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Temporal knowledge discovery in time-series medical databases based on fuzzy-rough reasoning

机译:基于模糊粗糙推理的时间序列医学数据库中的时间知识发现

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摘要

Since hospital information systems have been introduced in large hospitals, a large amount of data, including laboratory examinations, have been stored as temporal databases. The characteristics of these temporal databases are: (I) Each record are inhomogeneous with respect to time-series, including short-term effects and long-term effects. (2) Each record has more than 1000 attributes when a patient is followed for more than one year. (3) When a patient is admitted for a long time, a large amount of data is stored in a very short term. Even medical experts cannot deal with these large databases, the interest in mining some useful information from the data are growing. In this paper, we introduce a combination of extended moving average method and rule induction method, called CEARI to discover new knowledge in temporal databases. Extended moving average method are used for preprocessing, to deal with irregularity of each temporal data. Using several parameters for time-scaling, given by users, this moving average method generates a new database for each time scale with summarized attributes. Then, rule induction method is applied to each new database with summarized attributes. This CEARI is applied to three medical datasets, the results of which show that interesting knowledge is discovered from each database.
机译:由于医院信息系统已在大型医院引入,因此大量数据包括实验室检查,已被存储为时间数据库。这些时间数据库的特征是:(i)每个记录相对于时间序列不均匀,包括短期效应和长期效应。 (2)当患者遵循一年以上时,每条记录有超过1000个属性。 (3)当患者长期录取时,大量数据存储在很短的术语中。即使是医学专家也无法处理这些大型数据库,所以在数据中挖掘一些有用信息的兴趣正在增长。在本文中,我们介绍了延长的移动平均方法和规则感应方法的组合,称为Ceari,以发现时间数据库中的新知识。扩展的移动平均方法用于预处理,以处理每个时间数据的不规则性。使用用户给出的多个参数进行时间缩放,此移动的平均方法为每次缩放的概述属性生成新数据库。然后,将规则诱导方法应用于具有总结属性的每个新数据库。此Ceari应用于三个医疗数据集,结果显示了从每个数据库中发现有趣的知识。

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