RD Sharma Solutions Class 12 Maths Chapter 5 Exercise 5.3: RD Sharma Solutions for Class 12 Ex 5.3 are available in PDF format on the Kopykitab website, with solutions carefully compiled by an expert team. It is primarily intended for students to utilize as study material in order to pass the Class 12 exams with a decent grade in accordance with the CBSE syllabus. The fifth chapter’s Exercise 5.3 presents questions that are solved using the transpose of a matrix. The RD Sharma Solutions are written in an explanatory style to help students understand the concepts. RD Sharma Solutions for Class 12 Maths Chapter 5 Algebra of Matrices Exercise 5.3 are provided in this article.
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RD Sharma Solutions Class 12 Maths Chapter 5 Exercise 5.3
Access answers to RD Sharma Solutions For Chapter 5 – Algebra of Matrices Ex 5.3 Class 12 Maths Important Questions With Solution
1. Compute the indicated products:
Solution:
(i) Consider
On simplification, we get,
(ii) Consider
On simplification, we get,
(iii) Consider
On simplification, we get,
2. Show that AB ≠ BA in each of the following cases:
Solution:
(i) Consider,
Again consider,
From equations (1) and (2), it is clear that
AB ≠ BA
(ii) Consider,
Now again, consider,
From equations (1) and (2), it is clear that
AB ≠ BA
(iii) Consider,
Now again, consider,
From equations (1) and (2), it is clear that
AB ≠ BA
3. Compute the products AB and BA, whichever exists in each of the following cases:
Solution:
(i) Consider,
BA does not exist.
Because the number of columns in B is greater than the rows in A.
(ii) Consider,
Again consider,
(iii) Consider,
AB = [0 + (-1) + 6 + 6]
AB = 11
Again consider,
(iv) Consider,
4. Show that AB ≠ BA in each of the following cases:
Solution:
(i) Consider,
Again consider,
From equations (1) and (2), it is clear that
AB ≠ BA
(ii) Consider,
Again consider,
From equations (1) and (2), it is clear that,
AB ≠ BA
5. Evaluate the following:
Solution:
(i) Given
First, we have to add the first two matrices.
On simplifying, we get
(ii) Given,
First, we have to multiply the first two given matrices.
= 82
(iii) Given
First, we have to subtract the matrix which is inside the bracket.
Solution:
Given
We know that,
Again we know that,
Now, consider,
We have,
Now, from equations (1), (2), (3) and (4), it is clear that A2 = B2= C2= I2
Solution:
Given
Consider,
Now we have to find,
Solution:
Given
Consider,
Hence the proof.
Solution:
Given,
Consider,
Again consider,
Hence the proof.
Solution:
Given,
Consider,
Hence the proof.
Solution:
Given,
Consider,
We know that,
Again we have,
Solution:
Given,
Consider,
Again consider,
From equations (1) and (2), AB = BA = 03×3
Solution:
Given
Consider,
Again consider,
From equations (1) and (2), AB = BA = 03×3
Solution:
Given
Now consider,
Therefore AB = A
Again consider BA we get,
Hence, BA = B
Hence, the proof.
Solution:
Given,
Consider,
Now again, consider, B2
Now by subtracting equation (2) from equation (1) we get,
16. For the following matrices, verify the associativity of matrix multiplication, i.e., (AB) C = A (BC)
Solution:
(i) Given
Consider,
Now consider RHS,
From equations (1) and (2), it is clear that (AB) C = A (BC)
(ii) Given,
Consider the LHS,
Now consider RHS,
From equations (1) and (2), it is clear that (AB) C = A (BC)
17. For the following matrices, verify the distributivity of matrix multiplication over matrix addition, i.e., A (B + C) = AB + AC.
Solution:
(i) Given
Consider LHS,
Now consider RHS,
From equations (1) and (2), it is clear that A (B + C) = AB + AC
(ii) Given,
Consider the LHS
Now consider RHS,
Solution:
Given,
Consider the LHS,
Now consider RHS
From the above equations, LHS = RHS
Therefore, A (B – C) = AB – AC.
19. Compute the elements a43 and a22 of the matrix:
Solution:
Given
From the above matrix, a43 = 8and a22 = 0
Solution:
Given
Consider,
Again consider,
Now, consider the RHS
Therefore, A3 = p I + q A + rA2
Hence the proof.
21. If ω is a complex cube root of unity, show that
Solution:
Given
It is also given that ω is a complex cube root of unity,
Consider the LHS,
We know that 1 + ω + ω2 = 0 and ω3 = 1
Now by simplifying we get,
Again by substituting 1 + ω + ω2 = 0 and ω3 = 1 in above matrix we get,
Therefore LHS = RHS
Hence the proof.
Solution:
Given,
Consider A2
Therefore A2 = A
Solution:
Given
Consider A2,
Hence A2 = I3
Solution:
(i) Given
= [2x + 1 + 2 + x + 3] = 0
= [3x + 6] = 0
= 3x = -6
x = -6/3
x = -2
(ii) Given,
On comparing the above matrix, we get,
x = 13
Solution:
Given
⇒ [(2x + 4) x + 4 (x + 2) – 1(2x + 4)] = 0
⇒ 2x2 + 4x + 4x + 8 – 2x – 4 = 0
⇒ 2x2 + 6x + 4 = 0
⇒ 2x2 + 2x + 4x + 4 = 0
⇒ 2x (x + 1) + 4 (x + 1) = 0
⇒ (x + 1) (2x + 4) = 0
⇒ x = -1 or x = -2
Hence, x = -1 or x = -2
Solution:
Given
By multiplying, we get,
Solution:
Given
Now we have to prove A2 – A + 2 I = 0
Solution:
Given
Solution:
Given
Hence the proof.
Solution:
Given
Hence the proof.
Solution:
Given
Solution:
Given
Solution:
Given
Solution:
Given
Solution:
Given
Solution:
Given
I is the identity matrix, so
Also given,
Now, we have to find A2, we get
Now, we will find the matrix for 8A, and we get
So,
Substitute corresponding values from eqns (i) and (ii), we get
And to satisfy the above condition of equality, the corresponding entries of the matrices should be equal
Hence,
Therefore, the value of k is 7
Solution:
Given
To show that f (A) = 0
Substitute x = A in f(x), we get
I is the identity matrix, so
Now, we will find the matrix for A2, and we get
Now, we will find the matrix for 2A, and we get
Substitute corresponding values from eqns (ii) and (iii) in eqn (i), we get
So,
Hence Proved
Solution:
Given
So
Now, we will find the matrix for A2, and we get
Now, we will find the matrix for λ A, and we get
But given, A2 = λ A + μ I
Substitute corresponding values from equations (i) and (ii), we get
And to satisfy the above condition of equality, the corresponding entries of the matrices should be equal
Hence, λ + 0 = 4 ⇒ λ = 4
And also, 2λ + μ = 7
Substituting the obtained value of λ in the above equation, we get
2(4) + μ = 7 ⇒ 8 + μ = 7 ⇒ μ = – 1
Therefore, the values of λ and μ are 4 and – 1, respectively
39. Find the value of x for which the matrix product
Solution:
We know,
is the identity matrix of size 3.
So, according to the given criteria
Now we will multiply the two matrices on LHS using the formula cij = ai1b1j + ai2b2j + … + ain bnj, we get
And to satisfy the above condition of equality, the corresponding entries of the matrices should be equal
So we get
So the value of x is
Access other exercises of RD Sharma Solutions For Class 12 Chapter 5
- RD Sharma Class 12 Maths Exercise 5.1 Solutions
- RD Sharma Class 12 Maths Exercise 5.2 Solutions
- RD Sharma Class 12 Maths Exercise 5.4 Solutions
- RD Sharma Class 12 Maths Exercise 5.5 Solutions
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