Foundations of computer vision : computational geometry, visual image structures and object shape detection / James F. Peters.
By: Peters, James F.,, autor
Material type:
E-bookSeries: (Intelligent systems reference library, 1868-4394 ; volume 124).Publisher: Cham, Switzerland : Springer, 2017Description: 1 recurso en línea (xvii, 431 páginas) : ilustraciones (algunas a color).ISBN: 3319524836; 9783319524832.Subject: Visión por ordenador
| Item type | Current library | Collection | Call number | Status | Date due | Barcode | Item holds | |
|---|---|---|---|---|---|---|---|---|
LIBRO-E NO PRÉSTAMO
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Madrid Digital Acceso Electrónico (UEM) | Ciencias e Ingeniería | TA1634 .P484 2017 EB (Browse shelf(Opens below)) | Acceso electrónico | eBook.20023256 |
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| TA1634 .K75 2016 EB Computer Vision Metrics : Textbook Edition | TA1634 .K896 2015 EB Reliability and Availability of Quality Control Based on Wavelet Computer Vision | TA1634 .L374 2016 EB Large-Scale Visual Geo-Localization | TA1634 .P484 2017 EB Foundations of computer vision : computational geometry, visual image structures and object shape detection | TA1634 .P763 2017 EB Proceedings of International Conference on Computer Vision and Image Processing : CVIP 2016 Volume 1 | TA1634 .P763 2017 EB Proceedings of International Conference on Computer Vision and Image Processing : CVIP 2016 Volume 2 | TA1634 .S945 2022b Computer Vision : Algorithms and Applications |
SpringerLink Springer Engineering eBooks 2017 English+International
Incluye referencias bibliográficas e índice
Basics Leading to Machine Vision -- Working with Pixels -- Visualising Pixel Intensity Distributions -- Linear Filtering -- Edges, Lines, Corners, Gaussian kernel and Voronoï Meshes -- Delaunay Mesh Segmentation -- Video Processing. An Introduction to Real-Time and Offline Video Analysis -- Lowe Keypoints, Maximal Nucleus Clusters, Contours and Shapes -- Postscript. Where Do Shapes fit into the Computer Vision Landscape?.
This book introduces the fundamentals of computer vision (CV), with a focus on extracting useful information from digital images and videos. Including a wealth of methods used in detecting and classifying image objects and their shapes, it is the first book to apply a trio of tools (computational geometry, topology and algorithms) in solving CV problems, shape tracking in image object recognition and detecting the repetition of shapes in single images and video frames. Computational geometry provides a visualization of topological structures such as neighborhoods of points embedded in images, while image topology supplies us with structures useful in the analysis and classification of image regions. Algorithms provide a practical, step-by-step means of viewing image structures. The implementations of CV methods in Matlab and Mathematica, classification of chapter problems with the symbols (easily solved) and (challenging) and its extensive glossary of key words, examples and connections with the fabric of CV make the book an invaluable resource for advanced undergraduate and first year graduate students in Engineering, Computer Science or Applied Mathematics. It offers insights into the design of CV experiments, inclusion of image processing methods in CV projects, as well as the reconstruction and interpretation of recorded natural scenes.
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