Multidimensional Neural-Like Growing Networks - A New Type of Neural Network

Abstract

The present paper describes a new type of neural networks - multidimensional neural-like growing networks. Multidimensional neural-like growing networks are a dynamic structure, which varies depending on the external information received by receptors and the information coming from the effector area to the outside world. Multidimensional receptor-effector neural-like growing networks are supposed to store and process images of objects or situations in the subject area and manage actions through a variety of spatial representations of information, such as tactile, visual, acoustic, taste, etc. Multidimensional receptor-effector neural-like growing networks are used to design intelligent systems and electronic brains of robots. The article describes the neural-like growing networks, the basic rules for constructing the neural-like growing networks and their comparison with the normal neural networks, modeling of information flows in a human body and basic blocks and functions of electronic brains of intelligent systems and robots.

Authors and Affiliations

Vitaliy Yashchenko

Keywords

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  • EP ID EP137618
  • DOI 10.14569/IJACSA.2015.060401
  • Views 122
  • Downloads 0

How To Cite

Vitaliy Yashchenko (2015). Multidimensional Neural-Like Growing Networks - A New Type of Neural Network. International Journal of Advanced Computer Science & Applications, 6(4), 1-10. https://europub.co.uk/articles/-A-137618