Class 12 RD Sharma Solutions Chapter 8 Solution of Simultaneous Linear Equations Exercise 8.1 | Set 1 (original) (raw)

Last Updated : 23 Jul, 2025

**Chapter 8 of RD Sharma's Class 12 textbook focuses on solving the simultaneous linear equations a fundamental topic in algebra. This chapter provides the methods to find the values of variables that satisfy the multiple linear equations simultaneously. Mastery of these techniques is crucial for solving real-world problems involving constraints and optimization. Exercise 8.1 | Set 1 specifically helps students practice these methods through a variety of problems.

Simultaneous Linear Equations

Simultaneous linear equations involve solving two or more linear equations with multiple variables to find a common solution. The equations are solved simultaneously meaning the solution must satisfy all equations in the system. Methods such as substitution, elimination, and matrix approaches are used to find the intersection point(s) of the equations on a graph. The goal is to determine the values of the variables that make all the equations true at once.

Question 1. Solve the following system of equations by matrix method:

(i) 5x + 7y + 2 = 0

4x + 6y + 3 = 0

**Solution:

The given system of equations can be written in matrix form as,

\begin{bmatrix}5 & 7 \\ 4 & 6\end{bmatrix} \binom{x}{y} = \binom{ - 2}{ - 3}

AX = B

Here,

A = \begin{bmatrix}5 & 7 \\ 4 & 6\end{bmatrix} , X = \binom{x}{y} and B = \binom{ - 2}{ - 3}

Now,

|A| = \begin{bmatrix}5 & 7 \\ 4 & 6\end{bmatrix}

= 30 - 28

= 2

The given system has a unique solution given by, X = A-1 B.

Let Cij be the cofactor of the elements aij in A.

C11 = (-1)1+1 (6) = 6, C12 = (-1)1+2 (4) = -4, C21 = -12+1 (7) = -7 and C22 = (-1)2+2 (5) = 5

adj A = \begin{bmatrix}6 & - 4 \\ - 7 & 5\end{bmatrix}^T

= \begin{bmatrix}6 & - 7 \\ - 4 & 5\end{bmatrix}

A-1 = \frac{1}{\left| A \right|}adj A

A-1 = \frac{1}{2}\begin{bmatrix}6 & - 7 \\ - 4 & 5\end{bmatrix}\binom{ - 2}{ - 3}

So, X = A-1 B

= \frac{1}{2}\begin{bmatrix}6 & - 7 \\ - 4 & 5\end{bmatrix}

= \frac{1}{2}\binom{ - 12 + 21}{8 - 15}

=> \binom{x}{y} = \binom{\frac{9}{2}}{\frac{- 7}{2}}

**Therefore, x = 9/2 and y = -7/2.

(ii) 5x + 2y = 3

3x + 2y = 5

**Solution:

The given system of equations can be written in matrix form as,

\begin{bmatrix}5 & 2 \\ 3 & 2\end{bmatrix} \binom{x}{y} = \binom{3}{5}

AX = B

Here,

A = \begin{bmatrix}5 & 2 \\ 3 & 2\end{bmatrix} , X = \binom{x}{y} and B = \binom{3}{5}

Now,

|A| = \begin{bmatrix}5 & 2 \\ 3 & 2\end{bmatrix}

= 10 - 6

= 4

The given system has a unique solution given by, X = A-1 B

Let Cij be the cofactor of the elements aij in A.

C11 = -11+1 (2) = 2, C12 = (-1)1+2 (3) = - 3, C21 = (-1)2+1 (2) = - 2 and C22 = (-1)2+2 (5) = 5

adj A = \begin{bmatrix}2 & - 3 \\ - 2 & 5\end{bmatrix}^T

= \begin{bmatrix}2 & - 2 \\ - 3 & 5\end{bmatrix}

A-1 = \frac{1}{\left| A \right|}adj A

= \frac{1}{4}\begin{bmatrix}2 & - 2 \\ - 3 & 5\end{bmatrix}

Now, X = A-1 B

= \frac{1}{4}\begin{bmatrix}2 & - 2 \\ - 3 & 5\end{bmatrix}\binom{3}{5}

= \frac{1}{4}\binom{6 - 10}{ - 9 + 25}

=> \binom{x}{y} = \binom{\frac{- 4}{4}}{\frac{16}{4}}

**Therefore, x = - 1 and y = 4.

(iii) 3x + 4y − 5 = 0

x − y + 3 = 0

**Solution:

The given system of equations can be written in matrix form as,

\begin{bmatrix}3 & 4 \\ 1 & - 1\end{bmatrix} \binom{x}{y} = \binom{5}{ - 3}

AX = B

Here,

A = \begin{bmatrix}3 & 4 \\ 1 & - 1\end{bmatrix} , X = \binom{x}{y} and B = \binom{5}{ - 3}

Now,

|A| = \begin{bmatrix}3 & 4 \\ 1 & - 1\end{bmatrix}

= - 3 - 4

= -7

So, the given system has a unique solution given by, X = A-1 B

Let Cij be the cofactors of the elements aij in A.

C11 = (-1)1+1 (1) = -1, C12 = (-1)1+2 (-1) = 1, C21 = (-1)2+1 (4) = -4 and C22 = (-1)2+2 (3) = 3

adj A = \begin{bmatrix}- 1 & - 1 \\ - 4 & 3\end{bmatrix}^T = \begin{bmatrix}- 1 & - 4 \\ - 1 & 3\end{bmatrix}

A^{- 1} = \frac{1}{\left| A \right|}adj A

= \frac{1}{- 7}\begin{bmatrix}- 1 & - 4 \\ - 1 & 3\end{bmatrix}

Now, X = A-1 B

= \frac{1}{- 7}\begin{bmatrix}- 1 & - 4 \\ - 1 & 3\end{bmatrix}\binom{5}{ - 3}

= \frac{1}{- 7}\binom{ - 5 + 12}{ - 5 - 9}

=> \binom{x}{y} = \binom{\frac{7}{- 7}}{\frac{- 14}{- 7}}

**Therefore, x = -1 and y = 2.

(iv) 3x + y = 19

3x − y = 23

**Solution:

The given system of equations can be written in matrix form as,

\begin{bmatrix}3 & 1 \\ 3 & - 1\end{bmatrix} \binom{x}{y} = \binom{19}{23}

AX = B

Here,

A = \begin{bmatrix}3 & 1 \\ 3 & - 1\end{bmatrix} , X = \binom{x}{y} and B = \binom{19}{23}

Now,

|A| = \begin{bmatrix}3 & 1 \\ 3 & - 1\end{bmatrix}

= - 3 - 3

= -6

So, the given system has a unique solution given by X = A-1 B.

Let Cij be the cofactors of the elements aij in A.

C11 = (-1)1+1 (-1) = -1, C12 = (-1)1+2 (3) = -3, C21 = (-1)2+1 (1) = -4 and C22 = (-1)2+2 (3) = 3

adj A = \begin{bmatrix}- 1 & - 3 \\ - 1 & 3\end{bmatrix}^T

= \begin{bmatrix}- 1 & - 1 \\ - 3 & 3\end{bmatrix}

A^{- 1} = \frac{1}{\left| A \right|}adj A

= \frac{1}{- 6}\begin{bmatrix}- 1 & - 1 \\ - 3 & 3\end{bmatrix}

Now, X = A-1 B

= \frac{1}{- 6}\begin{bmatrix}- 1 & - 1 \\ - 3 & 3\end{bmatrix}\binom{19}{23}

= \frac{1}{- 6}\binom{ - 19 - 23}{ - 57 + 69}

=> \binom{x}{y} = \binom{\frac{- 42}{- 6}}{\frac{12}{- 6}}

**Therefore, x = 7 and y = -2.

(v) 3x + 7y = 4

x + 2y = −1

**Solution:

The given system of equations can be written in matrix form as,

\begin{bmatrix}3 & 7 \\ 1 & 2\end{bmatrix} \binom{x}{y} = \binom{4}{ - 1}

AX = B

Here,

A = \begin{bmatrix}3 & 7 \\ 1 & 2\end{bmatrix} , X = \binom{x}{y} and B = \binom{4}{ - 1}

Now,

|A| = \begin{bmatrix}3 & 7 \\ 1 & 2\end{bmatrix}

= 6 - 7

= -1

So, the given system has a unique solution given by X = A-1 B.

Let Cij be the cofactors of the elements aij in A.

C11 = (-1)1+1 (2) = 2, C12 = (-1)1+2 (1) = -1, C21 = (-1)2+1 (7) = -7 and C22 = (-1)2+2 (3) = 3

adj A = \begin{bmatrix}2 & - 1 \\ - 7 & 3\end{bmatrix}^T

= \begin{bmatrix}2 & - 7 \\ - 1 & 3\end{bmatrix}

A^{- 1} = \frac{1}{\left| A \right|}adj A

= \frac{1}{- 1}\begin{bmatrix}2 & - 7 \\ - 1 & 3\end{bmatrix}

X = A-1 B

= \frac{1}{- 1}\begin{bmatrix}2 & - 7 \\ - 1 & 3\end{bmatrix}\binom{4}{ - 1}

= \frac{1}{- 1}\binom{8 + 7}{ - 4 - 3}

=> \binom{x}{y} = \binom{\frac{15}{- 1}}{\frac{- 7}{- 1}}

**Therefore x = - 15 and y = 7.

(vi) 3x + y = 7

5x + 3y = 12

**Solution:

The given system of equations can be written in matrix form as,

\begin{bmatrix}3 & 1 \\ 5 & 3\end{bmatrix} \binom{x}{y} = \binom{7}{12}

AX = B

Here,

A = \begin{bmatrix}3 & 1 \\ 5 & 3\end{bmatrix} , X = \binom{x}{y} and B = \binom{7}{12}

Now,

|A| = \begin{bmatrix}3 & 1 \\ 5 & 3\end{bmatrix}

= 9 - 5

= 4

So, the given system has a unique solution given by X = A-1 B.

Let Cij be the cofactors of the elements aij in A.

C11 = (-1)1+1 (3) = 3, C12 = (-1)1+2 (5) = -5, C21 = (-1)2+1 (1) = -1 and C22 = (-1)2+2 (3) = 3

adj A = \begin{bmatrix}3 & - 5 \\ - 1 & 3\end{bmatrix}^T

= \begin{bmatrix}3 & - 1 \\ - 5 & 3\end{bmatrix}

A^{- 1} = \frac{1}{\left| A \right|}adj A

= \frac{1}{4}\begin{bmatrix}3 & - 1 \\ - 5 & 3\end{bmatrix}

X = A-1 B

= \frac{1}{4}\begin{bmatrix}3 & - 1 \\ - 5 & 3\end{bmatrix}\binom{7}{12}

= \frac{1}{4}\binom{21 - 12}{ - 35 + 36}

=> \binom{x}{y} = \binom{\frac{9}{4}}{\frac{1}{4}}

**Therefore x = 9/4 and y = 1/4.

Question 2. Solve the following system of equations by matrix method:

(i) x + y − z = 3

2x + 3y + z = 10

3x − y − 7z = 1

**Solution:

A = \begin{bmatrix}1 & 1 & - 1 \\ 2 & 3 & 1 \\ 3 & - 1 & - 7\end{bmatrix}

|A| = \begin{vmatrix}1 & 1 & - 1 \\ 2 & 3 & 1 \\ 3 & - 1 & - 7\end{vmatrix}

= 1 (- 21 + 1) - 1(-14 - 3) - 1(-2 - 9)

= - 20 + 17 + 11

= 8

So, the given system has a unique solution given by X = A-1 B.

Let Cij be the cofactor of the elements aij in A.

C_{11} = \left( - 1 \right)^{1 + 1} \begin{vmatrix}3 & 1 \\ - 1 & - 7\end{vmatrix} = - 20 , C_{12} = \left( - 1 \right)^{1 + 2} \begin{vmatrix}2 & 1 \\ 3 & - 7\end{vmatrix} = 17, C_{13} = \left( - 1 \right)^{1 + 3} \begin{vmatrix}2 & 3 \\ 3 & - 1\end{vmatrix} = - 11

C_{21} = \left( - 1 \right)^{2 + 1} \begin{vmatrix}1 & - 1 \\ - 1 & - 7\end{vmatrix} = 8 , C_{22} = \left( - 1 \right)^{2 + 2} \begin{vmatrix}1 & - 1 \\ 3 & - 7\end{vmatrix} = - 4, C_{23} = \left( - 1 \right)^{2 + 3} \begin{vmatrix}1 & 1 \\ 3 & - 1\end{vmatrix} = 4

C_{31} = \left( - 1 \right)^{3 + 1} \begin{vmatrix}1 & - 1 \\ 3 & 1\end{vmatrix} = 4 , C_{32} = \left( - 1 \right)^{3 + 2} \begin{vmatrix}1 & - 1 \\ 2 & 1\end{vmatrix} = - 3, C_{33} = \left( - 1 \right)^{3 + 3} \begin{vmatrix}1 & 1 \\ 2 & 3\end{vmatrix} = 1

adj A = \begin{bmatrix}- 20 & 17 & - 11 \\ 8 & - 4 & 4 \\ 4 & - 3 & 1\end{bmatrix}^T

= \begin{bmatrix}- 20 & 8 & 4 \\ 17 & - 4 & - 3 \\ - 11 & 4 & 1\end{bmatrix}

A^{- 1} = \frac{1}{\left| A \right|}adj A

= \frac{1}{8}\begin{bmatrix}- 20 & 8 & 4 \\ 17 & - 4 & - 3 \\ - 11 & 4 & 1\end{bmatrix}

X = A-1 B

\begin{bmatrix}x \\ y \\ z\end{bmatrix} = \frac{1}{8}\begin{bmatrix}- 20 & 8 & 4 \\ 17 & - 4 & - 3 \\ - 11 & 4 & 1\end{bmatrix}\begin{bmatrix}3 \\ 10 \\ 1\end{bmatrix}

\begin{bmatrix}x \\ y \\ z\end{bmatrix} = \frac{1}{8}\begin{bmatrix}- 60 + 80 + 4 \\ 51 - 40 - 3 \\ - 33 + 40 + 1\end{bmatrix}

\begin{bmatrix}x \\ y \\ z\end{bmatrix} = \frac{1}{8}\begin{bmatrix}24 \\ 8 \\ 8\end{bmatrix}

=> x = 24/8, y = 8/8 and z = 8/8

**Therefore, x = 3, y = 1 and z = 1.

(ii) x + y + z = 3

2x − y + z = − 1

2x + y − 3z = − 9

**Solution:

A = \begin{bmatrix}1 & 1 & 1 \\ 2 & - 1 & 1 \\ 2 & 1 & - 3\end{bmatrix}

|A| = \begin{vmatrix}1 & 1 & 1 \\ 2 & - 1 & 1 \\ 2 & 1 & - 3\end{vmatrix}

= 1 (3 - 1) - 1 (-6 - 2) + 1 (2 + 2)

= 2 + 8 + 4

= 14

So, the given system has a unique solution given by X = A-1 B.

Let Cij be the cofactors of the elements aij in A.

C_{11} = \left( - 1 \right)^{1 + 1} \begin{vmatrix}- 1 & 1 \\ 1 & - 3\end{vmatrix} = 2 , C_{12} = \left( - 1 \right)^{1 + 2} \begin{vmatrix}2 & 1 \\ 2 & - 3\end{vmatrix} = 8, C_{13} = \left( - 1 \right)^{1 + 3} \begin{vmatrix}2 & - 1 \\ 2 & 1\end{vmatrix} = 4

C_{21} = \left( - 1 \right)^{2 + 1} \begin{vmatrix}1 & 1 \\ 1 & - 3\end{vmatrix} = 4, C_{22} = \left( - 1 \right)^{2 + 2} \begin{vmatrix}1 & 1 \\ 2 & - 3\end{vmatrix} = - 5, C_{23} = \left( - 1 \right)^{2 + 3} \begin{vmatrix}1 & 1 \\ 2 & 1\end{vmatrix} = 1

C_{31} = \left( - 1 \right)^{3 + 1} \begin{vmatrix}1 & 1 \\ - 1 & 1\end{vmatrix} = 2 , C_{32} = \left( - 1 \right)^{3 + 2} \begin{vmatrix}1 & 1 \\ 2 & 1\end{vmatrix} = 1, C_{33} = \left( - 1 \right)^{3 + 3} \begin{vmatrix}1 & 1 \\ 2 & - 1\end{vmatrix} = - 3

adj A = \begin{bmatrix}2 & 8 & 4 \\ 4 & - 5 & 1 \\ 2 & 1 & - 3\end{bmatrix}^T

= \begin{bmatrix}2 & 4 & 2 \\ 8 & - 5 & 1 \\ 4 & 1 & - 3\end{bmatrix}

A^{- 1} = \frac{1}{\left| A \right|}adj A

= \frac{1}{14}\begin{bmatrix}2 & 4 & 2 \\ 8 & - 5 & 1 \\ 4 & 1 & - 3\end{bmatrix}

Now, X = A-1 B

\begin{bmatrix}x \\ y \\ z\end{bmatrix} = \frac{1}{14}\begin{bmatrix}2 & 4 & 2 \\ 8 & - 5 & 1 \\ 4 & 1 & - 3\end{bmatrix}\begin{bmatrix}3 \\ - 1 \\ - 9\end{bmatrix}

\begin{bmatrix}x \\ y \\ z\end{bmatrix} = \frac{1}{14}\begin{bmatrix}6 - 4 - 18 \\ 24 + 5 - 9 \\ 12 - 1 + 27\end{bmatrix}

\begin{bmatrix}x \\ y \\ z\end{bmatrix} = \frac{1}{14}\begin{bmatrix}- 16 \\ 20 \\ 38\end{bmatrix}

=> x = -16/14, y = 20/14 and z = 38/14

**Therefore, x = -8/7, y = 10/7 and z = 19/7.

(iii) 6x − 12y + 25z = 4

4x + 15y − 20z = 3

2x + 18y + 15z = 10

**Solution:

A = \begin{bmatrix}6 & - 12 & 25 \\ 4 & 15 & - 20 \\ 2 & 18 & 15\end{bmatrix}

|A| = \begin{vmatrix}6 & - 12 & 25 \\ 4 & 15 & - 20 \\ 2 & 18 & 15\end{vmatrix}

= 6 (225 + 360) + 12 (60 + 40) + 25 (72 - 30)

= 3510 + 1200 + 1050

= 5760

So, the given system has a unique solution given by X = A-1 B.

Let Cij be the cofactors of the elements aij in A.

C_{11} = \left( - 1 \right)^{1 + 1} \begin{vmatrix}15 & - 20 \\ 18 & 15\end{vmatrix} = 585, C_{12} = \left( - 1 \right)^{1 + 2} \begin{vmatrix}4 & - 20 \\ 2 & 15\end{vmatrix} = - 100 , C_{13} = \left( - 1 \right)^{1 + 3} \begin{vmatrix}4 & 15 \\ 2 & 18\end{vmatrix} = 42

C_{21} = \left( - 1 \right)^{2 + 1} \begin{vmatrix}- 12 & 25 \\ 18 & 15\end{vmatrix} = 630, C_{22} = \left( - 1 \right)^{2 + 2} \begin{vmatrix}6 & 25 \\ 2 & 15\end{vmatrix} = 40, C_{23} = \left( - 1 \right)^{2 + 3} \begin{vmatrix}6 & - 12 \\ 2 & 18\end{vmatrix} = - 132

C_{31} = \left( - 1 \right)^{3 + 1} \begin{vmatrix}- 12 & 25 \\ 15 & - 20\end{vmatrix} = - 135, C_{32} = \left( - 1 \right)^{3 + 2} \begin{vmatrix}6 & 25 \\ 4 & - 20\end{vmatrix} = 220, C_{33} = \left( - 1 \right)^{3 + 3} \begin{vmatrix}6 & - 12 \\ 4 & 15\end{vmatrix} = 138

adj A = \begin{bmatrix}585 & - 100 & 42 \\ 630 & 40 & - 132 \\ - 135 & 220 & 138\end{bmatrix}^T

= \begin{bmatrix}585 & 630 & - 135 \\ - 100 & 40 & 220 \\ 42 & - 132 & 138\end{bmatrix}

A^{- 1} = \frac{1}{\left| A \right|}adj A

= \frac{1}{5760}\begin{bmatrix}585 & 630 & - 135 \\ - 100 & 40 & 220 \\ 42 & - 132 & 138\end{bmatrix}

Now, X = A-1 B

\begin{bmatrix}x \\ y \\ z\end{bmatrix} = \frac{1}{5760}\begin{bmatrix}585 & 630 & - 135 \\ - 100 & 40 & 220 \\ 42 & - 132 & 138\end{bmatrix}\begin{bmatrix}4 \\ 3 \\ 10\end{bmatrix}

\begin{bmatrix}x \\ y \\ z\end{bmatrix} = \frac{1}{5760}\begin{bmatrix}2340 + 1890 - 1350 \\ - 400 + 120 + 2200 \\ 168 - 396 + 1380\end{bmatrix}

\begin{bmatrix}x \\ y \\ z\end{bmatrix} = \frac{1}{5760}\begin{bmatrix}2880 \\ 1920 \\ 1152\end{bmatrix}

=> x = 2880/5760, y = 1920/5760 and z = 1152/5760

**Therefore x = 1/2, y = 1/3 and z = 1/5.

(iv) 3x + 4y + 7z = 14

2x − y + 3z = 4

x + 2y − 3z = 0

**Solution:

A = \begin{bmatrix}3 & 4 & 7 \\ 2 & - 1 & 3 \\ 2 & 1 & - 3\end{bmatrix}

|A| = \begin{vmatrix}3 & 4 & 7 \\ 2 & - 1 & 3 \\ 2 & 1 & - 3\end{vmatrix}

= 3 (3 - 3) - 4 (- 6 - 6) + 7 (2 + 2)

= 0 + 48 + 28

= 76

So, the given system has a unique solution given by X = A-1 B.

Let Cij be the cofactors of the elements aij in A.

C_{11} = \left( - 1 \right)^{1 + 1} \begin{vmatrix}- 1 & 3 \\ 1 & - 3\end{vmatrix} = 0, C_{12} = \left( - 1 \right)^{1 + 2} \begin{vmatrix}2 & 3 \\ 2 & - 3\end{vmatrix} = 12, C_{13} = \left( - 1 \right)^{1 + 3} \begin{vmatrix}2 & - 1 \\ 2 & 1\end{vmatrix} = 4

C_{21} = \left( - 1 \right)^{2 + 1} \begin{vmatrix}4 & 7 \\ 1 & - 3\end{vmatrix} = 19 , C_{22} = \left( - 1 \right)^{2 + 2} \begin{vmatrix}3 & 7 \\ 2 & - 3\end{vmatrix} = - 23 , C_{23} = \left( - 1 \right)^{2 + 3} \begin{vmatrix}3 & 4 \\ 2 & 1\end{vmatrix} = 5

C_{31} = \left( - 1 \right)^{3 + 1} \begin{vmatrix}4 & 7 \\ - 1 & 3\end{vmatrix} = 19, C_{32} = \left( - 1 \right)^{3 + 2} \begin{vmatrix}3 & 7 \\ 2 & 3\end{vmatrix} = 5, C_{33} = \left( - 1 \right)^{3 + 3} \begin{vmatrix}3 & 4 \\ 2 & - 1\end{vmatrix} = - 11

adj A = \begin{bmatrix}0 & 12 & 4 \\ 19 & - 23 & 5 \\ 19 & 5 & - 11\end{bmatrix}^T

= \begin{bmatrix}0 & 19 & 19 \\ 12 & - 23 & 5 \\ 4 & 5 & - 11\end{bmatrix}

A^{- 1} = \frac{1}{\left| A \right|}adj A

= \frac{1}{76}\begin{bmatrix}0 & 19 & 19 \\ 12 & - 23 & 5 \\ 4 & 5 & - 11\end{bmatrix}

Now, X = A-1 B

\begin{bmatrix}x \\ y \\ z\end{bmatrix} = \frac{1}{76}\begin{bmatrix}0 & 19 & 19 \\ 12 & - 23 & 5 \\ 4 & 5 & - 11\end{bmatrix}\begin{bmatrix}14 \\ 4 \\ 0\end{bmatrix}

\begin{bmatrix}x \\ y \\ z\end{bmatrix} = \frac{1}{76}\begin{bmatrix}0 + 76 + 0 \\ 168 - 92 + 0 \\ 56 + 20 + 0\end{bmatrix}

\begin{bmatrix}x \\ y \\ z\end{bmatrix} = \frac{1}{76}\begin{bmatrix}76 \\ 76 \\ 76\end{bmatrix}

=> x = 76/76, y = 76/76 and z = 76/76

**Therefore x = 1, y = 1 and z = 1.

(v) \frac{2}{x} - \frac{3}{y} + \frac{3}{z} = 10\\ \frac{1}{x} + \frac{1}{y} + \frac{1}{z} = 10\\ \frac{3}{x} - \frac{1}{y} + \frac{2}{z} = 13

**Solution:

Let 1/x be a, 1/y be b and 1/z be c.

Here,

A = \begin{bmatrix}2 & - 3 & 3 \\ 1 & 1 & 1 \\ 3 & - 1 & 2\end{bmatrix}

|A| = \begin{vmatrix}2 & - 3 & 3 \\ 1 & 1 & 1 \\ 3 & - 1 & 2\end{vmatrix}

= 2 (2 + 1) + 3 (2 - 3) + 3 (-1 - 3)

= 6 - 3 - 12

= -9

So, the given system has a unique solution given by X = A-1 B.

Let Cij be the cofactors of the elements aij in A.

C_{11} = \left( - 1 \right)^{1 + 1} \begin{vmatrix}1 & 1 \\ - 1 & 2\end{vmatrix} = 3, C_{12} = \left( - 1 \right)^{1 + 2} \begin{vmatrix}1 & 1 \\ 3 & 2\end{vmatrix} = 1 , C_{13} = \left( - 1 \right)^{1 + 3} \begin{vmatrix}1 & 1 \\ 3 & - 1\end{vmatrix} = - 4

C_{21} = \left( - 1 \right)^{2 + 1} \begin{vmatrix}- 3 & 3 \\ - 1 & 2\end{vmatrix} = 3 , C_{22} = \left( - 1 \right)^{2 + 2} \begin{vmatrix}2 & 3 \\ 3 & 2\end{vmatrix} = - 5, C_{23} = \left( - 1 \right)^{2 + 3} \begin{vmatrix}2 & - 3 \\ 3 & - 1\end{vmatrix} = -7

C_{31} = \left( - 1 \right)^{3 + 1} \begin{vmatrix}- 3 & 3 \\ 1 & 1\end{vmatrix} = - 6 , C_{32} = \left( - 1 \right)^{3 + 2} \begin{vmatrix}2 & 3 \\ 1 & 1\end{vmatrix} = 1, C_{33} = \left( - 1 \right)^{3 + 3} \begin{vmatrix}2 & - 3 \\ 1 & 1\end{vmatrix} = 5

adj A = \begin{bmatrix}3 & 1 & - 4 \\ 3 & - 5 & - 7 \\ - 6 & 1 & 5\end{bmatrix}^T

= \begin{bmatrix}3 & 3 & - 6 \\ 1 & - 5 & 1 \\ - 4 & - 7 & 5\end{bmatrix}

A^{- 1} = \frac{1}{\left| A \right|}adj A

= \frac{1}{- 9}\begin{bmatrix}3 & 3 & - 6 \\ 1 & - 5 & 1 \\ - 4 & - 7 & 5\end{bmatrix}

X = A-1 B

\begin{bmatrix}a \\ b \\ c\end{bmatrix} = \frac{1}{- 9}\begin{bmatrix}3 & 3 & - 6 \\ 1 & - 5 & 1 \\ - 4 & - 7 & 5\end{bmatrix}\begin{bmatrix}10 \\ 10 \\ 13\end{bmatrix}

\begin{bmatrix}a \\ b \\ c\end{bmatrix} = \frac{1}{- 9}\begin{bmatrix}30 + 30 - 78 \\ 10 - 50 + 13 \\ - 40 - 70 + 65\end{bmatrix}

\begin{bmatrix}a \\ b \\ c\end{bmatrix} = \frac{1}{- 9}\begin{bmatrix}- 18 \\ - 27 \\ - 45\end{bmatrix}

=> x = 1/a = - 9/-18, y = 1/b = - 9/- 27 and z = 1/c = -9/-45

**Therefore x = 1/2, y = 1/3 and z = 1/5.

(vi) 5x + 3y + z = 16

2x + y + 3z = 19

x + 2y + 4z = 25

**Solution:

A = \begin{bmatrix}5 & 3 & 1 \\ 2 & 1 & 3 \\ 1 & 2 & 4\end{bmatrix}

|A| = \begin{vmatrix}5 & 3 & 1 \\ 2 & 1 & 3 \\ 1 & 2 & 4\end{vmatrix}

= 5 (4 - 6) - 3 (8 - 3) + 1 (4 - 1)

= -10 - 15 + 3

= - 22

So, the given system has a unique solution given by X = A-1 B.

Let Cij be the cofactors of the elements aij in A.

C_{11} = \left( - 1 \right)^{1 + 1} \begin{vmatrix}1 & 3 \\ 2 & 4\end{vmatrix} = - 2, C_{12} = \left( - 1 \right)^{1 + 2} \begin{vmatrix}2 & 3 \\ 1 & 4\end{vmatrix} = - 5 , C_{13} = \left( - 1 \right)^{1 + 3} \begin{vmatrix}2 & 1 \\ 1 & 2\end{vmatrix} = 3

C_{21} = \left( - 1 \right)^{2 + 1} \begin{vmatrix}3 & 1 \\ 2 & 4\end{vmatrix} = - 10 , C_{22} = \left( - 1 \right)^{2 + 2} \begin{vmatrix}5 & 1 \\ 1 & 4\end{vmatrix} = 19, C_{23} = \left( - 1 \right)^{2 + 3} \begin{vmatrix}5 & 3 \\ 1 & 2\end{vmatrix} = -7

C_{31} = \left( - 1 \right)^{3 + 1} \begin{vmatrix}3 & 1 \\ 1 & 3\end{vmatrix} = 8 , C_{32} = \left( - 1 \right)^{3 + 2} \begin{vmatrix}5 & 1 \\ 2 & 3\end{vmatrix} = - 13 , C_{33} = \left( - 1 \right)^{3 + 3} \begin{vmatrix}5 & 3 \\ 2 & 1\end{vmatrix} = - 1

adj A = \begin{bmatrix}- 2 & - 5 & 3 \\ - 10 & 19 & - 7 \\ 8 & - 13 & - 1\end{bmatrix}^T

= \begin{bmatrix}- 2 & - 10 & 8 \\ - 5 & 19 & - 13 \\ 3 & - 7 & - 1\end{bmatrix}

A^{- 1} = \frac{1}{\left| A \right|}adj A

= \frac{1}{- 22}\begin{bmatrix}- 2 & - 10 & 8 \\ - 5 & 19 & - 13 \\ 3 & - 7 & - 1\end{bmatrix}

X = A-1 B

\begin{bmatrix}x \\ y \\ z\end{bmatrix} = \frac{1}{- 22}\begin{bmatrix}- 2 & - 10 & 8 \\ - 5 & 19 & - 13 \\ 3 & - 7 & - 1\end{bmatrix}\begin{bmatrix}16 \\ 19 \\ 25\end{bmatrix}

\begin{bmatrix}x \\ y \\ z\end{bmatrix} = \frac{1}{- 22}\begin{bmatrix}- 32 - 190 + 200 \\ - 80 + 361 - 325 \\ 48 - 133 - 25\end{bmatrix}

\begin{bmatrix}x \\ y \\ z\end{bmatrix} = \frac{1}{- 22}\begin{bmatrix}- 22 \\ - 44 \\ - 110\end{bmatrix}

=> x = - 22/- 22, y = - 44/- 22 and z = -110/-22

**Therefore x = 1, y = 2 and z = 5.

(vii) 3x + 4y + 2z = 8

2y − 3z = 3

x − 2y + 6z = −2

**Solution:

A = \begin{bmatrix}3 & 4 & 2 \\ 0 & 2 & - 3 \\ 1 & - 2 & 6\end{bmatrix}

|A| = \begin{vmatrix}3 & 4 & 2 \\ 0 & 2 & - 3 \\ 1 & - 2 & 6\end{vmatrix}

= 3 (12 - 6) - 4 (0 + 3) + 2 (0 - 2)

= 18 - 12 - 4

= 2

Let Cij be the cofactors of the elements aij in A.

C_{11} = \left( - 1 \right)^{1 + 1} \begin{vmatrix}2 & - 3 \\ - 2 & 6\end{vmatrix} = 6, C_{12} = \left( - 1 \right)^{1 + 2} \begin{vmatrix}0 & - 3 \\ 1 & 6\end{vmatrix} = - 3 , C_{13} = \left( - 1 \right)^{1 + 3} \begin{vmatrix}0 & 2 \\ 1 & - 2\end{vmatrix} = - 2

C_{21} = \left( - 1 \right)^{2 + 1} \begin{vmatrix}4 & 2 \\ - 2 & 6\end{vmatrix} = - 28 , C_{22} = \left( - 1 \right)^{2 + 2} \begin{vmatrix}3 & 2 \\ 1 & 6\end{vmatrix} = 16 , C_{23} = \left( - 1 \right)^{2 + 3} \begin{vmatrix}3 & 4 \\ 1 & - 2\end{vmatrix} = 10

C_{31} = \left( - 1 \right)^{3 + 1} \begin{vmatrix}4 & 2 \\ 2 & - 3\end{vmatrix} = - 16, C_{32} = \left( - 1 \right)^{3 + 2} \begin{vmatrix}3 & 2 \\ 0 & - 3\end{vmatrix} = 9, C_{33} = \left( - 1 \right)^{3 + 3} \begin{vmatrix}3 & 4 \\ 0 & 2\end{vmatrix} = 6

adj A = \begin{bmatrix}6 & - 3 & - 2 \\ - 28 & 16 & 10 \\ - 16 & 9 & 6\end{bmatrix}^T

= \begin{bmatrix}6 & - 28 & - 16 \\ - 3 & 16 & 9 \\ - 2 & 10 & 6\end{bmatrix}

A^{- 1} = \frac{1}{\left| A \right|}adj A

= \frac{1}{2}\begin{bmatrix}6 & - 28 & - 16 \\ - 3 & 16 & 9 \\ - 2 & 10 & 6\end{bmatrix}

Now X = A-1 B

\begin{bmatrix}x \\ y \\ z\end{bmatrix} = \frac{1}{2}\begin{bmatrix}6 & - 28 & - 16 \\ - 3 & 16 & 9 \\ - 2 & 10 & 6\end{bmatrix}\begin{bmatrix}8 \\ 3 \\ - 2\end{bmatrix}

\begin{bmatrix}x \\ y \\ z\end{bmatrix} = \frac{1}{2}\begin{bmatrix}48 - 84 + 32 \\ - 24 + 48 - 18 \\ - 16 + 30 - 12\end{bmatrix}

\begin{bmatrix}x \\ y \\ z\end{bmatrix} = \frac{1}{2}\begin{bmatrix}- 4 \\ 6 \\ 2\end{bmatrix}

=> x = -4/2, y = 6/2 and z = 2/2

**Therefore x = -2, y = 3 and z = 1.

(viii) 2x + y + z = 2

x + 3y − z = 5

3x + y − 2z = 6

**Solution:

Here,

A = \begin{bmatrix}2 & 1 & 1 \\ 1 & 3 & - 1 \\ 3 & 1 & - 2\end{bmatrix}

|A| = \begin{vmatrix}2 & 1 & 1 \\ 1 & 3 & - 1 \\ 3 & 1 & - 2\end{vmatrix}

= - 10 - 1 - 8

= -19

Let Cij be the cofactors of the elements aij in A.

C_{11} = \left( - 1 \right)^{1 + 1} \begin{vmatrix}3 & - 1 \\ 1 & - 2\end{vmatrix} = - 5, C_{12} = \left( - 1 \right)^{1 + 2} \begin{vmatrix}1 & - 1 \\ 3 & - 2\end{vmatrix} = - 1, C_{13} = \left( - 1 \right)^{1 + 3} \begin{vmatrix}1 & 3 \\ 3 & 1\end{vmatrix} = - 8

C_{21} = \left( - 1 \right)^{2 + 1} \begin{vmatrix}1 & 1 \\ 1 & - 2\end{vmatrix} = 3, C_{22} = \left( - 1 \right)^{2 + 2} \begin{vmatrix}2 & - 1 \\ 3 & - 2\end{vmatrix} = - 7, C_{23} = \left( - 1 \right)^{2 + 3} \begin{vmatrix}2 & 1 \\ 3 & 1\end{vmatrix} = 1

C_{31} = \left( - 1 \right)^{3 + 1} \begin{vmatrix}1 & 1 \\ 3 & - 1\end{vmatrix} = - 4, C_{32} = \left( - 1 \right)^{3 + 2} \begin{vmatrix}2 & 1 \\ 1 & - 1\end{vmatrix} = 3, C_{33} = \left( - 1 \right)^{3 + 3} \begin{vmatrix}2 & 1 \\ 1 & 3\end{vmatrix} = 5

adj A = \begin{bmatrix}- 5 & - 1 & - 8 \\ 3 & - 7 & 1 \\ - 4 & 3 & 5\end{bmatrix}^T

= \begin{bmatrix}- 5 & 3 & - 4 \\ - 1 & - 7 & 3 \\ - 8 & 1 & 5\end{bmatrix}

A^{- 1} = \frac{1}{\left| A \right|}adj A

= \frac{1}{- 19}\begin{bmatrix}- 5 & 3 & - 4 \\ - 1 & - 7 & 3 \\ - 8 & 1 & 5\end{bmatrix}

X = A-1 B

\begin{bmatrix}x \\ y \\ z\end{bmatrix} = \frac{1}{- 19}\begin{bmatrix}- 5 & 3 & - 4 \\ - 1 & - 7 & 3 \\ - 8 & 1 & 5\end{bmatrix}\begin{bmatrix}2 \\ 5 \\ 6\end{bmatrix}

\begin{bmatrix}x \\ y \\ z\end{bmatrix} = \frac{1}{- 19}\begin{bmatrix}- 10 + 15 - 24 \\ - 2 - 35 + 18 \\ - 16 + 5 + 30\end{bmatrix}

\begin{bmatrix}x \\ y \\ z\end{bmatrix} = \frac{1}{- 19}\begin{bmatrix}- 19 \\ -19 \\ 19\end{bmatrix}

x = -19/-19, y = -19/-19 and z = 19/-19

**Therefore x = 1, y = 1 and z = - 1.

(ix) 2x + 6y = 2

3x − z = −8

2x − y + z = −3

**Solution:

A = \begin{bmatrix}2 & 6 & 0 \\ 3 & 0 & - 1 \\ 2 & - 1 & 1\end{bmatrix}

|A| = \begin{vmatrix}2 & 6 & 0 \\ 3 & 0 & - 1 \\ 2 & - 1 & 1\end{vmatrix}

= 2 (0 - 1) - 6 (3 + 2) + 0 (-3 + 0)

= -2 - 30

= - 32

Let Cij be the cofactors of the elements aij in A.

C_{11} = \left( - 1 \right)^{1 + 1} \begin{vmatrix}0 & - 1 \\ - 1 & 1\end{vmatrix} = - 1 , C_{12} = \left( - 1 \right)^{1 + 2} \begin{vmatrix}3 & - 1 \\ 2 & 1\end{vmatrix} = - 5 , C_{13} = \left( - 1 \right)^{1 + 3} \begin{vmatrix}3 & 0 \\ 2 & - 1\end{vmatrix} = - 3

C_{21} = \left( - 1 \right)^{2 + 1} \begin{vmatrix}6 & 0 \\ - 1 & 1\end{vmatrix} = - 6 , C_{22} = \left( - 1 \right)^{2 + 2} \begin{vmatrix}2 & 0 \\ 2 & 1\end{vmatrix} = 2 , C_{23} = \left( - 1 \right)^{2 + 3} \begin{vmatrix}2 & 6 \\ 2 & - 1\end{vmatrix} = 14

C_{31} = \left( - 1 \right)^{3 + 1} \begin{vmatrix}6 & 0 \\ 0 & - 1\end{vmatrix} = - 6 , C_{32} = \left( - 1 \right)^{3 + 2} \begin{vmatrix}2 & 0 \\ 3 & - 1\end{vmatrix} = 2 , C_{33} = \left( - 1 \right)^{3 + 3} \begin{vmatrix}2 & 6 \\ 3 & 0\end{vmatrix} = - 18

adj A = \begin{bmatrix}- 1 & - 5 & - 3 \\ - 6 & 2 & 14 \\ - 6 & 2 & - 18\end{bmatrix}^T

= \begin{bmatrix}- 1 & - 6 & - 6 \\ - 5 & 2 & 2 \\ - 3 & 14 & - 18\end{bmatrix}

A^{- 1} = \frac{1}{\left| A \right|}adj A

= \frac{1}{- 32}\begin{bmatrix}- 1 & - 6 & - 6 \\ - 5 & 2 & 2 \\ - 3 & 14 & - 18\end{bmatrix}

X = A-1 B

\begin{bmatrix}x \\ y \\ z\end{bmatrix} = \frac{1}{- 32}\begin{bmatrix}- 1 & - 6 & - 6 \\ - 5 & 2 & 2 \\ - 3 & 14 & - 18\end{bmatrix}\begin{bmatrix}2 \\ - 8 \\ - 3\end{bmatrix}

\begin{bmatrix}x \\ y \\ z\end{bmatrix} = \frac{1}{- 32}\begin{bmatrix}- 2 + 48 + 18 \\ - 10 - 16 - 6 \\ - 6 - 112 + 54\end{bmatrix}

\begin{bmatrix}x \\ y \\ z\end{bmatrix} = \frac{1}{- 32}\begin{bmatrix}64 \\ - 32 \\ - 64\end{bmatrix}

=> x = 64/-32, y = -32/-32 and z = -64/-32

**Therefore x = - 2, y = 1 and z = 2.

(x) x − y + z = 2

2x − y = 0

2y − z = 1

**Solution:

A = \begin{bmatrix}1 & - 1 & 1 \\ 2 & - 1 & 0 \\ 0 & 2 & - 1\end{bmatrix}

|A| = \begin{vmatrix}1 & - 1 & 1 \\ 2 & - 1 & 0 \\ 0 & 2 & - 1\end{vmatrix}

= 1 (1 - 0) + 1 (-2 - 0) + 1(4 - 0)

= 1 - 2 + 4

= 3

Let Cij be the cofactors of the elements aij in A.

C_{11} = \left( - 1 \right)^{1 + 1} \begin{vmatrix}- 1 & 0 \\ 2 & - 1\end{vmatrix} = 1, C_{12} = \left( - 1 \right)^{1 + 2} \begin{vmatrix}2 & 0 \\ 0 & - 1\end{vmatrix} = 2, C_{13} = \left( - 1 \right)^{1 + 3} \begin{vmatrix}2 & - 1 \\ 0 & 2\end{vmatrix} = 4

C_{21} = \left( - 1 \right)^{2 + 1} \begin{vmatrix}- 1 & 1 \\ 2 & - 1\end{vmatrix} = 1, C_{22} = \left( - 1 \right)^{2 + 2} \begin{vmatrix}1 & 1 \\ 0 & - 1\end{vmatrix} = - 1, C_{23} = \left( - 1 \right)^{2 + 3} \begin{vmatrix}1 & - 1 \\ 0 & 2\end{vmatrix} = - 2

C_{31} = \left( - 1 \right)^{3 + 1} \begin{vmatrix}- 1 & 1 \\ - 1 & 0\end{vmatrix} = 1, C_{32} = \left( - 1 \right)^{3 + 2} \begin{vmatrix}1 & 1 \\ 2 & 0\end{vmatrix} = 2, C_{33} = \left( - 1 \right)^{3 + 3} \begin{vmatrix}1 & - 1 \\ 2 & - 1\end{vmatrix} = 1

adj A = \begin{bmatrix}1 & 2 & 4 \\ 1 & - 1 & - 2 \\ 1 & 2 & 1\end{bmatrix}^T

= \begin{bmatrix}1 & 1 & 1 \\ 2 & - 1 & 2 \\ 4 & - 2 & 1\end{bmatrix}

A^{- 1} = \frac{1}{\left| A \right|}adj A

= \frac{1}{1}\begin{bmatrix}1 & 1 & 1 \\ 2 & - 1 & 2 \\ 4 & - 2 & 1\end{bmatrix}

X = A-1 B

\begin{bmatrix}x \\ y \\ z\end{bmatrix} = \frac{1}{3}\begin{bmatrix}1 & 1 & 1 \\ 2 & - 1 & 2 \\ 4 & - 2 & 1\end{bmatrix}\begin{bmatrix}2 \\ 0 \\ 1\end{bmatrix}

\begin{bmatrix}x \\ y \\ z\end{bmatrix} = \frac{1}{3}\begin{bmatrix}2 + 1 \\ 4 + 2 \\ 8 + 1\end{bmatrix}

\begin{bmatrix}x \\ y \\ z\end{bmatrix} = \frac{1}{1}\begin{bmatrix}3 \\ 6 \\ 9\end{bmatrix}

=> x = 3/3, y = 6/3 and z = 9/3

**Therefore x = 1, y = 2 and z = 3.

(xi) 8x + 4y + 3z = 18

2x + y +z = 5

x + 2y + z = 5

**Solution:

A = \begin{bmatrix}8 & 4 & 3 \\ 2 & 1 & 1 \\ 1 & 2 & 1\end{bmatrix}

|A| = \begin{vmatrix}8 & 4 & 3 \\ 2 & 1 & 1 \\ 1 & 2 & 1\end{vmatrix}

= 8 (1 - 2) - 4 (2 - 1) + 3(4 - 1)

= - 8 - 4 + 9

= -3

Let Cij be the cofactors of the elements aij in A.

C_{11} = \left( - 1 \right)^{1 + 1} \begin{vmatrix}1 & 1 \\ 2 & 1\end{vmatrix} = - 1, C_{12} = \left( - 1 \right)^{1 + 2} \begin{vmatrix}2 & 1 \\ 1 & 1\end{vmatrix} = - 1, C_{13} = \left( - 1 \right)^{1 + 3} \begin{vmatrix}2 & 1 \\ 1 & 2\end{vmatrix} = 3

C_{21} = \left( - 1 \right)^{2 + 1} \begin{vmatrix}4 & 3 \\ 2 & 1\end{vmatrix} = 2, C_{22} = \left( - 1 \right)^{2 + 2} \begin{vmatrix}8 & 3 \\ 1 & 1\end{vmatrix} = 5, C_{23} = \left( - 1 \right)^{2 + 3} \begin{vmatrix}8 & 4 \\ 1 & 2\end{vmatrix} = - 12

C_{31} = \left( - 1 \right)^{3 + 1} \begin{vmatrix}4 & 3 \\ 1 & 1\end{vmatrix} = 1, C_{32} = \left( - 1 \right)^{3 + 2} \begin{vmatrix}8 & 3 \\ 2 & 1\end{vmatrix} = - 2 , C_{33} = \left( - 1 \right)^{3 + 3} \begin{vmatrix}8 & 4 \\ 2 & 1\end{vmatrix} = 0

adj A = \begin{bmatrix}- 1 & - 1 & 3 \\ 2 & 5 & - 12 \\ 1 & - 2 & 0\end{bmatrix}^T

= \begin{bmatrix}- 1 & 2 & 1 \\ - 1 & 5 & - 2 \\ 3 & - 12 & 0\end{bmatrix}

A^{- 1} = \frac{1}{\left| A \right|}adj A

= \frac{1}{- 3}\begin{bmatrix}- 1 & 2 & 1 \\ - 1 & 5 & - 2 \\ 3 & - 12 & 0\end{bmatrix}

X = A-1 B

\begin{bmatrix}x \\ y \\ z\end{bmatrix} = \frac{1}{- 3}\begin{bmatrix}- 1 & 2 & 1 \\ - 1 & 5 & - 2 \\ 3 & - 12 & 0\end{bmatrix}\begin{bmatrix}18 \\ 5 \\ 5\end{bmatrix}

\begin{bmatrix}x \\ y \\ z\end{bmatrix} = \frac{1}{- 3}\begin{bmatrix}- 18 + 10 + 5 \\ - 18 + 25 - 10 \\ 54 - 60\end{bmatrix}

\begin{bmatrix}x \\ y \\ z\end{bmatrix} = \frac{1}{- 3}\begin{bmatrix}- 3 \\ - 3 \\ - 6\end{bmatrix}

=> x = -3/-3, y = -3/-3 and z = -6/-3

**Therefore x = 1, y = 1 and z = 2.

(xii) x + y + z = 6

x + 2z = 7

3x + y + z = 12

**Solution:

A = \begin{bmatrix}1 & 1 & 1 \\ 1 & 0 & 2 \\ 3 & 1 & 1\end{bmatrix}

|A| = \begin{vmatrix}1 & 1 & 1 \\ 1 & 0 & 2 \\ 3 & 1 & 1\end{vmatrix}

= 1 (0 - 2) - 1 (1 - 6) + 1(1 - 0)

= - 2 + 5 + 1

= 4

Let Cij be the cofactors of the elements aij in A.

C_{11} = \left( - 1 \right)^{1 + 1} \begin{vmatrix}0 & 2 \\ 1 & 1\end{vmatrix} = - 2, C_{12} = \left( - 1 \right)^{1 + 2} \begin{vmatrix}1 & 2 \\ 3 & 1\end{vmatrix} = 5, C_{13} = \left( - 1 \right)^{1 + 3} \begin{vmatrix}1 & 0 \\ 3 & 1\end{vmatrix} = 1

C_{21} = \left( - 1 \right)^{2 + 1} \begin{vmatrix}1 & 1 \\ 1 & 1\end{vmatrix} = 0, C_{22} = \left( - 1 \right)^{2 + 2} \begin{vmatrix}1 & 1 \\ 3 & 1\end{vmatrix} = - 2, C_{23} = \left( - 1 \right)^{2 + 3} \begin{vmatrix}1 & 1 \\ 3 & 1\end{vmatrix} = 2

C_{31} = \left( - 1 \right)^{3 + 1} \begin{vmatrix}1 & 1 \\ 0 & 2\end{vmatrix} = 2, C_{32} = \left( - 1 \right)^{3 + 2} \begin{vmatrix}1 & 1 \\ 1 & 2\end{vmatrix} = - 1, C_{33} = \left( - 1 \right)^{3 + 3} \begin{vmatrix}1 & 1 \\ 1 & 0\end{vmatrix} = - 1

adj A = \begin{bmatrix}- 2 & 5 & 1 \\ 0 & - 2 & 2 \\ 2 & - 1 & - 1\end{bmatrix}^T

= \begin{bmatrix}- 2 & 0 & 2 \\ 5 & - 2 & - 1 \\ 1 & 2 & - 1\end{bmatrix}

A^{- 1} = \frac{1}{\left| A \right|}adj A

= \frac{1}{4}\begin{bmatrix}- 2 & 0 & 2 \\ 5 & - 2 & - 1 \\ 1 & 2 & - 1\end{bmatrix}

X = A-1 B

\begin{bmatrix}x \\ y \\ z\end{bmatrix} = \frac{1}{4}\begin{bmatrix}- 2 & 0 & 2 \\ 5 & - 2 & - 1 \\ 1 & 2 & - 1\end{bmatrix}\begin{bmatrix}6 \\ 7 \\ 12\end{bmatrix}

\begin{bmatrix}x \\ y \\ z\end{bmatrix} = \frac{1}{4}\begin{bmatrix}- 12 + 0 + 24 \\ 30 - 14 - 12 \\ 6 - 14 - 12\end{bmatrix}

\begin{bmatrix}x \\ y \\ z\end{bmatrix} = \frac{1}{4}\begin{bmatrix}12 \\ 4 \\ - 20\end{bmatrix}

=> x = 12/4, y = 4/4 and z = -20/4

**Therefore x = 3, y = 1 and z = - 5.

(xiii) \frac{2}{x} + \frac{3}{y} + \frac{10}{z} = 4\\\frac{4}{x} - \frac{6}{y} + \frac{5}{z} = 1\\\frac{6}{x} + \frac{9}{y} - \frac{20}{z} = 2 , x, y, z ≠ 0

**Solution:

Let 1/x be a, 1/y be b and 1/z be c.

Here,

A = \begin{bmatrix}2 & 3 & 10 \\ 4 & - 6 & 5 \\ 6 & 9 & - 20\end{bmatrix}

|A| = \begin{vmatrix}2 & 3 & 10 \\ 4 & - 6 & 5 \\ 6 & 9 & - 20\end{vmatrix}

= 2 (120 - 45) - 3 (-80 - 30) + 10 (36 + 36)

= 150 + 330 + 720

= 1200

Let Cij be the cofactors of the elements aij in A.

C_{11} = \left( - 1 \right)^{1 + 1} \begin{vmatrix}- 6 & 5 \\ 9 & - 20\end{vmatrix} = 75, C_{12} = \left( - 1 \right)^{1 + 2} \begin{vmatrix}4 & 5 \\ 6 & - 20\end{vmatrix} = 110, C_{13} = \left( - 1 \right)^{1 + 3} \begin{vmatrix}4 & - 6 \\ 6 & 9\end{vmatrix} = 72

C_{21} = \left( - 1 \right)^{2 + 1} \begin{vmatrix}3 & 10 \\ 9 & - 20\end{vmatrix} = 150, C_{22} = \left( - 1 \right)^{2 + 2} \begin{vmatrix}2 & 10 \\ 6 & - 20\end{vmatrix} = - 100, C_{23} = \left( - 1 \right)^{2 + 3} \begin{vmatrix}2 & 3 \\ 6 & 9\end{vmatrix} = 0

C_{31} = \left( - 1 \right)^{3 + 1} \begin{vmatrix}3 & 10 \\ - 6 & 5\end{vmatrix} = 75, C_{32} = \left( - 1 \right)^{3 + 2} \begin{vmatrix}2 & 10 \\ 4 & 5\end{vmatrix} = 30, C_{33} = \left( - 1 \right)^{3 + 3} \begin{vmatrix}2 & 3 \\ 4 & - 6\end{vmatrix} = - 24

adj A = \begin{bmatrix}75 & 110 & 72 \\ 150 & - 100 & 0 \\ 75 & 30 & - 24\end{bmatrix}^T

= \begin{bmatrix}75 & 150 & 75 \\ 110 & - 100 & 30 \\ 72 & 0 & - 24\end{bmatrix}

A^{- 1} = \frac{1}{\left| A \right|}adj A

= \frac{1}{1200} \begin{bmatrix}75 & 150 & 75 \\ 110 & - 100 & 30 \\ 72 & 0 & - 24\end{bmatrix}

X = A-1 B

\begin{bmatrix}a \\ b \\ c\end{bmatrix} = \frac{1}{1200} \begin{bmatrix}75 & 150 & 75 \\ 110 & - 100 & 30 \\ 72 & 0 & - 24\end{bmatrix}\begin{bmatrix}4 \\ 1 \\ 2\end{bmatrix}

\begin{bmatrix}a \\ b \\ c\end{bmatrix} = \frac{1}{1200}\begin{bmatrix}300 + 150 + 150 \\ 440 - 100 + 60 \\ 288 - 48\end{bmatrix}

\begin{bmatrix}a \\ b \\ c\end{bmatrix} = \frac{1}{1200}\begin{bmatrix}600 \\ 400 \\ 240\end{bmatrix}

=> x = 1/a = 1200/600, y = 1/b = 1200/400 and z = 1/c = 1200/240

**Therefore x = 2, y = 3 and z = 5.

(xiv) x − y + 2z = 7

3x + 4y − 5z = −5

2x − y + 3z = 12

**Solution:

A = \begin{bmatrix}1 & - 1 & 2 \\ 3 & 4 & - 5 \\ 2 & - 1 & 3\end{bmatrix}

|A| = \begin{vmatrix}1 & - 1 & 2 \\ 3 & 4 & - 5 \\ 2 & - 1 & 3\end{vmatrix}

= 1 (12 - 5) + 1 (9 + 10) + 2 (-3 - 8)

= 7 + 19 - 22

= 4

Let Cij be the cofactors of the elements aij in A.

C_{11} = \left( - 1 \right)^{1 + 1} \begin{vmatrix}4 & - 5 \\ - 1 & 3\end{vmatrix} = 7, C_{12} = \left( - 1 \right)^{1 + 2} \begin{vmatrix}3 & - 5 \\ 2 & 3\end{vmatrix} = - 19, C_{13} = \left( - 1 \right)^{1 + 3} \begin{vmatrix}3 & 4 \\ 2 & - 1\end{vmatrix} = - 11

C_{21} = \left( - 1 \right)^{2 + 1} \begin{vmatrix}- 1 & 2 \\ - 1 & 3\end{vmatrix} = 1 , C_{22} = \left( - 1 \right)^{2 + 2} \begin{vmatrix}1 & 2 \\ 2 & 3\end{vmatrix} = - 1 , C_{23} = \left( - 1 \right)^{2 + 3} \begin{vmatrix}1 & - 1 \\ 2 & - 1\end{vmatrix} = - 1

C_{31} = \left( - 1 \right)^{3 + 1} \begin{vmatrix}- 1 & 2 \\ 4 & - 5\end{vmatrix} = - 3, C_{32} = \left( - 1 \right)^{3 + 2} \begin{vmatrix}1 & 2 \\ 3 & - 5\end{vmatrix} = 11, C_{33} = \left( - 1 \right)^{3 + 3} \begin{vmatrix}1 & - 1 \\ 3 & 4\end{vmatrix} = 7

adj A = \begin{bmatrix}7 & - 19 & - 11 \\ 1 & - 1 & - 1 \\ - 3 & 11 & 7\end{bmatrix}^T

= \begin{bmatrix}7 & 1 & - 3 \\ - 19 & - 1 & 11 \\ - 11 & - 1 & 7\end{bmatrix}

A^{- 1} = \frac{1}{\left| A \right|}adj A

= \frac{1}{4}\begin{bmatrix}7 & 1 & - 3 \\ - 19 & - 1 & 11 \\ - 11 & - 1 & 7\end{bmatrix}

X = A-1 B

\begin{bmatrix}x \\ y \\ z\end{bmatrix} = \frac{1}{4}\begin{bmatrix}7 & 1 & - 3 \\ - 19 & - 1 & 11 \\ - 11 & - 1 & 7\end{bmatrix}\begin{bmatrix}7 \\ - 5 \\ 12\end{bmatrix}

\begin{bmatrix}x \\ y \\ z\end{bmatrix} = \frac{1}{4}\begin{bmatrix}49 - 5 - 36 \\ - 133 + 5 + 132 \\ - 77 + 5 + 84\end{bmatrix}

\begin{bmatrix}x \\ y \\ z\end{bmatrix} = \frac{1}{4}\begin{bmatrix}8 \\ 4 \\ 12\end{bmatrix}

=> x = 8/4, y = 4/4 and z = 12/4

**Therefore x = 2, y = 1 and z = 3.

**Question 3. Show that the following systems of linear equations is consistent:

****(i) 6x + 4y = 2**

**9x + 6y = 3

**Solution:

Here,

6x + 4y = 2

9x + 6y = 3

We know, AX = B

A = \begin{bmatrix}6 & 4 \\ 9 & 6\end{bmatrix} , X = \binom{x}{y} and B = \binom{2}{3}

\begin{bmatrix}6 & 4 \\ 9 & 6\end{bmatrix}\binom{x}{y} = \binom{2}{3}

|A| = \begin{vmatrix}6 & 4 \\ 9 & 6\end{vmatrix}

= 36 - 36

= 0

Let Cij be the cofactors of the elements aij in A.

C11 = 6, C12 = -9, C21 = -4 and C22 = 6

adj A = \begin{bmatrix}6 & - 9 \\ - 4 & 6\end{bmatrix}^T

= \begin{bmatrix}6 & - 4 \\ - 9 & 6\end{bmatrix}

(adj A) B = \begin{bmatrix}6 & - 4 \\ - 9 & 6\end{bmatrix}\binom{2}{3}

= \binom{12 - 12}{ - 18 + 18}

= \binom{0}{0}

Therefore, the system is consistent and has infinitely many solutions.

**Hence proved.

(ii) 2x + 3y = 5

6x + 9y = 15

**Solution:

Here,

2x + 3y = 5

6x + 9y = 15

We know, AX = B

A = \begin{bmatrix}2 & 3 \\ 6 & 9\end{bmatrix} , X = \binom{x}{y} and B = \binom{5}{15}

\begin{bmatrix}2 & 3 \\ 6 & 9\end{bmatrix}\binom{x}{y} = \binom{5}{15}

|A| = \begin{vmatrix}2 & 3 \\ 6 & 9\end{vmatrix}

= 18 - 18

= 0

Let Cij be the cofactors of the elements aij in A.

C11 = 9, C12 = -6, C21 = -3 and C22 = 2

adj A = \begin{bmatrix}9 & - 6 \\ - 3 & 2\end{bmatrix}^T

= \begin{bmatrix}2 & - 3 \\ - 6 & 9\end{bmatrix}

(adj A) B = \begin{bmatrix}9 & - 3 \\ - 6 & 2\end{bmatrix}\binom{5}{15}

= \binom{45 - 45}{ - 30 + 30}

= \binom{0}{0}

Therefore, the system is consistent and has infinitely many solutions.

**Hence proved.

(iii) 5x + 3y + 7z = 4

3x + 26y + 2z = 9

7x + 2y + 10z = 5

**Solution:

Here,

5x + 3y + 7z = 4

3x + 26y + 2z = 9

7x + 2y + 10z = 5

We know, AX = B

A = \begin{bmatrix}5 & 3 & 7 \\ 3 & 26 & 2 \\ 7 & 2 & 10\end{bmatrix} , X = \begin{bmatrix}x \\ y \\ z\end{bmatrix} and B = \begin{bmatrix}4 \\ 9 \\ 5\end{bmatrix}

\begin{bmatrix}5 & 3 & 7 \\ 3 & 26 & 2 \\ 7 & 2 & 10\end{bmatrix}\begin{bmatrix}x \\ y \\ z\end{bmatrix} = \begin{bmatrix}4 \\ 9 \\ 5\end{bmatrix}

|A| = \begin{vmatrix}5 & 3 & 7 \\ 3 & 26 & 2 \\ 7 & 2 & 10\end{vmatrix}

= 1280 - 48 - 1232\]

= 0

Let Cij be the cofactors of the elements aij in A.

C_{11} = \left( - 1 \right)^{1 + 1} \begin{vmatrix}26 & 2 \\ 2 & 10\end{vmatrix} = 256 , C_{12} = \left( - 1 \right)^{1 + 2} \begin{vmatrix}3 & 2 \\ 7 & 10\end{vmatrix} = - 16, C_{13} = \left( - 1 \right)^{1 + 3} \begin{vmatrix}3 & 26 \\ 7 & 2\end{vmatrix} = - 176

C_{21} = \left( - 1 \right)^{2 + 1} \begin{vmatrix}3 & 7 \\ 2 & 10\end{vmatrix} = - 16 , C_{22} = \left( - 1 \right)^{2 + 2} \begin{vmatrix}5 & 7 \\ 7 & 10\end{vmatrix} = 1, C_{23} = \left( - 1 \right)^{2 + 3} \begin{vmatrix}5 & 3 \\ 7 & 2\end{vmatrix} = 11

C_{31} = \left( - 1 \right)^{3 + 1} \begin{vmatrix}3 & 7 \\ 26 & 2\end{vmatrix} = - 176, C_{32} = \left( - 1 \right)^{3 + 2} \begin{vmatrix}5 & 7 \\ 3 & 2\end{vmatrix} = 11, C_{33} = \left( - 1 \right)^{3 + 3} \begin{vmatrix}5 & 3 \\ 3 & 26\end{vmatrix} = 121

adj A = \begin{bmatrix}256 & - 16 & - 176 \\ - 16 & 1 & 11 \\ - 176 & 11 & 121\end{bmatrix}^T

= \begin{bmatrix}256 & - 16 & - 176 \\ - 16 & 1 & 11 \\ - 176 & 11 & 121\end{bmatrix}

(adj A)B = \begin{bmatrix}256 & - 16 & - 176 \\ - 16 & 1 & 11 \\ - 176 & 11 & 121\end{bmatrix}\begin{bmatrix}4 \\ 9 \\ 5\end{bmatrix}

= \begin{bmatrix}1024 - 144 - 880 \\ - 64 + 9 + 55 \\ - 704 + 99 + 605\end{bmatrix}

= \begin{bmatrix}0 \\ 0 \\ 0\end{bmatrix}

Therefore, the system is consistent and has infinitely many solutions.

**Hence proved.

(iv) x − y + z = 3

2x + y − z = 2

−x −2y + 2z = 1

**Solution:

Here,

x − y + z = 3

2x + y − z = 2

−x −2y + 2z = 1

We know, AX = B

A = \begin{bmatrix}1 & - 1 & 1 \\ 2 & 1 & - 1 \\ - 1 & - 2 & 2\end{bmatrix} , X = \begin{bmatrix}x \\ y \\ z\end{bmatrix} and B = \begin{bmatrix}3 \\ 2 \\ 1\end{bmatrix}

\begin{bmatrix}1 & - 1 & 1 \\ 2 & 1 & - 1 \\ - 1 & - 2 & 2\end{bmatrix}\begin{bmatrix}x \\ y \\ z\end{bmatrix} = \begin{bmatrix}3 \\ 2 \\ 1\end{bmatrix}

|A| = \begin{vmatrix}1 & - 1 & 1 \\ 2 & 1 & - 1 \\ - 1 & - 2 & 2\end{vmatrix}

= 1\left( 2 - 2 \right) + 1\left( 4 - 1 \right) + 1( - 4 + 1)\]

= 0 + 3 - 3

= 0

Let Cij be the cofactors of the elements aij in A.

C_{11} = \left( - 1 \right)^{1 + 1} \begin{vmatrix}1 & - 1 \\ - 2 & 2\end{vmatrix} = 0, C_{12} = \left( - 1 \right)^{1 + 2} \begin{vmatrix}2 & - 1 \\ - 1 & 2\end{vmatrix} = - 3, C_{13} = \left( - 1 \right)^{1 + 3} \begin{vmatrix}2 & 1 \\ - 1 & - 2\end{vmatrix} = - 3

C_{21} = \left( - 1 \right)^{2 + 1} \begin{vmatrix}- 1 & 1 \\ - 2 & 2\end{vmatrix} = 0, C_{22} = \left( - 1 \right)^{2 + 2} \begin{vmatrix}1 & 1 \\ - 1 & 2\end{vmatrix} = 3, C_{23} = \left( - 1 \right)^{2 + 3} \begin{vmatrix}1 & - 1 \\ - 1 & - 2\end{vmatrix} = 3

C_{31} = \left( - 1 \right)^{3 + 1} \begin{vmatrix}- 1 & 1 \\ 1 & - 1\end{vmatrix} = 0, C_{32} = \left( - 1 \right)^{3 + 2} \begin{vmatrix}1 & 1 \\ 2 & - 1\end{vmatrix} = 3 , C_{33} = \left( - 1 \right)^{3 + 3} \begin{vmatrix}1 & - 1 \\ 2 & 1\end{vmatrix} = 3

adj A = \begin{bmatrix}0 & - 3 & - 3 \\ 0 & 3 & 3 \\ 0 & 3 & 3\end{bmatrix}^T

= \begin{bmatrix}0 & 0 & 0 \\ - 3 & 3 & 3 \\ - 3 & 3 & 3\end{bmatrix}

(adj A) B = \begin{bmatrix}0 & 0 & 0 \\ - 3 & 3 & 3 \\ - 3 & 3 & 3\end{bmatrix}\begin{bmatrix}3 \\ 2 \\ 1\end{bmatrix}

= \begin{bmatrix}0 \\ - 9 + 6 + 3 \\ - 9 + 6 + 3\end{bmatrix}

= \begin{bmatrix}0 \\ 0 \\ 0\end{bmatrix}

Therefore, the system is consistent and has infinitely many solutions.

**Hence proved.

(v) x + y + z = 6

x + 2y + 3z = 14

x + 4y + 7z = 30

**Solution:

Here,

x + y + z = 6

x + 2y + 3z = 14

x + 4y + 7z = 30

A = \begin{bmatrix}1 & 1 & 1 \\ 1 & 2 & 3 \\ 1 & 4 & 7\end{bmatrix} , X = \begin{bmatrix}x \\ y \\ z\end{bmatrix} and B = \begin{bmatrix}6 \\ 14 \\ 30\end{bmatrix}

\begin{bmatrix}1 & 1 & 1 \\ 1 & 2 & 3 \\ 1 & 4 & 7\end{bmatrix}\begin{bmatrix}x \\ y \\ z\end{bmatrix} = \begin{bmatrix}6 \\ 14 \\ 30\end{bmatrix}

|A| = \begin{vmatrix}1 & 1 & 1 \\ 1 & 2 & 3 \\ 1 & 4 & 7\end{vmatrix}

= 2 - 4 + 2

= 0

Let Cij be the cofactors of the elements aij in A.

C_{11} = \left( - 1 \right)^{1 + 1} \begin{vmatrix}2 & 3 \\ 4 & 7\end{vmatrix} = 2, C_{12} = \left( - 1 \right)^{1 + 2} \begin{vmatrix}1 & 3 \\ 1 & 7\end{vmatrix} = - 4 , C_{13} = \left( - 1 \right)^{1 + 3} \begin{vmatrix}1 & 2 \\ 1 & 4\end{vmatrix} = 2

C_{21} = \left( - 1 \right)^{2 + 1} \begin{vmatrix}1 & 1 \\ 4 & 7\end{vmatrix} = - 3, C_{22} = \left( - 1 \right)^{2 + 2} \begin{vmatrix}1 & 1 \\ 1 & 7\end{vmatrix} = 6, C_{23} = \left( - 1 \right)^{2 + 3} \begin{vmatrix}1 & 1 \\ 1 & 4\end{vmatrix} = - 3

C_{31} = \left( - 1 \right)^{3 + 1} \begin{vmatrix}1 & 1 \\ 2 & 3\end{vmatrix} = 1 , C_{32} = \left( - 1 \right)^{3 + 2} \begin{vmatrix}1 & 1 \\ 1 & 3\end{vmatrix} = - 2 , C_{33} = \left( - 1 \right)^{3 + 3} \begin{vmatrix}1 & 1 \\ 1 & 2\end{vmatrix} = 1

adj A = \begin{bmatrix}2 & - 4 & 2 \\ - 3 & 6 & - 3 \\ 1 & - 2 & 1\end{bmatrix}^T

= \begin{bmatrix}2 & - 3 & 1 \\ - 4 & 6 & - 2 \\ 2 & - 3 & 1\end{bmatrix}

\left( adj A \right)B = \begin{bmatrix}2 & - 3 & 1 \\ - 4 & 6 & - 2 \\ 2 & - 3 & 1\end{bmatrix}\begin{bmatrix}6 \\ 14 \\ 30\end{bmatrix}

= \begin{bmatrix}12 - 42 + 30 \\ - 24 + 84 - 60 \\ 12 - 42 + 30\end{bmatrix}

= \begin{bmatrix}0 \\ 0 \\ 0\end{bmatrix}

Therefore, the system is consistent and has infinitely many solutions.

**Hence proved.

(vi) 2x + 2y − 2z = 1

4x + 4y − z = 2

6x + 6y + 2z = 3

**Solution:

Here,

2x + 2y − 2z = 1

4x + 4y − z = 2

6x + 6y + 2z = 3

A = \begin{bmatrix}2 & 2 & - 2 \\ 4 & 4 & - 1 \\ 6 & 6 & 2\end{bmatrix} , X = \begin{bmatrix}x \\ y \\ z\end{bmatrix} and B = \begin{bmatrix}1 \\ 2 \\ 3\end{bmatrix}

\begin{bmatrix}2 & 2 & - 2 \\ 4 & 4 & - 1 \\ 6 & 6 & 2\end{bmatrix}\begin{bmatrix}x \\ y \\ z\end{bmatrix} = \begin{bmatrix}1 \\ 2 \\ 3\end{bmatrix}

|A| = \begin{vmatrix}2 & 2 & - 2 \\ 4 & 4 & - 1 \\ 6 & 6 & 2\end{vmatrix}

= 2 (8 + 6) - 2 (8 + 6) - 2 (24 - 24)

= 28 - 28 - 0

= 0

Let Cij be the cofactors of the elements aij in A.

C_{11} = \left( - 1 \right)^{1 + 1} \begin{vmatrix}4 & - 1 \\ 6 & 2\end{vmatrix} = 14, C_{12} = \left( - 1 \right)^{1 + 2} \begin{vmatrix}4 & - 1 \\ 6 & 2\end{vmatrix} = - 14, C_{13} = \left( - 1 \right)^{1 + 3} \begin{vmatrix}4 & 4 \\ 6 & 6\end{vmatrix} = 0

C_{21} = \left( - 1 \right)^{2 + 1} \begin{vmatrix}2 & - 2 \\ 6 & 2\end{vmatrix} = - 16, C_{22} = \left( - 1 \right)^{2 + 2} \begin{vmatrix}2 & - 2 \\ 6 & 2\end{vmatrix} = 16, C_{23} = \left( - 1 \right)^{2 + 3} \begin{vmatrix}2 & 2 \\ 6 & 6\end{vmatrix} = 0

C_{31} = \left( - 1 \right)^{3 + 1} \begin{vmatrix}2 & - 2 \\ 4 & - 1\end{vmatrix} = 6, C_{32} = \left( - 1 \right)^{3 + 2} \begin{vmatrix}2 & - 2 \\ 4 & - 1\end{vmatrix} = - 6, C_{33} = \left( - 1 \right)^{3 + 3} \begin{vmatrix}2 & 2 \\ 4 & 4\end{vmatrix} = 0

adj A = \begin{bmatrix}14 & - 14 & 0 \\ - 16 & 16 & 0 \\ 6 & - 6 & 0\end{bmatrix}^T

= \begin{bmatrix}14 & - 16 & 6 \\ - 14 & 16 & - 6 \\ 0 & 0 & 0\end{bmatrix}

(adj A) B = \begin{bmatrix}14 & - 16 & 6 \\ - 14 & 16 & - 6 \\ 0 & 0 & 0\end{bmatrix}\begin{bmatrix}1 \\ 2 \\ 3\end{bmatrix}

= \begin{bmatrix}14 - 32 + 18 \\ - 14 + 32 - 18 \\ 0\end{bmatrix}

= \begin{bmatrix}0 \\ 0 \\ 0\end{bmatrix}

**Therefore, the system is consistent and has infinitely many solutions.

**Hence proved.

Question 4. Show that each one of the following systems of linear equation is inconsistent:

(i) 2x + 5y = 7

6x + 15y = 13

**Solution:

The given system of equations can be expressed as follows:

AX = B

Here,

A = \begin{bmatrix}2 & 5 \\ 6 & 15\end{bmatrix} , X = \binom{x}{y} and B = \binom{7}{13}

Now,

|A| = \begin{vmatrix}2 & 5 \\ 6 & 15\end{vmatrix}

= 30 - 30

= 0

Let Cij be the cofactors of the elements aij in A.

C11 = 15, C12 = -6, C21 = -5 and C22 = 2

adj A = \begin{bmatrix}15 & - 6 \\ - 5 & 2\end{bmatrix}^T

= \begin{bmatrix}15 & - 5 \\ - 6 & 2\end{bmatrix}

(adj A) B = \begin{bmatrix}15 & - 5 \\ - 6 & 2\end{bmatrix}\binom{7}{13}

= \binom{105 - 65}{ - 42 + 26}

= \binom{40}{ - 16} ≠ 0

Therefore, the given system of equations is inconsistent.

**Hence proved.

(ii) 2x + 3y = 5

6x + 9y = 10

**Solution:

The given system of equations can be expressed as follows:

AX = B

Here,

A = \begin{bmatrix}2 & 3 \\ 6 & 9\end{bmatrix} , X = \binom{x}{y} and B = \binom{5}{10}

|A| = \begin{vmatrix}2 & 3 \\ 6 & 9\end{vmatrix}

= 18 - 18

= 0

Let Cij be the cofactors of the elements aij in A.

C11 = 9, C12 = -6, C21 = -3 and C22 = 2

adj A = \begin{bmatrix}9 & - 6 \\ - 3 & 2\end{bmatrix}^T

= \begin{bmatrix}9 & - 3 \\ - 6 & 2\end{bmatrix}

(adj A) B = \begin{bmatrix}9 & - 3 \\ - 6 & 2\end{bmatrix}\binom{5}{10}

= \binom{45 - 30}{ - 30 + 20}

= \binom{15}{ - 10} ≠ 0

Therefore, the given system of equations is inconsistent.

**Hence proved.

(iii) 4x − 2y = 3

6x − 3y = 5

**Solution:

The given system of equations can be expressed as,

AX = B

Here,

A = \begin{bmatrix}4 & - 2 \\ 6 & - 3\end{bmatrix} , X = \binom{x}{y} and B = \binom{3}{5}

|A| = \begin{vmatrix}4 & - 2 \\ 6 & - 3\end{vmatrix}

= 12 - 12

= 0

Let Cij be the cofactors of the elements aij in A.

C11 = -3, C12 = -6, C21 = 2 and C22 = 4

adj A = \begin{bmatrix}- 3 & - 6 \\ 2 & 4\end{bmatrix}^T

= \begin{bmatrix}- 3 & 2 \\ - 6 & 4\end{bmatrix}

(adj A) B = \begin{bmatrix}- 3 & 2 \\ - 6 & 4\end{bmatrix}\binom{3}{5}

= \binom{ - 9 + 10}{ - 18 + 20}

= \binom{1}{2} ≠ 0

Therefore, the given system of equations is inconsistent.

**Hence proved.

(iv) 4x − 5y − 2z = 2

5x − 4y + 2z = −2

2x + 2y + 8z = −1

**Solution:

The given system of equations can be written as,

AX = B

Here,

A = \begin{bmatrix}4 & - 5 & - 2 \\ 5 & - 4 & 2 \\ 2 & 2 & 8\end{bmatrix} , X = \begin{bmatrix}x \\ y \\ z\end{bmatrix} and B = \begin{bmatrix}2 \\ - 2 \\ - 1\end{bmatrix}

|A| = \begin{vmatrix}4 & - 5 & - 2 \\ 5 & - 4 & 2 \\ 2 & 2 & 8\end{vmatrix}

= -144 + 180 - 36

= 0

Let Cij be the cofactors of the elements aij in A.

C_{11} = \left( - 1 \right)^{1 + 1} \begin{vmatrix}- 4 & 2 \\ 2 & 8\end{vmatrix} = 28, C_{12} = \left( - 1 \right)^{1 + 2} \begin{vmatrix}5 & 2 \\ 2 & 8\end{vmatrix} = - 36, C_{13} = \left( - 1 \right)^{1 + 3} \begin{vmatrix}5 & - 4 \\ 2 & 2\end{vmatrix} = 18

C_{21} = \left( - 1 \right)^{2 + 1} \begin{vmatrix}- 5 & - 2 \\ 2 & 8\end{vmatrix} = 36 , C_{22} = \left( - 1 \right)^{2 + 2} \begin{vmatrix}4 & - 2 \\ 2 & 8\end{vmatrix} = 36 , C_{23} = \left( - 1 \right)^{2 + 3} \begin{vmatrix}4 & - 5 \\ 2 & 2\end{vmatrix} = - 18

C_{31} = \left( - 1 \right)^{3 + 1} \begin{vmatrix}- 5 & - 2 \\ - 4 & 2\end{vmatrix} = - 18, C_{32} = \left( - 1 \right)^{3 + 2} \begin{vmatrix}4 & - 2 \\ 5 & 2\end{vmatrix} = - 18, C_{33} = \left( - 1 \right)^{3 + 3} \begin{vmatrix}4 & - 5 \\ 5 & - 4\end{vmatrix} = 9

adj A = \begin{bmatrix}28 & - 36 & 18 \\ 36 & 36 & - 18 \\ - 18 & - 18 & 9\end{bmatrix}^T

= \begin{bmatrix}28 & 36 & - 18 \\ - 36 & 36 & - 18 \\ 18 & - 18 & 9\end{bmatrix}

(adj A) B = \begin{bmatrix}28 & 36 & - 18 \\ - 36 & 36 & - 18 \\ 18 & - 18 & 9\end{bmatrix}\begin{bmatrix}2 \\ - 2 \\ - 1\end{bmatrix}

= \begin{bmatrix}56 - 72 + 18 \\ - 72 - 72 + 18 \\ 36 + 36 - 9\end{bmatrix}

= \begin{bmatrix}2 \\ - 126 \\ 63\end{bmatrix} ≠ 0

Therefore, the given system of equations is inconsistent.

**Hence proved.

(v) 3x − y − 2z = 2

2y − z = −1

3x − 5y = 3

**Solution:

The given system of equations can be written as,

AX = B

Here,

A = \begin{bmatrix}3 & - 1 & - 2 \\ 0 & 2 & - 1 \\ 3 & - 5 & 0\end{bmatrix} , X = \begin{bmatrix}x \\ y \\ z\end{bmatrix} and B = \begin{bmatrix}2 \\ - 1 \\ 3\end{bmatrix}

|A| = \begin{vmatrix}3 & - 1 & - 2 \\ 0 & 2 & - 1 \\ 3 & - 5 & 0\end{vmatrix}

= -15 + 3 + 12

= 0

Let Cij be the cofactors of the elements aij in A.

C_{11} = \left( - 1 \right)^{1 + 1} \begin{vmatrix}2 & - 1 \\ - 5 & 0\end{vmatrix} = - 5, C_{12} = \left( - 1 \right)^{1 + 2} \begin{vmatrix}0 & - 1 \\ 3 & 0\end{vmatrix} = - 3, C_{13} = \left( - 1 \right)^{1 + 3} \begin{vmatrix}0 & 2 \\ 3 & - 5\end{vmatrix} = - 6

C_{21} = \left( - 1 \right)^{2 + 1} \begin{vmatrix}- 1 & - 2 \\ - 5 & 0\end{vmatrix} = 10, C_{22} = \left( - 1 \right)^{2 + 2} \begin{vmatrix}3 & - 2 \\ 3 & 0\end{vmatrix} = 6, C_{23} = \left( - 1 \right)^{2 + 3} \begin{vmatrix}3 & - 1 \\ 3 & - 5\end{vmatrix} = 12

C_{31} = \left( - 1 \right)^{3 + 1} \begin{vmatrix}- 1 & - 2 \\ 2 & - 1\end{vmatrix} = 5, C_{32} = \left( - 1 \right)^{3 + 2} \begin{vmatrix}3 & - 2 \\ 0 & - 1\end{vmatrix} = 3, C_{33} = \left( - 1 \right)^{3 + 3} \begin{vmatrix}3 & - 1 \\ 0 & 2\end{vmatrix} = 6

adj A = \begin{bmatrix}- 5 & - 3 & - 6 \\ 10 & 6 & 12 \\ 5 & 3 & 6\end{bmatrix}^T

= \begin{bmatrix}- 5 & 10 & 5 \\ - 3 & 6 & 3 \\ - 6 & 12 & 6\end{bmatrix}

(adj A) B = \begin{bmatrix}- 5 & 10 & 5 \\ - 3 & 6 & 3 \\ - 6 & 12 & 6\end{bmatrix}\begin{bmatrix}2 \\ - 1 \\ 3\end{bmatrix}

= \begin{bmatrix}- 10 - 10 + 15 \\ - 6 - 6 + 9 \\ - 12 - 12 + 18\end{bmatrix}

= \begin{bmatrix}- 5 \\ - 3 \\ - 6\end{bmatrix} ≠ 0

Therefore, the given system of equations is inconsistent.

**Hence proved.

(vi) x + y − 2z = 5

x − 2y + z = −2

−2x + y + z = 4

**Solution:

The given system of equations can be written as,

AX = B

Here,

A = \begin{bmatrix}1 & 1 & - 2 \\ 1 & - 2 & 1 \\ - 2 & 1 & 1\end{bmatrix} , X = \begin{bmatrix}x \\ y \\ z\end{bmatrix} and B = \begin{bmatrix}5 \\ - 2 \\ 4\end{bmatrix}

|A| = \begin{vmatrix}1 & 1 & - 2 \\ 1 & - 2 & 1 \\ - 2 & 1 & 1\end{vmatrix}

= - 3 - 3 + 6

= 0

Let Cij be the cofactors of the elements aij in A.

C_{11} = \left( - 1 \right)^{1 + 1} \begin{vmatrix}- 2 & 1 \\ 1 & 1\end{vmatrix} = - 3 , C_{12} = \left( - 1 \right)^{1 + 2} \begin{vmatrix}1 & 1 \\ - 2 & 1\end{vmatrix} = - 3, C_{13} = \left( - 1 \right)^{1 + 3} \begin{vmatrix}1 & - 2 \\ - 2 & 1\end{vmatrix} = - 3

C_{21} = \left( - 1 \right)^{2 + 1} \begin{vmatrix}1 & - 2 \\ 1 & 1\end{vmatrix} = - 3, C_{22} = \left( - 1 \right)^{2 + 2} \begin{vmatrix}1 & - 2 \\ - 2 & 1\end{vmatrix} = - 3 , C_{23} = \left( - 1 \right)^{2 + 3} \begin{vmatrix}1 & 1 \\ - 2 & 1\end{vmatrix} = - 3

C_{31} = \left( - 1 \right)^{3 + 1} \begin{vmatrix}1 & - 2 \\ - 2 & 1\end{vmatrix} = - 3, C_{32} = \left( - 1 \right)^{3 + 2} \begin{vmatrix}1 & - 2 \\ 1 & 1\end{vmatrix} = - 3, C_{33} = \left( - 1 \right)^{3 + 3} \begin{vmatrix}1 & 1 \\ 1 & - 2\end{vmatrix} = - 3

adj A = \begin{bmatrix}- 3 & - 3 & - 3 \\ - 3 & - 3 & - 3 \\ - 3 & - 3 & - 3\end{bmatrix}^T

= \begin{bmatrix}- 3 & - 3 & - 3 \\ - 3 & - 3 & - 3 \\ - 3 & - 3 & - 3\end{bmatrix}

(adj A) B = \begin{bmatrix}- 3 & - 3 & - 3 \\ - 3 & - 3 & - 3 \\ - 3 & - 3 & - 3\end{bmatrix}\begin{bmatrix}5 \\ - 2 \\ 4\end{bmatrix}

= \begin{bmatrix}- 15 + 6 - 12 \\ - 15 + 6 - 12 \\ - 15 + 6 - 12\end{bmatrix}

= \begin{bmatrix}- 21 \\ - 21 \\ - 21\end{bmatrix} ≠ 0

Therefore, the given system of equations is inconsistent.

**Hence proved.

Question 5. If A = \begin{bmatrix}1 & - 1 & 0 \\ 2 & 3 & 4 \\ 0 & 1 & 2\end{bmatrix} and B = \begin{bmatrix}2 & 2 & - 4 \\ - 4 & 2 & - 4 \\ 2 & - 1 & 5\end{bmatrix} are two square matrices, find AB and hence solve the system of linear equations: x − y = 3, 2x + 3y + 4z = 17, y + 2z = 7.

**Solution:

Here,

A = \begin{bmatrix}1 & - 1 & 0 \\ 2 & 3 & 4 \\ 0 & 1 & 2\end{bmatrix} and B = \begin{bmatrix}2 & 2 & - 4 \\ - 4 & 2 & - 4 \\ 2 & - 1 & 5\end{bmatrix}

Now,

AB = \begin{bmatrix}1 & - 1 & 0 \\ 2 & 3 & 4 \\ 0 & 1 & 2\end{bmatrix} \begin{bmatrix}2 & 2 & - 4 \\ - 4 & 2 & - 4 \\ 2 & - 1 & 5\end{bmatrix}

AB = \begin{bmatrix}6 & 0 & 0 \\ 0 & 6 & 0 \\ 0 & 0 & 6\end{bmatrix}

AB = 6\begin{bmatrix}1 & 0 & 0 \\ 0 & 1 & 0 \\ 0 & 0 & 1\end{bmatrix}

AB = 6I

\frac{1}{6}AB = I

A^{- 1} = \frac{1}{6}B

A^{- 1} = \frac{1}{6}\begin{bmatrix}2 & 2 & - 4 \\ - 4 & 2 & - 4 \\ 2 & - 1 & 5\end{bmatrix}

X = A-1 B

X = \frac{1}{6}\begin{bmatrix}2 & 2 & - 4 \\ - 4 & 2 & - 4 \\ 2 & - 1 & 5\end{bmatrix}\begin{bmatrix}3 \\ 17 \\ 7\end{bmatrix}

\begin{bmatrix}x \\ y \\ z\end{bmatrix} = \frac{1}{6}\begin{bmatrix}6 + 34 - 28 \\ - 12 + 34 - 28 \\ 6 - 17 + 35\end{bmatrix}

\begin{bmatrix}x \\ y \\ z\end{bmatrix} = \frac{1}{6}\begin{bmatrix}12 \\ - 6 \\ 24\end{bmatrix}

**Therefore x = 2, y = -1 and z = 4.

Question 6. If A = \begin{bmatrix}2 & - 3 & 5 \\ 3 & 2 & - 4 \\ 1 & 1 & - 2\end{bmatrix} , find A−1 and hence solve the system of linear equations 2x − 3y + 5z = 11, 3x + 2y − 4z = −5, x + y + 2z = −3.

**Solution:

Here,

A = \begin{bmatrix}2 & - 3 & 5 \\ 3 & 2 & - 4 \\ 1 & 1 & - 2\end{bmatrix}

|A| = \begin{vmatrix}2 & - 3 & 5 \\ 3 & 2 & - 4 \\ 1 & 1 & - 2\end{vmatrix}

= 0 - 6 + 5

= -1

Let Cij be the cofactors of the elements aij in A.

C_{11} = \left( - 1 \right)^{1 + 1} \begin{vmatrix}2 & - 4 \\ 1 & - 2\end{vmatrix} = 0, C_{12} = \left( - 1 \right)^{1 + 2} \begin{vmatrix}3 & - 4 \\ 1 & - 2\end{vmatrix} = 2, C_{13} = \left( - 1 \right)^{1 + 3} \begin{vmatrix}3 & 2 \\ 1 & 1\end{vmatrix} = 1

C_{21} = \left( - 1 \right)^{2 + 1} \begin{vmatrix}- 3 & 5 \\ 1 & - 2\end{vmatrix} = - 1, C_{22} = \left( - 1 \right)^{2 + 2} \begin{vmatrix}2 & 5 \\ 1 & - 2\end{vmatrix} = - 9, C_{23} = \left( - 1 \right)^{2 + 3} \begin{vmatrix}2 & - 3 \\ 1 & 1\end{vmatrix} = - 5

C_{31} = \left( - 1 \right)^{3 + 1} \begin{vmatrix}- 3 & 5 \\ 2 & - 4\end{vmatrix} = 2 , C_{32} = \left( - 1 \right)^{3 + 2} \begin{vmatrix}2 & 5 \\ 3 & - 4\end{vmatrix} = 23, C_{33} = \left( - 1 \right)^{3 + 3} \begin{vmatrix}2 & - 3 \\ 3 & 2\end{vmatrix} = 13

adj A = \begin{bmatrix}0 & 2 & 1 \\ - 1 & - 9 & - 5 \\ 2 & 23 & 13\end{bmatrix}^T

= \begin{bmatrix}0 & - 1 & 2 \\ 2 & - 9 & 23 \\ 1 & - 5 & 13\end{bmatrix}

A^{- 1} = \frac{1}{\left| A \right|}adj A

= \frac{1}{- 1}\begin{bmatrix}0 & - 1 & 2 \\ 2 & - 9 & 23 \\ 1 & - 5 & 13\end{bmatrix}

\begin{bmatrix}2 & - 3 & 5 \\ 3 & 2 & - 4 \\ 1 & 1 & - 2\end{bmatrix}\begin{bmatrix}x \\ y \\ z\end{bmatrix} = \begin{bmatrix}11 \\ - 5 \\ - 3\end{bmatrix}

X = A-1 B

\begin{bmatrix}x \\ y \\ z\end{bmatrix} = \frac{1}{- 1}\begin{bmatrix}0 & - 1 & 2 \\ 2 & - 9 & 23 \\ 1 & - 5 & 13\end{bmatrix}\begin{bmatrix}11 \\ - 5 \\ - 3\end{bmatrix}

\begin{bmatrix}x \\ y \\ z\end{bmatrix} = \frac{1}{- 1}\begin{bmatrix}0 + 5 - 6 \\ 22 + 45 - 69 \\ 11 + 25 - 39\end{bmatrix}

\begin{bmatrix}x \\ y \\ z\end{bmatrix} = \frac{1}{- 1}\begin{bmatrix}- 1 \\ - 2 \\ - 3\end{bmatrix}

=> x = - 1/- 1, y = -2/-1\ and z = -3/-1

**Therefore x = 1, y = 2 and z = 3.

Question 7. Find A−1, if A = \begin{bmatrix}1 & 2 & 5 \\ 1 & - 1 & - 1 \\ 2 & 3 & - 1\end{bmatrix} . Hence solve the following system of linear equations: x + 2y + 5z = 10, x − y − z = −2, 2x + 3y − z = −11.

**Solution:

A = \begin{bmatrix}1 & 2 & 5 \\ 1 & - 1 & - 1 \\ 2 & 3 & - 1\end{bmatrix}

|A| = \begin{vmatrix}1 & 2 & 5 \\ 1 & - 1 & - 1 \\ 2 & 3 & - 1\end{vmatrix}

= 4 - 2 + 25

= 27

Let Cij be the cofactors of the elements aij in A.

C_{11} = \left( - 1 \right)^{1 + 1} \begin{vmatrix}- 1 & - 1 \\ 3 & - 1\end{vmatrix} = 4, C_{12} = \left( - 1 \right)^{1 + 2} \begin{vmatrix}1 & - 1 \\ 2 & - 1\end{vmatrix} = - 1, C_{13} = \left( - 1 \right)^{1 + 3} \begin{vmatrix}1 & - 1 \\ - 2 & 3\end{vmatrix} = 5

C_{21} = \left( - 1 \right)^{2 + 1} \begin{vmatrix}2 & 5 \\ 3 & - 1\end{vmatrix} = 17, C_{22} = \left( - 1 \right)^{2 + 2} \begin{vmatrix}1 & 5 \\ 2 & - 1\end{vmatrix} = - 11, C_{23} = \left( - 1 \right)^{2 + 3} \begin{vmatrix}1 & 2 \\ 2 & 3\end{vmatrix} = 1

C_{31} = \left( - 1 \right)^{3 + 1} \begin{vmatrix}2 & 5 \\ - 1 & - 1\end{vmatrix} = 3, C_{32} = \left( - 1 \right)^{3 + 2} \begin{vmatrix}1 & 5 \\ 1 & - 1\end{vmatrix} = 6, C_{33} = \left( - 1 \right)^{3 + 3} \begin{vmatrix}1 & 2 \\ 1 & - 1\end{vmatrix} = - 3

adj A = \begin{bmatrix}4 & - 1 & 5 \\ 17 & - 11 & 1 \\ 3 & 6 & - 3\end{bmatrix}^T

= \begin{bmatrix}4 & 17 & 3 \\ - 1 & - 11 & 6 \\ 5 & 1 & - 3\end{bmatrix}

A^{- 1} = \frac{1}{\left| A \right|}adj A

= \frac{1}{27}\begin{bmatrix}4 & 17 & 3 \\ - 1 & - 11 & 6 \\ 5 & 1 & - 3\end{bmatrix}

\begin{bmatrix}1 & 2 & 5 \\ 1 & - 1 & - 1 \\ 2 & 3 & - 1\end{bmatrix}\begin{bmatrix}x \\ y \\ z\end{bmatrix} = \begin{bmatrix}10 \\ - 2 \\ - 11\end{bmatrix}

X = A-1 B

\begin{bmatrix}x \\ y \\ z\end{bmatrix} = \frac{1}{27}\begin{bmatrix}4 & 17 & 3 \\ - 1 & - 11 & 6 \\ 5 & 1 & - 3\end{bmatrix}\begin{bmatrix}10 \\ - 2 \\ - 11\end{bmatrix}

\begin{bmatrix}x \\ y \\ z\end{bmatrix} = \frac{1}{27}\begin{bmatrix}40 - 34 - 33 \\ - 10 + 22 - 66 \\ 50 - 2 + 33\end{bmatrix}

\begin{bmatrix}x \\ y \\ z\end{bmatrix} = \frac{1}{27}\begin{bmatrix}- 27 \\ - 54 \\ 81\end{bmatrix}

=> x = -27/27, y = -54/27 and z = 81/27

**Therefore, x = - 1, y = -2 and z = 3.

Practice Questions

1).Solve the following system of equations using matrix method:

2x + 3y = 8

4x - y = 1

2).Use Cramer's rule to solve:

x + 2y = 5

3x - y = 2

3).For what value of k will the following system have no solution?

2x + 3y = 7

6x + ky = 21

4).Solve the system of equations:

ax + by = p

cx + dy = q

Where a, b, c, d, p, and q are constants and ad - bc ≠ 0

5).Determine the nature of solutions for:

2x - 3y = 4

4x - 6y = 8

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Summary

Exercise 8.1 in Set 1 of Chapter 8 typically focuses on solving systems of linear equations using matrix methods. Key topics usually include: