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Change Detection with Weightless Neural Networks

Conference Paper
Publication Date:
2014
abstract:
In this paper a pixel-based Weightless Neural Network (WNN) method to face the problem of change detection in the field of view of a camera is proposed. The main features of the proposed method are 1) the dynamic adaptability to background change due to the WNN model adopted and 2) the introduction of pixel color histories to improve system behavior in videos characterized by (des)appearing of objects in video scene and/or sudden changes in lightning and background brightness and shape. The WNN approach is very simple and straightforward, and it gives high rank results in competition with other approaches applied to the ChangeDetection.net 2014 benchmark dataset.
Iris type:
04.01 Contributo in Atti di convegno
Keywords:
Change detection; Weightless Neural Networks
List of contributors:
DE GREGORIO, Massimo; Giordano, Maurizio
Authors of the University:
DE GREGORIO MASSIMO
GIORDANO MAURIZIO
Handle:
https://iris.cnr.it/handle/20.500.14243/261677
Book title:
Proceedings of 2014 IEEE Computer Society Change Detection Workshop (in conjunction with CVPR 2014)
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