SEARCH FOR OPTIMAL FUNCTIONS OF FUZZY SYSTEMS BASED ON BIOINSPIRED EVOLUTIONARY ALGORITHMS

Q3 Engineering
A. Kozlov, Y. Kondratenko
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引用次数: 0

Abstract

Contemporary research in the field of creation and development of intelligent systems based on fuzzy logic is carried out mainly in the direction of developing highly efficient methods for their synthesis and structural-parametric optimization. In recent years, due to the intensive development of information technologies and computer hardware, bioinspired intelligent techniques of global search are quite promising for solving problems of synthesis and optimization of fuzzy systems, which include evolutionary and swarm methods, that simulate the processes of natural selection, as well as collective behavior of various groups of social animals, insects and microorganisms in nature. This paper is devoted to the development and study of a method of optimal membership functions search for fuzzy systems based on bioinspired evolutionary algorithms of global optimization. The obtained method allows finding the optimal membership functions of linguistic terms at solving the compromise problems of multicriteria structural optimization of various fuzzy systems in order to increase their efficiency, as well as to reduce the degree of complexity of further parametric optimization. In the proposed method for finding the global optimum of the problem being solved, the iterative procedures are carried out on the basis of combination of several different bioinspired evolutionary algorithms with subsequent analysis of the results obtained and the choice of the best variant of the membership function vector. The paper outlines the theoretical foundations and information model for the implementation of the computational step-by-step method for structural optimization of fuzzy systems, as well as presents various options for carrying out its search procedures. In particular, the features of the application and adaptation to the search problem to be solved of such bioinspired evolutionary algorithms as genetic, artificial immune systems and biogeographic are discussed.
基于仿生进化算法的模糊系统最优函数搜索
基于模糊逻辑的智能系统的创建和开发领域的当代研究主要是朝着开发高效的综合方法和结构参数优化的方向进行的。近年来,由于信息技术和计算机硬件的迅猛发展,生物智能的全局搜索技术在解决模糊系统的综合和优化问题上具有很大的前景,其中包括模拟自然选择过程以及自然界中各种群居动物、昆虫和微生物群体的集体行为的进化和群体方法。本文研究了一种基于全局寻优进化算法的模糊系统最优隶属函数搜索方法。所得到的方法在解决各种模糊系统多准则结构优化的折衷问题时,可以找到语言项的最优隶属函数,以提高其效率,并降低进一步参数优化的复杂性。在所提出的求问题全局最优的方法中,结合几种不同的生物进化算法进行迭代过程,随后对所得到的结果进行分析并选择隶属函数向量的最佳变体。本文概述了实现模糊系统结构优化计算分步法的理论基础和信息模型,并给出了执行其搜索程序的各种选项。特别讨论了遗传、人工免疫系统和生物地理等生物启发进化算法在搜索问题上的应用和适应特点。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Journal of Automation and Information Sciences
Journal of Automation and Information Sciences AUTOMATION & CONTROL SYSTEMS-
自引率
0.00%
发文量
0
审稿时长
6-12 weeks
期刊介绍: This journal contains translations of papers from the Russian-language bimonthly "Mezhdunarodnyi nauchno-tekhnicheskiy zhurnal "Problemy upravleniya i informatiki". Subjects covered include information sciences such as pattern recognition, forecasting, identification and evaluation of complex systems, information security, fault diagnosis and reliability. In addition, the journal also deals with such automation subjects as adaptive, stochastic and optimal control, control and identification under uncertainty, robotics, and applications of user-friendly computers in management of economic, industrial, biological, and medical systems. The Journal of Automation and Information Sciences will appeal to professionals in control systems, communications, computers, engineering in biology and medicine, instrumentation and measurement, and those interested in the social implications of technology.
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