基于生物免疫细胞合作的分工问题免疫优化

N. Toma, S. Endo, Koji Yamada, H. Miyagi
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引用次数: 7

摘要

本文提出并评价了一种基于生物免疫细胞协同的免疫优化算法,该算法解决了多智能体系统(MAS)中的分工问题。该算法通过智能体之间以及智能体与环境之间的交互来解决该问题。受免疫细胞合作和类似的共同进化方法的启发,这种相互作用是通过分裂和整合处理进行的。划分和集成处理优化工作域,类似的协同进化方法执行相等的划分。为了验证该算法的有效性,将该算法应用于MAS的典型问题“第n个agent的旅行推销员问题”。通过一些仿真,阐明了用MAS求解的最佳性质。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
An immune optimization inspired by biological immune cell-cooperation for division-and-labor problem
The purposes of the paper are to propose and evaluate an immune optimization algorithm inspired by biological immune cell-cooperation, and this algorithm solves the division-of-labor problems in a multi-agent system (MAS). The proposed algorithm solves the problem through interactions between agents, and between agents and the environment. The interactions are performed by division-and-integration processing, inspired by immune cell-cooperation and a similar co-evolutionary approach. The division-and-integration processing optimizes the work domain, and the similar co-evolutionary approach performs equal divisions. To investigate the validity, this algorithm is applied to "N-th agent's Travelling Salesmen Problem" as a typical problem of MAS. The best property for solving via MAS is clarified with some simulations.
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