New cooperative approach for dynamic classification of multimodal and evolutionary data

A. Moussaoui, M. A. Abbas
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Abstract

In this paper we present a new approach for dynamic classification of multimodal and evolutionary data, based on a multi-agent architecture. This approach is adaptive with the evolutions of classes and data in order to optimize the allocation of entities from disparate sources into clusters, and to strengthen the mechanism of incremental classification so that determinate a cases of creating new cluster. This approach will allow the classifiers agents to collaborate in making final decisions. It was implemented on the platform JADE, where every step is handled by specialized agents working together and communicating between them.
多模态演化数据动态分类的新协同方法
本文提出了一种基于多智能体结构的多模态演化数据动态分类新方法。该方法适应类和数据的演变,以优化来自不同来源的实体到集群的分配,并加强增量分类机制,以确定创建新集群的情况。这种方法将允许分类器代理在做出最终决策时进行协作。它是在JADE平台上实现的,其中每个步骤都由专门的代理一起处理并在它们之间进行通信。
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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