Add YOLOv2 to selected methods
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@ -2182,6 +2182,29 @@ similarly to errors in big bounding boxes even though small errors
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have a higher impact on small bounding boxes than big ones. This
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have a higher impact on small bounding boxes than big ones. This
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results in a more lenient loss function for \glspl{iou} of small
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results in a more lenient loss function for \glspl{iou} of small
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bounding boxes and, therefore, worse localization.
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bounding boxes and, therefore, worse localization.
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\subsubsection{\gls{yolo}v2}
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\label{sssec:yolov2}
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\gls{yolo}v2 \cite{redmon2017} incorporates multiple improvements such
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as \gls{bn} layers, higher resolution inputs, a fully-convolutional
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architecture, anchor boxes, dimension priors, and multi-scale
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training. Of particular interest is the use of anchor boxes to
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localize bounding boxes. Instead of regressing arbitrary bounding box
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sizes, \gls{yolo}v2 predicts the bounding box offsets from a set of
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predefined boxes which are called \emph{anchor boxes}. The authors
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note that finding a good set of prior anchor boxes by hand is
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error-prone and suggest finding them via $k$-means clustering
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(dimension priors). They select five anchor boxes per grid cell which
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still results in high recall, but does not introduce too much
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complexity.
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These additional details result in an improved \gls{map} of 78.6\% on
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the \gls{voc} 2007 data set compared to 63.4\% of the previous
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\gls{yolo} version. \gls{yolo}v2 still maintains a fast detection rate
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at \qty{40}{fps} (\gls{map} 78.6\%) and up to \qty{91}{fps} (\gls{map}
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69\%).
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\subsection{ResNet}
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\subsection{ResNet}
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\label{sec:methods-classification}
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\label{sec:methods-classification}
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