by Xin Jin, R'/> Notice of Violation of IEEE Publication Principles<BR>An Artificial Immune Recognition System-based Approach to Software Engineering Management: with Software Metrics Selection
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An Artificial Immune Recognition System-based Approach to Software Engineering Management: with Software Metrics Selection
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Notice of Violation of IEEE Publication Principles
An Artificial Immune Recognition System-based Approach to Software Engineering Management: with Software Metrics Selection

机译:违反IEEE出版原则的通知
基于人工免疫识别系统的软件工程管理方法:选择软件指标

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Notice of Violation of IEEE Publication Principles

"An Artificial Immune Recognition System-based Approach to Software Engineering Management: with Software Metrics Selection"
by Xin Jin, Rongfang Bie, and X.Z. Gao
in the Proceedings of the Sixth International Conference on Intelligent Systems Design and Applications, 2006, pp. 523-528

After careful and considered review of the content and authorship of this paper by a duly constituted expert committee, this paper has been found to be in violation of IEEE''s Publication Principles.

This paper improperly paraphrased portions of original text from the paper cited below. The original text was paraphrased without attribution (including appropriate references to the original author(s) and/or paper title) and without permission.

Due to the nature of this violation, reasonable effort should be made to remove all past references to this paper, and future references should be made to the following article:

"Artificial Immune Recognition System (AIRS): A Review and Analysis"
by Jason Brownlee,
in Technical Report 1-02, Center for Intelligent Systems and Complex Processes (CISCP), Faculty of Information and Communication Technologies, Swinburne University of Technology, January 2005Artificial immune systems (AIS) are emerging machine learners, which embody the principles of natural immune systems for tackling complex real-world problems. The artificial immune recognition system (AIRS) is a new kind of supervised learning AIS. Improving the quality of software products is one of the principal objectives of software engineering. It is well known that software metrics are the key tools in the software quality management. In this paper, we propose an AIRS-based method for software quality classification. We also compare our scheme with other conventional classification techniques. In addition, the gain ratio is employed to select relevant software metrics for classifiers. Results on the MDP benchmark dataset using the error rate (ER) and average sensitivity (AS) as the performance measures demonstrate that the AIRS is a promising method for software quality classification and the gain ratio-based metrics selection can considerably improve the performance of classifiers
机译:违反IEEE发布原则

的通知,由Xin Jin,Rongfang Bie和X.Z撰写,“基于人工免疫识别系统的软件工程管理方法:具有软件度量标准选择”。高
在第六届智能系统设计与应用国际会议论文集,2006年,第523-528页。委员会发现该论文违反了IEEE的出版原则。

该论文对以下引用的论文的原始文本进行了不正确的措辞。原始文本的措辞未经注明出处(包括对原始作者和/或论文标题的适当引用),并且未经许可。

由于此违规行为的性质,应做出合理的努力以删除所有内容。过去对本文的引用,以及将来对以下文章的引用:

“人工免疫识别系统(AIRS):回顾和分析”,
,Jason Brownlee,《技术报告》斯威本科技大学信息与通信技术学院智能系统与复杂过程中心(CISCP)1-02,2005年1月,人工免疫系统(AIS)是新兴的机器学习者,它体现了自然免疫系统解决复杂问题的原理现实问题。人工免疫识别系统(AIRS)是一种新型的监督学习AIS。改善软件产品的质量是软件工程的主要目标之一。众所周知,软件指标是软件质量管理中的关键工具。在本文中,我们提出了一种基于AIRS的软件质量分类方法。我们还将我们的方案与其他常规分类技术进行了比较。另外,采用增益比来选择用于分类器的相关软件度量。使用错误率(ER)和平均灵敏度(AS)作为性能指标的MDP基准数据集上的结果表明,AIRS是用于软件质量分类的有前途的方法,基于增益比率的指标选择可以显着提高分类器的性能

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