Information Processing with Stability Point Modeling in Cohen–Grossberg Neural Networks

Author:

Gospodinova Ekaterina1ORCID,Torlakov Ivan1ORCID

Affiliation:

1. Faculty of Engineering and Pedagogy of Sliven, Technical University of Sofia, 1756 Sofia, Bulgaria

Abstract

The aim of this article is to develop efficient methods of expressing multilevel structured information from various modalities (images, speech, and text) in order to naturally duplicate the structure as it occurs in the human brain. A number of theoretical and practical issues, including the creation of a mathematical model with a stability point, an algorithm, and software implementation for the processing of offline information; the representation of neural networks; and long-term synchronization of the various modalities, must be resolved in order to achieve the goal. An artificial neural network (ANN) of the Cohen–Grossberg type was used to accomplish the objectives. The research techniques reported herein are based on the theory of pattern recognition, as well as speech, text, and image processing algorithms.

Funder

Research and Development Sector of the Technical University of Sofia

Publisher

MDPI AG

Subject

Geometry and Topology,Logic,Mathematical Physics,Algebra and Number Theory,Analysis

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