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Part based object detection with a flexible context constraint

Biehl, Robert (2013)
Part based object detection with a flexible context constraint.
Technische Universität Darmstadt
Diploma Thesis or Magisterarbeit, Primary publication

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Diploma thesis Robert Biehl 08.06.2013 Druck.pdf - Submitted Version
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Item Type: Diploma Thesis or Magisterarbeit
Type of entry: Primary publication
Title: Part based object detection with a flexible context constraint
Language: English
Referees: Roth, Prof. Stefan ; Franzel, M. Sc. Thorsten
Date: 1 July 2013
Place of Publication: Darmstadt
Date of oral examination: 8 June 2013
Abstract:

This work describes an object detection system which integrates flexible spatial context constraints to improve detection performance. It allows spatial and scale deformation of the object relative to its context. The contextual model extends an existing deformable parts model and is trained on partially labeled data using a latent SVM. The approach can be applied to any object detection problem where the object class always exists in one typical image context, but the context can appear independently. A new scoring method is used to model the asymmetric relationship between object and context. Furthermore, the system enables the use of contextual non-maximum suppression, a context sensitive way to discard redundant detections. Trained on our combined dataset of dresses and persons, the system achieves a significant improvement in detection performance when compared with basic deformable parts models.

URN: urn:nbn:de:tuda-tuprints-68687
Divisions: 20 Department of Computer Science > Interactive Graphics Systems
Date Deposited: 16 Oct 2017 06:15
Last Modified: 09 Jul 2020 01:53
URI: https://tuprints.ulb.tu-darmstadt.de/id/eprint/6868
PPN: 417836554
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