Given a set of images of a scene taken at different times, the availability of an initial background model that describes the scene without foreground objects is the prerequisite for a wide range of applications, ranging from video surveillance to computational photography. Even though several methods have been proposed for scene background initialization, the lack of a common groundtruthed dataset and of a common set of metrics makes it difficult to compare their performance. To move first steps towards an easy and fair comparison of these methods, we assembled a dataset of sequences frequently adopted for background initialization, selected or created ground truths for quantitative evaluation through a selected suite of metrics, and compared results obtained by some existing methods, making all the material publicly available.

Towards Benchmarking Scene Background Initialization

L Maddalena;
2015

Abstract

Given a set of images of a scene taken at different times, the availability of an initial background model that describes the scene without foreground objects is the prerequisite for a wide range of applications, ranging from video surveillance to computational photography. Even though several methods have been proposed for scene background initialization, the lack of a common groundtruthed dataset and of a common set of metrics makes it difficult to compare their performance. To move first steps towards an easy and fair comparison of these methods, we assembled a dataset of sequences frequently adopted for background initialization, selected or created ground truths for quantitative evaluation through a selected suite of metrics, and compared results obtained by some existing methods, making all the material publicly available.
2015
Istituto di Calcolo e Reti ad Alte Prestazioni - ICAR
Inglese
V. Murino et al.
New Trends in Image Analysis and Processing -- ICIAP 2015 Workshops
469
476
8
Springer International Publishing
CH-6330 Cham (ZG)
SVIZZERA
Sì, ma tipo non specificato
Background initialization
Video analysis
Video surveillance
2
02 Contributo in Volume::02.01 Contributo in volume (Capitolo o Saggio)
268
none
Maddalena, L; Petrosino, A
info:eu-repo/semantics/bookPart
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.14243/301737
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