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Competing neural networks: finding a strategy for the game of matching pennies
1Consejo Nacional de Investigaciones Cientificas y Tecnicas, Centro Atomico Bariloche and Instituto Balseiro, 8400 Bariloche, Argentina.
Abstract:
The ability of a deterministic, plastic system to learn to imitate stochastic behavior is analyzed. Two neural networks-actually, two perceptrons-are put to play a zero-sum game one against the other. The competition, by acting as a kind of mutually supervised learning, drives the networks to produce an approximation to the optimal strategy, that is to say, a random signal.