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Outlier detection by means of robust regression estimators for use in engineering science 被引量:2

Outlier detection by means of robust regression estimators for use in engineering science
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摘要 This study compares the ability of different robust regression estimators to detect and classify outliers. Well-known estimators with high breakdown points were compared using simulated data. Mean success rates (MSR) were computed and used as comparison criteria. The results showed that the least median of squares (LMS) and least trimmed squares (LTS) were the most successful methods for data that included leverage points, masking and swamping effects or critical and concentrated outliers. We recommend using LMS and LTS as diagnostic tools to classify outliers, because they remain robust even when applied to models that are heavily contaminated or that have a complicated structure of outliers. This study compares the ability of different robust regression estimators to detect and classify outliers. Well-known estimators with high breakdown points were compared using simulated data. Mean success rates (MSR) were computed and used as comparison criteria. The results showed that the least median of squares (LMS) and least trimmed squares (LTS) were the most successful methods for data that included leverage points, masking and swamping effects or critical and concentrated outliers. We recommend using LMS and LTS as diagnostic tools to classify outliers, because they remain robust even when applied to models that are heavily contaminated or that have a complicated structure of outliers.
出处 《Journal of Zhejiang University-Science A(Applied Physics & Engineering)》 SCIE EI CAS CSCD 2009年第6期909-921,共13页 浙江大学学报(英文版)A辑(应用物理与工程)
基金 Project (No. 28-05-03-03) supported by the Yildiz Technical University Research Fund, Turkey
关键词 Linear regression OUTLIER Mean success rate (MSR) Leverage point Least median of squares (LMS) Least trimmedsquares (LTS) 回归估计 异常检测 工程科学 稳健 学习管理系统 模拟数据 科学研究 诊断工具
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