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Learning with Partially Labeled and Interdependent Data

Jezik AngleščinaAngleščina
Knjiga Mehka
Knjiga Learning with Partially Labeled and Interdependent Data Massih-Reza Amini
Koda Libristo: 15193383
Založba Springer International Publishing AG, oktober 2016
This book develops two key machine learning principles: the semi-supervised paradigm and learning wi... Celoten opis
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This book develops two key machine learning principles: the semi-supervised paradigm and learning with interdependent data. It reveals new applications, primarily web related, that transgress the classical machine learning framework through learning with interdependent data. The book traces how the semi-supervised paradigm and the learning to rank paradigm emerged from new web applications, leading to a massive production of heterogeneous textual data. It explains how semi-supervised learning techniques are widely used, but only allow a limited analysis of the information content and thus do not meet the demands of many web-related tasks. Later chapters deal with the development of learning methods for ranking entities in a large collection with respect to precise information needed. In some cases, learning a ranking function can be reduced to learning a classification function over the pairs of examples. The book proves that this task can be efficiently tackled in a new framework: learning with interdependent data. Researchers and professionals in machine learning will find these new perspectives and solutions valuable. Learning with Partially Labeled and Interdependent Data is also useful for advanced-level students of computer science, particularly those focused on statistics and learning.

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O knjigi

Polni naslov Learning with Partially Labeled and Interdependent Data
Jezik Angleščina
Vezava Knjiga - Mehka
Datum izida 2016
Število strani 106
EAN 9783319353906
ISBN 331935390X
Koda Libristo 15193383
Teža 1942
Mere 155 x 235 x 6
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