Question

Let $E\left(\theta \right)=\left[\begin{array}{cc}cos\theta & sin\theta \\ -sin\theta & cos\theta \end{array}\right]$ then $E\left(\alpha \right)E\left(\beta \right)$ is equal to

• A. $E\left(\frac{\alpha +\beta }{2}\right)$
• B. $E\left(\alpha \beta \right)$
• C. $E\left(\alpha +\beta \right)$
• D. $E\left(\alpha -\beta \right)$

Answer 1

Answer: (C)

Given, $E\left(\theta \right)=\left[\begin{array}{cc}cos\theta & sin\theta \\ -sin\theta & cos\theta \end{array}\right]$
Now, $E\left(\alpha \right)E\left(\beta \right)=\left[\begin{array}{cc}cos\alpha & sin\alpha \\ -sin\alpha & cos\alpha \end{array}\right]\left[\begin{array}{cc}cos\beta & sin\beta \\ -sin\beta & cos\beta \end{array}\right]$
$=\left[\begin{array}{cc}cos\alpha cos\beta -sin\alpha sin\beta & cos\alpha sin\beta +sin\alpha cos\beta \\ -\left(sin\alpha cos\beta +cos\alpha sin\beta \right)& -sin\alpha sin\beta +cos\alpha cos\beta \end{array}\right]$
$=\left[\begin{array}{cc}cos\left(\alpha +\beta \right)& sin\left(\alpha +\beta \right)\\ -sin\left(\alpha +\beta \right)& cos\left(\alpha +\beta \right)\end{array}\right]=E\left(\alpha +\beta \right)$