多发性硬化症病变分类的差异进化方法

I. D. Falco, U. Scafuri, E. Tarantino
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引用次数: 5

摘要

在传统统计方法难以提取模式的情况下,如何从大量数据中自动提取新的、有趣的知识往往是一种启发式的方法。本文提出了一种基于差分进化的可理解分类规则自动发现方法。然后管理一个多发性硬化症潜在病变的数据库。此外,该工具还确定在对实例进行分类时哪些数据库属性最具区别性。因此,这个进化的工具为临床决策提供了一个有效的决策支持系统,这可能是医学专家帮助他们深入了解评估病变异常的原因的有用工具。
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A Differential Evolution approach for classification of Multiple Sclerosis lesions
The problem of automatically extracting novel and interesting knowledge from large amount of data is often performed heuristically when pattern extraction through classical statistical methods is found hard. In this paper an evolutionary approach, based on Differential Evolution, is proposed, which is able to perform the automatic discovery of comprehensible classification rules as a set of IF...THEN rules over a database of Multiple Sclerosis potential lesions. Moreover, this tool also determines which the most discriminant database attributes are in categorizing instances. Therefore, this evolutionary tool provides an efficient decision support system for clinical decisions, that could be a useful tool for medical experts to help them gain insight into the reasons for assessing the abnormality of a lesion.
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