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首页> 外文期刊>Journal of biomedical informatics. >Rough-set-based ADR signaling from spontaneous reporting data with missing values
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Rough-set-based ADR signaling from spontaneous reporting data with missing values

机译:来自带有缺失值的自发报告数据的基于粗糙集的ADR信令

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摘要

Spontaneous reporting systems of adverse drug events have been widely established in many countries to collect as could as possible all adverse drug events to facilitate the detection of suspected ADR signals via some statistical or data mining methods. Unfortunately, due to privacy concern or other reasons, the reporters sometimes may omit consciously some attributes, causing many missing values existing in the reporting database. Most of research work on ADR detection or methods applied in practice simply adopted listwise deletion to eliminate all data with missing values. Very little work has noticed the possibility and examined the effect of including the missing data in the process of ADR detection. This paper represents our endeavor towards the exploration of this question. We aim at inspecting the feasibility of applying rough set theory to the ADR detection problem. Based on the concept of utilizing characteristic set based approximation to measure the strength of ADR signals, we propose twelve different rough set based measuring methods and show only six of them are feasible for the purpose. Experimental results conducted on the FARES database show that our rough-set-based approach exhibits similar capability in timeline warning of suspicious ADR signals as traditional method with missing deletion, and sometimes can yield noteworthy measures earlier than the traditional method. (C) 2015 Elsevier Inc. All rights reserved.
机译:在许多国家已经广泛建立了不良药品事件的自发报告系统,以尽可能地收集所有不良药品事件,以利于通过某些统计或数据挖掘方法来检测可疑的ADR信号。不幸的是,由于隐私问题或其他原因,报告者有时可能会有意识地忽略某些属性,从而导致报告数据库中存在许多缺失值。关于ADR检测或实践中应用的方法的大多数研究工作只是采用逐列表删除来消除所有缺少值的数据。很少有工作注意到这种可能性,并检查了在ADR检测过程中包括缺失数据的影响。本文代表了我们对这一问题的探索。我们旨在检验将粗糙集理论应用于ADR检测问题的可行性。基于利用基于特征集的逼近来测量ADR信号强度的概念,我们提出了十二种不同的基于粗糙集的测量方法,并表明其中只有六种可行。在FARES数据库上进行的实验结果表明,我们的基于粗糙集的方法在可疑ADR信号的时间线警告方面具有与缺失缺失的传统方法类似的功能,并且有时可以比传统方法更早地提出值得注意的措施。 (C)2015 Elsevier Inc.保留所有权利。

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