence relation.

Answer:

R = {(1, 2), (2, 2), (1, 1), (4, 4), (1, 3), (3, 3), (3, 2)}

It is seen that (a, a) ∈ R, for every a ∈{1, 2, 3, 4}.

∴ R is reflexive.

It is seen that (1, 2) ∈ R, but (2, 1) ∉ R.

∴R is not symmetric.

Also, it is observed that (a, b), (b, c) ∈ R ⇒ (a, c) ∈ R for all a, b, c ∈ {1, 2, 3, 4}.

∴ R is transitive.

Hence, R is reflexive and transitive but not symmetric.

The correct answer is B.


Question 16:

Let R be the relation in the set given by R = {(a, b): a = b − 2, b > 6}. Choose the correct answer.

(A) (2, 4) ∈ R (B) (3, 8) ∈R (C) (6, 8) ∈R (D) (8, 7) ∈ R

Answer:

R = {(a, b): a = b − 2, b > 6}

Now, since b > 6, (2, 4) ∉ R

Also, as 3 ≠ 8 − 2, (3, 8) ∉ R

And, as 8 ≠ 7 − 2

 (8, 7) ∉ R

Now, consider (6, 8).

We have 8 > 6 and also, 6 = 8 − 2.

∴(6, 8) ∈ R

The correct answer is C.

NCERT Solutions For Class 12 Maths Chapter 1 – Exercise 1.2

Question 1:

Show that the function defined by  fR* → R* defined by NCERT Solutions Class 12 Maths Chapter 1 Ex 1.2 Q 1(a) is one-one and onto, where R* is the set of all non-zero real numbers. Is the result true, if the domain R* is replaced by N with co-domain being same as R*?
Answer:
f: R* → R* is defined by .
One-one:
NCERT Solutions Class 12 Maths Chapter 1 Ex 1.2 Q1(b)
∴f is one-one
It is clear that for  y R*, there exists
NCERT Solutions Class 12 Maths Chapter 1 Ex 1.2 Q 1(c) such that
NCERT Solutions Class 12 Maths Chapter 1 Ex 1.2 Q 1(d)

f is onto.

Thus, the given function (f) is one-one and onto.

Now, consider function g: N → R*defined by
Class 12 Maths NCERT Solutions Chapter 1 Ex.1.1 (a)

We have,
NCERT Solutions Class 12 Maths Chapter 1 Ex 1.2 Q 1(f)

∴g is one-one.

Further, it is clear that g is not onto as for 1.2 ∈R* there does
not exit any x in N such that g(x) =NCERT Solutions Class 12 Maths Chapter 1 Ex 1.2 Q 1(g)
Hence, function g is one-one but not onto.


Question 2:

Check the injectivity and surjectivity of the following functions:

(i) f: N → N given by f(x) = x2

(ii) f: Z → Z given by f(x) = x2

(iii) f: R → R given by f(x) = x2

(iv) f: → N given by f(x) = x3

(v) f: Z → Z given by f(x) = x3
Answer:

(i) f: N → N is given by,

f(x) = x2

It is seen that for x, y ∈N, f(x) = f(y) ⇒ x2 = y2 ⇒ x = y.

∴f is injective.

Now, 2 ∈ N. But, there does not exist any x in N such that f(x) = x2 = 2.

∴ f is not surjective.

Hence, function f is injective but not surjective.

(ii) f: Z → Z is given by,

f(x) = x2

It is seen that f(−1) = f(1) = 1, but −1 ≠ 1.

∴ f is not injective.

Now,−2 ∈ Z. But, there does not exist any element x ∈Z such that f(x) = x2 = −2.

∴ f is not surjective.

Hence, function f is neither injective nor surjective.

(iii)f: R → R is given by,

f(x) = x2

It is seen that f(−1) = f(1) = 1, but −1 ≠ 1.

∴ f is not injective.

Now,−2 ∈ R. But, there does not exist any element x ∈ R such that f(x) = x2 = −2.

∴ f is not surjective.

Hence, function f is neither injective nor surjective.

(iv)f: N → N given by,

f(x) = x3

It is seen that for x, y ∈N, f(x) = f(y) ⇒ x3 = y3 ⇒ x = y.

∴f is injective.

Now, 2 ∈ N. But, there does not exist any element x in domain N such that f(x) = x3 = 2.

∴ f is not surjective

Hence, function f is injective but not surjective.

(v) f: → Z is given by,

f(x) = x3

It is seen that for x, y ∈ Z, f(x) = f(y) ⇒ x3 = y3 ⇒ x = y.

∴ f is injective.

Now, 2 ∈ Z. But, there does not exist any element x in domain Z such that f(x) = x3 = 2.

∴ f is not surjective.

Hence, function f is injective but not surjective.


Question 3:
Prove that the Greatest Integer Function f: R → R given by f(x) = [x], is neither one-once nor onto, where [x] denotes the greatest integer less than or equal to x.
Answer:

f: R → R is given by,

f(x) = [x]

It is seen that f(1.2) = [1.2] = 1, f(1.9) = [1.9] = 1.

∴ f(1.2) = f(1.9), but 1.2 ≠ 1.9.

∴ f is not one-one.

Now, consider 0.7 ∈ R.

It is known that f(x) = [x] is always an integer. Thus, there does not exist any element x ∈ R such that f(x) = 0.7.

∴ f is not onto.

Hence, the greatest integer function is neither one-one nor onto.


Questions 4:
Show that the Modulus Function f: R → R given by  NCERT Solutions Class 12 Maths Chapter 1 Ex 1.2 Q 4 is neither one-one nor onto, where NCERT Solutions Class 12 Maths Chapter 1 Ex 1.2 Q 4(a) is x, if x is positive or 0 and is − x if x is negative.
Answer:
f: R → R is given by,
NCERT Solutions Class 12 Maths Chapter 1 Ex 1.2 Q 4(b)
It is seen that NCERT Solutions Class 12 Maths Chapter 1 Ex 1.2 Q 4(c)

f(−1) = f(1), but −1 ≠ 1.

∴ f is not one-one.

Now, consider −1 ∈ R.
It is known that f(x) = is always non-negative. Thus, there does not exist any element x in domain R such that f(x) = = −1.

∴ f is not onto.

Hence, the modulus function is neither one-one nor onto.


Question 5:

Show that the Signum Function fR → R, given by
NCERT Solutions Class 12 Maths Chapter 1 Ex 1.2 Q 5

is neither one-one nor onto.
Answer:
f: R → R is given by,

It is seen that f(1) = f(2) = 1, but 1 ≠ 2.

f is not one-one.

Now, as f(x) takes only 3 values (1, 0, or −1) for the element −2 in co-domain R, there does not exist any x in domain R such that f(x) = −2.

∴ f is not onto.

Hence, the signum function is neither one-one nor onto.


Question 6:
Let A = {1, 2, 3}, B = {4, 5, 6, 7} and let f = {(1, 4), (2, 5), (3, 6)} be a function from A to B. Show that f is one-one.
Answer:

It is given that A = {1, 2, 3}, = {4, 5, 6, 7}.

f: A → B is defined as f = {(1, 4), (2, 5), (3, 6)}.

∴ f (1) = 4, f (2) = 5, f (3) = 6

It is seen that the images of distinct elements of A under f are distinct.

Hence, function f is one-one.


Question 7:

In each of the following cases, state whether the function is one-one, onto or bijective. Justify your answer.

(i) f→ R defined by f(x) = 3 − 4x

(ii) f→ R defined by f(x) = 1 + x2
Answer:
(i) f: R → R is defined as f(x) = 3 − 4x.
NCERT Solutions Class 12 Maths Chapter 1 Ex 1.2 Q 7

∴ f is one-one.
For any real number (y) in R, there exists NCERT Solutions Class 12 Maths Chapter 1 Ex 1.2 Q 7(a) in R such that
NCERT Solutions Class 12 Maths Chapter 1 Ex 1.2 Q 7(b)

is onto.

Hence, is bijective.

(ii) fR → R is defined as
NCERT Solutions Class 12 Maths Chapter 1 Ex 1.2 Q 7(c)
NCERT Solutions Class 12 Maths Chapter 1 Ex 1.2 Q 7(d)
NCERT Solutions Class 12 Maths Chapter 1 Ex 1.2 Q 7(e) does not imply that NCERT Solutions Class 12 Maths Chapter 1 Ex 1.2 Q 7(f)

For instance,
NCERT Solutions Class 12 Maths Chapter 1 Ex 1.2 Q 7(g)

∴ f is not one-one.

Consider an element −2 in co-domain R.
It is seen that NCERT Solutions Class 12 Maths Chapter 1 Ex 1.2 Q 7(h) is positive for all x ∈ R

Thus, there does not exist any x in domain R such that f(x) = −2.

∴ f is not onto.

Hence, f is neither one-one nor onto.


Question 8:

Let A and B be sets. Show that fA × B → × A such that (ab) = (ba) is bijective function.
Answer:

fA × B → B × A is defined as f(ab) = (ba).
NCERT Solutions Class 12 Maths Chapter 1 Ex 1.2 Q 8

∴ f is one-one.

Now, let (ba) ∈ B × A be any element.

Then, there exists (ab) ∈A × B such that f(ab) = (ba). [By definition of f]

∴ f is onto.

Hence, f is bijective.


Question 9:
Let f: N → N be defined by
NCERT Solutions Class 12 Maths Chapter 1 Ex 1.2 Q 9

State whether the function f is bijective. Justify your answer.
Answer:

fN → N is defined as

It can be observed that:

NCERT Solutions Class 12 Maths Chapter 1 Ex 1.2 Q 9(a)

∴ f is not one-one.

Consider a natural number (n) in co-domain N.

Case I: n is odd

n = 2r + 1 for some r ∈ N. Then, there exists 4+ 1∈N such that
NCERT Solutions Class 12 Maths Chapter 1 Ex 1.2 Q 9(b)

Case II: n is even

n = 2r for some r ∈ N. Then, there exists 4r ∈N such that
NCERT Solutions Class 12 Maths Chapter 1 Ex 1.2 Q 9(c)

∴ f is onto.

Hence, f is not a bijective function.


Question 10:
Let A = R − {3} and B = R − {1}. Consider the function f: A → B defined by NCERT Solutions Class 12 Maths Chapter 1 Ex 1.2 Q 10 Is f one-one and onto? Justify your answer.
Answer:
A = R − {3}, B = R − {1}
f: A → B is defined as
NCERT Solutions Class 12 Maths Chapter 1 Ex 1.2 Q 10(a)

∴ f is one-one.

Let y ∈B = R − {1}. Then, y ≠ 1.

The function is onto if there exists x ∈A such that f(x) = y.

Now,
 NCERT Solutions Class 12 Maths Chapter 1 Ex 1.2 Q 10(b)
Thus, for any ∈ B, there exists NCERT Solutions Class 12 Maths Chapter 1 Ex 1.2 Q 10(c) such that
NCERT Solutions Class 12 Maths Chapter 1 Ex 1.2 Q 10(d)

Hence, function f is one-one and onto.


Question 11:

Let fR → R be defined as f(x) = x4. Choose the correct answer.

(A) f is one-one onto (B) f is many-one onto

(C) f is one-one but not onto (D) f is neither one-one nor onto
Answer:
f: R → R is defined as NCERT Solutions Class 12 Maths Chapter 1 Ex 1.2 Q 11

Let x∈ R such that f(x) = f(y).
NCERT Solutions Class 12 Maths Chapter 1 Ex 1.2 Q 11(a) does not imply that NCERT Solutions Class 12 Maths Chapter 1 Ex 1.2 Q 11(b)

For instance,
NCERT Solutions Class 12 Maths Chapter 1 Ex 1.2 Q 11(c)

∴ f is not one-one.

Consider an element 2 in co-domain R. It is clear that there does not exist any x in domain R such that f(x) = 2.

∴ f is not onto.

Hence, function f is neither one-one nor onto.

The correct answer is D.


Question 12:

Let fR → R be defined as f(x) = 3x. Choose the correct answer.

(A) f is one-one onto (B) f is many-one onto

(C) f is one-one but not onto (D) f is neither one-one nor onto
Answer:

fR → R is defined as f(x) = 3x.

Let x∈ R such that f(x) = f(y).

⇒ 3x = 3y

⇒ x = y

is one-one.

Also, for any real number (y) in co-domain R, there exists NCERT Solutions Class 12 Maths Chapter 1 Ex 1.2 Q 12
in R such that NCERT Solutions Class 12 Maths Chapter 1 Ex 1.2 Q 12(a)

is onto.

Hence, function f is one-one and onto.

The correct answer is A.


NCERT Solutions For Class 12 Maths Chapter 1 – Exercise 1.3

 Question 1:

Let f: {1, 3, 4} → {1, 2, 5} and g: {1, 2, 5} → {1, 3} be given by = {(1, 2), (3, 5), (4, 1)} and = {(1, 3), (2, 3), (5, 1)}. Write down gof.

Answer:
The functions f: {1, 3, 4} → {1, 2, 5} and g: {1, 2, 5} → {1, 3} are defined as= {(1, 2), (3, 5), (4, 1)} and = {(1, 3), (2, 3), (5, 1)}.
NCERT Solutions Class 12 Maths Chapter 1 Ex 1.3 Q 1


Question 2:
Let fg and h be functions from to R. Show that
NCERT Solutions Class 12 Maths Chapter 1 Ex 1.3 Q 2
Answer:
To prove:
NCERT Solutions Class 12 Maths Chapter 1 Ex 1.3 Q 2(a)


Question 3:
Find goand fog, if
A) NCERT Solutions Class 12 Maths Chapter 1 Ex 1.3 Q 3
B) NCERT Solutions Class 12 Maths Chapter 1 Ex 1.3 Q 3(a)
Answer:
A)
NCERT Solutions Class 12 Maths Chapter 1 Ex 1.3 Q 3(c)
B)
NCERT Solutions Class 12 Maths Chapter 1 Ex 1.3 Q 3(c)


Question 4:
If NCERT Solutions Class 12 Maths Chapter 1 Ex 1.3 Q 4  show that f f(x) = x, for all NCERT Solutions Class 12 Maths Chapter 1 Ex 1.3 Q 4(a) What is the inverse of f?
Answer:
It is given that
NCERT Solutions Class 12 Maths Chapter 1 Ex 1.3 Q 4(b)
NCERT Solutions Class 12 Maths Chapter 1 Ex 1.3 Q 4(c)
Therefore. fof(x)=x, for all
fof=1

Hence, the given function f is invertible and the inverse of f is f itself.


Question 5:

State with reason whether following functions have inverse

(i) f: {1, 2, 3, 4} → {10} with

f = {(1, 10), (2, 10), (3, 10), (4, 10)}

(ii) g: {5, 6, 7, 8} → {1, 2, 3, 4} with

g = {(5, 4), (6, 3), (7, 4), (8, 2)}

(iii) h: {2, 3, 4, 5} → {7, 9, 11, 13} with

h = {(2, 7), (3, 9), (4, 11), (5, 13)}
Answer:

(i) f: {1, 2, 3, 4} → {10}defined as:

f = {(1, 10), (2, 10), (3, 10), (4, 10)}

From the given definition of f, we can see that f is a many one function as: f(1) = f(2) = f(3) = f(4) = 10

∴f is not one-one.

Hence, function f does not have an inverse.

(ii) g: {5, 6, 7, 8} → {1, 2, 3, 4} defined as:

g = {(5, 4), (6, 3), (7, 4), (8, 2)}

From the given definition of g, it is seen that g is a many one function as: g(5) = g(7) = 4.

∴g is not one-one,

Hence, function g does not have an inverse.

(iii) h: {2, 3, 4, 5} → {7, 9, 11, 13} defined as:

h = {(2, 7), (3, 9), (4, 11), (5, 13)}

It is seen that all distinct elements of the set {2, 3, 4, 5} have distinct images under h.

∴Function h is one-one.

Also, h is onto since for every element y of the set {7, 9, 11, 13}, there exists an element x in the set {2, 3, 4, 5}such that h(x) = y.

Thus, h is a one-one and onto function. Hence, h has an inverse.


Question 6:
Show that f: [−1, 1] → R, given by NCERT Solutions Class 12 Maths Chapter 1 Ex 1.3 Q 6 is one-one. Find the inverse of the function f: [−1, 1] → Range f.
(Hint: For y ∈Range fy = , for some x in [−1, 1], i.e., NCERT Solutions Class 12 Maths Chapter 1 Ex 1.3 Q 6(a)
Answer:
f: [−1, 1] → R is given as
Let f(x) = f(y).
NCERT Solutions Class 12 Maths Chapter 1 Ex 1.3 Q 6(b)

∴ f is a one-one function.

It is clear that f: [−1, 1] → Range f is onto.

∴ f: [−1, 1] → Range f is one-one and onto and therefore, the inverse of the function:

f: [−1, 1] → Range exists.

Let g: Range f → [−1, 1] be the inverse of f.

Let y be an arbitrary element of range f.

Since f: [−1, 1] → Range f is onto, we have:
NCERT Solutions Class 12 Maths Chapter 1 Ex 1.3 Q 6(c)

Now, let us define g: Range f → [−1, 1] as
NCERT Solutions Class 12 Maths Chapter 1 Ex 1.3 Q 6(d)
∴gof=NCERT Solutions Class 12 Maths Chapter 1 Ex 1.3 Q 6(e) and fog = NCERT Solutions Class 12 Maths Chapter 1 Ex 1.3 Q 6(f)
f−1 = g
NCERT Solutions Class 12 Maths Chapter 1 Ex 1.3 Q 6(g)


Question 7:

Consider fR → R given by f(x) = 4x + 3. Show that f is invertible. Find the inverse of f.
Answer:

fR → R is given by,

f(x) = 4x + 3

One-one:

Let f(x) = f(y).
NCERT Solutions Class 12 Maths Chapter 1 Ex 1.3 Q 7

∴ f is a one-one function.

Onto:

For y ∈ R, let y = 4x + 3.
NCERT Solutions Class 12 Maths Chapter 1 Ex 1.3 Q 7(a)
Therefore, for any ∈ R, there exists NCERT Solutions Class 12 Maths Chapter 1 Ex 1.3 Q 7(b)  such that
NCERT Solutions Class 12 Maths Chapter 1 Ex 1.3 Q 7(c)

∴ f is onto.

Thus, f is one-one and onto and therefore, f−1 exists.
Let us define gR→ R by

Hence, f is invertible and the inverse of f is given by


Question 8:
Consider f: R→ [4, ∞) given by f(x) = x2 + 4. Show that f is invertible with the inverse f−1 of given by  where R+ is the set of all non-negative real numbers.
Answer:

fR+ → [4, ∞) is given as f(x) = x2 + 4.

One-one:

Let f(x) = f(y).

∴ f is a one-one function.

Onto:

For y ∈ [4, ∞), let y = x2 + 4.

Therefore, for any ∈ R, there exists such that

∴ f is onto.

Thus, f is one-one and onto and therefore, f−1 exists.

Let us define g: [4, ∞) → Rby,


Hence, f is invertible and the inverse of f is given by


Question 9:
Consider f: R+ → [−5, ∞) given by f(x) = 9x2 + 6x − 5. Show that f is invertible with
Answer:

fR+ → [−5, ∞) is given as f(x) = 9x2 + 6x − 5.

Let y be an arbitrary element of [−5, ∞).

Let y = 9x2 + 6− 5.

f is onto, thereby range f = [−5, ∞).
Let us define g: [−5, ∞) → R+ as
We now have:


and
Hence, f is invertible and the inverse of f is given by


Question 10:

Let fX → Y be an invertible function. Show that f has unique inverse.

(Hint: suppose g1 and g2 are two inverses of f. Then for all y ∈ Y,

fog1(y) = IY(y) = fog2(y). Use one-one ness of f).
Answer:
Let fX → Y be an invertible function.
Also, suppose f has two inverses (say

Then, for all y ∈Y, we have:

Hence, f has a unique inverse.


Question11:
Consider f: {1, 2, 3} → {abc} given by f(1) = af(2) = b and f(3) = c. Find f−1 and show that (f−1)−1 = f.
Answer:

Function f: {1, 2, 3} → {abc} is given by,

f(1) = af(2) = b, and f(3) = c

If we define g: {abc} → {1, 2, 3} as g(a) = 1, g(b) = 2, g(c) = 3, then we have:

and

where X = {1, 2, 3} and Y= {abc}.

Thus, the inverse of exists and f−1 = g.

f−1: {abc} → {1, 2, 3} is given by,

f−1(a) = 1, f−1(b) = 2, f-1(c) = 3

Let us now find the inverse of f−1 i.e., find the inverse of g.

If we define h: {1, 2, 3} → {abc} as

h(1) = ah(2) = bh(3) = c, then we have:

where X = {1, 2, 3} and Y = {abc}.

Thus, the inverse of exists and g−1 = h ⇒ (f−1)−1 = h.

It can be noted that h = f.

Hence, (f−1)−1 = f.


Question 12:

Let fX → Y be an invertible function. Show that the inverse of f−1 is f, i.e.,

(f−1)−1 = f.
Answer:

Let fX → Y be an invertible function.

Then, there exists a function gY → X such that gof = IXand fo= IY.

Here, f−1 = g.

Now, gof = IXand fo= IY

⇒ f−1of = IXand fof−1= IY

Hence, f−1Y → X is invertible and f is the inverse of f−1

i.e., (f−1)−1 = f.


Question 13:
If f: R → R be given by  then fof(x) is
(A)   (B) x3 (C) x (D) (3 − x3)
Answer:
f: R → R is given as

The correct answer is C.


Question 14:
Let be a function defined as The inverse of f is map g: Range given by
(A) (B) (C) NCERT Solutions Class 12 Maths Chapter 1 Ex 1.3 Q 14(e) (D) NCERT Solutions Class 12 Maths Chapter 1 Ex 1.3 Q 14(f)

Answer:
It is given that is defined as
Let y be an arbitrary element of Range f
Then, there exists xNCERT Solutions Class 12 Maths Chapter 1 Ex 1.3 Q 14(g) such that NCERT Solutions Class 12 Maths Chapter 1 Ex 1.3 Q 14(h)
NCERT Solutions Class 12 Maths Chapter 1 Ex 1.3 Q 14(i) Let us define g: Range as NCERT Solutions Class 12 Maths Chapter 1 Ex 1.3 Q 14(j)

Now, NCERT Solutions Class 12 Maths Chapter 1 Ex 1.3 Q 14(k)

NCERT Solutions Class 12 Maths Chapter 1 Ex 1.3 Q 14(m)

NCERT Solutions Class 12 Maths Chapter 1 Ex 1.3 Q 14(l)
NCERT Solutions Class 12 Maths Chapter 1 Ex 1.3 Q 14(n)
Thus, g is the inverse of f i.e., f−1 = g.
Hence, the inverse of f is the map g: Range which is given by

The correct answer is B.

NCERT Solutions For Class 12 Maths Chapter 1 – Exercise 1.4

 

 Question 1:

Determine whether or not each of the definition of given below gives a binary operation. In the event that * is not a binary operation, give justification for this.

(i) On Z+, define * by − b

(ii) On Z+, define * by ab

(iii) On R, define * by ab2

(iv) On Z+, define * by = |− b|

(v) On Z+, define * by a
Answer:

(i) On Z+, * is defined by * b = a − b.

It is not a binary operation as the image of (1, 2) under * is 1 * 2 = 1 − 2 = −1 ∉ Z+.

(ii) On Z+, * is defined by a * b = ab.

It is seen that for each ab ∈ Z+, there is a unique element ab in Z+.

This means that * carries each pair (ab) to a unique element * b ab in Z+.

Therefore, * is a binary operation.

(iii) On R, * is defined by a * b = ab2.

It is seen that for each ab ∈ R, there is a unique element ab2 in R.

This means that * carries each pair (ab) to a unique element * b abin R.

Therefore, * is a binary operation.

(iv) On Z+, * is defined by * b = |a − b|.

It is seen that for each ab ∈ Z+, there is a unique element |a − b| in Z+.

This means that * carries each pair (ab) to a unique element * b = |a − b| in Z+.

Therefore, * is a binary operation.

(v) On Z+, * is defined by a * b = a.

* carries each pair (ab) to a unique element * b a in Z+.

Therefore, * is a binary operation.


Question 2:

For each binary operation * defined below, determine whether * is commutative or associative.

(i) On Z, define − b

(ii) On Q, define ab + 1
(iii) On Q, define b NCERT Solutions Class 12 Maths Chapter 1 Ex 1.4 Q 2

(iv) On Z+, define = 2ab

(v) On Z+, define ab

(vi) On − {−1}, define NCERT Solutions Class 12 Maths Chapter 1 Ex 1.4 Q 2(a)
Answer:

(i) On Z, * is defined by a * b = a − b.

It can be observed that 1 * 2 = 1 − 2 = 1 and 2 * 1 = 2 − 1 = 1.

∴1 * 2 ≠ 2 * 1; where 1, 2 ∈ Z

Hence, the operation * is not commutative.

Also we have:

(1 * 2) * 3 = (1 − 2) * 3 = −1 * 3 = −1 − 3 = −4

1 * (2 * 3) = 1 * (2 − 3) = 1 * −1 = 1 − (−1) = 2

∴(1 * 2) * 3 ≠ 1 * (2 * 3) ; where 1, 2, 3 ∈ Z

Hence, the operation * is not associative.

(ii) On Q, * is defined by * b = ab + 1.

It is known that:

ab = ba &mnForE; a, b ∈ Q

⇒ ab + 1 = ba + 1 &mnForE; a, b ∈ Q

⇒ * b = * b &mnForE; a, b ∈ Q

Therefore, the operation * is commutative.

It can be observed that:

(1 * 2) * 3 = (1 × 2 + 1) * 3 = 3 * 3 = 3 × 3 + 1 = 10

1 * (2 * 3) = 1 * (2 × 3 + 1) = 1 * 7 = 1 × 7 + 1 = 8

∴(1 * 2) * 3 ≠ 1 * (2 * 3) ; where 1, 2, 3 ∈ Q

Therefore, the operation * is not associative.
(iii) On Q, * is defined by * b

It is known that:

ab = ba &mnForE; a, b ∈ Q
NCERT Solutions Class 12 Maths Chapter 1 Ex 1.4 Q 2(b)

&mnForE; a, b ∈ Q

⇒ * b = * a &mnForE; a, b ∈ Q

Therefore, the operation * is commutative.

For all a, b, c ∈ Q, we have:
NCERT Solutions Class 12 Maths Chapter 1 Ex 1.4 Q 2(c)
NCERT Solutions Class 12 Maths Chapter 1 Ex 1.4 Q 2(d)

Therefore, the operation * is associative.

(iv) On Z+, * is defined by * b = 2ab.

It is known that:

ab = ba &mnForE; a, b ∈ Z+

⇒ 2ab = 2ba &mnForE; a, b ∈ Z+

⇒ * b = * a &mnForE; a, b ∈ Z+

Therefore, the operation * is commutative.

It can be observed that:
NCERT Solutions Class 12 Maths Chapter 1 Ex 1.4 Q 2(e)
NCERT Solutions Class 12 Maths Chapter 1 Ex 1.4 Q 2(f)

∴(1 * 2) * 3 ≠ 1 * (2 * 3) ; where 1, 2, 3 ∈ Z+

Therefore, the operation * is not associative.

(v) On Z+, * is defined by * b = ab.

It can be observed that: NCERT Solutions Class 12 Maths Chapter 1 Ex 1.4 Q 2(g)

∴ 1 * 2 ≠ 2 * 1 ; where 1, 2 ∈ Z+

Therefore, the operation * is not commutative.

It can also be observed that:
NCERT Solutions Class 12 Maths Chapter 1 Ex 1.4 Q 2(h)

∴(2 * 3) * 4 ≠ 2 * (3 * 4) ; where 2, 3, 4 ∈ Z+

Therefore, the operation * is not associative.
(vi) On R, * − {−1} is defined by NCERT Solutions Class 12 Maths Chapter 1 Ex 1.4 Q 2(i)
It can be observed that NCERT Solutions Class 12 Maths Chapter 1 Ex 1.4 Q 2(j)

∴1 * 2 ≠ 2 * 1 ; where 1, 2 ∈ − {−1}

Therefore, the operation * is not commutative.

It can also be observed that: NCERT Solutions Class 12 Maths Chapter 1 Ex 1.4 Q 2(k)

∴ (1 * 2) * 3 ≠ 1 * (2 * 3) ; where 1, 2, 3 ∈ − {−1}

Therefore, the operation * is not associative.


Question 3:
Consider the binary operation ∨ on the set {1, 2, 3, 4, 5} defined by = min {ab}. Write the operation table of the operation∨.
Answer:

The binary operation ∨ on the set {1, 2, 3, 4, 5} is defined as  b = min {ab}

&mnForE; ab ∈ {1, 2, 3, 4, 5}.

Thus, the operation table for the given operation ∨ can be given as:

1

2

3

4

5

1

1

1

1

1

1

2

1

2

2

2

2

3

1

2

3

3

3

4

1

2

3

4

4

5

1

2

3

4

5


Question 4

Consider a binary operation * on the set {1, 2, 3, 4, 5} given by the following multiplication table.

(i) Compute (2 * 3) * 4 and 2 * (3 * 4)

(ii) Is * commutative?

(iii) Compute (2 * 3) * (4 * 5).

(Hint: use the following table)

*

1

2

3

4

5

1

1

1

1

1

1

2

1

2

1

2

1

3

1

1

3

1

1

4

1

2

1

4

1

5

1

1

1

1

5

Answer:

(i) (2 * 3) * 4 = 1 * 4 = 1

2 * (3 * 4) = 2 * 1 = 1

(ii) For every a, b ∈{1, 2, 3, 4, 5}, we have * b = b * a. Therefore, the operation * is commutative.

(iii) (2 * 3) = 1 and (4 * 5) = 1

∴(2 * 3) * (4 * 5) = 1 * 1 = 1


Question 5:
Let*′ be the binary operation on the set {1, 2, 3, 4, 5} defined by *′ = H.C.F. of and b. Is the operation *′ same as the operation * defined in Exercise 4 above? Justify your answer.
Answer:

The binary operation *′ on the set {1, 2, 3 4, 5} is defined as *′ b = H.C.F of a and b.

The operation table for the operation *′ can be given as:

*′

1

2

3

4

5

1

1

1

1

1

1

2

1

2

1

2

1

3

1

1

3

1

1

4

1

2

1

4

1

5

1

1

1

1

5

We observe that the operation tables for the operations * and *′ are the same.

Thus, the operation *′ is same as the operation*.


Question 6:

Let * be the binary operation on given by a * = L.C.M. of and b. Find

(i) 5 * 7, 20 * 16 (ii) Is * commutative?

(iii) Is * associative? (iv) Find the identity of * in N

(v) Which elements of are invertible for the operation *?
Answer:

The binary operation * on N is defined as * b = L.C.M. of a and b.

(i) 5 * 7 = L.C.M. of 5 and 7 = 35

20 * 16 = L.C.M of 20 and 16 = 80

(ii) It is known that:

L.C.M of a and b = L.C.M of b and a &mnForE; a, b ∈ N.

a * b = * a

Thus, the operation * is commutative.

(iii) For a, b∈ N, we have:

(* b) * c = (L.C.M of a and b) * c = LCM of ab, and c

a * (b * c) = a * (LCM of b and c) = L.C.M of ab, and c

∴(* b) * c = a * (* c)

Thus, the operation * is associative.

(iv) It is known that:

L.C.M. of a and 1 = a = L.C.M. 1 and a &mnForE; a ∈ N

⇒ a * 1 = a = 1 * a &mnForE; a ∈ N

Thus, 1 is the identity of * in N.

(v) An element a in N is invertible with respect to the operation * if there exists an element b in N, such that * b = e = b * a.

Here, e = 1

This means that:

L.C.M of a and b = 1 = L.C.M of b and a

This case is possible only when a and b are equal to 1.

Thus, 1 is the only invertible element of N with respect to the operation *.


Question 7:
Is * defined on the set {1, 2, 3, 4, 5} by = L.C.M. of and a binary operation? Justify your answer.
Answer:

The operation * on the set A = {1, 2, 3, 4, 5} is defined as

a * b = L.C.M. of a and b.

Then, the operation table for the given operation * can be given as:

*

1

2

3

4

5

1

1

2

3

4

5

2

2

2

6

4

10

3

3

6

3

12

15

4

4

4

12

4

20

5

5

10

15

20

5

It can be observed from the obtained table that:

3 * 2 = 2 * 3 = 6 ∉ A, 5 * 2 = 2 * 5 = 10 ∉ A, 3 * 4 = 4 * 3 = 12 ∉ A

3 * 5 = 5 * 3 = 15 ∉ A, 4 * 5 = 5 * 4 = 20 ∉ A

Hence, the given operation * is not a binary operation.


Question 8:
Let * be the binary operation on N defined by = H.C.F. of and b. Is * commutative? Is * associative? Does there exist identity for this binary operation on N?
Answer:

The binary operation * on N is defined as:

* b = H.C.F. of a and b

It is known that:

H.C.F. of a and b = H.C.F. of b and a &mnForE; a, b ∈ N.

a * b = * a

Thus, the operation * is commutative.

For ab∈ N, we have:

(* b)* c = (H.C.F. of a and b) * c = H.C.F. of ab, and c

*(* c)= *(H.C.F. of b and c) = H.C.F. of ab, and c

∴(* b) * c = a * (* c)

Thus, the operation * is associative.

Now, an element ∈ N will be the identity for the operation * if * e = a = e* a ∈ N.

But this relation is not true for any ∈ N.

Thus, the operation * does not have any identity in N.


Question 9:

Let * be a binary operation on the set of rational numbers as follows:

(i) − (ii) a2 + b2

(iii) ab (iv) = (− b)2
(v) NCERT Solutions Class 12 Maths Chapter 1 EX 1.4 Q 9

(vi) ab2

Find which of the binary operations are commutative and which are associative.
Answer:

(i) On Q, the operation * is defined as * b = a − b.

It can be observed that:
NCERT Solutions Class 12 Maths Chapter 1 Ex1.4 Q 9(a) and NCERT Solutions Class 12 Maths Chapter 1 Ex 1.4 Q 9(b)
NCERT Solutions Class 1 2 Maths Chapter 1 Ex 1.4 Q 9(c) where NCERT Solutions Class 12 Maths Chapter 1 Ex 1.4 Q 9(d)

Thus, the operation * is not commutative.

It can also be observed that:
NCERT Solutions Class 12 Maths Chapter 1 Ex 1.4 Q 9(e)
NCERT Solutions Class 12 Matha Chapter 1 Ex 1.4 Q 9(f)
NCERT Solutions Class 12 Maths Chapter 1 Ex 1.4 Q 9(g) : where NCERT Solutions Class 12 Maths Chapter 1 Ex 1.4 Q 9(h)

Thus, the operation * is not associative.

(ii) On Q, the operation * is defined as * b = a2 + b2.

For a, b ∈ Q, we have:
NCERT Solutions Class 12 Maths Chapter 1 Ex 1.4 Q 9(i)

a * b = b * a

Thus, the operation * is commutative.

It can be observed that:

(1*2)*3 =(12 + 22)*3 = (1+4)*3 = 5*3 = 52+32= 25 + 9 = 34

1*(2*3)=1*(22+32) = 1*(4+9) = 1*13 = 12+ 132 = 1 + 169 = 170∴ (1*2)*3 ≠ 1*(2*3) , where 1, 2, 3 ∈ Q

Thus, the operation * is not associative.

(iii) On Q, the operation * is defined as * b = a + ab.

It can be observed that:
NCERT Solutions Class 12 Maths Chapter 1 Ex 1.4 Q 9(j)

Thus, the operation * is not commutative.

It can also be observed that:
NCERT Solutions Class 12 Maths Chapter 1 Ex 1.4 Q 9(k)

Thus, the operation * is not associative.

(iv) On Q, the operation * is defined by a * b = (a − b)2.

For ab ∈ Q, we have:

* b = (a − b)2

* a = (b − a)2 = [− (a − b)]2 = (a − b)2

∴ * b = b * a

Thus, the operation * is commutative.

It can be observed that:
NCERT Solutions Class 12 Maths Chapter 1 Ex 1.4 Q 9(l)
Thus, the operation * is not associative.
(v) On Q, the operation * is defined as

For ab ∈ Q, we have:
NCERT Solutions Class 12 Maths Chapter 1 Ex 1.4 Q 9(m)

∴ * b = * a

Thus, the operation * is commutative.

For a, b, c ∈ Q, we have:
NCERT Solutions Class 12 Maths Chapter 1 Ex 1.4 Q 9(n)
NCERT Solutions Class 12 Maths Chapter 1 Ex 1.4 Q 9(o)

∴(* b) * c = a * (* c)

Thus, the operation * is associative.

(vi) On Q, the operation * is defined as * b = ab2

It can be observed that:
NCERT Solutions Class 12 Maths Chapter 1 Ex 1.4 Q 9(p)

Thus, the operation * is not commutative.

It can also be observed that:
NCERT Solutions Class 12 Maths Chapter 1 Ex 1.4 Q 9(q)

Thus, the operation * is not associative.

Hence, the operations defined in (ii), (iv), (v) are commutative and the operation defined in (v) is associative.


Question 10:

Find which of the operations given above has identity.
Answer:
An element ∈ Q will be the identity element for the operation * if * e = a = e * a,∀ a ∈ Q.

We are given

* b =

ab4

⇒ a*e = a⇒ae4=a⇒ e=4Similarly, it can be checked for e*a=a, we get e=4Thus, e = 4 is the identity.


Question 11:

Let A = × and * be the binary operation on A defined by

(ab) * (cd) = (cd)

Show that * is commutative and associative. Find the identity element for * on A, if any.
Answer:

A = N × N

* is a binary operation on A and is defined by:

(a, b) * (c, d) = (a + c, b + d)

Let (a, b), (c, d) ∈ A

Then, a, b, c, d ∈ N

We have:

(a, b) * (c, d) = (a + c, b + d)

(c, d) * (a, b) = (c + a, d + b) = (a + c, b + d)

[Addition is commutative in the set of natural numbers]

∴(a, b) * (c, d) = (c, d) * (a, b)

Therefore, the operation * is commutative.

Now, let (a, b), (c, d), (e, f) ∈A

Then, a, b, c, d, e∈ N

We have:
NCERT Solutions Class 12 Maths Chapter 1 Ex 1.4 Q 11

Therefore, the operation * is associative.
An element NCERT Class 12 Maths Chapter 1 Ex 1.4 Q 11(a) will be an identity element for the operation * if
NCERT Solutions Class 12 Maths Chapter 1 Ex 1.4 Q 11(b) i.e.,
NCERT Solutions Class 12 Maths Chapter 1 Ex 1.4 Q 11(c) which is not true for any element in A.

Therefore, the operation * does not have any identity element.


Question 12:
State whether the following statements are true or false. Justify.
(i) For an arbitrary binary operation * on a set N

N.

(ii) If * is a commutative binary operation on N, then * (c) = (b) * a
Answer:
(i) Define an operation * on N as:
* b = a + b ∀ a, b ∈ N

Then, in particular, for b = a = 3, we have:

3 * 3 = 3 + 3 = 6 ≠ 3

Therefore, statement (i) is false.

(ii) R.H.S. = (* b) * a

= (* c) * [* is commutative]

a * (* c) [Again, as * is commutative]

= L.H.S.

∴ a * (* c) = (* b) * a

Therefore, statement (ii) is true.


Question 13:

Consider a binary operation * on defined as a3 + b3. Choose the correct answer.

(A) Is * both associative and commutative?

(B) Is * commutative but not associative?

(C) Is * associative but not commutative?

(D) Is * neither commutative nor associative?
Answer:

On N, the operation * is defined as * b = a3 + b3.

For, ab, ∈ N, we have:

* b = a3 + b3 = b3 + a3 = * a [Addition is commutative in N]

Therefore, the operation * is commutative.

It can be observed that:
NCERT Solutions Class 12 Maths Chapter 1 Ex 1.4 Q 13

∴(1 * 2) * 3 ≠ 1 * (2 * 3) ; where 1, 2, 3 ∈ N

Therefore, the operation * is not associative.

Hence, the operation * is commutative, but not associative. Thus, the correct answer is B.

Miscellaneous Questions

 

Question 1:
Let f: R → R be defined as f(x) = 10x + 7. Find the function g: R → R such that g o f = f o = 1R.
Answer:

It is given that fR → R is defined as f(x) = 10x + 7.

One-one:

Let f(x) = f(y), where xy ∈R.

⇒ 10x + 7 = 10y + 7

⇒ x = y

∴ is a one-one function.

Onto:

For ∈ R, let y = 10x + 7.
NCERT Solutions Class 12 Maths Miscellaneous Q 1
Therefore, for any ∈ R, there exists such that
NCERT Solutions Class 12 Maths Miscellaneous Q 1(a)

∴ is onto.

Therefore, is one-one and onto.

Thus, f is an invertible function.
Let us define gR → R as NCERT Solutions Class 12 Maths Misceleaneous Q 1(b)

Now, we have:
NCERT Solutions Class 12 Maths Miscellaneous Q 1(c)
Hence, the required function gR → R is defined as


Question 2:
Let f: W → W be defined as f(n) = n − 1, if is odd and f(n) = n + 1, if n is even. Show that f is invertible. Find the inverse of f. Here, W is the set of all whole numbers.
Answer:

It is given that:
NCERT Solutions Class 12 Maths Miscellaneous Q 2f: W → W is defined as

One-one:

Let f(n) = f(m).

It can be observed that if n is odd and m is even, then we will have n − 1 = m + 1.

⇒ n − m = 2

However, this is impossible.

Similarly, the possibility of n being even and m being odd can also be ignored under a similar argument.

∴Both n and m must be either odd or even.

Now, if both n and m are odd, then we have:

f(n) = f(m) ⇒ n − 1 = m − 1 ⇒ n = m

Again, if both n and m are even, then we have:

f(n) = f(m) ⇒ n + 1 = m + 1 ⇒ n = m

f is one-one.

It is clear that any odd number 2+ 1 in co-domain is the image of 2in domain and any even number 2in co-domain is the image of 2+ 1 in domain N.

f is onto.

Hence, is an invertible function.

Let us define g: W → W as:
NCERT Solutions Class 12 Maths Miscellaneous Q 2(a)
Now, when n is odd:
NCERT Solutions Class 12 Maths Miscellaneous Q 2(b)

And, when n is even:
NCERT Solutions Class 12 Maths Miscellaneous Q 2(c)

Similarly, when is odd:
NCERT Solutions Class 12 Maths Miscellaneous Q 2(d)
When is even:
NCERT Solutions Class 12 Maths Miscellaneous Q 2(e)
NCERT Solutions Class 12 Maths Miscellaneous Q 2(f)

Thus, f is invertible and the inverse of is given by f—1 = g, which is the same as f.

Hence, the inverse of f is f itself.


Question 3:

If f→ R is defined by f(x) = x2 − 3+ 2, find f(f(x)).
Answer:

It is given that fR → R is defined as f(x) = x2 − 3x + 2.

NCERT Solutions Class 12 Maths Miscellaneous Q 3


Question 4:
Show that function f: R → {x ∈ R: −1 < x < 1} defined by f(x) = NCERT Solutions Class 12 Maths Miscellaneous Q 4
R is one-one and onto function.
Answer:
It is given that f: R → {x ∈ R: −1 < x < 1} is defined as f(x) = R.

Suppose f(x) = f(y), where x∈ R.
NCERT Solutions Class 12 Maths Miscellaneous Q 4(a)

It can be observed that if x is positive and y is negative, then we have:
NCERT Solutions Class 12 Maths Miscellaneous Q 4(b)

Since is positive and y is negative:

x > y ⇒ x − y > 0

But, 2xy is negative.
Then, 2xy ≠x-y

Thus, the case of x being positive and y being negative can be ruled out.

Under a similar argument, x being negative and y being positive can also be ruled out

 x and y have to be either positive or negative.

When x and y are both positive, we have:
NCERT Solutions Class 12 Maths Miscellaneous Q 4(c)
When x and y are both negative, we have:
NCERT Solutions Class 12 Maths Miscellaneous Q 4(d)

∴ f is one-one.

Now, let y ∈ R such that −1 < < 1.

If x is negative, then there exists NCERT Solutions Class 12 Maths Miscellaneous Q 4(e) such that
NCERT Solutions Class 12 Maths Miscellaneous Q 4(f)

∴ f is onto.

Hence, f is one-one and onto.


Question 5:

Show that the function fR → R given by f(x) = x3 is injective.
Answer:

fR → R is given as f(x) = x3.

Suppose f(x) = f(y), where xy ∈ R.

⇒ x3 = y3 … (1)

Now, we need to show that x = y.

Suppose x ≠ y, their cubes will also not be equal.

 x3 ≠ y3

However, this will be a contradiction to (1).

∴ x = y

Hence, f is injective.


Question 6:
Give examples of two functions f: N → Z and g: Z → Z such that g o f is injective but g is not injective.
(Hint: Consider f(x) = x and g(x) = NCERT Solutions Class 12 Maths Miscellaneous Q 6
Answer:
Define f: N → Z as f(x) = x and g: Z → Z as g(x) =NCERT SolutionS Class 12 Maths Miscellaneous Q 6(a)

We first show that g is not injective.

It can be observed that:
g(−1) =
g(1) =

∴ g(−1) = g(1), but −1 ≠ 1.

∴ g is not injective.
Now, gofN → Z is defined as
Let xy ∈ N such that gof(x) = gof(y).
NCERT Solutions Class 12 Maths Miscellaneous Q 6(e)

Since x and y ∈ N, both are positive.
NCERT Solutions Class 12 Maths Miscellaneous Q 6(f)

Hence, gof is injective


Question 7:

Given examples of two functions fN → N and gN → N such that gof is onto but is not onto.
(Hint: Consider f(x) = x + 1 and NCERT Solutions Class 12 Miscellaneous Q 7
Answer:

Define fN → N by,

f(x) = x + 1

And, gN → N by,

We first show that g is not onto.

For this, consider element 1 in co-domain N. It is clear that this element is not an image of any of the elements in domain N.

∴ f is not onto.

Now, gofN → N is defined by,
NCERT Solutions Class 12 Miscellaneous Q 7(a)

Then, it is clear that for y ∈ N, there exists ∈ N such that gof(x) = y.

Hence, gof is onto.


Question 8:

Given a non empty set X, consider P(X) which is the set of all subsets of X.

Define the relation R in P(X) as follows:

For subsets AB in P(X), ARB if and only if A ⊂ B. Is R an equivalence relation on P(X)? Justify you answer:
Answer:

Since every set is a subset of itself, ARA for all A ∈ P(X).

∴R is reflexive.

Let ARB ⇒ A ⊂ B.

This cannot be implied to B ⊂ A.

For instance, if = {1, 2} and B = {1, 2, 3}, then it cannot be implied that B is related to A.

∴ R is not symmetric.

Further, if ARand BRC, then A ⊂ B and ⊂ C.

⇒ A ⊂ C

⇒ ARC

∴ R is transitive.

Hence, R is not an equivalence relation since it is not symmetric.


Question 9:
Given a non-empty set X, consider the binary operation *: P(X) × P(X) → P(X) given by A * B = A ∩ B &mnForE; AB in P(X) is the power set of X. Show that is the identity element for this operation and is the only invertible element in P(X) with respect to the operation*.
Answer:
It is given that
NCERT Solutions Class 12 Maths Miscellaneous Q 9
We know that NCERT Solutions Class 12 Maths Miscellaneous Q 9(a)
NCERT Solutions Class 12 Maths Miscellaneous Q 9(b)

Thus, X is the identity element for the given binary operation *.
Now, an element NCERT Solutions Class 12 Maths Miscellaneous Q 9(c) is invertible if there exists NCERT Solutions Class 12 Maths Miscellaneous Q 9(d) such that
NCERT Solutions Class 12 Maths Miscellaneous Q 9(e)

This case is possible only when A = X = B.

Thus, X is the only invertible element in P(X) with respect to the given operation*.

Hence, the given result is proved.


Question 10:
Find the number of all onto functions from the set {1, 2, 3, … , n) to itself
Answer:

Onto functions from the set {1, 2, 3, … ,n} to itself is simply a permutation on n symbols 1, 2, …, n.

Thus, the total number of onto maps from {1, 2, … , n} to itself is the same as the total number of permutations on n symbols 1, 2, …, n, which is n!.


Question 11:

Let S = {abc} and T = {1, 2, 3}. Find F−1 of the following functions F from S to T, if it exists.

(i) F = {(a, 3), (b, 2), (c, 1)} (ii) F = {(a, 2), (b, 1), (c, 1)}
Answer:

S = {abc}, T = {1, 2, 3}

(i) F: S → T is defined as:

F = {(a, 3), (b, 2), (c, 1)}

⇒ F (a) = 3, F (b) = 2, F(c) = 1

Therefore, F−1T → S is given by

F−1 = {(3, a), (2, b), (1, c)}.

(ii) F: S → T is defined as:

F = {(a, 2), (b, 1), (c, 1)}

Since F (b) = F (c) = 1, F is not one-one.

Hence, F is not invertible i.e., F−1 does not exist.


Question 12:
Consider the binary operations*: R ×R → and o: R × R → R defined as NCERT Solutions Class 12 Maths Miscellaneous Q 12 and a o b = a, &mnForE;ab ∈ R. Show that * is commutative but not associative, o is associative but not commutative. Further, show that &mnForE;abc ∈ Ra*(b o c) = (a * b) o (a * c). [If it is so, we say that the operation * distributes over the operation o]. Does o distribute over *? Justify your answer.
Answer:

It is given that *: ×→ and o: R × R → isdefined as

and a o b = a, &mnForE;ab ∈ R.

For ab ∈ R, we have:

NCERT Solutions Class 12 Maths Miscellaneous Q 12(a)

a * b = b * a

∴ The operation * is commutative.

It can be observed that,

a * b = b * a

∴ The operation * is commutative.

It can be observed that,
NCERT Solutions Class 12 Maths Miscellaneous Q 12(b)

∴The operation * is not associative.

Now, consider the operation o:

It can be observed that 1 o 2 = 1 and 2 o 1 = 2.

∴1 o 2 ≠ 2 o 1 (where 1, 2 ∈ R)

∴The operation o is not commutative.

Let ab∈ R. Then, we have:

(b) o c = a o c a

a o (b o c) = a o b = a

⇒ b) o c = a o (b o c)

∴ The operation o is associative.

Now, let ab∈ R, then we have:
a * (b o c) = a * b = NCERT Solutions Class 12 Maths Miscellaneous Q 12(c)
(b) o (a * c) = NCERT Solutions Class 12 Maths Miscellaneous Q 12(d)

Hence, * (c) = (b) o (c).

Now,
1 o (2 * 3) = NCERT Solutions Class 12 Maths Miscellaneous Q 12(e)
(1 o 2) * (1 o 3) = 1 * 1 = NCERT Solutions Class 12 Maths Miscellaneous Q 12(f)

∴1 o (2 * 3) ≠ (1 o 2) * (1 o 3) (where 1, 2, 3 ∈ R)

The operation o does not distribute over *.


Question 13:
Given a non-empty set X, let *: P(X) × P(X) → P(X) be defined as A * B = (A − B) ∪ (B − A), &mnForE; AB ∈ P(X). Show that the empty set Φ is the identity for the operation * and all the elements A of P(X) are invertible with A−1 = A. (Hint: (A − Φ) ∪ (Φ − A) = A and (A − A) ∪ (A − A) = A * A = Φ).
Answer:

It is given that *: P(X) × P(X) → P(X) is defined as

A * B = (A − B) ∪ (B − A) &mnForE; AB ∈ P(X).

Let ∈ P(X). Then, we have:

A * Φ = (A − Φ) ∪ (Φ − A) = A ∪ Φ = A

Φ * A = (Φ − A) ∪ (A − Φ) = Φ ∪ A = A

A * Φ = A = Φ * A. &mnForE; A ∈ P(X)

Thus, Φ is the identity element for the given operation*.

Now, an element A ∈ P(X) will be invertible if there exists B ∈ P(X) such that

A * B = Φ = B * A. (As Φ is the identity element)
Now, we observed that NCERT Solutions Class 12 Maths Miscellaneous Q 13

Hence, all the elements A of P(X) are invertible with A−1 = A.


Question 14:

Define a binary operation *on the set {0, 1, 2, 3, 4, 5} as
NCERT Solutions Class 12 Maths Miscellaneous Q 14
Show that zero is the identity for this operation and each element a ≠ 0 of the set is invertible with 6 − a being the inverse of a.
Answer:

Let X = {0, 1, 2, 3, 4, 5}.

The operation * on X is defined as:

An element e ∈ X is the identity element for the operation *, if NCERT Solutions Class 12 Maths Miscellaneous Q 14(a)
NCERT Solutions Class 12 Maths Miscellaneous Q 14(b)

Thus, 0 is the identity element for the given operation *.

An element a ∈ X is invertible if there exists b∈ X such that a * b = 0 = b * a.
NCERT Solutions Class 12 Maths Miscellaneous Q 14(c)

i.e.,

a = −b or b = 6 − a

But, X = {0, 1, 2, 3, 4, 5} and ab ∈ X. Then, a ≠ −b.

b = 6 − a is the inverse of a &mnForE; a ∈ X.

Hence, the inverse of an element a ∈Xa ≠ 0 is 6 − a i.e., a−1 = 6 − a.


Question 15:
Let A = {−1, 0, 1, 2}, B = {−4, −2, 0, 2} and fgA → B be functions defined by f(x) = x2 − xx ∈ A and  NCERT Solutions Class 12 Maths Miscellaneous Q 15

Are f and g equal?

Justify your answer. (Hint: One may note that two function fA → B and g: A → B such that f(a) = g(a) &mnForE;a ∈A, are called equal functions).
Answer:

It is given that A = {−1, 0, 1, 2}, B = {−4, −2, 0, 2}.

Also, it is given that fgA → B are defined by f(x) = x2 − xx ∈ A and

It is observed that:
NCERT Solutions Class 1 Maths Miscellaneous Q 15(a)

Hence, the functions and g are equal.


Question 16:

Let A = {1, 2, 3}. Then number of relations containing (1, 2) and (1, 3) which are reflexive and symmetric but not transitive is

(A) 1 (B) 2 (C) 3 (D) 4
Answer:

The given set is A = {1, 2, 3}.

The smallest relation containing (1, 2) and (1, 3) which is reflexive and symmetric, but not transitive is given by:

R = {(1, 1), (2, 2), (3, 3), (1, 2), (1, 3), (2, 1), (3, 1)}

This is because relation R is reflexive as (1, 1), (2, 2), (3, 3) ∈ R.

Relation R is symmetric since (1, 2), (2, 1) ∈R and (1, 3), (3, 1) ∈R.

But relation R is not transitive as (3, 1), (1, 2) ∈ R, but (3, 2) ∉ R.

Now, if we add any two pairs (3, 2) and (2, 3) (or both) to relation R, then relation R will become transitive.

Hence, the total number of desired relations is one.

The correct answer is A.


Question 17:

Let A = {1, 2, 3}. Then number of equivalence relations containing (1, 2) is

(A) 1 (B) 2 (C) 3 (D) 4
Answer:

It is given that A = {1, 2, 3}.

The smallest equivalence relation containing (1, 2) is given by,

R1 = {(1, 1), (2, 2), (3, 3), (1, 2), (2, 1)}

Now, we are left with only four pairs i.e., (2, 3), (3, 2), (1, 3), and (3, 1).

If we odd any one pair [say (2, 3)] to R1, then for symmetry we must add (3, 2). Also, for transitivity we are required to add (1, 3) and (3, 1).

Hence, the only equivalence relation (bigger than R1) is the universal relation.

This shows that the total number of equivalence relations containing (1, 2) is two.

The correct answer is B.


Question 18:

Let fR → R be the Signum Function defined as
NCERT Solutions Class 12 Maths Miscellaneous Q 18
and gR → be the Greatest Integer Function given by g(x) = [x], where [x] is the greatest integer less than or equal to x. Then does fog and gof coincide in (0, 1]?
Answer:

It is given that,


fR → R is defined as

 

Also, gR → R is defined as g(x) = [x], where [x] is the greatest integer less than or equal to x.

Now, let x ∈ (0, 1].

Then, we have:

[x] = 1 if x = 1 and [x] = 0 if 0 < x < 1.
NCERT Solutions Class 12 Maths Miscellaneous Q 18(a)
NCERT Solutions Class 12 Maths Miscellaneous Q 18(b)

Thus, when x ∈ (0, 1), we have fog(x) = 0and gof (x) = 1.

Hence, fog and gof do not coincide in (0, 1].


Question 19:

Number of binary operations on the set {ab} are

(A) 10 (B) 16 (C) 20 (D) 8
Answer:

A binary operation * on {ab} is a function from {ab} × {ab} → {ab}

i.e., * is a function from {(aa), (ab), (ba), (bb)} → {ab}.

Hence, the total number of binary operations on the set {ab} is 24 i.e., 16.

The correct answer is B.