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"Computational Techniques for Modelling Learning in Economics offers a critical overview on the computational techniques that are frequently used for modelling learning in economics.
It is a collection of papers, each of which focuses on a different way of modelling learning, including the techniques of evolutionary algorithms, genetic programming, neural networks, classifier systems, local interaction models, least squares learning, Bayesian learning, boundedly rational models and cognitive learning models. Each paper describes the technique it uses, gives an example of its applications, and discusses the advantages and disadvantages of the technique.
Hence, the book offers some guiding in the field of modelling learning in computation economics."--BOOK JACKET.
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Previews available in: English
Edition | Availability |
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Computational Techniques for Modelling Learning in Economics (Advances in Computational Economics)
May 31, 1999, Springer
Hardcover
in English
- 1st edition
0792385039 9780792385035
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