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Data Segmentation and Model Selection for Computer Vision: A Statistical Approach

Editat de Alireza Bab-Hadiashar, David Suter
en Limba Engleză Hardback – 28 feb 2000
The primary focus of this book is on techniques for segmentation of visual data. By "visual data," we mean data derived from a single image or from a sequence of images. By "segmentation" we mean breaking the visual data into meaningful parts or segments. However, in general, we do not mean "any old data": but data fundamental to the operation of robotic devices such as the range to and motion of objects in a scene. Having said that, much of what is covered in this book is far more general: The above merely describes our driving interests. The central emphasis of this book is that segmentation involves model­ fitting. We believe this to be true either implicitly (as a conscious or sub­ conscious guiding principle of those who develop various approaches) or explicitly. What makes model-fitting in computer vision especially hard? There are a number of factors involved in answering this question. The amount of data involved is very large. The number of segments and types (models) are not known in advance (and can sometimes rapidly change over time). The sensors we have involve the introduction of noise. Usually, we require fast ("real-time" or near real-time) computation of solutions independent of any human intervention/supervision. Chapter 1 summarizes many of the attempts of computer vision researchers to solve the problem of segmenta­ tion in these difficult circumstances.
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Specificații

ISBN-13: 9780387988153
ISBN-10: 0387988157
Pagini: 208
Ilustrații: XX, 208 p.
Dimensiuni: 155 x 235 x 17 mm
Greutate: 0.48 kg
Ediția:2000
Editura: Springer
Colecția Springer
Locul publicării:New York, NY, United States

Public țintă

Research

Cuprins

I Historical Review.- 1 2D and 3D Scene Segmentation for Robotic Vision.- II Statistical and Geometrical Foundations.- 2 Robust Regression Methods and Model Selection.- 3 Robust Measures of Evidence for Variable Selection.- 4 Model Selection Criteria for Geometric Inference.- III Segmentation and Model Selection: Range and Motion.- 5 Range and Motion Segmentation.- 6 Model Selection for Structure and Motion Recovery from Multiple Images.- References.