Uncertain Projective Geometry: Statistical Reasoning for...

Uncertain Projective Geometry: Statistical Reasoning for Polyhedral Object Reconstruction

Stephan Heuel (auth.)
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Algebraic projective geometry, with its multilinear relations and its embedding into Grassmann-Cayley algebra, has become the basic representation of multiple view geometry, resulting in deep insights into the algebraic structure of geometric relations, as well as in efficient and versatile algorithms for computer vision and image analysis.

This book provides a coherent integration of algebraic projective geometry and spatial reasoning under uncertainty with applications in computer vision. Beyond systematically introducing the theoretical foundations from geometry and statistics and clear rules for performing geometric reasoning under uncertainty, the author provides a collection of detailed algorithms.

The book addresses researchers and advanced students interested in algebraic projective geometry for image analysis, in statistical representation of objects and transformations, or in generic tools for testing and estimating within the context of geometric multiple-view analysis.

Năm:
2004
In lần thứ:
1
Nhà xuát bản:
Springer-Verlag Berlin Heidelberg
Ngôn ngữ:
english
Trang:
210
ISBN 10:
3540246568
ISBN 13:
9783540246565
Loạt:
Lecture Notes in Computer Science 3008
File:
PDF, 7.45 MB
IPFS:
CID , CID Blake2b
english, 2004
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