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Titlebook: Computer Vision -- ECCV 2010; 11th European Confer Kostas Daniilidis,Petros Maragos,Nikos Paragios Conference proceedings 2010 Springer-Ver

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發(fā)表于 2025-3-21 19:32:36 | 只看該作者 |倒序瀏覽 |閱讀模式
書目名稱Computer Vision -- ECCV 2010
副標題11th European Confer
編輯Kostas Daniilidis,Petros Maragos,Nikos Paragios
視頻videohttp://file.papertrans.cn/235/234151/234151.mp4
概述Fast-track conference proceedings
叢書名稱Lecture Notes in Computer Science
圖書封面Titlebook: Computer Vision -- ECCV 2010; 11th European Confer Kostas Daniilidis,Petros Maragos,Nikos Paragios Conference proceedings 2010 Springer-Ver
描述The 2010 edition of the European Conference on Computer Vision was held in Heraklion, Crete. The call for papers attracted an absolute record of 1,174 submissions. We describe here the selection of the accepted papers: Thirty-eight area chairs were selected coming from Europe (18), USA and Canada (16), and Asia (4). Their selection was based on the following criteria: (1) Researchers who had served at least two times as Area Chairs within the past two years at major vision conferences were excluded; (2) Researchers who served as Area Chairs at the 2010 Computer Vision and Pattern Recognition were also excluded (exception: ECCV 2012 Program Chairs); (3) Minimization of overlap introduced by Area Chairs being former student and advisors; (4) 20% of the Area Chairs had never served before in a major conference; (5) The Area Chair selection process made all possible efforts to achieve a reasonable geographic distribution between countries, thematic areas and trends in computer vision. EachArea Chair was assigned by the Program Chairs between 28–32 papers. Based on paper content, the Area Chair recommended up to seven potential reviewers per paper. Such assignment was made using all rev
出版日期Conference proceedings 2010
關鍵詞biometrics; computational imaging; face recognition; gesture recognition; illumination; image alignment; i
版次1
doihttps://doi.org/10.1007/978-3-642-15552-9
isbn_softcover978-3-642-15551-2
isbn_ebook978-3-642-15552-9Series ISSN 0302-9743 Series E-ISSN 1611-3349
issn_series 0302-9743
copyrightSpringer-Verlag Berlin Heidelberg 2010
The information of publication is updating

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Sequential Non-Rigid Structure-from-Motion with the 3D-Implicit Low-Rank Shape Modelsition takes place. In this paper we propose an incremental approach to the estimation of deformable models. Image frames are processed online in a sequential fashion. The shape is initialised to a rigid model from the first few frames. Subsequently, the problem is formulated as a model based camera
板凳
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地板
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Euclidean Structure Recovery from Motion in Perspective Image Sequences via Hankel Rank Minimizationtive projection. Existing approaches rely either only on geometrical constraints reflecting the rigid nature of the object, or exploit temporal information by recasting the problem into a nonlinear filtering form. In contrast, here we introduce a new constraint that implicitly exploits the . of the
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Exploiting Loops in the Graph of Trifocal Tensors for Calibrating a Network of Cameras epipolar geometries, a parameterization of the graph of trifocal tensors is proposed in which each trifocal tensor is encoded by a 4-vector. The strength of this parameterization is that the homographies relating two adjacent trifocal tensors, as well as the projection matrices depend linearly on t
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Conjugate Gradient Bundle Adjustmentmputationally very expensive. An alternative to this approach is to apply the conjugate gradients algorithm in the inner loop. This is appealing since the main computational step of the CG algorithm involves only a simple matrix-vector multiplication with the Jacobian. In this work we improve on the
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發(fā)表于 2025-3-23 07:43:34 | 只看該作者
NF-Features – No-Feature-Features for Representing Non-textured Regionsint detectors do not detect features. As these regions are usually non-textured, stable re-localization in different images with conventional methods is not possible. Therefore, a technique is presented which re-localizes once-detected NF-features using correspondences of regular features. Furthermo
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