A survey of nature inspired optimization algorithms applied to cooperative strategies in robot soccer

A. Larik, Sajjad Haider
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引用次数: 2

Abstract

Nature inspired optimization algorithms are known for their inherent ability to solve complex problems where multiple agents interact to perform a task at hand. This paper presents a survey of how these optimization algorithms have been applied in determining cooperative strategies for a team of soccer playing agents. The survey discusses the contributions made by researchers and makes an effort to map nature inspired optimization algorithms with the type of cooperative strategy evolved. A categorization of cooperative study is also presented specifically in the domain of RoboCup Soccer Simulation League where agents cooperate in a virtual environment to develop a strategy without any issue of physical wear and tear. This study would serve as a starting point for teams participating in RoboCup competitions to enhance their strategy utilizing ideas from nature inspired algorithms.
应用于机器人足球合作策略的自然启发优化算法综述
自然启发的优化算法以其解决复杂问题的固有能力而闻名,其中多个代理相互作用以执行手头的任务。本文介绍了如何将这些优化算法应用于确定足球比赛代理团队的合作策略。本文讨论了研究人员所做的贡献,并试图通过演化出的合作策略类型来映射受自然启发的优化算法。以机器人世界杯足球模拟联赛为例,提出了协作研究的分类,agent在虚拟环境中协作制定策略,不存在物理损耗问题。这项研究将为参加机器人世界杯比赛的团队提供一个起点,以利用自然启发的算法来增强他们的策略。
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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