Question

Question 1
What is the solution of the given matrix equation?
[3 1] C-1 2]
X =
15 2] 3
1​

Answer 1

Answer:

Let A=[

a

b

c

d

]

so, [

2

3

1

2

]A[

−3

5

2

−3

]=[

1

0

0

1

]

⇒[

2

3

1

2

][

a

b

c

d

][

−3

5

2

−3

]=[

1

0

0

1

]

⇒[

2a+b

3a+2b

2c+d

3c+2d

][

−3

5

2

−3

][

1

0

0

1

]

⇒[

−6a−3b+10c+5d

−9a−6b+15c+10d

4a+3b−6c−3d

6a+4b−9c−6d

]=[

1

0

0

1

]

so, −6a−3b+10c+5d=1

4a+3b−6c−3d=0

−9a−6b+15c+10d=0

6a+4b−9c−6d=1

on squaring, we get

⇒a=

3

1

,b=1,c=

3

1

,d=

15

8

so, A=

⎣

⎢

⎢

⎡

3

1

0

3

1

15

8

⎦

⎥

⎥

⎤

=

15

1

[

5

15

5

8

].

Hence, the answer is

15

1

[

5

15

5

8

]

Answer 2

hi friend

u didn't mention the figure of it