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首页> 外文期刊>Eurasip Journal on Wireless Communications and Networking >Particularities of data mining in medicine: lessons learned from patient medical time series data analysis
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Particularities of data mining in medicine: lessons learned from patient medical time series data analysis

机译:医学中数据挖掘的特征:患者医疗时间序列数据分析的经验教训

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Abstract Nowadays, large amounts of data are generated in the medical domain. Various physiological signals generated from different organs can be recorded to extract interesting information about patients’ health. The analysis of physiological signals is a hard task that requires the use of specific approaches such as the Knowledge Discovery in Databases process. The application of such process in the domain of medicine has a series of implications and difficulties, especially regarding the application of data mining techniques to data, mainly time series, gathered from medical examinations of patients. The goal of this paper is to describe the lessons learned and the experience gathered by the authors applying data mining techniques to real medical patient data including time series. In this research, we carried out an exhaustive case study working on data from two medical fields: stabilometry (15 professional basketball players, 18 elite ice skaters) and electroencephalography (100 healthy patients, 100 epileptic patients). We applied a previously proposed knowledge discovery framework for classification purpose obtaining good results in terms of classification accuracy (greater than 99% in both fields). The good results obtained in our research are the groundwork for the lessons learned and recommendations made in this position paper that intends to be a guide for experts who have to face similar medical data mining projects.
机译:摘要现在,医疗领域生成了大量数据。可以记录从不同器官产生的各种生理信号,以提取有关患者健康的有趣信息。对生理信号的分析是一种艰难的任务,需要使用特定方法,例如数据库过程中的知识发现。在医学领域中的这种过程的应用具有一系列影响和困难,特别是关于数据挖掘技术在数据中应用数据,主要是时间序列,从患者的体检中收集。本文的目标是描述所学习的经验教训以及将数据挖掘技术应用于包括时间序列的真实医疗患者数据的作者聚集的经验。在这项研究中,我们开展了一项详尽的案例研究,这些研究来自两个医疗领域的数据:稳定测定法(15名专业篮球运动员,18名精英冰滑冰者)和脑电图(100名健康患者,100名癫痫患者)。我们应用了先前提出的知识发现框架,用于在分类准确性(在两个字段中大于99%)获得良好的结果。我们研究中获得的良好结果是所吸取的教训和在本职位文件中提出的建议,该案例旨在成为必须面对类似医疗数据挖掘项目的专家指南。

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