Neural network classifier for automatic course-keeping based on fuzzy logic

Author:

Sedova Nelly1,Sedov Viktor2,Bazhenov Ruslan3,Bogatenkov Sergey4

Affiliation:

1. Department of Information Technologies and Systems, Vladivostok State University of Economics and Service, Vladivostok, Russian Federation

2. Department of Electrician Theoretical Bases, Maritime State University named after G.I.Nevelskoy, Vladivostok, Russian Federation

3. Department of Information Systems and Mathematics, Sholom-Aleichem Priamursky State University, Birobidzhan, Russian Federation

4. Department of Information Technology in Economics, South Ural State University, Chelyabinsk, Russian Federation

Abstract

The authors continued their research on the development of an intelligent automatic ships pilot containing a controller based on fuzzy logic. Its features are determined by the optimizer based on a genetic algorithm. It also contains a modular unit of neural network models of ship navigation paths, as well as a neural network classifier. This paper is devoted to the description of a neural network classifier designed to classify the movement patterns of marine vessels to identify the peculiarities of the ship depending on its type and sailing conditions. The introduction of such classifier to an autopilot allows for more precise consideration of multivariate and difficult to formalize factors affecting the vessel while operating, such as varying weather conditions, irregular waves, hydrodynamic characteristics of the vessel, draft, water under the keel, rate of the vessel sailing, etc. The article outlines the technique concerning the development of a neural network classifier and the results of its computer modelling on the example of a refrigerated transport vessel type. The authors used such methods for obtaining and processing findings as spectral estimation, machine learning methods, in particular, neural network technology and computer or simulation modelling.

Publisher

IOS Press

Subject

Artificial Intelligence,General Engineering,Statistics and Probability

Reference17 articles.

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3. Ship course-keeping with neuroevolutionary algorithms;Lacki;Scientific Journals of the Maritime University of Szczecin (Zeszyty Naukowe Akademii Morskiej w Szczecinie),2018

4. Nonlinear controller design of a ship autopilot;Tomera;International Journal of Applied Mathematics and Computer Science,2010

5. Intelligent transportation control system design using wavelet neural network and PID-type learning algorithms;Chen;Expert Systems with Applications,2011

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