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M Thonnat, Uncertainty control for reliable video understanding on complex environments (0)

by M Zúñiga, F Brémond
Venue:in Video Surveillance, INTECH
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Real-time reliability measure-driven multi-hypothesis tracking using 2D and 3D features

by Monique Thonnat, Hal Id Hal, Marcos D Zúñiga , 2013
"... To cite this version: ..."
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...us or false data to better maintain the integrity of the object dynamics model. This article is focused on discussing in detail the proposed tracking approach, which has been previously introduced in =-=[8]-=- as a phase of an event learning approach. Therefore, the main contributions of the proposed tracking approach are: - a new algorithm for tracking multiple objects in noisy environments, - a new dynam...

tracking using 2D and 3D features

by Marcos D Zúñiga
"... Real-time reliability measure-driven multihypothesis ..."
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Real-time reliability measure-driven multihypothesis
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Citation Context

...us or false data to better maintain the integrity of the object dynamics model. This article is focused on discussing in detail the proposed tracking approach, which has been previously introduced in =-=[8]-=- as a phase of an event learning approach. Therefore, the main contributions of the proposed tracking approach are: - a new algorithm for tracking multiple objects in noisy environments, - a new dynam...

Open Access Real-time reliability measure-driven multihypothesis tracking using 2D and 3D features

by Marcos D Zúñiga, François Brémond, Monique Thonnat , 2012
"... We propose a new multi-target tracking approach, which is able to reliably track multiple objects even with poor segmentation results due to noisy environments. The approach takes advantage of a new dual object model combining 2D and 3D features through reliability measures. In order to obtain these ..."
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We propose a new multi-target tracking approach, which is able to reliably track multiple objects even with poor segmentation results due to noisy environments. The approach takes advantage of a new dual object model combining 2D and 3D features through reliability measures. In order to obtain these 3D features, a new classifier associates an object class label to each moving region (e.g. person, vehicle), a parallelepiped model and visual reliability measures of its attributes. These reliability measures allow to properly weight the contribution of noisy, erroneous or false data in order to better maintain the integrity of the object dynamics model. Then, a new multitarget tracking algorithm uses these object descriptions to generate tracking hypotheses about the objects moving in the scene. This tracking approach is able to manage many-to-many visual target correspondences. For achieving this characteristic, the algorithm takes advantage of 3D models for merging dissociated visual evidence (moving regions) potentially corresponding to the same real object, according to previously obtained information. The tracking approach has been validated using video surveillance benchmarks publicly accessible. The obtained performance is real time and the results are competitive compared with other tracking algorithms, with minimal (or null) reconfiguration effort between different videos.
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...us or false data to better maintain the integrity of the object dynamics model. This article is focused on discussing in detail the proposed tracking approach, which has been previously introduced in =-=[8]-=- as a phase of an event learning approach. Therefore, the main contributions of the proposed tracking approach are: - a new algorithm for tracking multiple objects in noisy environments, - a new dynam...

To cite this version:

by Marcos Zuniga, Francois Bremond, Monique Thonnat, Marcos Zuniga, Francois Bremond, Monique Thonnat Real-time Reliability, Hal Id Hal, Marcos D Zúñiga , 2012
"... Real-time reliability measure-driven multihypothesis ..."
Abstract - Add to MetaCart
Real-time reliability measure-driven multihypothesis
(Show Context)

Citation Context

...us or false data to better maintain the integrity of the object dynamics model. This article is focused on discussing in detail the proposed tracking approach, which has been previously introduced in =-=[8]-=- as a phase of an event learning approach. Therefore, the main contributions of the proposed tracking approach are: - a new algorithm for tracking multiple objects in noisy environments, - a new dynam...

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