Binary Operations

Given that ‘*’ is an operation that is valid in the Natural Numbers ‘N’ and it is defined as given:

⇒ a*b = a^b, where a,b∈N

Since a∈N and b∈N,

According to the problem it is given that on applying the operation ‘*’ for two given natural numbers it gives a natural number as a result of the operation,

⇒ a*b∈N ...... (1)

We also know that p^q>0 if p>0 and q>0.

So, we can state that,

⇒ a^b>0

⇒ a^b∈N ...... (2)

From (1) and (2) we can see that both L.H.S and R.H.S gave only Natural numbers as a result.

Thus we can clearly state that ‘*’ is a Binary Operation on ‘N’.

Given that ‘Ο’ is an operation that is valid in the Integers ‘Z’ and it is defined as given:

⇒ aΟb = a^b, where a,b∈Z

Since a∈Z and b∈Z,

According to the problem it is given that on applying the operation ‘*’ for two given integers it gives Integers as a result of the operation,

⇒ aΟb∈Z ...... (1)

Let us values of a = 2 and b = – 2 on substituting in the R.H.S side we get,

⇒ a^b = 2 ^{– 2}

⇒

⇒ a^b∉Z ...... (2)

From (2), we can see that a^b doesn’t give only Integers as a result. So, this cannot be stated as a binary function.

∴ The operation ‘Ο’ does not define a binary function on Z.

Given that ‘*’ is an operation that is valid in the Natural Numbers ‘N’ and it is defined as given:

⇒ a*b = a + b – 2, where a,b∈N

Since a∈N and b∈N,

According to the problem it is given that on applying the operation ‘*’ for two given natural numbers it gives a natural number as a result of the operation,

⇒ a*b∈N ...... (1)

Let us take the values of a = 1 and b = 1, substituting in the R.H.S side we get,

⇒ a + b – 2 = 1 + 1 – 2

⇒ a + b – 2 = 0∉N ...... (2)

From (2), we can see that a + b – 2 doesn’t give only Natural numbers as a result. So, this cannot be stated as a binary function.

∴ The operation ‘*’ does not define a binary operation on N.

Given that ‘x₆’ is an operation that is valid for the numbers in the Set S = {1,2,3,4,5} and it is defined as given:

⇒ ax₆b = Remainder when ab is divided by 6, where a,b∈S

Since a∈S and b∈S,

According to the problem it is given that on applying the operation ‘*’ for two given numbers in the set ‘S’ it gives one of the numbers in the set ‘S’ as a result of the operation,

⇒ ax₆b∈S ...... (1)

Let us take the values of a = 3, b = 4,

⇒ ab = 3×4

⇒ ab = 12

We know that 12 is a multiple of 6. So, on dividing 12 with 6 we get 0 as remainder which is not in the given set ‘S’.

The operation ‘x₆’ does not define a binary operation on set S.

Given that ‘*’ is an operation that is valid for the numbers in the set S = {0,1,2,3,4,5} and it is defined as given:

⇒ a +₆ b = , where a,b∈S

Since a∈S and b∈S,

According to the problem it is given that on applying the operation ‘*’ for two given numbers in the set ‘S’ it gives the number that present in the set ‘S’ as a result of the operation,

⇒ a + ₆b∈S ...... (1)

Since the addition of any two whole numbers must give a whole number, we can say that,

⇒ a + b≥0

For a + b<6, a + b∈S

⇒ a + b≥6 ⇒ a + b – 6≥0∈W

But according to the numbers given in the problem, the maximum value of the sum we can attain is 6.

So, we can say that a + b – 6∈S.

∴ The operation ‘ + ₆’ defines a binary operation on S.

Given that ‘Ο’ is an operation that is valid in the Natural Numbers ‘N’ and it is defined as given:

⇒ aΟb = a^b + b^a, where a,b∈N

Since a∈N and b∈N,

According to the problem it is given that on applying the operation ‘Ο’ for two given natural numbers it gives a natural number as a result of the operation,

⇒ aΟb∈N ...... (1)

We know that p^q>0 if p>0 and q>0.

⇒ a^b>0 and b^a>0.

We also know that the sum of two natural numbers is a natural number.

⇒ a^b + b^a∈N

∴ The operation ‘Ο’ defines the binary operation on N.

Given that ‘*’ is an operation that is valid in the Rational Numbers ‘Q’ and it is defined as given:

⇒ , where a,b∈Q

Since a∈Q and b∈Q,

According to the problem it is given that on applying the operation ‘*’ for two given rational numbers it gives a rational number as a result of the operation,

⇒ a*b∈Q ...... (1)

Let the value of b = – 1 and a = 2

⇒

⇒

⇒

∴ the operation ‘*’ does not define a binary operation on Q.

Given that ‘*’ is an operation that is valid in the Positive integers ‘Z ⁺ ’ and it is defined as given:

⇒ a*b = a – b, where a,b∈Z ⁺

Since a∈Z ⁺ and b∈Z ⁺ ,

According to the problem it is given that on applying the operation ‘*’ for two given positive integers it gives a positive integer as a result of the operation,

⇒ a*b∈Z ⁺ ...... (1)

Let us take the values a = 1 and b = 2

⇒ a – b = 1 – 2

⇒ a – b = – 1∉Z ⁺

∴ The operation * does not define a binary operation on Z ⁺

Given that ‘*’ is an operation that is valid in the Positive integers ‘Z ⁺ ’ and it is defined as given:

⇒ a*b = ab, where a,b∈Z ⁺ ,

Since a∈Z ⁺ and b∈Z ⁺ ,

According to the problem it is given that on applying the operation ‘*’ for two given positive integers it gives a Positive integer as a result of the operation,

⇒ a*b∈Z ^{+ –} ...... (1)

We know that p q>0 if p>0 and q>0.

⇒ ab>0∈N

⇒ ab∈Z ⁺

∴ The operation * defines a binary operation on Z ⁺.

Given that ‘*’ is an operation that is valid in the Real Numbers ‘R’ and it is defined as given:

⇒ a*b = ab², where a,b∈R

Since a∈R and b∈R,

According to the problem it is given that on applying the operation ‘*’ for two given real numbers it gives a real number as a result of the operation,

⇒ a*b∈R ...... (1)

We know that ab∈R if a∈R and b∈R

∴ The operation * defines a binary operation on R.

Given that ‘*’ is an operation that is valid in the Positive integers ‘Z ⁺ ’ and it is defined as given:

⇒ a*b = |a – b|, where a,b∈Z ⁺ ,

Since a∈Z ⁺ and b∈Z ⁺ ,

According to the problem it is given that on applying the operation ‘*’ for two given positive integers it gives a Positive integer as a result of the operation,

⇒ a*b∈Z ...... (1)

Let us take a = 2 and b = 2,

⇒ |a – b| = |2 – 2|

⇒ |a – b| = |0|

⇒ |a – b| = 0∉Z ⁺

∴ The operation * does not define a binary function on Z ⁺ .

Given that ‘*’ is an operation that is valid in the Positive integers ‘Z ⁺ ’ and it is defined as given:

⇒ a*b = a, where a,b∈Z ⁺ ,

Since a∈Z ⁺ and b∈Z ⁺ ,

According to the problem it is given that on applying the operation ‘*’ for two given positive integers it gives a Positive integer as a result of the operation,

⇒ a*b∈Z ^{+ –} ...... (1)

It is told from the problem a∈Z ⁺ .

The operation ‘*’ defines a binary operation on Z ⁺.

Given that ‘*’ is an operation that is valid in the Real Numbers ‘R’ and it is defined as given:

⇒ a*b = a + 4b², where a,b∈R,

Since a∈R and b∈R,

According to the problem it is given that on applying the operation ‘*’ for two given real numbers it gives a Real number as a result of the operation,

⇒ a*b∈R ...... (1)

Since b∈R then b²∈R,

We also know that the sum of two real numbers gives a real number. So,

⇒ a + 4b²∈R ...... (2)

From (1) and (2),

∴ The operation ‘*’ defines a binary operation on R.

Given that * is a binary operation on the set I of integers.

The operation is defined by a*b = 2a + b – 3.

We need to find the value of 3*4.

Since 3 and 4 belongs to the set of integers we can use the binary operation.

⇒ 3*4 = (2×3) + 4–3

⇒ 3*4 = 6 + 1

⇒ 3*4 = 7

∴ the value of 3*4 is 7.

Given that * is an operation that is valid on the set S = {1,2,3,4,5} defined by a*b = LCM of a and b.

According to the problem it is given that on applying the operation * for two given numbers in the set ‘S’ it gives a number in the set ‘S’ as a result of the operation.

Let us take the values of a = 2 and b = 3.

We know that L.C.M of two prime numbers is given by the product of that two prime numbers.

⇒ L.C.M of a and b is 2×3 = 6.

⇒ 6∉S

∴ The operation * does not define a binary operation on ‘S’.

Given set S = {a,b,c}, we need to find the total number of binary operations possible for the set ‘S’.

We know that the total number of binary operations on a set ‘S’ with ‘n’ elements is given by .

Here n = 3,

⇒

⇒

∴ The total number of binary operations possible on set ‘S’ is 3⁹.

Given set S = {a,b}, we need to find the total number of binary operations possible for the set ‘S’.

We know that the total number of binary operations on a set ‘S’ with ‘n’ elements is given by .

Here n = 2,

⇒

⇒

⇒

∴ The total number of binary operations possible on set ‘S’ is 16.

Given that * is an operation that is valid on the set and it is defined as given:A*B = A B.

According to the problem it is given that on applying the operation * for two given numbers in the set ‘M’ it gives a number in the set ‘M’ as a result of the operation.

⇒ A*B∈M ...... (1)

Let us take here a∈R, b∈R, c∈R and d∈R then,

⇒

⇒

⇒

⇒

Since a∈R and c∈R then ac∈R

And also b∈R and d∈R then bd∈R.

⇒ AB∈R

∴ The operation ‘*’ defines a binary operation on ‘M’.

Given that * is an operation that is valid on the set S which consists of all rational numbers of the form , here m∈Z and n = 1,2,3 and is defined by a*b = ab.

According to the problem it is given that on applying the operation * for two given numbers in the set ‘S’ it gives a number in the set ‘S’ as a result of the operation.

⇒ a*b∈S ...... (1)

Since a∈S and b∈S,

Let us take the values of then,

⇒

⇒ as 9∉n.

∴ The operation ‘*’ does not define a binary operation on ‘S’.

Given that * is an operation that is valid for the following Domain and Range R×R→R and is defined by a*b = 2ab.

We need to find the value of (2*3)*4

According to the problem the binary operation involving * is true for all real values of a and b.

⇒ (2*3)*4 = ((2×2) + 3)*4

⇒ (2*3)*4 = (4 + 3)*4

⇒ (2*3)*4 = 7*4

⇒ (2*3)*4 = (2×7) + 4

⇒ (2*3)*4 = 14 + 4

⇒ (2*3)*4 = 18

∴ The value of (2*3)*4 is 18.

Given that * is an operation that is valid for the natural numbers ‘N’ and is defined by a*b = LCM(a,b).

We need to find the value of 5*7.

According to the Problem, Binary operation is assumed to be true for the values of a and b to be natural.

⇒ 5*7 = LCM(5,7)

We know that LCM of two prime numbers is the product of that given two prime numbers.

⇒ 5*7 = 5×7

⇒ 5*7 = 35

∴ The value of 5*7 is 35.

Given that * is an operation that is valid on all natural numbers ‘N’ and is defined by a*b = L.C.M(a,b)

According to the problem, binary operation given is assumed to be true.

Let us find the values of 2*4,3*5,1*6

⇒ 2*4 = L.C.M(2,4) = 4

⇒ 3*5 = L.C.m(3,5)

⇒ 3*5 = 3×5 = 15

⇒ 1*6 = L.C.M(1,6)

⇒ 1*6 = 1×6 = 6

The values of 2*4 is 4 , 3*5 is 15 and 1*6 is 6

We know that commutative property is p*q = q*p, where * is a binary operation.

Let’s check the commutativity of given binary operation:

⇒ a*b = L.C.M(a,b)

⇒ b*a = L.C.M(b,a) = L.C.M(a,b)

⇒ b*a = a*b

∴ Commutative property holds for given binary operation ‘*’ on ‘N’.

We know that associative property is (p*q)*r = p*(q*r)

Let’s check the associativity of given binary operation:

⇒ (a*b)*c = (L.C.M(a,b))*c

⇒ (a*b)*c = L.C.M(a,b)*c

⇒ (a*b)*c = L.C.M(L.C.M(a,b),c)

⇒ (a*b)*c = L.C.M(a,b,c) ...... (1)

⇒ a*(b*c) = a*(L.C.M(b,c))

⇒ a*(b*c) = a*L.C.M(b,c)

⇒ a*(b*c) = L.C.M(a,L.C.M(b,c))

⇒ a*(b*c) = L.C.M(a,b,c) ...... (2)

From(1) and (2) we can say that associative property holds for binary function ‘*’ on ‘N’.

Given that * is a binary operation on N defined by a*b = 1 for all a,b∈N.

We know that commutative property is p*q = q*p, where * is a binary operation.

Let’s check the commutativity of given binary operation:

⇒ a*b = 1

⇒ b*a = 1

⇒ b*a = a*b

∴ The commutative property holds for given binary operation ‘*’ on ‘N’.

We know that associative property is (p*q)*r = p*(q*r)

Let’s check the associativity of given binary operation:

⇒ (a*b)*c = (1)*c

⇒ (a*b)*c = 1*c

⇒ (a*b)*c = 1 ...... (1)

⇒ a*(b*c) = a*(1)

⇒ a*(b*c) = a*1

⇒ a*(b*c) = 1 ...... (2)

From (1) and (2) we can clearly say that,

Associative property holds for given binary operation ‘*’ on ‘N’.

Given that * is a binary operation on N defined by for all a,b∈N.

We know that commutative property is p*q = q*p, where * is a binary operation.

Let’s check the commutativity of given binary operation:

⇒

⇒

⇒ b*a = a*b

∴ The commutative property holds for given binary operation ‘*’ on ‘N’.

We know that associative property is (p*q)*r = p*(q*r)

Let’s check the associativity of given binary operation:

⇒

⇒

⇒ ...... (1)

⇒

⇒

⇒ ...... (2)

From (1) and (2) we can clearly say that associativity doesn’t hold for the binary operation ‘*’ on ‘N’.

Given that * is a binary operation on set A defined by a*b = b for all a,b∈A.

We know that commutative property is p*q = q*p, where * is a binary operation.

Let’s check the commutativity of given binary operation:

⇒ a*b = b

⇒ b*a = a

⇒ b*a≠a*b

∴ The commutative property does not hold for given binary operation ‘*’ on ‘A’.

We know that associative property is (p*q)*r = p*(q*r)

Let’s check the associativity of given binary operation:

⇒ (a*b)*c = (b)*c

⇒ (a*b)*c = b*c

⇒ (a*b)*c = c ...... (1)

⇒ a*(b*c) = a*(c)

⇒ a*(b*c) = a*c

⇒ a*(b*c) = c ...... (2)

From (1) and (2) we can clearly say that associativity holds for the binary operation ‘*’ on ‘A’.

Given that * is a binary operation on Z defined by a*b = a + b + ab for all a,b∈Z.

We know that commutative property is p*q = q*p, where * is a binary operation.

Let’s check the commutativity of given binary operation:

⇒ a*b = a + b + ab

⇒ b*a = b + a + ba

⇒ b*a = a + b + ab

⇒ b*a = a*b

∴ Commutative property holds for given binary operation ‘*’ on ‘Z’.

We know that associative property is (p*q)*r = p*(q*r)

Let’s check the associativity of given binary operation:

⇒ (a*b)*c = (a + b + ab)*c

⇒ (a*b)*c = (a + b + ab + c + ((a + b + ab)×c))

⇒ (a*b)*c = a + b + c + ab + ac + ac + abc ...... (1)

⇒ a*(b*c) = a*(b + c + bc)

⇒ a*(b*c) = (a + b + c + bc + (a×(b + c + bc)))

⇒ a*(b*c) = a + b + c + ab + bc + ac + abc ...... (2)

From (1) and (2) we can clearly say that associativity holds for the binary operation ‘*’ on ‘Z’.

Given that * is a binary operation on N defined by a*b = 2^ab for all a,b∈N.

We know that commutative property is p*q = q*p, where * is a binary operation.

Let’s check the commutativity of given binary operation:

⇒ a*b = 2^ab

⇒ b*a = 2^ba = 2^ab

⇒ b*a = a*b

∴ The commutative property holds for given binary operation ‘*’ on ‘N’.

We know that associative property is (p*q)*r = p*(q*r)

Let’s check the associativity of given binary operation:

⇒ (a*b)*c = (2^ab)*c

⇒ ...... (1)

⇒ a*(b*c) = a*(2^bc)

⇒ ...... (2)

From (1) and (2) we can clearly say that associativity doesn’t hold for the binary operation ‘*’ on ‘N’.

Given that * is a binary operation on Q defined by a*b = a – b for all a,b∈Q.

We know that commutative property is p*q = q*p, where * is a binary operation.

Let’s check the commutativity of given binary operation:

⇒ a*b = a – b

⇒ b*a = b = a

⇒ b*a≠a*b

∴ The commutative property doesn’t hold for given binary operation ‘*’ on ‘Q’.

We know that associative property is (p*q)*r = p*(q*r)

Let’s check the associativity of given binary operation:

⇒ (a*b)*c = (a – b)*c

⇒ (a*b)*c = a – b – c ...... (1)

⇒ a*(b*c) = a*(b – c)

⇒ a*(b*c) = a – (b – c)

⇒ a*(b*c) = a – b + c ...... (2)

From (1) and (2) we can clearly say that associativity doesn’t hold for the binary operation ‘*’ on ‘Q’.

Given that Ο is a binary operation on Q defined by aΟb = a² + b² for all a,b∈Q.

We know that commutative property is pΟq = qΟp, where Ο is a binary operation.

Let’s check the commutativity of given binary operation:

⇒ aΟb = a² + b²

⇒ bΟa = b² + a² = a² + b²

⇒ bΟa = aΟb

∴ Commutative property holds for given binary operation ‘Ο’ on ‘Q’.

We know that associative property is (pΟq)Οr = pΟ(qΟr)

Let’s check the associativity of given binary operation:

⇒ (aΟb)Οc = (a² + b²)Οc

⇒

⇒ (aΟb)Οc = a⁴ + b⁴ + 2a²b² + c² ...... (1)

⇒ aΟ(bΟc) = aΟ(b² + c²)

⇒

⇒ aΟ(bΟc) = a² + b⁴ + c⁴ + 2b²c² ...... (2)

From (1) and (2) we can clearly say that associativity doesn’t hold for the binary operation ‘*’ on ‘Q’.

Given that ο is a binary operation on Q defined by for all a,b∈Q.

We know that commutative property is pοq = qοp, where ο is a binary operation.

Let’s check the commutativity of given binary operation:

⇒

⇒

⇒ b*a = a*b

∴ The commutative property holds for given binary operation ‘ο’ on ‘Q’.

We know that associative property is (pοq)οr = pο(qοr)

Let’s check the associativity of given binary operation:

⇒

⇒

⇒ ...... (1)

⇒

⇒

⇒ ...... (2)

From (1) and (2) we can clearly say that associativity hold for the binary operation ‘ο’ on ‘Q’.

Given that * is a binary operation on Q defined by a*b = ab² for all a,b∈Q.

We know that commutative property is p*q = q*p, where * is a binary operation.

Let’s check the commutativity of given binary operation:

⇒ a*b = ab²

⇒ b*a = ba²

⇒ b*a≠a*b

∴ Commutative property doesn’t holds for given binary operation ‘*’ on ‘Q’.

We know that associative property is (p*q)*r = p*(q*r)

Let’s check the associativity of given binary operation:

⇒ (a*b)*c = (ab²)*c

⇒ (a*b)*c = ab²c² ...... (1)

⇒ a*(b*c) = a*(bc²)

⇒

⇒ a*(b*c) = ab²c⁴ ...... (2)

From (1) and (2) we can clearly say that associativity doesn’t hold for the binary operation ‘*’ on ‘Q’.

Given that * is a binary operation on Q defined by a*b = a + ab for all a,b∈Q.

We know that commutative property is p*q = q*p, where * is a binary operation.

Let’s check the commutativity of given binary operation:

⇒ a*b = a + ab

⇒ b*a = b + ba = b + ab

⇒ b*a≠a*b

∴ Commutative property doesn’t holds for given binary operation ‘*’ on ‘Q’.

We know that associative property is (p*q)*r = p*(q*r)

Let’s check the associativity of given binary operation:

⇒ (a*b)*c = (a + ab)*c

⇒ (a*b)*c = a + ab + ((a + ab)×c)

⇒ (a*b)*c = a + ab + ac + abc ...... (1)

⇒ a*(b*c) = a*(b + bc)

⇒ a*(b*c) = a + (a×(b + bc))

⇒ a*(b*c) = a + ab + abc ...... (2)

From (1) and (2) we can clearly say that associativity doesn’t hold for the binary operation ‘*’ on ‘Q’.

Given that * is a binary operation on R defined by a*b = a + b – 7 for all a,b∈R.

We know that commutative property is p*q = q*p, where * is a binary operation.

Let’s check the commutativity of given binary operation:

⇒ a*b = a + b – 7

⇒ b*a = b + a – 7 = a + b – 7

⇒ b*a = a*b

∴ Commutative property holds for given binary operation ‘*’ on ‘R’.

We know that associative property is (p*q)*r = p*(q*r)

Let’s check the associativity of given binary operation:

⇒ (a*b)*c = (a + b – 7)*c

⇒ (a*b)*c = a + b – 7 + c – 7

⇒ (a*b)*c = a + b + c – 14 ...... (1)

⇒ a*(b*c) = a*(b + c – 7)

⇒ a*(b*c) = a + b + c – 7 – 7

⇒ a*(b*c) = a + b + c – 14 ...... (2)

From (1) and (2) we can clearly say that associativity holds for the binary operation ‘*’ on ‘R’.

Given that * is a binary operation on Q defined by a*b = (a – b)² for all a,b∈Q.

We know that commutative property is p*q = q*p, where * is a binary operation.

Let’s check the commutativity of given binary operation:

⇒ a*b = (a – b)²

⇒ b*a = (b – a)² = (a – b)²

⇒ b*a = a*b

∴ Commutative property holds for given binary operation ‘*’ on ‘Q’.

We know that associative property is (p*q)*r = p*(q*r)

Let’s check the associativity of given binary operation:

⇒ (a*b)*c = ((a – b)²)*c

⇒

⇒ (a*b)*c = (a² + b² – 2ab – c)² ...... (1)

⇒ a*(b*c) = a*((b – c)²)

⇒

⇒ a*(b*c) = (a² – b² – c² + 2bc)² ...... (2)

From (1) and (2) we can clearly say that associativity doesn’t hold for the binary operation ‘*’ on ‘Q’.

Given that * is a binary operation on Q defined by a*b = ab + 1 for all a,b∈Q.

We know that commutative property is p*q = q*p, where * is a binary operation.

Let’s check the commutativity of given binary operation:

⇒ a*b = ab + 1

⇒ b*a = ba + 1 = ab + 1

⇒ b*a = a*b

∴ Commutative property holds for given binary operation ‘*’ on ‘Q’.

We know that associative property is (p*q)*r = p*(q*r)

Let’s check the associativity of given binary operation:

⇒ (a*b)*c = (ab + 1)*c

⇒ (a*b)*c = ((ab + 1)×c) + 1

⇒ (a*b)*c = abc + c + 1 ...... (1)

⇒ a*(b*c) = a*(bc + 1)

⇒ a*(b*c) = (a×(bc + 1)) + 1

⇒ a*(b*c) = abc + a + 1 ...... (2)

From (1) and (2) we can clearly say that associativity doesn’t hold for the binary operation ‘*’ on ‘Q’.

Given that * is a binary operation on N defined by a*b = a^b for all a,b∈N.

We know that commutative property is p*q = q*p, where * is a binary operation.

Let’s check the commutativity of given binary operation:

⇒ a*b = a^b

⇒ b*a = b^a

⇒ b*a≠a*b

∴ Commutative property doen’t holds for given binary operation ‘*’ on ‘N’.

We know that associative property is (p*q)*r = p*(q*r)

Let’s check the associativity of given binary operation:

⇒ (a*b)*c = (a^b)*c

⇒ (a*b)*c = (a^b)^c

⇒ (a*b)*c = a^bc ...... (1)

⇒ a*(b*c) = a*(b^c)

⇒ ...... (2)

From (1) and (2) we can clearly say that associativity doesn’t hold for the binary operation ‘*’ on ‘N’.

Given that * is a binary operation on Z defined by a*b = a – b for all a,b∈Z.

We know that commutative property is p*q = q*p, where * is a binary operation.

Let’s check the commutativity of given binary operation:

⇒ a*b = a – b

⇒ b*a = b – a

⇒ b*a≠a*b

∴ Commutative property doesn’t holds for given binary operation ‘*’ on ‘Z’.

We know that associative property is (p*q)*r = p*(q*r)

Let’s check the associativity of given binary operation:

⇒ (a*b)*c = (a – b)*c

⇒ (a*b)*c = (a – b) – c

⇒ (a*b)*c = a – b – c ...... (1)

⇒ a*(b*c) = a*(b – c)

⇒ a*(b*c) = a – (b – c)

⇒ a*(b*c) = a – b + c ...... (2)

From (1) and (2) we can clearly say that associativity doesn’t hold for the binary operation ‘*’ on ‘Z’.

Given that * is a binary operation on Q defined by for all a,b∈Q.

We know that commutative property is p*q = q*p, where * is a binary operation.

Let’s check the commutativity of given binary operation:

⇒

⇒

⇒ b*a = a*b

∴ Commutative property holds for given binary operation ‘*’ on ‘Q’.

We know that associative property is (p*q)*r = p*(q*r)

Let’s check the associativity of given binary operation:

⇒

⇒

⇒ ...... (1)

⇒

⇒

⇒ ...... (2)

From (1) and (2) we can clearly say that associativity hold for the binary operation ‘*’ on ‘Q’.

Given that * is a binary operation on Z defined by a*b = a + b – ab for all a,b∈Z.

We know that commutative property is p*q = q*p, where * is a binary operation.

Let’s check the commutativity of given binary operation:

⇒ a*b = a + b – ab

⇒ b*a = b + a – ba = a + b – ab

⇒ b*a = a*b

∴ Commutative property holds for given binary operation ‘*’ on ‘Z’.

We know that associative property is (p*q)*r = p*(q*r)

Let’s check the associativity of given binary operation:

⇒ (a*b)*c = (a + b – ab)*c

⇒ (a*b)*c = a + b – ab + c – ((a + b – ab)×c)

⇒ (a*b)*c = a + b + c – ab – ac – bc + abc ...... (1)

⇒ a*(b*c) = a*(b + c – bc)

⇒ a*(b*c) = a + b + c – bc – (a×(b + c – bc))

⇒ a*(b*c) = a + b + c – ab – ac – bc + abc ...... (2)

From (1) and (2) we can clearly say that associativity hold for the binary operation ‘*’ on ‘Z’.

Given that * is a binary operation on Q defined by a*b = g.c.d(a,b) for all a,b∈Q.

We know that commutative property is p*q = q*p, where * is a binary operation.

Let’s check the commutativity of given binary operation:

⇒ a*b = g.c.d(a,b)

⇒ b*a = g.c.d(b,a) = g.c.d(a,b)

⇒ b*a = a*b

∴ Commutative property holds for given binary operation ‘*’ on ‘Q’.

We know that associative property is (p*q)*r = p*(q*r)

Let’s check the associativity of given binary operation:

⇒ (a*b)*c = (g.c.d(a,b))*c

⇒ (a*b)*c = g.c.d(g.c.d(a,b),c)

⇒ (a*b)*c = g.c.d(a,b,c) ...... (1)

⇒ a*(b*c) = a*(g.c.d(b,c))

⇒ a*(b*c) = g.c.d(a,g.c.d(b,c))

⇒ a*(b*c) = g.c.d(a,b,c) ...... (2)

From (1) and (2) we can clearly say that associativity hold for the binary operation ‘*’ on ‘Q’.

Given that ο is a binary operation on Q – { – 1} defined by aοb = a + b – ab for all a,b∈Q – { – 1}.

We know that commutative property is pοq = qοp, where ο is a binary operation.

Let’s check the commutativity of given binary operation:

⇒ aοb = a + b – ab

⇒ bοa = b + a – ba = a + b – ab

⇒ b*a = a*b

∴ Commutative property holds for given binary operation ‘ο’ on ‘Q – { – 1}’.

We know that associative property is (pοq)οr = pο(qοr)

Let’s check the associativity of given binary operation:

⇒ (aοb)οc = (a + b – ab)οc

⇒ (aοb)οc = a + b – ab + c – ((a + b – ab)×c)

⇒ (aοb)οc = a + b + c – ab – ac – ab + abc ...... (1)

⇒ aο(bοc) = aο(b + c – bc)

⇒ aο(bοc) = a + b + c – bc – (a×(b + c – bc))

⇒ a*(b*c) = a + b + c – ab – bc – ac + abc ...... (2)

From (1) and (2) we can clearly say that associativity hold for the binary operation ‘*’ on ‘Q – { – 1}’.

Given that * is a binary operation on Z defined by a*b = 3a + 7b for all a,b∈Z.

We know that commutative property is p*q = q*p, where * is a binary operation.

Let’s check the commutativity of given binary operation:

⇒ a*b = 3a + 7b

⇒ b*a = 3b + 7a

⇒ b*a≠a*b

∴ Commutative property doesn’t holds for given binary operation ‘*’ on ‘Z’.

Given that * is a binary operation on Z defined by a*b = ab + 1 for all a,b∈Z.

We know that associative property is (p*q)*r = p*(q*r), where x is a binary operation.

Let’s check the associativity of given binary operation:

⇒ (a*b)*c = (ab + 1)*c

⇒ (a*b)*c = ((ab + 1)×c) + 1

⇒ (a*b)*c = 1 + c + abc ...... (1)

⇒ a*(b*c) = a*(bc + 1)

⇒ a*(b*c) = (a×(bc + 1)) + 1

⇒ a*(b*c) = abc + a + 1 ...... (2)

From (1) and (2) we can clearly say that associativity doesn’t hold for the binary operation ‘*’ on ‘Z’.

Given that ‘*’ is an operation that is valid on the set S which consists of all real numbers except – 1 i.e., R – { – 1} defined as a*b = a + b + ab

Let us assume a + b + ab = – 1

⇒ a + ab + b + 1 = 0

⇒ a(1 + b) + (1 + b) = 0

⇒ (a + 1)(b + 1) = 0

⇒ a = – 1 or b = – 1

But according to the problem, it is given that a≠ – 1 and b≠ – 1 so,

a + b + ab≠ – 1, so we can say that the operation ‘*’ defines a binary operation on set ‘S’.

We know that commutative property is p*q = q*p, where * is a binary operation.

Let’s check the commutativity of given binary operation:

⇒ a*b = a + b + ab

⇒ b*a = b + a + ba = a + b + ab

⇒ b*a = a*b

∴ Commutative property holds for given binary operation ‘*’ on ‘S’.

We know that associative property is (p*q)*r = p*(q*r)

Let’s check the associativity of given binary operation:

⇒ (a*b)*c = (a + b + ab)*c

⇒ (a*b)*c = a + b + ab + c + ((a + b + ab)×c)

⇒ (a*b)*c = a + b + c + ab + ac + bc + abc ...... (1)

⇒ a*(b*c) = a*(b + c + bc)

⇒ a*(b*c) = a + b + c + bc + (a×(b + c + bc))

⇒ a*(b*c) = a + b + c + ab + bc + ac + abc ...... (2)

From (1) and (2) we can clearly say that associativity holds for the binary operation ‘*’ on ‘N’.

We need to also solve for x in the given expression:

⇒ (2*x)*3 = 7

⇒ (2 + x + 2x)*3 = 7

⇒ (2 + 3x)*3 = 7

⇒ 2 + 3x + 3 + ((2 + 3x)×3) = 7

⇒ 5 + 3x + 6 + 9x = 7

⇒ 11 + 12x = 7

⇒ 12x = – 4

⇒

⇒

∴ the value of x is .

Given that * is a binary operation on Q defined by for all a,b∈Q.

We know that associative property is (p*q)*r = p*(q*r)

Let’s check the associativity of given binary operation:

⇒

⇒

⇒

⇒ ...... (1)

⇒

⇒

⇒

⇒ ...... (2)

From (1) and (2) we can clearly say that associativity doesn’t hold for the binary operation ‘*’ on ‘Q’.

Given that * is a binary operation on Z defined by a*b = a + 3b – 4 for all a,b∈Z.

We know that commutative property is p*q = q*p, where * is a binary operation.

Let’s check the commutativity of given binary operation:

⇒ a*b = a + 3b – 4

⇒ b*a = b + 3a – 4

⇒ b*a ≠ a*b

∴ The commutative property doesn’t hold for given binary operation ‘*’ on ‘Z’.

We know that associative property is (p*q)*r = p*(q*r)

Let’s check the associativity of given binary operation:

⇒ (a*b)*c = (a + 3b – 4)*c

⇒ (a*b)*c = a + 3b – 4 + 3c – 4

⇒ (a*b)*c = a + 3b + 3c – 8 ...... (1)

⇒ a*(b*c) = a*(b + 3c – 4)

⇒ a*(b*c) = a + (3×(b + 3c – 4)) – 4

⇒ a*(b*c) = a + 3b + 9c – 12 – 4

⇒ a*(b*c) = a + 3b + 9c – 16 ...... (2)

From (1) and (2) we can clearly say that associativity doesn’t hold for the binary operation ‘*’ on ‘Z’.

Given that * is a binary operation on Q defined by for all a,b∈Q.

We know that associative property is (p*q)*r = p*(q*r)

Let’s check the associativity of given binary operation:

⇒

⇒

⇒ ...... (1)

⇒

⇒

⇒ ...... (2)

From (1) and (2) we can clearly say that associativity hold for the binary operation ‘*’ on ‘Q’.

Given that * is a binary operation on Q defined by for all a,b∈Q.

We know that associative property is (p*q)*r = p*(q*r)

Let’s check the associativity of given binary operation:

⇒

⇒

⇒ ...... (1)

⇒

⇒

⇒ ...... (2)

From (1) and (2) we can clearly say that associativity hold for the binary operation ‘*’ on ‘Q’.

Given that * is a binary operation on Q defined by for all a,b∈Q.

We know that associative property is (p*q)*r = p*(q*r)

Let’s check the associativity of given binary operation:

⇒

⇒

⇒ ...... (1)

⇒

⇒

⇒

⇒ ...... (2)

From (1) and (2) we can clearly say that associativity doesn’t hold for the binary operation ‘*’ on ‘N’.

Given that ‘*’ is an operation that is valid on the set S which consists of all real numbers except 1 i.e., R – {1} defined as a*b = a + b – ab

Let us assume a + b – ab = 1

⇒ a – ab + b – 1 = 0

⇒ a(1 – b) – 1(1 – b) = 0

⇒ (1 – a)(1 – b) = 0

⇒ a = 1 or b = 1

But according to the problem, it is given that a≠1 and b≠1 so,

a + b + ab≠1, so we can say that the operation ‘*’ defines a binary operation on set ‘S’.

We know that commutative property is p*q = q*p, where * is a binary operation.

Let’s check the commutativity of given binary operation:

⇒ a*b = a + b – ab

⇒ b*a = b + a – ba = a + b – ab

⇒ b*a = a*b

∴ Commutative property holds for given binary operation ‘*’ on ‘S’.

We know that associative property is (p*q)*r = p*(q*r)

Let’s check the associativity of given binary operation:

⇒ (a*b)*c = (a + b – ab)*c

⇒ (a*b)*c = a + b – ab + c – ((a + b – ab)×c)

⇒ (a*b)*c = a + b + c – ab – ac – bc + abc ...... (1)

⇒ a*(b*c) = a*(b + c – bc)

⇒ a*(b*c) = a + b + c – bc – (a×(b + c + bc))

⇒ a*(b*c) = a + b + c – ab – bc – ac + abc ...... (2)

From (1) and (2) we can clearly say that associativity holds for the binary operation ‘*’ on ‘S’.

Given that binary operation ‘*’ is valid for set ‘I ⁺ ’ of all positive integers defined by a*b = a + b for all a,b∈I ⁺.

Let us assume a∈I ⁺ and the identity element that we need to compute be e∈I ⁺.

We know that he Identity property is defined as follows:

⇒ a*e = e*a = a

⇒ a + e = a

⇒ e = a – a

⇒ e = 0

∴ The required Identity element w.r.t * is 0.

Given that binary operation ‘*’ is valid for set of all rational numbers Q defined by a*b = a + b + ab for all a,b∈R.

Let us assume a∈R and the identity element that we need to compute be e∈R.

We know that he Identity property is defined as follows:

⇒ a*e = e*a = a

⇒ a + e + ea = a

⇒ e + ae = a – a

⇒ e(1 + a) = 0

⇒ e = 0

∴ The required Identity element w.r.t * is 0.

Given that binary operation ‘*’ is valid for set ‘Z’ defined by a*b = a + b – 5 for all a,b∈Z.

Let us assume a∈Z and the identity element that we need to compute be e∈Z.

We know that he Identity property is defined as follows:

⇒ a*e = e*a = a

⇒ a + e – 5 = a

⇒ e – 5 = a – a

⇒ e = 5

∴ The required Identity element w.r.t * is 5.

Given that binary operation ‘*’ is valid for set ‘Z’ of integers defined by a*b = a + b for all a,b∈Z.

Let us assume a∈Z and the identity element that we need to compute be e∈Z.

We know that he Identity property is defined as follows:

⇒ a*e = e*a = a

⇒ a + e + 2 = a

⇒ e + 2 = a – a

⇒ e = – 2

∴ The required Identity element w.r.t * is – 2.

i. We are given with the set Z which is the set of integers.

A general binary operation is nothing but association of any pair of elements a, b from an arbitrary set X to another element of X. This gives rise to a general definition as follows:

A binary operation * on a set is a function * : A X A → A. We denote * (a, b) as a * b.

Here the function *: Z X Z → Z is given by a * b = a + b – 4
For the ‘ * ’ to be commutative, a * b = b * a must be true for all a, b belong to Z. Let’s check.

1. a * b = a + b – 4

2. b * a = b + a – 4

a * b = b * a (as shown by 1 and 2)

Hence ‘ * ’ is commutative.

For the ‘ * ’ to be associative, a * (b * c) = (a * b) * c must hold for every a, b, c ∈ Z.

3. a * (b * c) = a * (b + c – 4) = a + (b + c – 4) – 4 = a + b + c – 8

4. (a * b) * c = (a + b – 4) * c = (a + b – 4) + c – 4 = a + b + c – 8

a * (b * c) = (a * b) * c

Hence ‘ * ’ is associative.

ii. Identity Element: Given a binary operation *: Z X Z → Z, an element e ∈Z, if it exists, is called an identity of the operation * , if a * e = a = e * a ∀ a ∈Z.

Let e be the identity element of Z.

Therefore, a * e = a
⇒ a + e – 4 = a
⇒ e – 4 = 0
⇒ e = 4

iii. Given a binary operation with the identity element e in A, an element a Z is said to be invertible with respect to the operation, if there exists an element b in Z such that a * b = e = b * a and b is called the inverse of a and is denoted by a^–1.

Let us proceed with the solution.

Let b Z be the invertible elements in Z of a, here a Z.

a * b = e (We know the identity element from previous)
⇒ a + b – 4 = 4
⇒ b = 8 – a

We are given with the set Q₀ which is the set of non - zero rational numbers.

A general binary operation is nothing but association of any pair of elements a, b from an arbitrary set X to another element of X. This gives rise to a general definition as follows:

A binary operation * on a set is a function * : A X A → A. We denote * (a, b) as a * b.

Here the function*:
For the ‘ * ’ to be commutative, a * b = b * a must be true for all a, b Q₀. Let’s check.

⇒ a * b = b * a (as shown by 1 and 2)

Hence ‘ * ’ is commutative on Q₀

For the ‘ * ’ to be associative, a * (b * c) = (a * b) * c must hold for every a, b, c ∈ Q₀.

⇒ 3. = 4.

Hence ‘ * ’ is associative on Q₀

Identity Element: Given a binary operation*: A X A → A, an element e ∈A, if it exists, is called an identity of the operation*, if a*e = a = e*a ∀ a ∈A.

Let e be the identity element of Q₀.

Therefore, a * e = a (a ∈Q₀)

iii. Given a binary operation with the identity element e in A, an element a A is said to be invertible with respect to the operation, if there exists an element b in A such that a * b = e = b * a and b is called the inverse of a and is denoted by a^–1.

Let us proceed with the solution.

Here the function*

Let b Q₀ be the invertible elements in Q₀ of a, where a Q₀.

∴a * b = e (We know the identity element from previous)

i. We are given with the set Q – {– 1}.

A general binary operation is nothing but association of any pair of elements a, b from an arbitrary set X to another element of X. This gives rise to a general definition as follows:

A binary operation * on a set is a function * : A X A → A. We denote * (a, b) as a * b.

Here the function *: Q – {– 1}X Q – {– 1} → Q – {– 1} is given by a * b = a + b + ab

For the ‘ * ’ to be commutative, a * b = b * a must be true for all a, b belong to Q – {– 1}. Let’s check.

1. a * b = a + b + ab
2. b * a = b + a + ab = a + b + ab
⇒ a * b = b * a (as shown by 1 and 2)

Hence ‘ * ’ is commutative on Q – {– 1}

For the ‘ * ’ to be associative, a * (b * c) = (a * b) * c must hold for every a, b, c ∈ Q – {– 1}.

3. a * (b * c) = a * (b + c + bc)

= a + (b + c + bc) + a(b + c + bc)

= a + b + c + ab + bc + ac + abc

4. (a * b) * c = (a + b + ab) * c

= a + b + ab + c + (a + b + ab)c

= a + b + c + ab + bc + ac + abc
⇒ 3. = 4.

Hence ‘ * ’ is associative on Q – {– 1}

ii. Identity Element: Given a binary operation*: A X A → A, an element e ∈A, if it exists, is called an identity of the operation*, if a*e = a = e*a ∀ a ∈A.

Let e be the identity element of Q – {– 1}, and a be an element of Q – {– 1}.

Therefore, a * e = a
⇒ a + e + ae = a
⇒ e + ea = 0
⇒ e(1 + a) = 0
⇒ e = 0.

(1 + a≠0 as the a is not equal to 1 as given in the question)

iii. Given a binary operation with the identity element e in A, an element a A is said to be invertible with respect to the operation, if there exists an element b in A such that a * b = e = b * a and b is called the inverse of a and is denoted by a^–1.

Let us proceed with the solution.

Let b Q – {– 1} be the invertible element/s in Q – {– 1} of a, here a Q – {– 1}.

∴a * b = e (We know the identity element from previous)
⇒ a + b + ab = 0
⇒ b + ab = – a
⇒ b(1 + a) = – a
(Required invertible elements, a≠ – 1, b≠ – 1)

In this question, we do not have individuals as elements but ordered pairs as the elements of the Cartesian product R₀ x R. Hence this is the same problem as the above problems but in the form of ordered pairs belonging to the Cartesian product.

A = R₀ x R

i. We are given with the set A which is the Cartesian product of R₀ and R.

Here the function *: A X A → A is given by (a, b)°(c, d) = (ac, bc + d)

So here the operation on two ordered pairs gives us a ordered pair. So the first element of the first ordered pair (a) multiplies with the first element of the second ordered pair (c) to make (ac) in the resulting pair. To make the second element of the final pair, second element of the first ordered pair (b) multiplies with the first element of the second ordered pair (c) to form (bc) and then this is added to the second element of the second ordered pair (d) to make (bc + d). Hence the final ordered pair is (ac, bc + d). So this is the operation basically.

For the ‘⁰’ to be commutative, a * b = b * a must be true for all a, b belong to A. Let’s check.
Note: Here a, b represent the ordered pairs (a, b) and (c, d) respectively.

1. (a, b)°(c, d) = (ac, bc + d)
2. (c, d)°(a, b) = (ca, da + b)
⇒ a * b≠b * a (as shown by 1 and 2)

Hence ‘⁰’ is not commutative on A.

For the ‘ * ’ to be associative, a * (b * c) = (a * b) * c must hold for every a, b, c ∈ A. Here c = (e, f)

3. (a, b)°[(c, d)°(e, f)] = (a, b)°(ce, de + f)

= (ace, bce + de + f)

4. [(a, b)°(c, d)]°(e, f) = (ac, bc + d)°(e, f)

= (ace, [bc + d]e + f)
= (ace, bce + de + f)
⇒ 3. = 4.

Hence ‘⁰’ is associative on A.

ii. Identity Element: Given a binary operation *: A X A → A, an element e ∈A, if it exists, is called an identity of the operation * , if p * e = p = e * p ∀ p ∈A.

Here in this case, p and e are an ordered pairs.

Let e = (a, b) be the identity element of A and p = (x, y) where p A.

∴, (x, y)°(a, b) = (a, b)
⇒ (xa, ya + b) = (a, b)
⇒ ∴xa = a, ya + b = b

(Since, ordered pairs are only equal when both the first and second terms are equal)
⇒ x = 1 (x gets cancelled out)
⇒ y(1) + b = b

⇒ b = 0

The ordered pair (1, 0) is the identity of the operation ‘⁰’ on A.

iii. Given a binary operation with the identity element e in A, an element a A is said to be invertible with respect to the operation, if there exists an element b in A such that a * b = e = b * a and b is called the inverse of a and is denoted by a^–1.

For this example, a, b, e are ordered pairs.

Let us proceed with the solution.

Let (c, d) A be the invertible elements in A of (a, b) here (a, b) A.

∴(a, b)°(c, d) = (1, 0) (We know the identity element from previous)
⇒ (ac, bc + d) = (1, 0)
⇒ ac = 1, bc + d = 0

(Since, ordered pairs are only equal when both the first and second terms are equal)

(Required invertible element)

We are given with the set Q₀ which is the set of non - zero rational numbers.

A general binary operation is nothing but association of any pair of elements a, b from an arbitrary set X to another element of X. This gives rise to a general definition as follows:

i. A binary operation * on a set is a function*:

Here the function o:

For the ‘o’ to be commutative, aob = boa must be true for all a, b Q₀. Let’s check.

⇒ a * b = b * a (as shown by 1 and 2)

Hence ‘o’ is commutative on Q₀

For the ‘o’ to be associative, ao(boc) = (aob)oc must hold for every a, b, c ∈ Q₀.

Hence ‘o’ is associative on Q₀

ii. Identity Element: Given a binary operation*: A X A → A, an element e ∈A, if it exists, is called an identity of the operation*, if a*e = a = e*a ∀ a ∈A.

Let e be the identity element of Q₀.

Therefore, aoe = a (a ∈Q_0)

iii. Given a binary operation with the identity element e in A, an element a A is said to be invertible with respect to the operation, if there exists an element b in A such that a * b = e = b * a and b is called the inverse of a and is denoted by a^–1.

Let us proceed with the solution.

Let b Q₀ be the invertible elements in Q₀ of a, where a Q₀.

∴a * b = e (We know the identity element from previous)

i. We are given with the set R – {– 1}.

A general binary operation is nothing but an association of any pair of elements a, b from an arbitrary set X to another element of X. This gives rise to a general definition as follows:

A binary operation * on a set is a function * : A X A → A. We denote * (a, b) as a * b.

Here the function *: R – {1}X R – {1} → R – {1} is given by a * b = a + b – ab

For the ‘ * ’ to be commutative, a * b = b * a must be true for all a, b belong to R – {1}. Let’s check.

1. a * b = a + b – ab
2. b * a = b + a – ba = a + b – ab
⇒ a * b = b * a (as shown by 1 and 2)

Hence ‘ * ’ is commutative on R – {1}

For the ‘ * ’ to be associative, a * (b * c) = (a * b) * c must hold for every a, b, c ∈ R – {1}.

3. a * (b * c) = a * (b + c – bc)

= a + (b + c – bc) – a(b + c + bc)

= a + b + c – ab – bc – ac + abc

4. (a * b) * c = (a + b – ab) * c

= a + b – ab + c – (a + b – ab)c

= a + b + c – ab – bc – ac + abc
⇒ 3. = 4.

Hence ‘ * ’ is associative on R – {1}

ii. Identity Element: Given a binary operation*: A X A → A, an element e ∈A, if it exists, is called an identity of the operation*, if a*e = a = e*a ∀ a ∈A.

Let e be the identity element of R – {1} and a be an element of R – {1}.

Therefore, a * e = a
⇒ a + e – ae = a
⇒ e + ea = 0
⇒ e(1 – a) = 0
⇒ e = 0.

(1 – a≠0 as the a cannot be equal to 1 as the operation is valid in R – {1})

iii. Given a binary operation with the identity element e in A, an element a A is said to be invertible with respect to the operation, if there exists an element b in A such that a * b = e = b * a and b is called the inverse of a and is denoted by a^–1.

Let us proceed with the solution.

Let b R – {1} be the invertible element/s in R – {1} of a, here a R – {1}.

∴a * b = e (We know the identity element from previous)
⇒ a + b – ab = 0
⇒ b – ab = – a
⇒ b(1 – a) = – a

In this question, we do not have individuals as elements but ordered pairs as the elements of the Cartesian product R₀ x R. Hence this is the same problem as the above problems but in the form of ordered pairs belonging to the Cartesian product.

A = R₀ x R₀

i. We are given with the set A which is the Cartesian product of R₀ and R₀.

Here the function *: A X A → A is given by (a, b)°(c, d) = (ac, bd)

So here the operation on two ordered pairs gives us a ordered pair. So the first element of the first ordered pair (a) multiplies with the first element of the second ordered pair (c) to make (ac) in the resulting pair. To make the second element of the final pair, second element of the first ordered pair (b) multiplies with the second element of the second ordered pair (c) to form (bd). Hence the final ordered pair is (ac, bd). So this is the operation basically.

For the ‘⁰’ to be commutative, p * q = p * q must be true for all p, q belong to A. Let’s check.
Note: Here p, q represent the ordered pairs (a, b) and (c, d) respectively.

1. (a, b)°(c, d) = (ac, bd)
2. (c, d)°(a, b) = (ca, db) = (ac, bd)
⇒ p * q = q * p (as shown by 1 and 2)

Hence ‘⁰’ is commutative on A.

For the ‘ * ’ to be associative, a * (b * c) = (a * b) * c must hold for every a, b, c ∈ A. Here r = (e, f)

3. (a, b)°[(c, d)°(e, f)] = (a, b)°(ce, df)

= (ace, bdf)

4. [(a, b)°(c, d)]°(e, f) = (ac, bd)°(e, f)

= (ace, bdf)
⇒ 3. = 4.

Hence ‘⁰’ is associative on A.

ii. Identity Element: Given a binary operation *: A X A → A, an element e ∈A, if it exists, is called an identity of the operation * , if p * e = p = e * p ∀ p ∈A.

Here in this case, p and e are an ordered pairs.

Let e = (a, b) be the identity element of A and p = (x, y) where p A.

∴, (x, y)°(a, b) = (x, y)
⇒ (xa, yb) = (x, y)

(Since, ordered pairs are only equal when both the first and second terms are equal)
⇒ ∴xa = x, yb = y

⇒ x(a – 1) = 0;y(b – 1) = 0

Since x, y≠0, we have, a – 1 = 0 and b – 1 = 0.

a = 1, b = 1

The ordered pair (1, 1) is the identity of the operation ‘⁰’ on A.

iii. Given a binary operation with the identity element e in A, an element a A is said to be invertible with respect to the operation, if there exists an element b in A such that a * b = e = b * a and b is called the inverse of a and is denoted by a^–1.

For this example, a, b, e are ordered pairs.

Let us proceed with the solution.

Let (c, d) A be the invertible elements in A of (a, b). Here (a, b) A.

∴(a, b)°(c, d) = (1, 1) (We know the identity element from previous)
⇒ (ac, bd) = (1, 1)
⇒ ac = 1, bd = 1

(Since, ordered pairs are only equal when both the first and second terms are equal)

The binary operation * on N defined as:

a * b = H.C.F. of a and b, a, b N.

Therefore,

b * a = H.C.F. of b and a = H.C.F

Hence, * is commutative on N.

Let a, b, c N.

a * (b * c) = a * (HCF of b and c) = HCF of a, b and c

(a * b) * c = (HCF of a and b) * c = HCF of a, b and c

For example, take the numbers 2, 4, 7 N.

Here, if the operation is applied to the above numbers as follows:

(2 * 4) * 7 = 1 * 7 = 1 (1 is the HCF of 2, 4 and HCF of 1, 7 is 1). Also,

2 * (4 * 7) = 2 * 1 = 1 (Similar as the above reason)

Therefore, * is associative.

Now, Identity Element:

Given a binary operation *: N X N → N, an element e ∈A, if it exists, is called an identity of the operation * , if a * e = a = e * a ∀ a ∈A.

But there does not exist any value of e ∈N such that a * e = a = e * a

Therefore, this operation does not have any identity.

A = R X R

For the ‘ * ’ to be commutative, p * q = p * q must be true for all p, q belong to A. Let’s check.
Note: Here p, q A represent the ordered pairs (a, b) and (c, d) respectively.

p * q = (a, b) * (c, d) = (a + c, b + d)
q * p = (c, d) * (a, b) = (c + a, d + b) = (a + c, b + d)
⇒ p * q = q * p (binary operation * is commutative)

For the ‘ * ’ to be associative, a * (b * c) = (a * b) * c must hold for every a, b, c ∈ A. Here r = (e, f)

p * (q * r) = (a, b) * ((c, d) * (e, f)) = (a, b) * (c + e, d + f) = (a + c + e, b + d + f)
(p * q) * r = ((a, b) * (c, d)) * (e, f) = (a + c, b + d) * (e, f) = (a + c + e, b + d + f)
⇒ p * (q * r) = (p * q) * r (Associative)

Binary elements:

Identity Element: Given a binary operation*: A X A → A, an element e ∈A, if it exists, is called an identity of the operation*, if p*e = p = e*p ∀ p ∈A.

Here p = (a, b) and e = (x, y). For the element e to exist,

(a, b) * (x, y) = (a, b)
⇒ (a + x, b + y) = (a, b)
⇒ a + x = a, b + y = b
Since, ordered pairs are only equal when both the first and second terms are equal
⇒ x = 0, y = 0
Hence the identity element e = (x, y) = (0, 0)

Given a binary operation with the identity element e in A, an element a A is said to be invertible with respect to the operation, if there exists an element b in A such that a * b = e = b * a and b is called the inverse of a and is denoted by a^–1.

Let i = (r, s) be the inverse of p = (a, b) in A.

Therefore, (r, s) * (a, b) = e = (0, 0)
⇒ (r + a, s + b) = (0, 0)
∴r + a = 0, r + b = 0
r = – a, s = – b

Therefore, (r, s) = ( – a, – b) is the inverse pair.

A composition table consists of elements which are a result of operation on the set elements.

Here we have the operation, a x₄b = remainder of ab divided by 4 where a, b S.

This is the composition table of x₄ on S = {0, 1, 2, 3}

For example, take 3 x₄ 2 = remainder of (3 x 2) divided by 4

We also see that the operation x₄ is valid because all the output elements belong to the set S.

A composition table consists of elements which are a result of operation on the set elements.

Here we have the operation, a + ₅ b = remainder of a + b divided by 5 where a, b S.

This is the composition table of x₄ on S = {0, 1, 2, 3, 4}

For example, take 3 + ₅ 2 = remainder of (3 + 2) divided by 5

We also see that the operation + ₅ is valid because all the output elements belong to the set S.

A composition table consists of elements which are a result of operation on the set elements.

Here we have the operation, a x₆ b = remainder of ab divided by 6 where a, b S.

This is the composition table of x₄ on S = {0, 1, 2, 3, 4, 5}

For example, take 3 x₆ 2 = remainder of (3 x 2) divided by 6

A composition table consists of elements which are a result of operation on the set elements.

Here we have the operation, a x₅b = remainder of ab divided by 5 where a, b S. Similar as problem 1.

A composition table consists of elements which are a result of operation on the set elements.

Here we have the operation, a x₁₀b = remainder of ab divided by 10 where a, b S.

For bS to be an inverse of aS, a x₁₀b = e, where e is the identity element.

We know for multiplication operation we have the identity element as 1.

So e = 1.

For a = 3,

3 x₁₀ (inverse of 3) = 1

From the table above, 3 x₁₀ 7 = 1

Hence we can conclude that ‘inverse of 3’ must be 7.

A composition table consists of elements which are a result of an operation on the set elements.

Here we have the operation, a x₇b = remainder of ab divided by 7 where a, b S.

For bS to be an inverse of aS, a x₇b = e, where e is the identity element.

We know for multiplication operation we have the identity element as 1.

So e = 1.

For a = 3,

3 x₇ (inverse of 3) = 1

From the table above, 3 x₇ 5 = 1

Hence we can conclude that ‘inverse of 3’ must be 5.

Therefore the expression:

3 ^{– 1} x₇ 4 = 5 x₇ 4 = 6. (From the table above)

A composition table consists of elements which are a result of an operation on the set elements.

Here we have the operation, a x₁₁ b = remainder of ab divided by 11 where a, b S

Example, 4 x₁₁ 9 = Remainder of (4 x 9) divided by 11

For bS to be an inverse of aS, a x₇b = e, where e is the identity element.

We know for multiplication operation we have the identity element as 1.

So e = 1.

For a = 5,

5 x₁₁ (inverse of 3) = 1

From the table above, 5 x₁₁ 9 = 1.

Hence, i = 9.

A composition table consists of elements which are a result of operation on the set elements.

Here we have the operation, a x₅b = remainder of ab divided by 5 where a, b S.

This is the composition table of x₄ on S = {0, 1, 2, 3, 5}

For example, take 3 x₄ 2 = remainder of (3 x 2) divided by 4

We also see that the operation x₄ is valid because all the output elements belong to the set S.

We observe the following:

a * b = b * a = b

c * a = a * c = c

a * d = d * a = d

b * c = c * b = d

b * d = d * b = c

c * d = d * c = b

There ‘ * ’ is commutative.

Also,

a * (b * c) = a * (d) = d (From above)

(a * b) * c = (b) * c = d (Also from above)

Hence, ‘ * ’ is associative too.

Therefore, to find the identity element, e for e belong to S, we need:

a * e = e * a = a, a belong to S.

Therefore, a * e = a

e = a (since, a * a = a, from the given table)

To find out the inverse, a * x = e = b * x, x belongs to S

a * x = e

x = a (From the given table)

Therefore, the inverse of a is a, b is b, c is c and d is d.

We observe the following:

a * b = b * a = a a * a = a

c * a = a * c = a b * b = b

a * d = d * a = a c * c = d

b * c = c * b = c d * d = c

b * d = d * b = d

c * d = d * c = b

There ‘ * ’ is commutative.

Also,

a * (b * c) = a * (c) = a (From above)

(a * b) * c = (a) * c = a (Also from above)

Hence, ‘ * ’ is associative too.

Therefore, to find the identity element, e for e belong to S, we need:

a * e = e * a = a, a belong to S.

Therefore, a * e = a

We find that there is no unique element e which satisfies the condition.

e = a or b or c or d for a.

Since the identity is not unique, the inverse will also be not unique.

The given binary operation is a*b =

And from the definition of identity element e,

a*e = a ........(i)

We have,

a*e = ……….(ii)

Thus from (i) & (ii) ,

= a

or, = 1

∴ e = 2

Hence the identity element for this binary operation is 2.

The given binary operation is a*b = a+b+2

In order to find the inverse of the relation, we have to find the identity element first.

Let that identity element be e then

a*e = a

From que.

a*e = a+e+2

So, from the above two relations we have

a+e+2 = a

or, e+2 = 0

∴ e = -2

Hence the identity element is -2 for this binary operation.

Now let a’ be the inverse of this relation

Then as per the definition of the inverse element

a*a’ = e

∴ a+a’+2 = -2

∴ a’ = -4 -a

And for 4 ,i.e. a = 4

a’ = -4 – 4

∴ a’ = -8

Thus the inverse element of 4 is -8 for the given binary operation.

Binary operations on a set are calculations that combine two elements of the set (called operands) to produce another element of the same set.

The binary operations * on a non-empty set A are functions from A × A to A. The binary operation, *: A × A → A. It is an operation of two elements of the set whose domains and co-domain are in the same set.

A binary operation * on a set A is commutative if a * b = b * a, for all (a, b) ∈ A (non-empty set).

Let addition be the operating binary operation for a = 8 and b = 9, a + b = 17 = b + a.

The associative property of binary operations hold if, for a non-empty set A, we can write (a * b) *c = a*(b * c).

Suppose N be the set of natural numbers and multiplication be the binary operation. Let a = 4, b = 5 c = 6. We can write (a × b) × c = 120 = a × (b × c).

Let A be a non-empty set having n elements. Then, the total number of binary operations on this set, i.e., from A×A is .

Here n = 2

Thus, total number of possible binary operations are = 16.

The given binary operation is a*b =

Let e be the identity element

Thus, as per the definition of an identity element a*e = a

Applying this in the relation given we have

= a

Or, =1

∴ e =

Thus, the identity element for the given binary operation is .

The given binary operation is a*b =

We have to find the value of x so that 2*(x*5) = 10

Firstly, x*5 = = x

Now 2*(x*5) = 2*x =

As per the question, it is equal to 10

∴ = 10

∴ x = 25

From the definition of multiplication modulo

a*b = (m is the base of the modulo)

Here the base is 11 and the set is {1,2,…,10}

So, we can make the composition table as :-

Thus, the identity element is 1.

So, the inverse of 5 is 9.

If A be the non-empty set and * be the binary operation on A. An element e is the identity element of a ∈ A, if a * e = a = e * a.

If the binary operation is addition(+), e = 0 and for * is multiplication(×), e = 1.

From the definition of multiplication modulo

a*b = (m is the base of the modulo)

And here the base is 3 and the set is S = {2,4,6,8}.

So, the composition table can be formed as :-

From the definition of multiplication modulo

a*b = (m is the base of the modulo)

Here the base is 10 and the set is S = {1,3,7,9}

So, We can make the composition table as :-

The identity element is 1.

So, the inverse element of 3 is 7.

From the definition of multiplication modulo

a*b = (m is the base of the modulo)

Here the base is 5 and the set is S = {1,2,3,4}

So, we can make a composition table as :-

The identity element is 1.

The inverse element of 4 is 4 itself.

∴ (3 4^-1)^-1 = (3 1) ^-1 = 3^-1 = 2.

From the definition of multiplication modulo

a*b = (m is the base of the modulo)

Here the base is 5 and the set is S = {0,1,2,3,4}

As the multiplication of 0 with any number will yield zero so we don’t consider it in the composition table.

So, we can make a composition table as :-

The given binary operation is a*b =

We have to find the identity element for the above relation.

Let that element be e.

∴ From the definition of identity element ,

a*e = a

∴ = a

Squaring both sides, we get,

=

∴ e = 0

Thus, the identity element for this operation is 0.

From the definition of addition modulo :-

a*b = (m is the base of the modulo)

Here the base is 6 and the set is S = {0,1,2,3,4,5}

So, we can make the composition table as :-

It is clear that 1 is the identity element of this binary operation.

The inverse of 4 is 3 while the inverse of 3 is 4.

∴ 2 4^-13^-1= 2 3 4 = 3

The given binary operation is a*b = 3a + 4b – 2

We have to find the value of 4*5

Applying the above relation we have

4*5 = 3(4) + 4(5) -2 = 12 + 20 – 2 = 30.

Thus the required solution is 30.

The given binary operation is a*b = a + 3

We have to find the value of 2*4

Applying the relation, we have

2*4 = 2 + 3() = 2 + 3(16) = 2 + 48 = 50.

Thus, the required solution is 50.

The given binary operation is a*b = HCF(a,b)

We have to find the value of 22*4

Applying the relation we have

22*4 = HCF(22,4) = 2

Hence the required solution is 2.

The given binary operation is a*b = 2a+b-3

We have to find the value of 3*4

∴ 3*4 = 2(3) + 4 -3

= 6+ 1

= 7

Thus, the required value is 7.

Given a * b = a² + b²

⇒ (4 * 5) * 3 = [(4² + 5²)]*3

= 41 * 3

= 41² + 3²

Given that a * b denote the bigger among a and b

and a ⋅ b = (a * b) + 3

⇒ 4 ⋅ 7 = (4 * 7) + 3

Now as 7 > 4

⇒ (4 * 7) + 3 = 7 + 3

= 10

∵

⇒

⇒

Given that a * b = a² – b² + ab + 4

To calculate (2 * 3) * 4

⇒ 2 * 3 = 2² – 3² + 2.3 + 4 = 5

⇒ (2 * 3) * 4 = 5 * 4

⇒ 5 * 4 = 5² – 4² + 5.4 + 4

= 33

For Identity element a * e = a = e * a , with ‘e’ being the identity element.

Given a * b = a + b + 1

⇒ a * e = a + e + 1 = a ….(1)

⇒ e * a = e + a + 1 = a …. (2)

⇒ e = -1 is the required identity element.

Given that a * b = 3a – b

To calculate (2 * 3) * 4

⇒ 2 * 3 = 3.2 – 3 = 3

⇒ (2 * 3) * 4 = 3 * 4

⇒ 3 * 4 = 3.3 – 4

= 5

For Identity element a * e = a = e * a, with ‘e’ being the identity element.

Given

⇒

⇒

For Inverse element a * b = e = b * a , with ‘b’ being the inverse element ‘a’.

Given

Now for a = 3

⇒ ….(1)

⇒ ….(2)

⇒ is the required inverse element of a=3.

For Identity element a * e = a = e * a, with ‘e’ being the identity element.

Given

⇒

⇒

⇒ 2ae=a

⇒

For Identity element a * e = a = e * a , with ‘e’ being the identity element.

Given

⇒

⇒ e=2

For Inverse element a * b = e = b * a , with ‘b’ being the inverse element ‘a’.

Given

….(1)

….(2)

is the required inverse element of a.

Given that

To calculate

For Identity element a * e = a = e * a , with ‘e’ being the identity element.

Given

⇒ a * e =a + e – ae

=a

⇒ a + e - ae=a

⇒ e(1-a) =0

⇒ e=0

Option C and D are self-explanatory and option A is false because The o/p will result in a rational quantity whereas according to the definition it belongs to an integer value.

1) Commutative:

⇒ a * b = a + b + ab …(1)

⇒ b * a = b + a + ba …(2)

⇒ a * b= b * a

2) Associative:

⇒ (a * b)* c = (a + b + ab) * c

(a + b + ab) * c = a + b + ab + c +(a + b + ab)c

(a + b + ab) * c = a + b + c + ab +ac + bc + abc

⇒ a * (b * c) = a * (b + c + bc)

a * (b + c + bc) = a + b + c + bc +( b + c + bc)a

a * (b + c + bc) = a + b + c + ab +ac + bc + abc

⇒ (a * b)* c = a * (b * c)

Given a * b = a² + b² + ab + 1

⇒ (2 * 3) * 2 = [(2² + 3² + 2.3 + 1)]*2

⇒ [(2² + 3² + 2.3 + 1)]*2 = 20 * 2

⇒ 20 * 2 = 20² + 2² + 20.2 + 1 = 445

1) Commutative:

⇒ a * b = ab + 1 …(1)

⇒ b * a = ba + 1 …(2)

⇒ a * b= b * a

2) NOT Associative:

⇒ (a * b)* c = (ab + 1) * c

(ab + 1) * c = (ab + 1)c + 1

(ab + 1) * c = abc + c + 1

⇒ a * (b * c) = a * (bc + 1)

a * (bc + 1) = a(bc + 1) + 1

a * (bc + 1) = abc + a

⇒ (a * b)* c ≠ a * (b * c)

1) NOT Commutative:

⇒ a * b = a - b …(1)

⇒ b * a = b - a …(2)

⇒ a * b ≠ b * a

2) NOT Associative:

⇒ (a * b)* c = (a - b) * c

(a - b) * c = (a - b) - c

(a - b) * c = a – b - c

⇒ a * (b * c) = a * (b - c)

a * (b - c) = a – (b - c)

a * (b - c) = a – b + c

⇒ (a * b)* c ≠ a * (b * c)

The law a + b = b + a is called is called commutative law.

Eg. 2+3=3+2

1) NOT Commutative:

2) NOT Associative:

1) Commutative:

⇒ a * b = a² + b² …(1)

⇒ b * a = b² + a² …(2)

⇒ a * b= b * a

2) NOT Associative:

⇒ (a * b)* c = (a² + b²) * c

= (a² + b²)² + c²

⇒ a * (b * c) = a * (b² + a²)

= a² + (b² + c²)²

⇒ (a * b)* c ≠ a * (b * c)

Commutative:

⇒ a * b = 3a + b …(1)

⇒ b * a = 3b + a …(2)

⇒ a * b ≠ b * a

For Identity element a * e = a = e * a , with ‘e’ being the identity element.

Given

For Inverse element a * b = e = b * a , with ‘b’ being the inverse element ‘a’.

Given

Now for a = 0.1

⇒ b =10⁵ is the required inverse element of a=0.1.

For Identity element a * e = a = e * a, with ‘e’ being the identity element.

Given a * b = a + b + 10

⇒ a * e =a+e+10=a

⇒ e=-10 (Not a Natural number)

For Identity element a * e = a = e * a, with ‘e’ being the identity element.

Given a * b =a + b - ab

⇒ a * e =a + e – ae

=a

⇒ e(1-a) =0

⇒ e=0

For Identity element a * e = a = e * a , with ‘e’ being the identity element.

Given a * b =a + b + ab

⇒ a * e =a + e + ea

=a

⇒ e=0

For Inverse element a * b = e = b * a , with ‘b’ being the inverse element ‘a’.

Given a * b =a + b + ab

Now for a = 0.1

⇒ a * b =a + b + ab

=0 ….(1)

⇒ b * a =a + b + ab

=0 ….(2)

⇒ is the required inverse element of a .

For Identity element a * e = a = e * a , with ‘e’ being the identity element.

The identity element of matrix multiplication is the identity matrix.

The identity element e

Therefore, the inverse element of is the inverse of the matrix.

Given: A

A^-1

A^-1

A^-1 =

Hence, C is the correct answer.

For Identity element a * e = a = e * a , with ‘e’ being the identity element.

Given

⇒

⇒ e=2

For Inverse element a * b = e = b * a , with ‘b’ being the inverse element a=8 .

Given

….(1)

….(2)

⇒ is the required inverse element of a=8.

As

=8

For Identity element a * e = a = e * a , with ‘e’ being the identity element.

Given

⇒

⇒ e=3

For Inverse element a * b = e = b * a , with ‘b’ being the inverse element a=8 .

Given

⇒ ….(1)

⇒ ….(2)

⇒ is the required inverse element of .

As Total number of binary operations that can be defined on a set on N elements are

⇒ For N=2 ⇒

Hence the number of binary operations that can be defined on a set of 2 elements are 16.

As Total number of commutative binary operations that can be defined on a set on N elements are

⇒ For N=2

=2

Hence the number of binary operations that can be defined on a set of 2 elements are 16.