Kernel Methods In Computer Vision


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Kernel Methods in Computer Vision


Kernel Methods in Computer Vision

Author: Christoph H. Lampert

language: en

Publisher: Now Publishers Inc

Release Date: 2009


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Few developments have influenced the field of computer vision in the last decade more than the introduction of statistical machine learning techniques. Particularly kernel-based classifiers, such as the support vector machine, have become indispensable tools, providing a unified framework for solving a wide range of image-related prediction tasks, including face recognition, object detection and action classification. By emphasizing the geometric intuition that all kernel methods rely on, Kernel Methods in Computer Vision provides an introduction to kernel-based machine learning techniques accessible to a wide audience including students, researchers and practitioners alike, without sacrificing mathematical correctness. It covers not only support vector machines but also less known techniques for kernel-based regression, outlier detection, clustering and dimensionality reduction. Additionally, it offers an outlook on recent developments in kernel methods that have not yet made it into the regular textbooks: structured prediction, dependency estimation and learning of the kernel function. Each topic is illustrated with examples of successful application in the computer vision literature, making Kernel Methods in Computer Vision a useful guide not only for those wanting to understand the working principles of kernel methods, but also for anyone wanting to apply them to real-life problems.

Kernel Methods and Machine Learning


Kernel Methods and Machine Learning

Author: S. Y. Kung

language: en

Publisher: Cambridge University Press

Release Date: 2014-04-17


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Covering the fundamentals of kernel-based learning theory, this is an essential resource for graduate students and professionals in computer science.

Kernel Methods for Pattern Analysis


Kernel Methods for Pattern Analysis

Author: John Shawe-Taylor

language: en

Publisher: Cambridge University Press

Release Date: 2004-06-28


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