Magnitude of $$$\left\langle 2 \cos{\left(t \right)}, - 2 \sin{\left(t \right)}, 0\right\rangle$$$

Find the magnitude (length) of $$$\mathbf{\vec{u}} = \left\langle 2 \cos{\left(t \right)}, - 2 \sin{\left(t \right)}, 0\right\rangle$$$.

The vector magnitude of a vector is given by the formula $$$\mathbf{\left\lvert\vec{u}\right\rvert} = \sqrt{\sum_{i=1}^{n} \left|{u_{i}}\right|^{2}}$$$.

The sum of squares of the absolute values of the coordinates is $$$\left|{2 \cos{\left(t \right)}}\right|^{2} + \left|{- 2 \sin{\left(t \right)}}\right|^{2} + \left|{0}\right|^{2} = 4 \sin^{2}{\left(t \right)} + 4 \cos^{2}{\left(t \right)}$$$.

Therefore, the magnitude of the vector is $$$\mathbf{\left\lvert\vec{u}\right\rvert} = \sqrt{4 \sin^{2}{\left(t \right)} + 4 \cos^{2}{\left(t \right)}} = 2$$$.

The magnitude is $$$2$$$A.