Let A = [[0,-tanalpha//2],[tanalpha//2,0...

Let A = `[[0,-tanalpha//2],[tanalpha//2,0]]` and I, the indentity matrix of order 2.

A

`-I+A`

B

`I-A`

C

`-I-A`

D

none of these

Text Solution

Verified by Experts

The correct Answer is:

B

Since `I=[(1,0),(0,1)]` and given `A=[(0,tan alpha//2),(-tan alpha//2,0)]`
`:. I-A=[(1,-tan alpha//2),(tan alpha//2,1)]`
Now, `(I-A) [(cos alpha,-sin alpha),(sin alpha,cos alpha)]`
`=[(1,tan alpha//2),(-tan alpha//2,1)][(cos alpha,-sin alpha),(sin alpha,cos alpha)]`
`=[(1,tan alpha//2),(-tan alpha//2,1)][((1-tan^(2) alpha//2)/(1+tan^(2)alpha//2),-(2 tan alpha//2)/(1+tan^(2) alpha//2)),((2 tan alpha//2)/(1+tan^(2) alpha//2),(1-tan^(2) alpha//2)/(1+tan^(2) alpha//2))]`
`=[((1-tan^(2) alpha//2)/(1+tan^(2)alpha//2)+(2 tan^(2) alpha//2)/(1+tan^(2) alpha//2),-(2 tan alpha//2)/(1+tan^(2) alpha//2)),((-tan alpha//2 (1-tan^(2) alpha//2))/(1+tan^(2) alpha//2)+(2 tan alpha//2)/(1+tan^(2) alpha//2),(2 tan^(2) alpha//2)/(1+tan^(2) alpha//2)+(1-tan^(2) alpha//2)/(1+tan^(2) alpha//2))]`
`=[(((1+tan^(2) alpha//2))/((1+tan^(2) alpha//2)),-(tan alpha//2(1+tan^(2) alpha//2))/((1+tan^(2) alpha//2))),((tan alpha//2(1+tan^(2) alpha//2))/((1+tan^(2) alpha//2)),((1+tan^(2) alpha//2))/((1+tan^(2) alpha//2)))]`
`=[(1,-tan alpha//2),(tan alpha//2,a)]`
`=I-A` [Using (1)]

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