A Fuzzy Spatial Coherence-based Approach to Background/ Foreground Separation for Moving Object Detection
Articolo
Data di Pubblicazione:
2010
Abstract:
The detection of moving objects from stationary
cameras is usually approached by background subtraction,
i.e. by constructing and maintaining an up-to-date model of
the background and detecting moving objects as those that
deviate from such a model. We adopt a previously proposed
approach to background subtraction based on self-organization
through artificial neural networks, that has been
shown to well cope with several of the well known issues
for background maintenance. Here, we propose a spatial
coherence variant to such approach to enhance robustness
against false detections and formulate a fuzzy model to deal
with decision problems typically arising when crisp settings
are involved. We show through experimental results and
comparisons that higher accuracy values can be reached for
color video sequences that represent typical situations
critical for moving object detection.
Tipologia CRIS:
01.01 Articolo in rivista
Keywords:
Moving object detection; Background subtraction; Multivalued background modeling; Self-organization; Spatial cohe
Elenco autori:
Maddalena, Lucia; Petrosino, Alfredo
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