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Background subtraction :theory and p...
~
Elgammal, Ahmed,
Background subtraction :theory and practice /
紀錄類型:
書目-電子資源 : Monograph/item
杜威分類號:
621.367
書名/作者:
Background subtraction : : theory and practice // Ahmed Elgammal
作者:
Elgammal, Ahmed,
面頁冊數:
1 online resource (xvi, 67 pages) : : illustrations
標題:
Image stabilization
標題:
Image processing - Handbooks, manuals, etc. - Digital techniques
ISBN:
9781627054416
ISBN:
1627054413
書目註:
Includes bibliographical references (pages 55-66)
內容註:
1. Object detection and segmentation in videos -- 1.1 Characterization of video data -- 1.2 What is foreground and what is background? -- 1.3 The space of solutions -- 1.3.1 Foreground detection vs. background subtraction -- 1.3.2 Video segmentation and motion segmentation -- 1.4 Background subtraction concept
摘要、提要註:
Background subtraction is a widely used concept for detection of moving objects in videos. In the last two decades there has been a lot of development in designing algorithms for background subtraction, as well as wide use of these algorithms in various important applications, such as visual surveillance, sports video analysis, motion capture, etc. Various statistical approaches have been proposed to model scene backgrounds. The concept of background subtraction also has been extended to detect objects from videos captured from moving cameras. This book reviews the concept and practice of background subtraction. We discuss several traditional statistical background subtraction models, including the widely used parametric Gaussian mixture models and non-parametric models. We also discuss the issue of shadow suppression, which is essential for human motion analysis applications. This book discusses approaches and tradeoffs for background maintenance
電子資源:
http://portal.igpublish.com/iglibrary/search/MCPB0000757.html
Background subtraction :theory and practice /
Elgammal, Ahmed,
Background subtraction :
theory and practice /Ahmed Elgammal - 1 online resource (xvi, 67 pages) :illustrations - Synthesis lectures on computer vision,#62153-1064 ;. - Synthesis lectures on computer vision ;#9..
Includes bibliographical references (pages 55-66)
1. Object detection and segmentation in videos -- 1.1 Characterization of video data -- 1.2 What is foreground and what is background? -- 1.3 The space of solutions -- 1.3.1 Foreground detection vs. background subtraction -- 1.3.2 Video segmentation and motion segmentation -- 1.4 Background subtraction concept
Background subtraction is a widely used concept for detection of moving objects in videos. In the last two decades there has been a lot of development in designing algorithms for background subtraction, as well as wide use of these algorithms in various important applications, such as visual surveillance, sports video analysis, motion capture, etc. Various statistical approaches have been proposed to model scene backgrounds. The concept of background subtraction also has been extended to detect objects from videos captured from moving cameras. This book reviews the concept and practice of background subtraction. We discuss several traditional statistical background subtraction models, including the widely used parametric Gaussian mixture models and non-parametric models. We also discuss the issue of shadow suppression, which is essential for human motion analysis applications. This book discusses approaches and tradeoffs for background maintenance
ISBN: 9781627054416
Standard No.: 10.2200 / S00613ED1V01Y201411COV006doiSubjects--Topical Terms:
714005
Image stabilization
Index Terms--Genre/Form:
344515
Electronic books
LC Class. No.: TA1655 / .E432 2015
Dewey Class. No.: 621.367
Background subtraction :theory and practice /
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1. Object detection and segmentation in videos -- 1.1 Characterization of video data -- 1.2 What is foreground and what is background? -- 1.3 The space of solutions -- 1.3.1 Foreground detection vs. background subtraction -- 1.3.2 Video segmentation and motion segmentation -- 1.4 Background subtraction concept
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Background subtraction is a widely used concept for detection of moving objects in videos. In the last two decades there has been a lot of development in designing algorithms for background subtraction, as well as wide use of these algorithms in various important applications, such as visual surveillance, sports video analysis, motion capture, etc. Various statistical approaches have been proposed to model scene backgrounds. The concept of background subtraction also has been extended to detect objects from videos captured from moving cameras. This book reviews the concept and practice of background subtraction. We discuss several traditional statistical background subtraction models, including the widely used parametric Gaussian mixture models and non-parametric models. We also discuss the issue of shadow suppression, which is essential for human motion analysis applications. This book discusses approaches and tradeoffs for background maintenance
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