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Titlebook: Visual Event Detection; Niels Haering,Niels Vitoria Lobo Book 2001 Springer-Verlag US 2001 artificial intelligence.classification.computer

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書目名稱Visual Event Detection
編輯Niels Haering,Niels Vitoria Lobo
視頻videohttp://file.papertrans.cn/984/983723/983723.mp4
叢書名稱The International Series in Video Computing
圖書封面Titlebook: Visual Event Detection;  Niels Haering,Niels Vitoria Lobo Book 2001 Springer-Verlag US 2001 artificial intelligence.classification.computer
描述Traditionally, scientific fields have defined boundaries, and scientists work on research problems within those boundaries. However, from time to time those boundaries get shifted or blurred to evolve new fields. For instance, the original goal of computer vision was to understand a single image of a scene, by identifying objects, their structure, and spatial arrangements. This has been referred to as image understanding. Recently, computer vision has gradually been making the transition away from understanding single images to analyzing image sequences, or video understanding. Video understanding deals with understanding of video sequences, e. g. , recognition of gestures, activities, facial expressions, etc. The main shift in the classic paradigm has been from the recognition of static objects in the scene to motion-based recognition of actions and events. Video understanding has overlapping research problems with other fields, therefore blurring the fixed boundaries. Computer graphics, image processing, and video databases have obvious overlap with computer vision. The main goal of computer graphics is to gener- ate and animate realistic looking images, and videos. Researchers i
出版日期Book 2001
關(guān)鍵詞artificial intelligence; classification; computer; computer graphics; computer vision; database; image pro
版次1
doihttps://doi.org/10.1007/978-1-4757-3399-0
isbn_softcover978-1-4419-4907-3
isbn_ebook978-1-4757-3399-0Series ISSN 1571-5205
issn_series 1571-5205
copyrightSpringer-Verlag US 2001
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2. - 1 can be solved in .(. + .) time and space on a unit-cost random-access machine with a word length of . bits. His algorithm works by traversing a so-called .. Two new related results are provided here. First, and most importantly, Thorup’s approach is generalized from undirected to directed net
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A Framework for the Design of Visual Event Detectors,w we obtain rich image descriptions based on color, texture, and motion measures, and how they are combined in a fat, flat hierarchy to infer object, shot, and event information. Throughout this chapter we will indicate the scope of the discussion by highlighting the relevant component within the fr
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Features and Classification Methods,ture extraction stage is the slowest of the modules, we consider classification without preprocessing in the first part of this section. Next we consider linear, quadratic, and eigen-analysis techniques for the determination of good subsets of features and classification, we will argue that the best
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Results,etwork and demonstrate a method to extract powerful subsets of the features used to describe still images and video frames. Good feature sets can be found that preserve much of the robustness of the entire feature set using only about a quarter of all features. Sections 3 and 4 in this chapter show
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Summary and Discussion of Alternatives,d applied it to the detection of deciduous trees in still images, hunts in wildlife documentaries, and landings and rocket launches in general unconstrained commercial video. Before summarizing these topics we will turn to issues concerning the choice of the classifier and the feature set.
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Features and Classification Methods,ach to decide on the importance of the features and another approach to classify images. Some systematic approaches are presented which show that the best solutions involve the consideration of an exponential number of combinations of features. The results of the various classification methods are shown in Chapter 4.
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