Not much DOP
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@@ -36,10 +36,10 @@ This offset depends on the particular choice of equation to subtract.
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%TODO local minima vs global?
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%TODO was noch?
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Another factor which influences the accuracy is the geometry of the setup where the measurements were taken.
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Another factor which influences the localization accuracy is the geometry of the setup where the measurements were taken.
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The accuracy of multilateration estimate depends on the position of the APs and the position of the smartphone relatively to each other.
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Therefore, it is important to consider the actual AP locations for localization which might differ from the AP locations which results the best signal coverage.
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And the walkable area where the localization system should be used.
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Therefore, it is important to consider the actual AP locations for improved localization accuracy and the walkable area where the localization system is used.
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However, the best geometrical setup for localization is not necessarily the best setup for signal coverage.
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Best localization results are archived when the distance circles of the APs intersect in a near orthogonal angle.
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Localization performance degrades with wider intersection angles.
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@@ -50,6 +50,24 @@ Usually non-optimal AP locations need to be chosen due to environmental constrai
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These geometrical considerations can be founded on geometric dilution of precision (GDOP), which is a indicator which specifies the localization error based on the sender-receiver geometry.
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%DOP ganz nett aber signalstärken spielt auch eine Rolle
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\begin{equation}
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A =
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\begin{pmatrix}
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\frac{(x_1 - x)}{R_1} & \frac{(y_1 - y)}{R_1} & \frac{(z_1 - z)}{R_1} \\[0.3em]
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\frac{(x_2 - x)}{R_2} & \frac{(y_2 - y)}{R_2} & \frac{(z_2 - z)}{R_2} \\[0.3em]
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\vdots & \vdots & \vdots \\[0.3em]
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\frac{(x_i - x)}{R_i} & \frac{(y_i - y)}{R_i} & \frac{(z_i - z)}{R_i} \\
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\end{pmatrix}
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\end{equation}
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where $R_i=\sqrt{(x_i-x)^2+(y_i-y)^2+(z_i-z)^2}$
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\begin{equation}
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Q = (A^TA)^{-1}
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\end{equation}
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\begin{equation}
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\text{GDOP} = \sqrt{\text{trace}(Q)}
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\end{equation}
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\subsection{Probabilistic}
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%Dichte aus Messungen erzeugen.
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