Background modeling and foreground detection for video surveillance

Autor(en): Bouwmans, T.
Porikli, F.
Höferlin, B.
Vacavant, A.
Stichwörter: Benchmarking; Data mining; Fuzzy neural networks; Learning algorithms; Learning systems; Monitoring; Multimedia systems; Object detection; Optical data processing; Video signal processing, Background subtraction; Background subtraction algorithms; Benchmarking techniques; Detecting moving objects; Illumination changes; Multimedia applications; Optical motion capture; Real-time architecture, Security systems
Erscheinungsdatum: 2014
Herausgeber: CRC Press
Journal: Background Modeling and Foreground Detection for Video Surveillance
Startseite: 1
Seitenende: 612
Zusammenfassung: 
Background modeling and foreground detection are important steps in video processing used to detect robustly moving objects in challenging environments. This requires effective methods for dealing with dynamic backgrounds and illumination changes as well as algorithms that must meet real-time and low memory requirements. Incorporating both established and new ideas, Background Modeling and Foreground Detection for Video Surveillance provides a complete overview of the concepts, algorithms, and applications related to background modeling and foreground detection. Leaders in the field address a wide range of challenges, including camera jitter and background subtraction. The book presents the top methods and algorithms for detecting moving objects in video surveillance. It covers statistical models, clustering models, neural networks, and fuzzy models. It also addresses sensors, hardware, and implementation issues and discusses the resources and datasets required for evaluating and comparing background subtraction algorithms. The datasets and codes used in the text, along with links to software demonstrations, are available on the book's website. A one-stop resource on up-to-date models, algorithms, implementations, and benchmarking techniques, this book helps researchers and industry developers understand how to apply background models and foreground detection methods to video surveillance and related areas, such as optical motion capture, multimedia applications, teleconferencing, video editing, and human–computer interfaces. It can also be used in graduate courses on computer vision, image processing, real-time architecture, machine learning, or data mining. © 2015 by Taylor & Francis Group, LLC.
ISBN: 9781482205381
9781482205374
DOI: 10.1201/b17223
Externe URL: https://www.scopus.com/inward/record.uri?eid=2-s2.0-85054211411&doi=10.1201%2fb17223&partnerID=40&md5=24d06c8d34cfd6000fb4ccf695a1684b

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