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A Multi-agent Framework for Medical Diagnosis Driven Smart Data in a Big Data Environment

机译:用于医学诊断的多代理框架在大数据环境中驱动智能数据

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In the era of big data, recent developments in the field of information and communication technologies are facilitating organizations to innovate and grow. These technological developments and wide adaptation of ubiquitous computing enable numerous opportunities for government and companies to discover useful trends or patterns that are used in health-care decision making. A common problem affecting data quality is the presence of noise and irrelevant information which can lead decision makers to a wrong decision. Intelligent Decision Support System (IDSS) an automated judgment that supports decision making is composed of human and computer interaction to help in decision-making accuracy. Also, multi-agent systems (MAS) are collections of independent intelligent entities that collaborate in the joint resolution of a complex problem. Multi-agent IDSS can be used to solve large-scale convention problem. In this paper, we introduce a multiagent-MapReduce framework based dimension reduction for medical diagnosis that can filter the noise and irrelevant information and keeps only smart data, which can lead to a reduced storage space in one hand and produce a better healthcare decision in the other hand.
机译:在大数据的时代,信息和通信技术领域的最新发展正在促进组织进行创新和成长。这些技术的发展和广泛的计算适应能够为政府和公司提供许多机会,以发现医疗保健决策中使用的有用趋势或模式。影响数据质量的常见问题是存在噪声和无关的信息,可以引导决策者到错误的决定。智能决策支持系统(IDS)支持决策的自动判断由人类和计算机交互组成,以帮助决策精度。此外,多代理系统(MAS)是独立智能实体的集合,可在复杂问题的联合解决方案中进行协作。多代理商IDS可用于解决大规模的惯例问题。在本文中,我们介绍了基于多级MAPREDUCE框架的维度减少,用于医疗诊断,可以过滤噪声和无关信息,并保持智能数据,这可以一方面导致减少的存储空间,并在此处产生更好的医疗保健决定另一方面。

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