The minority game (MG) comes from the so-called ‘‘El Farol bar’’ problem by W.B. Arthur. The underlying idea is competition for limited resources and it can be applied to different fields such as: stock markets, alternative roads between two locations and in general problems in which the players in the ‘‘minority’’ win. Players in this game use a window of the global history for making their decisions, we propose a neural networks approach with learning algorithms in order to determine players strategies. We use three different algorithms to generate the sequence of minority decisions and consider the prediction power of a neural network that uses the Hebbian algorithm. The case of sequences randomly generated is also studied.

A Neural Networks approach to Minority Game

GRILLI, LUCA;
2009-01-01

Abstract

The minority game (MG) comes from the so-called ‘‘El Farol bar’’ problem by W.B. Arthur. The underlying idea is competition for limited resources and it can be applied to different fields such as: stock markets, alternative roads between two locations and in general problems in which the players in the ‘‘minority’’ win. Players in this game use a window of the global history for making their decisions, we propose a neural networks approach with learning algorithms in order to determine players strategies. We use three different algorithms to generate the sequence of minority decisions and consider the prediction power of a neural network that uses the Hebbian algorithm. The case of sequences randomly generated is also studied.
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11369/6001
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