Modelling cardiac patient set residuals using rough sets.

A Ohrn, S Vinterbo, P Szymański, J Komorowski
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Abstract

Many medical studies deal with the assessment of the prognostic or diagnostic power of some particular test with respect to some particular medical condition. However, even though a test is deemed to be powerful in this respect, the test may not be strictly needed to perform for everyone. If the test is costly or invasive, this issue is of particular interest. This paper presents a methodology based on rough set theory and Boolean reasoning that can be used to identify those patients for whom performing the test is redundant or superfluous. Furthermore, the methodology enables one to automatically construct a set of descriptive and minimal if-then rules that model the patient group in need of the test. A reanalysis of a previously published real-world dataset of patients with chest pain is used as a case study.

使用粗糙集建模心脏病患者集残差。
许多医学研究涉及对某些特定医疗状况的某些特定测试的预后或诊断能力的评估。然而,即使测试在这方面被认为是强大的,测试可能并不严格需要为每个人执行。如果测试是昂贵的或侵入性的,这个问题是特别感兴趣的。本文提出了一种基于粗糙集理论和布尔推理的方法,可用于识别那些执行测试是冗余或多余的患者。此外,该方法使人们能够自动构建一组描述性和最小的if-then规则,为需要测试的患者群体建模。对先前发表的真实世界胸痛患者数据集的重新分析被用作案例研究。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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