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A multi-agent system based for solving high-dimensional optimization problems: A case study on email spam detection

机译:一种基于解决高维优化问题的多代理系统:以电子邮件垃圾邮件检测为例

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摘要

There exist numerous high-dimensional problems in the real world which cannot be solved through the common traditional methods. The metaheuristic algorithms have been developed as successful techniques for solving a variety of complex and difficult optimization problems. Notwithstanding their advantages, these algorithms may turn out to have weak points such as lower population diversity and lower convergence rate when facing complex high-dimensional problems. An appropriate approach to solve such problems is to apply multi-agent systems (MASs) along with the metaheuristic algorithms. The present paper proposes a new approach based on the MASs and the concept of agent, which is named MAS as Metaheuristic (MAMH) method. In the proposed method, several basic and powerful metaheuristic algorithms are considered as separate agents, each of which sought to achieve its own goals while competing and cooperating with others to achieve the common goals. Altogether, the proposed method was tested on 32 complex benchmark functions, the results of which indicated the effectiveness and powerfulness of the proposed method for solving high-dimensional optimization problems. In addition, in this paper, the binary version of the proposed method, called Binary MAMH (BMAMH), was implemented on the email spam detection. According to the results, the proposed method exhibited a higher degree of precision in the detection of spam emails compared to other metaheuristic algorithms and methods.
机译:现实世界中存在许多无法通过常用传统方法解决的高维问题。已经开发了成交算法作为解决各种复杂和难度优化问题的成功技术。尽管有优势,但是当面对复杂的高维问题时,这些算法可能会产生弱点,例如较低的群体分集和较低的收敛速度。解决此类问题的适当方法是将多种子体系统(质量)与成群质算法一起应用。本文提出了一种基于质量和代理概念的新方法,该概念被命名为MAS作为成群质训练(MAMH)方法。在提出的方法中,几种基本和强大的成群质算法被认为是单独的代理商,每个算法都试图在与他人竞争和合作的同时实现自己的目标,以实现共同目标。总共,在32个复杂的基准函数上测试了所提出的方法,结果表明了解决高维优化问题的提出方法的有效性和强大性。此外,在本文中,在电子邮件垃圾邮件检测中实现了所提出的方法的二进制版本,称为二进制MAMH(BMAMH)。根据结果​​,该方法在与其他成式算法和方法相比,在检测到垃圾邮件电子邮件时表现出更高程度的精度。

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