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Learning and Generalisation: With Applications to Neural Networks

-15% su kodu: ENG15
259,17 
Įprasta kaina: 304,90 
-15% su kodu: ENG15
Kupono kodas: ENG15
Akcija baigiasi: 2025-03-03
-15% su kodu: ENG15
259,17 
Įprasta kaina: 304,90 
-15% su kodu: ENG15
Kupono kodas: ENG15
Akcija baigiasi: 2025-03-03
-15% su kodu: ENG15
2025-02-28 304.9000 InStock
Nemokamas pristatymas į paštomatus per 11-15 darbo dienų užsakymams nuo 20,00 

Knygos aprašymas

Learning and Generalization provides a formal mathematical theory addressing intuitive questions of the type: ¿ How does a machine learn a concept on the basis of examples? ¿ How can a neural network, after training, correctly predict the outcome of a previously unseen input? ¿ How much training is required to achieve a given level of accuracy in the prediction? ¿ How can one identify the dynamical behaviour of a nonlinear control system by observing its input-output behaviour over a finite time? The second edition covers new areas including: ¿ support vector machines; ¿ fat-shattering dimensions and applications to neural network learning; ¿ learning with dependent samples generated by a beta-mixing process; ¿ connections between system identification and learning theory; ¿ probabilistic solution of 'intractable problems' in robust control and matrix theory using randomized algorithms. It also contains solutions to some of the open problems posed in the first edition, while adding new open problems.

Informacija

Autorius: Mathukumalli Vidyasagar
Serija: Communications and Control Engineering
Leidėjas: Springer London
Išleidimo metai: 2010
Knygos puslapių skaičius: 516
ISBN-10: 1849968675
ISBN-13: 9781849968676
Formatas: 235 x 155 x 28 mm. Knyga minkštu viršeliu
Kalba: Anglų

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