Written Moment of inertia - Arbitrary polygons
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Karma Riuk
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@ -20,10 +20,12 @@
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\graphicspath{{../figures/}{./figures/}}
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\graphicspath{{../figures/}{./figures/}}
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\newcommand*{\vv}[1]{\overrightarrow{#1}}
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\newcommand*{\figref}[1]{\figurename~\ref{#1}}
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\newcommand*{\figref}[1]{\figurename~\ref{#1}}
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\captionsetup{labelfont={bf}}
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\captionsetup{labelfont={bf}}
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% \newcommand{\diff}{\mathop{}\!\mathrm{d}}
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\newcommand{\diff}{\mathop{}\!\mathrm{d}}
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\newcommand{\diff}{\mathop{}\!\mathrm{d}}
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\author{Arnaud Fauconnet}
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\author{Arnaud Fauconnet}
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@ -44,3 +44,13 @@ it will be useful to simplify the result of the integral.
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&= \frac{m_Tl^2}{24} \left(1 + 3\cot^2\left(\frac{\theta}{2}\right)\right)
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&= \frac{m_Tl^2}{24} \left(1 + 3\cot^2\left(\frac{\theta}{2}\right)\right)
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\end{split}
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\end{split}
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\end{equation}
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\end{equation}
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\newpage
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\paragraph{Moment of inertia of sub-triangle of arbitrary polygon}
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\begin{equation}
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\label{eq:subtriangle_arbitrary_moment_long}
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\begin{split}
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I_{T_i} = \rho \int_0^1 \int_0^1 \vec r^2 hb \alpha \diff \alpha \diff \beta\\
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&=
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\end{split}
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\end{equation}
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@ -24,9 +24,12 @@ In the case of this project the axis of rotation is the one along the $z$-axis
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the polygon.
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the polygon.
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The general formula for the moment of inertia is
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The general formula for the moment of inertia is
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$$ I_Q = \int \vec r^2 \rho(\vec r) \diff A $$
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\begin{equation}
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\label{eq:moment_general}
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I_Q = \int \vec r^2 \rho(\vec r) \diff \mathcal{A}
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\end{equation}
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where $\rho$ is the density of object $Q$ in the point $\vec r$ across the
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where $\rho$ is the density of object $Q$ in the point $\vec r$ across the
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small pieces of area $A$ of the object.
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small pieces of area $\mathcal A$ of the object.
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In our case, since we are implementing a 2D engine we can use the $\mathbb{R}^2$
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In our case, since we are implementing a 2D engine we can use the $\mathbb{R}^2$
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coordinate systems, thus the formula becomes
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coordinate systems, thus the formula becomes
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@ -86,6 +89,7 @@ All the steps to compute equation~\ref{eq:rect_moment} can be found in equation
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\ref{eq:rect_moment_long} in Appendix \ref{appendix:calculations}.
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\ref{eq:rect_moment_long} in Appendix \ref{appendix:calculations}.
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\subsubsection{Regular Polygons}
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\subsubsection{Regular Polygons}
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\label{sub:regular_polygons}
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A regular polygon is a shape that has sides of equal length and angles between
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A regular polygon is a shape that has sides of equal length and angles between
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those sides of equal measure. A polygon of $n$ sides can be subdivided in $n$
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those sides of equal measure. A polygon of $n$ sides can be subdivided in $n$
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congruent (and isosceles since they are all the radius of the circumscribing
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congruent (and isosceles since they are all the radius of the circumscribing
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@ -140,8 +144,8 @@ equation \ref{eq:subtriangle_moment_long} in Appendix
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Now that we have the moment of inertia of the sub-triangle, we can make the link
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Now that we have the moment of inertia of the sub-triangle, we can make the link
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to the overall polygon. Since
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to the overall polygon. Since
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$$ \theta = \frac{2\pi}{n} \implies \frac{\theta}{2} = \frac{\pi}{n} $$
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$$ \theta = \frac{2\pi}{n} \implies \frac{\theta}{2} = \frac{\pi}{n} $$
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and the moment of inertia are additive (as long they are as they are about the same
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and the moment of inertia are additive (as long they are as they are about the
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axis) we can get the moment of inertia with
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same axis) we can get the moment of inertia with
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$$ I_{\text{regular}} = n I_T $$
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$$ I_{\text{regular}} = n I_T $$
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and since the mass of the regular polygon $m$ is the sum of the masses of the
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and since the mass of the regular polygon $m$ is the sum of the masses of the
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sub-triangle
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sub-triangle
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@ -152,10 +156,113 @@ we have that
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I_{\text{regular}} = \frac{ml^2}{24} \left( 1 + 3\cot^2\left(\frac{\pi}{n}\right) \right)
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I_{\text{regular}} = \frac{ml^2}{24} \left( 1 + 3\cot^2\left(\frac{\pi}{n}\right) \right)
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\end{equation}
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\end{equation}
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\subsubsection{Arbitrary Polygons}
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\subsubsection{Arbitrary Polygons}
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For arbitrary polygons, we are taking a slightly different approach. Using the
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Cartesian coordinate system to solve the equation \ref{eq:moment} revealed to be
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more cumbersome than useful. But similarly to regular polygons (c.f. Section
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\ref{sub:regular_polygons}), we can use the additive property of the moment
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inertia to divide our arbitrary polygon into sub-triangles. As opposed to
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regular polygons, these triangles won't be congruent, so we can't just get the
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moment of inertia of one of them and multiply it by the number of sides, but we
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need to calculate them individually. So given a polygon of $n$ sides, we can
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construct $n$ sub-triangles $T_i$, for $i = 1, \dots, n$. So the moment of
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inertia $I$ of the polygon will be
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\begin{equation}
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I = \sum_i I_{T_i}
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\end{equation}
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\begin{figure}[H]
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\centering
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\begin{subfigure}[]{.5\textwidth}
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\centering
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\inputtikz[.7]{arbitrary}
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\caption{An arbitrary 6-sided polygon}
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\label{fig:arbitrary}
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\end{subfigure}
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\begin{subfigure}[]{.49\textwidth}
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\centering
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\inputtikz[.7]{arbitrary_divided}
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\caption{Arbitrary polygon divided into 6 sub-triangles}
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\label{fig:abitrary_divded}
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\end{subfigure}
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\end{figure}
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To calculate the moment of inertia $I_{T_i}$, instead of using the classical
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$x$- and $y$-axis as we did before, we decided to use the edges of the triangle
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as axis and therefore express what we need to integrate in function of those as
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can be seen in Figure \ref{fig:abitrary_subtriangle}.
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\begin{figure}[H]
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\centering
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\inputtikz[.7]{arbitrary_subtriangle}
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\caption{Sub-triangle of arbitrary polygon}
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\label{fig:abitrary_subtriangle}
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\end{figure}
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In Figure \ref{fig:abitrary_subtriangle}, $C$ represent the barycenter of the
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polygon (as is shown in Figure \ref{fig:abitrary_divded}). The axis we are going
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to integrate on are $\vv{CA}$ and $\vv{AB}$.
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We can now define
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\begin{equation} \label{eq:alpha}
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\vv{CP_1} = \alpha \vv{CA}, \qquad \vv{CP_2} = \alpha
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\vv{CB}, \qquad \forall \alpha \in [0, 1]
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\end{equation}
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and
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$$ \vv{P_1Q} = \beta \vv{P_1P_2}, \qquad \forall \beta \in [0, 1] $$
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From \ref{eq:alpha}, it quickly follows that
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\[
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\vv{P_1P_2} = \alpha \vv{AB}
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\]
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therefore
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\begin{equation} \label{eq:beta_alpha}
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\vv{P_1Q} = \beta \alpha \vv{AB}
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\end{equation}
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Finally, if we put together equations \ref{eq:alpha} and \ref{eq:beta_alpha}, we
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have that
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\begin{equation}\label{eq:r}
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\vec r = \vv{CP_1} + \vv{P_1Q} = \alpha \vv{CA} + \beta \alpha \vv{AB}
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\end{equation}
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Now we got the first part equation \ref{eq:moment_general}. To find the $\diff
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\mathcal A$, we
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just need to get the area of the square that contains $Q$ in Figure
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\ref{fig:abitrary_subtriangle}. Since $\|\vv{AB}\|$ represents the base of the
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triangle $T_i$, we can define
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$$ b = \| \vv{AB}\| $$
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we consequently have that
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\begin{equation} \label{eq:dA}
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\diff \mathcal{A} = b \alpha \diff \beta h\diff \alpha
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\end{equation}
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where $h = \| \vv{CH} \|$ is the height of triangle.
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We can now assemble \ref{eq:r} and \ref{eq:dA}
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\begin{equation}
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\label{eq:subtriangle_arbitrary_moment}
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I_{T_i} = \rho \int_0^1 \int_0^1 \vec r^2 hb \alpha \diff \alpha
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\diff \beta = \frac{\rho h b}{4} \left(\frac{1}{3} \vv{AB}^2 +
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\vv{AB} \cdot \vv{CA} + \vv{CA}^2\right)
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\end{equation}
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Since $\frac{\rho h b}{2}$ is the mass of the triangle we can write the result
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as
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\begin{equation}
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I_{T_i} = \frac{m_{T_i}}{2} \left(\frac{1}{3} \vv{AB}^2 + \vv{AB} \cdot \vv{CA}
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+ \vv{CA}^2\right)
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\end{equation}
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All the steps to compute equation~\ref{eq:subtriangle_arbitrary_moment} can be
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found in equation \ref{eq:subtriangle_arbitrary_moment_long} in Appendix
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\ref{appendix:calculations}.
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Now that we have the moment of inertia of the sub-triangle, we can make the link
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to the overall polygon.
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\begin{equation}
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I_{\text{arbitrary}} = \sum_i I_{T_i} = \sum_{i=1}^n \frac{m_{T_i}}{2}
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\left(\frac{1}{3} \vv{P_iP_{i+1}}^2 + \vv{CP_i} \cdot \vv{P_iP_{i+1}} +
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\vv{CP_i}^2\right)
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\end{equation}
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where, $P_{n+1} = P_1$ in the case of $i = n$.
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\subsection{Collision detection}
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\subsection{Collision detection}
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\subsubsection{Separating Axis Theorem}
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\subsubsection{Separating Axis Theorem}
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\subsubsection{Vertex collisions}
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\subsubsection{Vertex collisions}
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