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body.tex
@ -128,7 +128,7 @@ of both for object detection in the open set conditions using
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the SSD network for object detection and the SceneNet RGB-D data set
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the SSD network for object detection and the SceneNet RGB-D data set
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with MS COCO classes.
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with MS COCO classes.
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\chapter{Background and Contribution}
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\chapter{Background}
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This chapter will begin with an overview over previous works
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This chapter will begin with an overview over previous works
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in the field of this thesis. Afterwards the theoretical foundations
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in the field of this thesis. Afterwards the theoretical foundations
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@ -586,7 +586,23 @@ will explain how these data sets have been prepared.
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Afterwards the replication of the work of Miller et al. is
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Afterwards the replication of the work of Miller et al. is
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outlined, followed by the implementation of the auto-encoder.
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outlined, followed by the implementation of the auto-encoder.
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\section{Design of Source Code}
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\section{Bayesian SSD for Novelty Detection}
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\subsection{Model Architecture}
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\subsection{Novelty Detection}
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\subsection{Implementation Details}
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\section{Auto-encoder for Novelty Detection}
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\subsection{Model Architecture}
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\subsection{Novelty Detection}
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\subsection{Implementation Details}
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\section{Software and Source Code Design}
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The source code of many published papers is either not available
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The source code of many published papers is either not available
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or seems like an afterthought: it is poorly documented, difficult
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or seems like an afterthought: it is poorly documented, difficult
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@ -731,7 +747,13 @@ works very well for COCO as well, with one caveat: it is equally
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good for all classes, even when trained only on one. Novelty
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good for all classes, even when trained only on one. Novelty
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detection is out of the question under theses circumstances.
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detection is out of the question under theses circumstances.
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\chapter{Results}
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\chapter{Experimental Setup and Results}
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\section{Data sets}
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\section{Experimental Setup}
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\section{Results}
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\chapter{Discussion}
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\chapter{Discussion}
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Reference in New Issue
Block a user