Let A - - 2 0- 2 2- - B - - -7-8 1-2-2- -1-2-2 -7-8 - and C - BT AB-If X - B C2015BT where X -Xij- is a 2 - 2 matrix then- x11-x12-x21-x22-22016 is

BB^T = [ √(7/8) amp; 1/2√(2); 1/2√(2) amp; √(7/8) ][ √(7/8) amp; 1/2√(2); 1/2√(2) amp; √(7/8) ] = I So C = B^T AB C^2 =(B^T AB)(B^T ...

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Byju's Answer

Standard XI

Mathematics

Multiplication of Matrices

Let A = [ 2 0...

Question

Let $A = [\begin{matrix} 2 & 0 2 & 2 \end{matrix}],$ $B = ⎡ ⎢ ⎢ ⎣ \begin{matrix} \sqrt{\frac{7}{8}} & \frac{1}{2 \sqrt{2}} \frac{- 1}{2 \sqrt{2}} & \sqrt{\frac{7}{8}} \end{matrix} ⎤ ⎥ ⎥ ⎦$ and $C = B^{T} A B .$
$I f X = B C^{2015} B^{T} w h e r e X = [X_{i j}]$ is a $2 \times 2$ matrix then, $\frac{x_{11} + x_{12} + x_{21} + x_{22}}{2^{2016}}$ is

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Solution

$B B^{T} = ⎡ ⎢ ⎢ ⎣ \begin{matrix} \sqrt{\frac{7}{8}} & \frac{1}{2 \sqrt{2}} \frac{- 1}{2 \sqrt{2}} & \sqrt{\frac{7}{8}} \end{matrix} ⎤ ⎥ ⎥ ⎦ ⎡ ⎢ ⎢ ⎣ \begin{matrix} \sqrt{\frac{7}{8}} & \frac{- 1}{2 \sqrt{2}} \frac{1}{2 \sqrt{2}} & \sqrt{\frac{7}{8}} \end{matrix} ⎤ ⎥ ⎥ ⎦$
= I
So $C = B^{T} A B$
$C^{2} = (B^{T} A B) (B^{T} A B)$
$C^{2} = B^{T} A^{2} B$
Similarly, $C^{2015} = B^{T} A^{2015} B$
Now $X = B C^{2015} B^{T} = B (B^{T} A^{2015} B) B^{T}$
$X = A^{2015}$
$A^{2} = [\begin{matrix} 2 & 0 2 & 2 \end{matrix}] [\begin{matrix} 2 & 0 2 & 2 \end{matrix}] = [\begin{matrix} 4 & 0 2 \times 4 & 4 \end{matrix}]$
$A^{3} = [\begin{matrix} 4 & 0 2 \times 4 & 4 \end{matrix}] [\begin{matrix} 2 & 0 2 & 2 \end{matrix}] = [\begin{matrix} 8 & 0 3 \times 8 & 8 \end{matrix}]$
$A^{2015} = [\begin{matrix} 2^{2015} & 0 2015 \times 2^{2015} & 2^{2015} \end{matrix}] = X$
So $x_{11} = 2^{2015}, x_{12} = 0, x_{21} = 2015 \times 2^{2015}, x_{22} = 2^{2015}$
$\frac{x_{11} + x_{12} + x_{21} + x_{22}}{2^{2016}} = \frac{2^{2015} (2017)}{2^{2016}} = 1008.50$

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Let A=[2022], B=⎡⎢ ⎢⎣√7812√2−12√2√78⎤⎥ ⎥⎦ and C=BTAB. If X=BC2015BT where X=[Xij] is a 2×2 matrix then, x11+x12+x21+x2222016 is