A new definition of qualified gain in a data fusion process: application to telemedicine

D. Bellot, A. Boyer, F. Charpillet
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引用次数: 22

Abstract

A formal framework is proposed for defining data fusion processes. Particularly the notion of qualified gain is proposed: gain related to representation, completeness, accuracy and certainty. These notions are applied to a medical monitoring and diagnosis problem where a dynamic Bayesian network is used to model time series of observations and evolving states. The model aims at giving a daily diagnosis. Experiments are under way using data of an already existing system collected on kidney disease patients. Results are be characterized using our notion of qualified gains.
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数据融合过程中合格增益的新定义:在远程医疗中的应用
提出了一个定义数据融合过程的形式化框架。特别提出了限定增益的概念:与表示、完备性、准确性和确定性有关的增益。这些概念应用于医疗监测和诊断问题,其中动态贝叶斯网络用于模拟时间序列的观察和演化状态。该模型旨在给出日常诊断。实验正在使用现有系统收集的肾脏疾病患者的数据进行。结果用我们的合格增益的概念来描述。
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