Similarity-Based Pattern Analysis and Recognition

Similarity-Based Pattern Analysis and Recognition

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Dec 31, 2013 · English · Paperback (308 pages)
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Book Details

Format Paperback
Pages 308
Language English
Published Dec 31, 2013
Publisher Springer
ISBN-10 1447156293
ISBN-13 9781447156291

Description

This accessible text/reference presents a coherent overview of the emerging field of non-Euclidean similarity learning. The book presents a broad range of perspectives on similarity-based pattern analysis and recognition methods, from purely theoretical challenges to practical, real-world applications. The coverage includes both supervised and unsupervised learning paradigms, as well as generative and discriminative models. Topics and features: explores the origination and causes of non-Euclidean (dis)similarity measures, and how they influence the performance of traditional classification algorithms; reviews similarity measures for non-vectorial data, considering both a OC kernel tailoringOCO approach and a strategy for learning similarities directly from training data; describes various methods for OC structure-preservingOCO embeddings of structured data; formulates classical pattern recognition problems from a purely game-theoretic perspective; examines two large-scale biomedical imaging applications."
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