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Oliver Kramer - Dimensionality Reduction with Unsupervised Nearest Neighbors - 9783642386510 - V9783642386510
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Dimensionality Reduction with Unsupervised Nearest Neighbors

€ 122.80
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Description for Dimensionality Reduction with Unsupervised Nearest Neighbors Hardback. Series: Intelligent Systems Reference Library. Num Pages: 144 pages, 3 black & white illustrations, 45 colour illustrations, biography. BIC Classification: KJT; TBJ; UYQ. Category: (P) Professional & Vocational. Dimension: 235 x 155 x 13. Weight in Grams: 391.

This book is devoted to a novel approach for dimensionality reduction based on the famous nearest neighbor method that is a powerful classification and regression approach. It starts with an introduction to machine learning concepts and a real-world application from the energy domain. Then, unsupervised nearest neighbors (UNN) is introduced as efficient iterative method for dimensionality reduction. Various UNN models are developed step by step, reaching from a simple iterative strategy for discrete latent spaces to a stochastic kernel-based algorithm for learning submanifolds with independent parameterizations. Extensions that allow the embedding of incomplete and noisy patterns are introduced. Various optimization ... Read more

 

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Product Details

Format
Hardback
Publication date
2013
Publisher
Springer-Verlag Berlin and Heidelberg GmbH & Co. KG Germany
Number of pages
144
Condition
New
Series
Intelligent Systems Reference Library
Number of Pages
132
Place of Publication
Berlin, Germany
ISBN
9783642386510
SKU
V9783642386510
Shipping Time
Usually ships in 15 to 20 working days
Ref
99-15

Reviews for Dimensionality Reduction with Unsupervised Nearest Neighbors
From the reviews: “The book provides an overview of the author’s work on dimensionality reduction using unsupervised nearest neighbors. … this book is primarily of interest to scholars who want to learn more about Prof. Kramer’s research on dimensionality reduction.” (Laurens van der Maaten, zbMATH, Vol. 1283, 2014)

Goodreads reviews for Dimensionality Reduction with Unsupervised Nearest Neighbors


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