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Representation Learning

von Marko Robnik-¿ikonja, Marko Robnik-Šikonja, Nada Lavra¿, Nada Lavrač, Vid Podpe¿an und Vid Podpečan
Softcover - 9783030688196
160,49 €
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Hardcover - 9783030688165
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Hardcover - 9783030688165
160,49 €

Beschreibung

This monograph addresses advances in representation learning, a cutting-edge research area of machine learning. Representation learning refers to modern data transformation techniques that convert data of different modalities and complexity, including texts, graphs, and relations, into compact tabular representations, which effectively capture their semantic properties and relations. The monograph focuses on (i) propositionalization approaches, established in relational learning and inductive logic programming, and (ii) embedding approaches, which have gained popularity with recent advances in deep learning. The authors establish a unifying perspective on representation learning techniques developed in these various areas of modern data science, enabling the reader to understand the common underlying principles and to gain insight using selected examples and sample Python code. The monograph should be of interest to a wide audience, ranging from data scientists, machine learning researchers and students to developers, software engineers and industrial researchers interested in hands-on AI solutions.

Propositionalization and Embeddings

Propositionalization and Embeddings

Details

Verlag Springer International Publishing
Ersterscheinung 11. Juli 2022
Maße 23.5 cm x 15.5 cm
Gewicht 283 Gramm
Format Softcover
ISBN-13 9783030688196
Seiten 163

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