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In this paper, we investigate the stability of patterns embedded as the associative memory distributed on the complex-valued Hopfield neural network, in which the neuron states are encoded by the phase values on a unit circle of complex plane. As learning schemes for embedding patterns onto the network, projection rule and iterative learning rule are formally expanded to the complex-valued case. The retrieval of patterns embedded by iterative learning rule is demonstrated and the stability for embedded patterns is quantitatively investigated.

eISSN:
2083-2567
Langue:
Anglais
Périodicité:
4 fois par an
Sujets de la revue:
Computer Sciences, Databases and Data Mining, Artificial Intelligence