利用粗糙集和遗传算法提取最小决策算法

M. Hirokane, Shusaku Kouno, Y. Nomura
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引用次数: 1

摘要

在土木工程中,通过工程师等经验积累的知识的再利用是至关重要的。为此,有必要建立一种知识获取方法和一种获取知识的显式表示方法。本文将遗传算法应用于利用粗糙集从实例中推导决策算法的过程中,提出了一种计算量相对较小的推导简单实用决策算法的方法。根据实际施工现场的事故实例数据推导了决策算法,并采用k-fold交叉验证方法对识别率和其他性能指标进行了研究。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Extraction of minimum decision algorithm using rough sets and genetic algorithms
In civil engineering, it is crucial to reuse knowledge which has been accumulated through the experience of engineers, etc. For this purpose, it is necessary to establish a method for knowledge acquisition and a method for explicit representation of the acquired knowledge. This paper applies the genetic algorithm to the process of deriving a decision algorithm from instances by using rough sets, and proposes a method of deriving a simple and useful decision algorithm with a relatively small amount of computation. A decision algorithm is actually derived from the data on accident instances at actual construction sites, and the recognition rate and other performance measures are investigated by the k-fold cross validation method.
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