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  7. Principles of Neural Model Identification, Selection and Adequacy

Principles of Neural Model Identification, Selection and Adequacy

With Applications to Financial Econometrics

Achilleas Zapranis, Apostolos-Paul N Refenes
Livre broché | Anglais | Perspectives in Neural Computing
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Description

Neural networks have had considerable success in a variety of disciplines including engineering, control, and financial modelling. However a major weakness is the lack of established procedures for testing mis-specified models and the statistical significance of the various parameters which have been estimated. This is particularly important in the majority of financial applications where the data generating processes are dominantly stochastic and only partially deterministic. Based on the latest, most significant developments in estimation theory, model selection and the theory of mis-specified models, this volume develops neural networks into an advanced financial econometrics tool for non-parametric modelling. It provides the theoretical framework required, and displays the efficient use of neural networks for modelling complex financial phenomena. Unlike most other books in this area, this one treats neural networks as statistical devices for non-linear, non-parametric regression analysis.

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Contenu

Nombre de pages :
190
Langue:
Anglais
Collection :

Caractéristiques

EAN:
9781852331399
Date de parution :
28-05-99
Format:
Livre broché
Format numérique:
Trade paperback (VS)
Dimensions :
155 mm x 233 mm
Poids :
308 g

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