Associative Dynamics of Color Images in a Large-Scale Chaotic Neural Network

Makito Oku, Kazuyuki Aihara

Research output: Contribution to journalArticlepeer-review

Abstract

In this paper, we report a way to store color images in a large-scale chaotic neural network and to retrieve them by using chaotic dynamics. In the proposed method, color images are converted to binary codes, modified slightly by inverting a few bits, and stored in the network. The results of numerical simulations show that chaotic transitions among stored patterns and their reverse patterns can be observed within a certain range of parameters. We also compare five different coding schemes of color information, which change the appearance of chaotic dynamics. In addition, if connections are restricted in a neighborhood of each unit, a variety of wave patterns are observed.
Translated title of the contributionAssociative Dynamics of Color Images in a Large-Scale Chaotic Neural Network
Original languageEnglish
Pages (from-to)508-521
Number of pages14
JournalNonlinear Theory and Its Applications, IEICE
Volume2
Issue number4
DOIs
StatePublished - 2011/10

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