DocumentCode :
189223
Title :
Recognizing Fractal Patterns Using a Ring of Phase Oscillators
Author :
Oliveira da Silva, Fabio Alessandro ; Liang Zhao
Author_Institution :
Dept. of Comput. Sci., ICMC-USP, Sao Carlos, Brazil
fYear :
2014
fDate :
18-22 Oct. 2014
Firstpage :
354
Lastpage :
359
Abstract :
A ring of phase oscillators has been proved to be useful for pattern recognition. It has at least three nontrivial advantages over the traditional dynamical neural networks, such as Hopfield Model: First, each input pattern can be encoded in a vector instead of a matrix, second, the connection weights can be determined analytically, third, due to its dynamical nature, it has the ability to capture temporal patterns. In the previous studies of this topic, all patterns are encoded as stable periodic solutions of the oscillator network. In this paper, we continue to explore the oscillator ring for pattern recognition. Specifically, we propose algorithms, which use the chaotic dynamics of the closed loops of Stuart-Landau Oscillators as artificial neurons, to recognize randomly generated fractal patterns. It is worth to note that fractal pattern recognition is a challenge problem due to their discontinuity nature and their complex form.
Keywords :
Hopfield neural nets; fractals; oscillators; pattern recognition; random processes; vectors; Hopfield model; Stuart-Landau oscillator chaotic dynamics; artificial neurons; oscillator network; oscillator ring; phase oscillators; randomly generated fractal pattern recognition; temporal patterns; vector; Biological neural networks; Chaos; Fractals; Neurons; Oscillators; Pattern recognition; Synchronization; Chaos; Fractal Pattern Recognition; Phase Oscillators; Ring;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Intelligent Systems (BRACIS), 2014 Brazilian Conference on
Conference_Location :
Sao Paulo
Type :
conf
DOI :
10.1109/BRACIS.2014.70
Filename :
6984856
Link To Document :
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