Quality Assurance for Economy Classification based on Data Mining Techniques

A. Rawas, Hamdi A. Mahmoud
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引用次数: 1

Abstract

Researchers in the quality assurance field used traditional techniques for increasing the organization income and take the most suitable decisions. Today they focus and search for a new intelligent techniques in order to enhance the quality of their decisions. This paper based on applying the most robust trend in computer science field which is data mining in the quality assurance field. The cases study which is discussed in this paper based on detecting and predicting the developed and developing countries based on the indicators. This paper uses three different artificial intelligent techniques namely; Artificial Neural Network (ANN), k-Nearest Neighbor (KNN), and Fuzzy k-Nearest Neighbor (FKNN). The main target of this paper is to merge between the last intelligent techniques applied in the computer science with the quality assurance approaches. The experimental result shows that proposed approaches in this paper achieved the highest accuracy score than the other comparative studies as indicates in the experimental result section.
基于数据挖掘技术的经济分类质量保证
质量保证领域的研究人员使用传统技术来增加组织收入,并做出最合适的决策。如今,他们专注于并寻求一种新的智能技术,以提高决策的质量。本文基于计算机科学领域最稳健的趋势——数据挖掘在质量保证领域的应用。本文所讨论的案例研究是基于对发达国家和发展中国家的指标检测和预测。本文使用了三种不同的人工智能技术,即:;人工神经网络(ANN)、k近邻(KNN)和模糊k近邻(FKNN)。本文的主要目标是将计算机科学中最后应用的智能技术与质量保证方法相结合。实验结果表明,如实验结果部分所示,本文提出的方法比其他比较研究获得了最高的准确度分数。
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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