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Machine Learning

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Artikelnr: SK0221544-SE20260527-055838 Kategori: Etikett:

Beskrivning

Beskrivning

Machine Learning: A Constraint-Based Approach, Second Edition provides readers with a refreshing look at the basic models and algorithms of machine learning, with an emphasis on current topics of interest that include neural networks and kernel machines. The book presents the information in a truly unified manner that is based on the notion of learning from environmental constraints. It draws a path towards deep integration with machine learning that relies on the idea of adopting multivalued logic formalisms, such as in fuzzy systems. Special attention is given to deep learning, which nicely fits the constrained-based approach followed in this book.The book presents a simpler unified notion of regularization, which is strictly connected with the parsimony principle, including many solved exercises that are classified according to the Donald Knuth ranking of difficulty, which essentially consists of a mix of warm-up exercises that lead to deeper research problems. A software simulator is also included.

Om boken

Om denna bok

Machine Learning av Marco Gori, Alessandro Betti och Stefano Melacci är en Häftad bok med 560 sidor på Engelska. Den utgavs 2023 av ELSEVIER SCIENCE TECHNOLOGY.

Produktinformation

Kategori
Okänd
Bandtyp
Häftad
Språk
Engelska
ISBN
9780323898591
Upplaga
0
Utgiven
2023-04-05
Förlag
ELSEVIER SCIENCE TECHNOLOGY
Sidantal
560