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An agent-based Knowledge Discovery from Databases applied in healthcare domain

机译:医疗领域中基于代理的基于数据库的知识发现

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Knowledge Discovery from Databases (KDD) process is complex, iterative and interactive. It takes place several phases. For its implementation, several modules should be developed (module for data storage, module for processing data, data mining module, evaluation module, knowledge management module). The objective of this study is to propose an approach which assimilates every module to an agent. These agents have to communicate and cooperate to help the user to make the most appropriate decision. Thus, The process of KDD can be likened to a Multi-Agent System (MAS). To validate our approach, we have applied a process of KDD for the fight against nosocomial infections within an intensive care unit (ICU) of a University hospital. On a technical level, we have developed a software tool for decision-making support in Java/XML through the agent platform “Madkit”.
机译:从数据库发现知识(KDD)的过程是复杂的,迭代的和交互式的。它分为几个阶段。为了实现它,应该开发几个模块(用于数据存储的模块,用于处理数据的模块,数据挖掘模块,评估模块,知识管理模块)。这项研究的目的是提出一种将每个模块同化到代理的方法。这些代理必须进行沟通和合作,以帮助用户做出最适当的决定。因此,KDD的过程可以比作多代理系统(MAS)。为了验证我们的方法,我们在大学医院的重症监护病房(ICU)中应用了KDD程序来对抗医院感染。在技​​术层面上,我们开发了一种软件工具,用于通过代理平台“ Madkit”以Java / XML进行决策支持。

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