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i'm slowing down. problem 10 of the fourth lab done

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Mars Ultor
2025-09-18 01:13:31 -05:00
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labs-set-1/template.tex
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@@ -293,4 +293,42 @@
\end{align*}
}
\qs{}{
\begin{align*}
\vec{u} &= \langle -5, -3, 4 \rangle, \quad
\vec{v} = \langle 5, -4, 2 \rangle, \quad
\vec{w} = \langle 10, -5, -8 \rangle \\[2mm]
\vec{u} \times \vec{v} &=
\begin{vmatrix}
\hat{i} & \hat{j} & \hat{k} \\
-5 & -3 & 4 \\
5 & -4 & 2
\end{vmatrix} \\[1mm]
&= \hat{i}((-3)(2) - (4)(-4))
- \hat{j}((-5)(2) - (4)(5))
+ \hat{k}((-5)(-4) - (-3)(5)) \\[1mm]
&= \hat{i}( -6 + 16 ) - \hat{j}( -10 - 20 ) + \hat{k}( 20 + 15 ) \\[1mm]
&= \langle 10, 30, 35 \rangle \\[1mm]
\vec{w} \cdot (\vec{u} \times \vec{v}) &=
\langle 10, -5, -8 \rangle \cdot \langle 10, 30, 35 \rangle \\[1mm]
&= 10\cdot10 + (-5)\cdot30 + (-8)\cdot35 \\[1mm]
&= 100 - 150 - 280 \\[1mm]
&= -330 \\
\text{This corresponds with answer choice B}
\end{align*}
}
\dfn{Area of a Triangle using a Cross Product}{
\begin{align*}
\text{Area}_{\triangle ABC} = \frac{1}{2} \|\vec{B} - \vec{A} \times \vec{C} - \vec{A}\|
\end{align*}
}
\dfn{Area of a Parallelogram using a Cross Product}{
\begin{align*}
\text{Area}_{\text{parallelogram}} = \|\vec{u} \times \vec{v}\|
\end{align*}
}
\end{document}