ELM-Based Agents for Grid Resource Selection

Guopeng Zhao, Zhiqi Shen, Ailiya, C. Miao
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引用次数: 1

Abstract

Resource selection in Grid involves great dynamics and uncertainties inherited from tasks and resources. The optimal selection of a resource against a task requires fast and intelligent services. Intelligent agent with fast learning capability is promising to resource selection problem in Grid. This paper proposes an Extreme Learning Machine (ELM)-based agent, in which an ELM connectionist module is embedded in an extended Belief-Desire-Intention (BDI) architecture. ELM empowers the agent with fast training and learning speed in the Grid environment. To improve generalization performance a cooperative learning among a group of ELM-based agents is proposed, for which the group decision is summarized upon individual decisions. The experiment results show that ELM-based agents are able to provide intelligent resource selection services, and the proposed cooperative learning outperforms the individual one.
基于elm的网格资源选择代理
网格中的资源选择具有很大的动态性和不确定性,这些不确定性来源于任务和资源。针对任务的资源优化选择需要快速、智能的服务。具有快速学习能力的智能体有望解决网格中的资源选择问题。本文提出了一种基于极限学习机(ELM)的智能体,该智能体将ELM连接器模块嵌入到扩展的信念-欲望-意图(BDI)体系结构中。ELM赋予agent在网格环境下快速训练和学习的能力。为了提高泛化性能,提出了一种基于elm的智能体群体间的合作学习方法,将群体决策总结为个体决策。实验结果表明,基于elm的智能体能够提供智能的资源选择服务,所提出的合作学习优于个体合作学习。
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