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Mining approximate temporal functional dependencies with pure temporal grouping in clinical databases

机译:在临床数据库中使用纯时态分组挖掘近似时态功能依赖性

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摘要

Functional dependencies (FDs) typically represent associations over facts stored by a database, such as "patients with the same symptom get the same therapy." In more recent years, some extensions have been introduced to represent both temporal constraints (temporal functional dependencies - TFDs), as "for any given month, patients with the same symptom must have the same therapy, but their therapy may change from one month to the next one," and approximate properties (approximate functional dependencies - AFDs), as "patients with the same symptom generally have the same therapy." An AFD holds most of the facts stored by the database, enabling some data to deviate from the defined property: the percentage of data which violate the given property is user-defined.
机译:功能依赖关系(FD)通常表示与数据库存储的事实的关联,例如“症状相同的患者接受相同的治疗”。近年来,引入了一些扩展来表示两种时间限制(时间功能依赖性-TFD),因为“对于任何给定的月份,具有相同症状的患者必须接受相同的疗法,但是他们的疗法可能从一个月改为下一个”和近似属性(近似功能依赖项-AFD),例如“症状相同的患者通常使用相同的疗法”。 AFD保留数据库存储的大多数事实,从而使某些数据偏离定义的属性:违反给定属性的数据百分比是用户定义的。

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